d36d376455787938db4e4d4f50c1e2b244fddfca
[exim.git] / src / src / expand.c
1 /*************************************************
2 * Exim - an Internet mail transport agent *
3 *************************************************/
4
5 /* Copyright (c) University of Cambridge 1995 - 2018 */
6 /* See the file NOTICE for conditions of use and distribution. */
7
8
9 /* Functions for handling string expansion. */
10
11
12 #include "exim.h"
13
14 /* Recursively called function */
15
16 static uschar *expand_string_internal(const uschar *, BOOL, const uschar **, BOOL, BOOL, BOOL *);
17 static int_eximarith_t expanded_string_integer(const uschar *, BOOL);
18
19 #ifdef STAND_ALONE
20 # ifndef SUPPORT_CRYPTEQ
21 # define SUPPORT_CRYPTEQ
22 # endif
23 #endif
24
25 #ifdef LOOKUP_LDAP
26 # include "lookups/ldap.h"
27 #endif
28
29 #ifdef SUPPORT_CRYPTEQ
30 # ifdef CRYPT_H
31 # include <crypt.h>
32 # endif
33 # ifndef HAVE_CRYPT16
34 extern char* crypt16(char*, char*);
35 # endif
36 #endif
37
38 /* The handling of crypt16() is a mess. I will record below the analysis of the
39 mess that was sent to me. We decided, however, to make changing this very low
40 priority, because in practice people are moving away from the crypt()
41 algorithms nowadays, so it doesn't seem worth it.
42
43 <quote>
44 There is an algorithm named "crypt16" in Ultrix and Tru64. It crypts
45 the first 8 characters of the password using a 20-round version of crypt
46 (standard crypt does 25 rounds). It then crypts the next 8 characters,
47 or an empty block if the password is less than 9 characters, using a
48 20-round version of crypt and the same salt as was used for the first
49 block. Characters after the first 16 are ignored. It always generates
50 a 16-byte hash, which is expressed together with the salt as a string
51 of 24 base 64 digits. Here are some links to peruse:
52
53 http://cvs.pld.org.pl/pam/pamcrypt/crypt16.c?rev=1.2
54 http://seclists.org/bugtraq/1999/Mar/0076.html
55
56 There's a different algorithm named "bigcrypt" in HP-UX, Digital Unix,
57 and OSF/1. This is the same as the standard crypt if given a password
58 of 8 characters or less. If given more, it first does the same as crypt
59 using the first 8 characters, then crypts the next 8 (the 9th to 16th)
60 using as salt the first two base 64 digits from the first hash block.
61 If the password is more than 16 characters then it crypts the 17th to 24th
62 characters using as salt the first two base 64 digits from the second hash
63 block. And so on: I've seen references to it cutting off the password at
64 40 characters (5 blocks), 80 (10 blocks), or 128 (16 blocks). Some links:
65
66 http://cvs.pld.org.pl/pam/pamcrypt/bigcrypt.c?rev=1.2
67 http://seclists.org/bugtraq/1999/Mar/0109.html
68 http://h30097.www3.hp.com/docs/base_doc/DOCUMENTATION/HTML/AA-Q0R2D-
69 TET1_html/sec.c222.html#no_id_208
70
71 Exim has something it calls "crypt16". It will either use a native
72 crypt16 or its own implementation. A native crypt16 will presumably
73 be the one that I called "crypt16" above. The internal "crypt16"
74 function, however, is a two-block-maximum implementation of what I called
75 "bigcrypt". The documentation matches the internal code.
76
77 I suspect that whoever did the "crypt16" stuff for Exim didn't realise
78 that crypt16 and bigcrypt were different things.
79
80 Exim uses the LDAP-style scheme identifier "{crypt16}" to refer
81 to whatever it is using under that name. This unfortunately sets a
82 precedent for using "{crypt16}" to identify two incompatible algorithms
83 whose output can't be distinguished. With "{crypt16}" thus rendered
84 ambiguous, I suggest you deprecate it and invent two new identifiers
85 for the two algorithms.
86
87 Both crypt16 and bigcrypt are very poor algorithms, btw. Hashing parts
88 of the password separately means they can be cracked separately, so
89 the double-length hash only doubles the cracking effort instead of
90 squaring it. I recommend salted SHA-1 ({SSHA}), or the Blowfish-based
91 bcrypt ({CRYPT}$2a$).
92 </quote>
93 */
94
95
96
97 /*************************************************
98 * Local statics and tables *
99 *************************************************/
100
101 /* Table of item names, and corresponding switch numbers. The names must be in
102 alphabetical order. */
103
104 static uschar *item_table[] = {
105 US"acl",
106 US"authresults",
107 US"certextract",
108 US"dlfunc",
109 US"env",
110 US"extract",
111 US"filter",
112 US"hash",
113 US"hmac",
114 US"if",
115 #ifdef SUPPORT_I18N
116 US"imapfolder",
117 #endif
118 US"length",
119 US"listextract",
120 US"lookup",
121 US"map",
122 US"nhash",
123 US"perl",
124 US"prvs",
125 US"prvscheck",
126 US"readfile",
127 US"readsocket",
128 US"reduce",
129 US"run",
130 US"sg",
131 US"sort",
132 US"substr",
133 US"tr" };
134
135 enum {
136 EITEM_ACL,
137 EITEM_AUTHRESULTS,
138 EITEM_CERTEXTRACT,
139 EITEM_DLFUNC,
140 EITEM_ENV,
141 EITEM_EXTRACT,
142 EITEM_FILTER,
143 EITEM_HASH,
144 EITEM_HMAC,
145 EITEM_IF,
146 #ifdef SUPPORT_I18N
147 EITEM_IMAPFOLDER,
148 #endif
149 EITEM_LENGTH,
150 EITEM_LISTEXTRACT,
151 EITEM_LOOKUP,
152 EITEM_MAP,
153 EITEM_NHASH,
154 EITEM_PERL,
155 EITEM_PRVS,
156 EITEM_PRVSCHECK,
157 EITEM_READFILE,
158 EITEM_READSOCK,
159 EITEM_REDUCE,
160 EITEM_RUN,
161 EITEM_SG,
162 EITEM_SORT,
163 EITEM_SUBSTR,
164 EITEM_TR };
165
166 /* Tables of operator names, and corresponding switch numbers. The names must be
167 in alphabetical order. There are two tables, because underscore is used in some
168 cases to introduce arguments, whereas for other it is part of the name. This is
169 an historical mis-design. */
170
171 static uschar *op_table_underscore[] = {
172 US"from_utf8",
173 US"local_part",
174 US"quote_local_part",
175 US"reverse_ip",
176 US"time_eval",
177 US"time_interval"
178 #ifdef SUPPORT_I18N
179 ,US"utf8_domain_from_alabel",
180 US"utf8_domain_to_alabel",
181 US"utf8_localpart_from_alabel",
182 US"utf8_localpart_to_alabel"
183 #endif
184 };
185
186 enum {
187 EOP_FROM_UTF8,
188 EOP_LOCAL_PART,
189 EOP_QUOTE_LOCAL_PART,
190 EOP_REVERSE_IP,
191 EOP_TIME_EVAL,
192 EOP_TIME_INTERVAL
193 #ifdef SUPPORT_I18N
194 ,EOP_UTF8_DOMAIN_FROM_ALABEL,
195 EOP_UTF8_DOMAIN_TO_ALABEL,
196 EOP_UTF8_LOCALPART_FROM_ALABEL,
197 EOP_UTF8_LOCALPART_TO_ALABEL
198 #endif
199 };
200
201 static uschar *op_table_main[] = {
202 US"address",
203 US"addresses",
204 US"base32",
205 US"base32d",
206 US"base62",
207 US"base62d",
208 US"base64",
209 US"base64d",
210 US"domain",
211 US"escape",
212 US"escape8bit",
213 US"eval",
214 US"eval10",
215 US"expand",
216 US"h",
217 US"hash",
218 US"hex2b64",
219 US"hexquote",
220 US"ipv6denorm",
221 US"ipv6norm",
222 US"l",
223 US"lc",
224 US"length",
225 US"listcount",
226 US"listnamed",
227 US"mask",
228 US"md5",
229 US"nh",
230 US"nhash",
231 US"quote",
232 US"randint",
233 US"rfc2047",
234 US"rfc2047d",
235 US"rxquote",
236 US"s",
237 US"sha1",
238 US"sha256",
239 US"sha3",
240 US"stat",
241 US"str2b64",
242 US"strlen",
243 US"substr",
244 US"uc",
245 US"utf8clean" };
246
247 enum {
248 EOP_ADDRESS = nelem(op_table_underscore),
249 EOP_ADDRESSES,
250 EOP_BASE32,
251 EOP_BASE32D,
252 EOP_BASE62,
253 EOP_BASE62D,
254 EOP_BASE64,
255 EOP_BASE64D,
256 EOP_DOMAIN,
257 EOP_ESCAPE,
258 EOP_ESCAPE8BIT,
259 EOP_EVAL,
260 EOP_EVAL10,
261 EOP_EXPAND,
262 EOP_H,
263 EOP_HASH,
264 EOP_HEX2B64,
265 EOP_HEXQUOTE,
266 EOP_IPV6DENORM,
267 EOP_IPV6NORM,
268 EOP_L,
269 EOP_LC,
270 EOP_LENGTH,
271 EOP_LISTCOUNT,
272 EOP_LISTNAMED,
273 EOP_MASK,
274 EOP_MD5,
275 EOP_NH,
276 EOP_NHASH,
277 EOP_QUOTE,
278 EOP_RANDINT,
279 EOP_RFC2047,
280 EOP_RFC2047D,
281 EOP_RXQUOTE,
282 EOP_S,
283 EOP_SHA1,
284 EOP_SHA256,
285 EOP_SHA3,
286 EOP_STAT,
287 EOP_STR2B64,
288 EOP_STRLEN,
289 EOP_SUBSTR,
290 EOP_UC,
291 EOP_UTF8CLEAN };
292
293
294 /* Table of condition names, and corresponding switch numbers. The names must
295 be in alphabetical order. */
296
297 static uschar *cond_table[] = {
298 US"<",
299 US"<=",
300 US"=",
301 US"==", /* Backward compatibility */
302 US">",
303 US">=",
304 US"acl",
305 US"and",
306 US"bool",
307 US"bool_lax",
308 US"crypteq",
309 US"def",
310 US"eq",
311 US"eqi",
312 US"exists",
313 US"first_delivery",
314 US"forall",
315 US"forany",
316 US"ge",
317 US"gei",
318 US"gt",
319 US"gti",
320 US"inlist",
321 US"inlisti",
322 US"isip",
323 US"isip4",
324 US"isip6",
325 US"ldapauth",
326 US"le",
327 US"lei",
328 US"lt",
329 US"lti",
330 US"match",
331 US"match_address",
332 US"match_domain",
333 US"match_ip",
334 US"match_local_part",
335 US"or",
336 US"pam",
337 US"pwcheck",
338 US"queue_running",
339 US"radius",
340 US"saslauthd"
341 };
342
343 enum {
344 ECOND_NUM_L,
345 ECOND_NUM_LE,
346 ECOND_NUM_E,
347 ECOND_NUM_EE,
348 ECOND_NUM_G,
349 ECOND_NUM_GE,
350 ECOND_ACL,
351 ECOND_AND,
352 ECOND_BOOL,
353 ECOND_BOOL_LAX,
354 ECOND_CRYPTEQ,
355 ECOND_DEF,
356 ECOND_STR_EQ,
357 ECOND_STR_EQI,
358 ECOND_EXISTS,
359 ECOND_FIRST_DELIVERY,
360 ECOND_FORALL,
361 ECOND_FORANY,
362 ECOND_STR_GE,
363 ECOND_STR_GEI,
364 ECOND_STR_GT,
365 ECOND_STR_GTI,
366 ECOND_INLIST,
367 ECOND_INLISTI,
368 ECOND_ISIP,
369 ECOND_ISIP4,
370 ECOND_ISIP6,
371 ECOND_LDAPAUTH,
372 ECOND_STR_LE,
373 ECOND_STR_LEI,
374 ECOND_STR_LT,
375 ECOND_STR_LTI,
376 ECOND_MATCH,
377 ECOND_MATCH_ADDRESS,
378 ECOND_MATCH_DOMAIN,
379 ECOND_MATCH_IP,
380 ECOND_MATCH_LOCAL_PART,
381 ECOND_OR,
382 ECOND_PAM,
383 ECOND_PWCHECK,
384 ECOND_QUEUE_RUNNING,
385 ECOND_RADIUS,
386 ECOND_SASLAUTHD
387 };
388
389
390 /* Types of table entry */
391
392 enum vtypes {
393 vtype_int, /* value is address of int */
394 vtype_filter_int, /* ditto, but recognized only when filtering */
395 vtype_ino, /* value is address of ino_t (not always an int) */
396 vtype_uid, /* value is address of uid_t (not always an int) */
397 vtype_gid, /* value is address of gid_t (not always an int) */
398 vtype_bool, /* value is address of bool */
399 vtype_stringptr, /* value is address of pointer to string */
400 vtype_msgbody, /* as stringptr, but read when first required */
401 vtype_msgbody_end, /* ditto, the end of the message */
402 vtype_msgheaders, /* the message's headers, processed */
403 vtype_msgheaders_raw, /* the message's headers, unprocessed */
404 vtype_localpart, /* extract local part from string */
405 vtype_domain, /* extract domain from string */
406 vtype_string_func, /* value is string returned by given function */
407 vtype_todbsdin, /* value not used; generate BSD inbox tod */
408 vtype_tode, /* value not used; generate tod in epoch format */
409 vtype_todel, /* value not used; generate tod in epoch/usec format */
410 vtype_todf, /* value not used; generate full tod */
411 vtype_todl, /* value not used; generate log tod */
412 vtype_todlf, /* value not used; generate log file datestamp tod */
413 vtype_todzone, /* value not used; generate time zone only */
414 vtype_todzulu, /* value not used; generate zulu tod */
415 vtype_reply, /* value not used; get reply from headers */
416 vtype_pid, /* value not used; result is pid */
417 vtype_host_lookup, /* value not used; get host name */
418 vtype_load_avg, /* value not used; result is int from os_getloadavg */
419 vtype_pspace, /* partition space; value is T/F for spool/log */
420 vtype_pinodes, /* partition inodes; value is T/F for spool/log */
421 vtype_cert /* SSL certificate */
422 #ifndef DISABLE_DKIM
423 ,vtype_dkim /* Lookup of value in DKIM signature */
424 #endif
425 };
426
427 /* Type for main variable table */
428
429 typedef struct {
430 const char *name;
431 enum vtypes type;
432 void *value;
433 } var_entry;
434
435 /* Type for entries pointing to address/length pairs. Not currently
436 in use. */
437
438 typedef struct {
439 uschar **address;
440 int *length;
441 } alblock;
442
443 static uschar * fn_recipients(void);
444
445 /* This table must be kept in alphabetical order. */
446
447 static var_entry var_table[] = {
448 /* WARNING: Do not invent variables whose names start acl_c or acl_m because
449 they will be confused with user-creatable ACL variables. */
450 { "acl_arg1", vtype_stringptr, &acl_arg[0] },
451 { "acl_arg2", vtype_stringptr, &acl_arg[1] },
452 { "acl_arg3", vtype_stringptr, &acl_arg[2] },
453 { "acl_arg4", vtype_stringptr, &acl_arg[3] },
454 { "acl_arg5", vtype_stringptr, &acl_arg[4] },
455 { "acl_arg6", vtype_stringptr, &acl_arg[5] },
456 { "acl_arg7", vtype_stringptr, &acl_arg[6] },
457 { "acl_arg8", vtype_stringptr, &acl_arg[7] },
458 { "acl_arg9", vtype_stringptr, &acl_arg[8] },
459 { "acl_narg", vtype_int, &acl_narg },
460 { "acl_verify_message", vtype_stringptr, &acl_verify_message },
461 { "address_data", vtype_stringptr, &deliver_address_data },
462 { "address_file", vtype_stringptr, &address_file },
463 { "address_pipe", vtype_stringptr, &address_pipe },
464 #ifdef EXPERIMENTAL_ARC
465 { "arc_domains", vtype_string_func, &fn_arc_domains },
466 { "arc_oldest_pass", vtype_int, &arc_oldest_pass },
467 { "arc_state", vtype_stringptr, &arc_state },
468 { "arc_state_reason", vtype_stringptr, &arc_state_reason },
469 #endif
470 { "authenticated_fail_id",vtype_stringptr, &authenticated_fail_id },
471 { "authenticated_id", vtype_stringptr, &authenticated_id },
472 { "authenticated_sender",vtype_stringptr, &authenticated_sender },
473 { "authentication_failed",vtype_int, &authentication_failed },
474 #ifdef WITH_CONTENT_SCAN
475 { "av_failed", vtype_int, &av_failed },
476 #endif
477 #ifdef EXPERIMENTAL_BRIGHTMAIL
478 { "bmi_alt_location", vtype_stringptr, &bmi_alt_location },
479 { "bmi_base64_tracker_verdict", vtype_stringptr, &bmi_base64_tracker_verdict },
480 { "bmi_base64_verdict", vtype_stringptr, &bmi_base64_verdict },
481 { "bmi_deliver", vtype_int, &bmi_deliver },
482 #endif
483 { "body_linecount", vtype_int, &body_linecount },
484 { "body_zerocount", vtype_int, &body_zerocount },
485 { "bounce_recipient", vtype_stringptr, &bounce_recipient },
486 { "bounce_return_size_limit", vtype_int, &bounce_return_size_limit },
487 { "caller_gid", vtype_gid, &real_gid },
488 { "caller_uid", vtype_uid, &real_uid },
489 { "callout_address", vtype_stringptr, &callout_address },
490 { "compile_date", vtype_stringptr, &version_date },
491 { "compile_number", vtype_stringptr, &version_cnumber },
492 { "config_dir", vtype_stringptr, &config_main_directory },
493 { "config_file", vtype_stringptr, &config_main_filename },
494 { "csa_status", vtype_stringptr, &csa_status },
495 #ifdef EXPERIMENTAL_DCC
496 { "dcc_header", vtype_stringptr, &dcc_header },
497 { "dcc_result", vtype_stringptr, &dcc_result },
498 #endif
499 #ifndef DISABLE_DKIM
500 { "dkim_algo", vtype_dkim, (void *)DKIM_ALGO },
501 { "dkim_bodylength", vtype_dkim, (void *)DKIM_BODYLENGTH },
502 { "dkim_canon_body", vtype_dkim, (void *)DKIM_CANON_BODY },
503 { "dkim_canon_headers", vtype_dkim, (void *)DKIM_CANON_HEADERS },
504 { "dkim_copiedheaders", vtype_dkim, (void *)DKIM_COPIEDHEADERS },
505 { "dkim_created", vtype_dkim, (void *)DKIM_CREATED },
506 { "dkim_cur_signer", vtype_stringptr, &dkim_cur_signer },
507 { "dkim_domain", vtype_stringptr, &dkim_signing_domain },
508 { "dkim_expires", vtype_dkim, (void *)DKIM_EXPIRES },
509 { "dkim_headernames", vtype_dkim, (void *)DKIM_HEADERNAMES },
510 { "dkim_identity", vtype_dkim, (void *)DKIM_IDENTITY },
511 { "dkim_key_granularity",vtype_dkim, (void *)DKIM_KEY_GRANULARITY },
512 { "dkim_key_length", vtype_int, &dkim_key_length },
513 { "dkim_key_nosubdomains",vtype_dkim, (void *)DKIM_NOSUBDOMAINS },
514 { "dkim_key_notes", vtype_dkim, (void *)DKIM_KEY_NOTES },
515 { "dkim_key_srvtype", vtype_dkim, (void *)DKIM_KEY_SRVTYPE },
516 { "dkim_key_testing", vtype_dkim, (void *)DKIM_KEY_TESTING },
517 { "dkim_selector", vtype_stringptr, &dkim_signing_selector },
518 { "dkim_signers", vtype_stringptr, &dkim_signers },
519 { "dkim_verify_reason", vtype_stringptr, &dkim_verify_reason },
520 { "dkim_verify_status", vtype_stringptr, &dkim_verify_status },
521 #endif
522 #ifdef EXPERIMENTAL_DMARC
523 { "dmarc_domain_policy", vtype_stringptr, &dmarc_domain_policy },
524 { "dmarc_status", vtype_stringptr, &dmarc_status },
525 { "dmarc_status_text", vtype_stringptr, &dmarc_status_text },
526 { "dmarc_used_domain", vtype_stringptr, &dmarc_used_domain },
527 #endif
528 { "dnslist_domain", vtype_stringptr, &dnslist_domain },
529 { "dnslist_matched", vtype_stringptr, &dnslist_matched },
530 { "dnslist_text", vtype_stringptr, &dnslist_text },
531 { "dnslist_value", vtype_stringptr, &dnslist_value },
532 { "domain", vtype_stringptr, &deliver_domain },
533 { "domain_data", vtype_stringptr, &deliver_domain_data },
534 #ifndef DISABLE_EVENT
535 { "event_data", vtype_stringptr, &event_data },
536
537 /*XXX want to use generic vars for as many of these as possible*/
538 { "event_defer_errno", vtype_int, &event_defer_errno },
539
540 { "event_name", vtype_stringptr, &event_name },
541 #endif
542 { "exim_gid", vtype_gid, &exim_gid },
543 { "exim_path", vtype_stringptr, &exim_path },
544 { "exim_uid", vtype_uid, &exim_uid },
545 { "exim_version", vtype_stringptr, &version_string },
546 { "headers_added", vtype_string_func, &fn_hdrs_added },
547 { "home", vtype_stringptr, &deliver_home },
548 { "host", vtype_stringptr, &deliver_host },
549 { "host_address", vtype_stringptr, &deliver_host_address },
550 { "host_data", vtype_stringptr, &host_data },
551 { "host_lookup_deferred",vtype_int, &host_lookup_deferred },
552 { "host_lookup_failed", vtype_int, &host_lookup_failed },
553 { "host_port", vtype_int, &deliver_host_port },
554 { "initial_cwd", vtype_stringptr, &initial_cwd },
555 { "inode", vtype_ino, &deliver_inode },
556 { "interface_address", vtype_stringptr, &interface_address },
557 { "interface_port", vtype_int, &interface_port },
558 { "item", vtype_stringptr, &iterate_item },
559 #ifdef LOOKUP_LDAP
560 { "ldap_dn", vtype_stringptr, &eldap_dn },
561 #endif
562 { "load_average", vtype_load_avg, NULL },
563 { "local_part", vtype_stringptr, &deliver_localpart },
564 { "local_part_data", vtype_stringptr, &deliver_localpart_data },
565 { "local_part_prefix", vtype_stringptr, &deliver_localpart_prefix },
566 { "local_part_suffix", vtype_stringptr, &deliver_localpart_suffix },
567 #ifdef HAVE_LOCAL_SCAN
568 { "local_scan_data", vtype_stringptr, &local_scan_data },
569 #endif
570 { "local_user_gid", vtype_gid, &local_user_gid },
571 { "local_user_uid", vtype_uid, &local_user_uid },
572 { "localhost_number", vtype_int, &host_number },
573 { "log_inodes", vtype_pinodes, (void *)FALSE },
574 { "log_space", vtype_pspace, (void *)FALSE },
575 { "lookup_dnssec_authenticated",vtype_stringptr,&lookup_dnssec_authenticated},
576 { "mailstore_basename", vtype_stringptr, &mailstore_basename },
577 #ifdef WITH_CONTENT_SCAN
578 { "malware_name", vtype_stringptr, &malware_name },
579 #endif
580 { "max_received_linelength", vtype_int, &max_received_linelength },
581 { "message_age", vtype_int, &message_age },
582 { "message_body", vtype_msgbody, &message_body },
583 { "message_body_end", vtype_msgbody_end, &message_body_end },
584 { "message_body_size", vtype_int, &message_body_size },
585 { "message_exim_id", vtype_stringptr, &message_id },
586 { "message_headers", vtype_msgheaders, NULL },
587 { "message_headers_raw", vtype_msgheaders_raw, NULL },
588 { "message_id", vtype_stringptr, &message_id },
589 { "message_linecount", vtype_int, &message_linecount },
590 { "message_size", vtype_int, &message_size },
591 #ifdef SUPPORT_I18N
592 { "message_smtputf8", vtype_bool, &message_smtputf8 },
593 #endif
594 #ifdef WITH_CONTENT_SCAN
595 { "mime_anomaly_level", vtype_int, &mime_anomaly_level },
596 { "mime_anomaly_text", vtype_stringptr, &mime_anomaly_text },
597 { "mime_boundary", vtype_stringptr, &mime_boundary },
598 { "mime_charset", vtype_stringptr, &mime_charset },
599 { "mime_content_description", vtype_stringptr, &mime_content_description },
600 { "mime_content_disposition", vtype_stringptr, &mime_content_disposition },
601 { "mime_content_id", vtype_stringptr, &mime_content_id },
602 { "mime_content_size", vtype_int, &mime_content_size },
603 { "mime_content_transfer_encoding",vtype_stringptr, &mime_content_transfer_encoding },
604 { "mime_content_type", vtype_stringptr, &mime_content_type },
605 { "mime_decoded_filename", vtype_stringptr, &mime_decoded_filename },
606 { "mime_filename", vtype_stringptr, &mime_filename },
607 { "mime_is_coverletter", vtype_int, &mime_is_coverletter },
608 { "mime_is_multipart", vtype_int, &mime_is_multipart },
609 { "mime_is_rfc822", vtype_int, &mime_is_rfc822 },
610 { "mime_part_count", vtype_int, &mime_part_count },
611 #endif
612 { "n0", vtype_filter_int, &filter_n[0] },
613 { "n1", vtype_filter_int, &filter_n[1] },
614 { "n2", vtype_filter_int, &filter_n[2] },
615 { "n3", vtype_filter_int, &filter_n[3] },
616 { "n4", vtype_filter_int, &filter_n[4] },
617 { "n5", vtype_filter_int, &filter_n[5] },
618 { "n6", vtype_filter_int, &filter_n[6] },
619 { "n7", vtype_filter_int, &filter_n[7] },
620 { "n8", vtype_filter_int, &filter_n[8] },
621 { "n9", vtype_filter_int, &filter_n[9] },
622 { "original_domain", vtype_stringptr, &deliver_domain_orig },
623 { "original_local_part", vtype_stringptr, &deliver_localpart_orig },
624 { "originator_gid", vtype_gid, &originator_gid },
625 { "originator_uid", vtype_uid, &originator_uid },
626 { "parent_domain", vtype_stringptr, &deliver_domain_parent },
627 { "parent_local_part", vtype_stringptr, &deliver_localpart_parent },
628 { "pid", vtype_pid, NULL },
629 #ifndef DISABLE_PRDR
630 { "prdr_requested", vtype_bool, &prdr_requested },
631 #endif
632 { "primary_hostname", vtype_stringptr, &primary_hostname },
633 #if defined(SUPPORT_PROXY) || defined(SUPPORT_SOCKS)
634 { "proxy_external_address",vtype_stringptr, &proxy_external_address },
635 { "proxy_external_port", vtype_int, &proxy_external_port },
636 { "proxy_local_address", vtype_stringptr, &proxy_local_address },
637 { "proxy_local_port", vtype_int, &proxy_local_port },
638 { "proxy_session", vtype_bool, &proxy_session },
639 #endif
640 { "prvscheck_address", vtype_stringptr, &prvscheck_address },
641 { "prvscheck_keynum", vtype_stringptr, &prvscheck_keynum },
642 { "prvscheck_result", vtype_stringptr, &prvscheck_result },
643 { "qualify_domain", vtype_stringptr, &qualify_domain_sender },
644 { "qualify_recipient", vtype_stringptr, &qualify_domain_recipient },
645 { "queue_name", vtype_stringptr, &queue_name },
646 { "rcpt_count", vtype_int, &rcpt_count },
647 { "rcpt_defer_count", vtype_int, &rcpt_defer_count },
648 { "rcpt_fail_count", vtype_int, &rcpt_fail_count },
649 { "received_count", vtype_int, &received_count },
650 { "received_for", vtype_stringptr, &received_for },
651 { "received_ip_address", vtype_stringptr, &interface_address },
652 { "received_port", vtype_int, &interface_port },
653 { "received_protocol", vtype_stringptr, &received_protocol },
654 { "received_time", vtype_int, &received_time.tv_sec },
655 { "recipient_data", vtype_stringptr, &recipient_data },
656 { "recipient_verify_failure",vtype_stringptr,&recipient_verify_failure },
657 { "recipients", vtype_string_func, &fn_recipients },
658 { "recipients_count", vtype_int, &recipients_count },
659 #ifdef WITH_CONTENT_SCAN
660 { "regex_match_string", vtype_stringptr, &regex_match_string },
661 #endif
662 { "reply_address", vtype_reply, NULL },
663 #if defined(SUPPORT_TLS) && defined(EXPERIMENTAL_REQUIRETLS)
664 { "requiretls", vtype_bool, &tls_requiretls },
665 #endif
666 { "return_path", vtype_stringptr, &return_path },
667 { "return_size_limit", vtype_int, &bounce_return_size_limit },
668 { "router_name", vtype_stringptr, &router_name },
669 { "runrc", vtype_int, &runrc },
670 { "self_hostname", vtype_stringptr, &self_hostname },
671 { "sender_address", vtype_stringptr, &sender_address },
672 { "sender_address_data", vtype_stringptr, &sender_address_data },
673 { "sender_address_domain", vtype_domain, &sender_address },
674 { "sender_address_local_part", vtype_localpart, &sender_address },
675 { "sender_data", vtype_stringptr, &sender_data },
676 { "sender_fullhost", vtype_stringptr, &sender_fullhost },
677 { "sender_helo_dnssec", vtype_bool, &sender_helo_dnssec },
678 { "sender_helo_name", vtype_stringptr, &sender_helo_name },
679 { "sender_host_address", vtype_stringptr, &sender_host_address },
680 { "sender_host_authenticated",vtype_stringptr, &sender_host_authenticated },
681 { "sender_host_dnssec", vtype_bool, &sender_host_dnssec },
682 { "sender_host_name", vtype_host_lookup, NULL },
683 { "sender_host_port", vtype_int, &sender_host_port },
684 { "sender_ident", vtype_stringptr, &sender_ident },
685 { "sender_rate", vtype_stringptr, &sender_rate },
686 { "sender_rate_limit", vtype_stringptr, &sender_rate_limit },
687 { "sender_rate_period", vtype_stringptr, &sender_rate_period },
688 { "sender_rcvhost", vtype_stringptr, &sender_rcvhost },
689 { "sender_verify_failure",vtype_stringptr, &sender_verify_failure },
690 { "sending_ip_address", vtype_stringptr, &sending_ip_address },
691 { "sending_port", vtype_int, &sending_port },
692 { "smtp_active_hostname", vtype_stringptr, &smtp_active_hostname },
693 { "smtp_command", vtype_stringptr, &smtp_cmd_buffer },
694 { "smtp_command_argument", vtype_stringptr, &smtp_cmd_argument },
695 { "smtp_command_history", vtype_string_func, &smtp_cmd_hist },
696 { "smtp_count_at_connection_start", vtype_int, &smtp_accept_count },
697 { "smtp_notquit_reason", vtype_stringptr, &smtp_notquit_reason },
698 { "sn0", vtype_filter_int, &filter_sn[0] },
699 { "sn1", vtype_filter_int, &filter_sn[1] },
700 { "sn2", vtype_filter_int, &filter_sn[2] },
701 { "sn3", vtype_filter_int, &filter_sn[3] },
702 { "sn4", vtype_filter_int, &filter_sn[4] },
703 { "sn5", vtype_filter_int, &filter_sn[5] },
704 { "sn6", vtype_filter_int, &filter_sn[6] },
705 { "sn7", vtype_filter_int, &filter_sn[7] },
706 { "sn8", vtype_filter_int, &filter_sn[8] },
707 { "sn9", vtype_filter_int, &filter_sn[9] },
708 #ifdef WITH_CONTENT_SCAN
709 { "spam_action", vtype_stringptr, &spam_action },
710 { "spam_bar", vtype_stringptr, &spam_bar },
711 { "spam_report", vtype_stringptr, &spam_report },
712 { "spam_score", vtype_stringptr, &spam_score },
713 { "spam_score_int", vtype_stringptr, &spam_score_int },
714 #endif
715 #ifdef SUPPORT_SPF
716 { "spf_guess", vtype_stringptr, &spf_guess },
717 { "spf_header_comment", vtype_stringptr, &spf_header_comment },
718 { "spf_received", vtype_stringptr, &spf_received },
719 { "spf_result", vtype_stringptr, &spf_result },
720 { "spf_result_guessed", vtype_bool, &spf_result_guessed },
721 { "spf_smtp_comment", vtype_stringptr, &spf_smtp_comment },
722 #endif
723 { "spool_directory", vtype_stringptr, &spool_directory },
724 { "spool_inodes", vtype_pinodes, (void *)TRUE },
725 { "spool_space", vtype_pspace, (void *)TRUE },
726 #ifdef EXPERIMENTAL_SRS
727 { "srs_db_address", vtype_stringptr, &srs_db_address },
728 { "srs_db_key", vtype_stringptr, &srs_db_key },
729 { "srs_orig_recipient", vtype_stringptr, &srs_orig_recipient },
730 { "srs_orig_sender", vtype_stringptr, &srs_orig_sender },
731 { "srs_recipient", vtype_stringptr, &srs_recipient },
732 { "srs_status", vtype_stringptr, &srs_status },
733 #endif
734 { "thisaddress", vtype_stringptr, &filter_thisaddress },
735
736 /* The non-(in,out) variables are now deprecated */
737 { "tls_bits", vtype_int, &tls_in.bits },
738 { "tls_certificate_verified", vtype_int, &tls_in.certificate_verified },
739 { "tls_cipher", vtype_stringptr, &tls_in.cipher },
740
741 { "tls_in_bits", vtype_int, &tls_in.bits },
742 { "tls_in_certificate_verified", vtype_int, &tls_in.certificate_verified },
743 { "tls_in_cipher", vtype_stringptr, &tls_in.cipher },
744 { "tls_in_ocsp", vtype_int, &tls_in.ocsp },
745 { "tls_in_ourcert", vtype_cert, &tls_in.ourcert },
746 { "tls_in_peercert", vtype_cert, &tls_in.peercert },
747 { "tls_in_peerdn", vtype_stringptr, &tls_in.peerdn },
748 #if defined(SUPPORT_TLS)
749 { "tls_in_sni", vtype_stringptr, &tls_in.sni },
750 #endif
751 { "tls_out_bits", vtype_int, &tls_out.bits },
752 { "tls_out_certificate_verified", vtype_int,&tls_out.certificate_verified },
753 { "tls_out_cipher", vtype_stringptr, &tls_out.cipher },
754 #ifdef SUPPORT_DANE
755 { "tls_out_dane", vtype_bool, &tls_out.dane_verified },
756 #endif
757 { "tls_out_ocsp", vtype_int, &tls_out.ocsp },
758 { "tls_out_ourcert", vtype_cert, &tls_out.ourcert },
759 { "tls_out_peercert", vtype_cert, &tls_out.peercert },
760 { "tls_out_peerdn", vtype_stringptr, &tls_out.peerdn },
761 #if defined(SUPPORT_TLS)
762 { "tls_out_sni", vtype_stringptr, &tls_out.sni },
763 #endif
764 #ifdef SUPPORT_DANE
765 { "tls_out_tlsa_usage", vtype_int, &tls_out.tlsa_usage },
766 #endif
767
768 { "tls_peerdn", vtype_stringptr, &tls_in.peerdn }, /* mind the alphabetical order! */
769 #if defined(SUPPORT_TLS)
770 { "tls_sni", vtype_stringptr, &tls_in.sni }, /* mind the alphabetical order! */
771 #endif
772
773 { "tod_bsdinbox", vtype_todbsdin, NULL },
774 { "tod_epoch", vtype_tode, NULL },
775 { "tod_epoch_l", vtype_todel, NULL },
776 { "tod_full", vtype_todf, NULL },
777 { "tod_log", vtype_todl, NULL },
778 { "tod_logfile", vtype_todlf, NULL },
779 { "tod_zone", vtype_todzone, NULL },
780 { "tod_zulu", vtype_todzulu, NULL },
781 { "transport_name", vtype_stringptr, &transport_name },
782 { "value", vtype_stringptr, &lookup_value },
783 { "verify_mode", vtype_stringptr, &verify_mode },
784 { "version_number", vtype_stringptr, &version_string },
785 { "warn_message_delay", vtype_stringptr, &warnmsg_delay },
786 { "warn_message_recipient",vtype_stringptr, &warnmsg_recipients },
787 { "warn_message_recipients",vtype_stringptr,&warnmsg_recipients },
788 { "warnmsg_delay", vtype_stringptr, &warnmsg_delay },
789 { "warnmsg_recipient", vtype_stringptr, &warnmsg_recipients },
790 { "warnmsg_recipients", vtype_stringptr, &warnmsg_recipients }
791 };
792
793 static int var_table_size = nelem(var_table);
794 static uschar var_buffer[256];
795 static BOOL malformed_header;
796
797 /* For textual hashes */
798
799 static const char *hashcodes = "abcdefghijklmnopqrtsuvwxyz"
800 "ABCDEFGHIJKLMNOPQRSTUVWXYZ"
801 "0123456789";
802
803 enum { HMAC_MD5, HMAC_SHA1 };
804
805 /* For numeric hashes */
806
807 static unsigned int prime[] = {
808 2, 3, 5, 7, 11, 13, 17, 19, 23, 29,
809 31, 37, 41, 43, 47, 53, 59, 61, 67, 71,
810 73, 79, 83, 89, 97, 101, 103, 107, 109, 113};
811
812 /* For printing modes in symbolic form */
813
814 static uschar *mtable_normal[] =
815 { US"---", US"--x", US"-w-", US"-wx", US"r--", US"r-x", US"rw-", US"rwx" };
816
817 static uschar *mtable_setid[] =
818 { US"--S", US"--s", US"-wS", US"-ws", US"r-S", US"r-s", US"rwS", US"rws" };
819
820 static uschar *mtable_sticky[] =
821 { US"--T", US"--t", US"-wT", US"-wt", US"r-T", US"r-t", US"rwT", US"rwt" };
822
823 /* flags for find_header() */
824 #define FH_EXISTS_ONLY BIT(0)
825 #define FH_WANT_RAW BIT(1)
826 #define FH_WANT_LIST BIT(2)
827
828
829 /*************************************************
830 * Tables for UTF-8 support *
831 *************************************************/
832
833 /* Table of the number of extra characters, indexed by the first character
834 masked with 0x3f. The highest number for a valid UTF-8 character is in fact
835 0x3d. */
836
837 static uschar utf8_table1[] = {
838 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,
839 1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,
840 2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,2,
841 3,3,3,3,3,3,3,3,4,4,4,4,5,5,5,5 };
842
843 /* These are the masks for the data bits in the first byte of a character,
844 indexed by the number of additional bytes. */
845
846 static int utf8_table2[] = { 0xff, 0x1f, 0x0f, 0x07, 0x03, 0x01};
847
848 /* Get the next UTF-8 character, advancing the pointer. */
849
850 #define GETUTF8INC(c, ptr) \
851 c = *ptr++; \
852 if ((c & 0xc0) == 0xc0) \
853 { \
854 int a = utf8_table1[c & 0x3f]; /* Number of additional bytes */ \
855 int s = 6*a; \
856 c = (c & utf8_table2[a]) << s; \
857 while (a-- > 0) \
858 { \
859 s -= 6; \
860 c |= (*ptr++ & 0x3f) << s; \
861 } \
862 }
863
864
865
866 static uschar * base32_chars = US"abcdefghijklmnopqrstuvwxyz234567";
867
868 /*************************************************
869 * Binary chop search on a table *
870 *************************************************/
871
872 /* This is used for matching expansion items and operators.
873
874 Arguments:
875 name the name that is being sought
876 table the table to search
877 table_size the number of items in the table
878
879 Returns: the offset in the table, or -1
880 */
881
882 static int
883 chop_match(uschar *name, uschar **table, int table_size)
884 {
885 uschar **bot = table;
886 uschar **top = table + table_size;
887
888 while (top > bot)
889 {
890 uschar **mid = bot + (top - bot)/2;
891 int c = Ustrcmp(name, *mid);
892 if (c == 0) return mid - table;
893 if (c > 0) bot = mid + 1; else top = mid;
894 }
895
896 return -1;
897 }
898
899
900
901 /*************************************************
902 * Check a condition string *
903 *************************************************/
904
905 /* This function is called to expand a string, and test the result for a "true"
906 or "false" value. Failure of the expansion yields FALSE; logged unless it was a
907 forced fail or lookup defer.
908
909 We used to release all store used, but this is not not safe due
910 to ${dlfunc } and ${acl }. In any case expand_string_internal()
911 is reasonably careful to release what it can.
912
913 The actual false-value tests should be replicated for ECOND_BOOL_LAX.
914
915 Arguments:
916 condition the condition string
917 m1 text to be incorporated in panic error
918 m2 ditto
919
920 Returns: TRUE if condition is met, FALSE if not
921 */
922
923 BOOL
924 expand_check_condition(uschar *condition, uschar *m1, uschar *m2)
925 {
926 int rc;
927 uschar *ss = expand_string(condition);
928 if (ss == NULL)
929 {
930 if (!f.expand_string_forcedfail && !f.search_find_defer)
931 log_write(0, LOG_MAIN|LOG_PANIC, "failed to expand condition \"%s\" "
932 "for %s %s: %s", condition, m1, m2, expand_string_message);
933 return FALSE;
934 }
935 rc = ss[0] != 0 && Ustrcmp(ss, "0") != 0 && strcmpic(ss, US"no") != 0 &&
936 strcmpic(ss, US"false") != 0;
937 return rc;
938 }
939
940
941
942
943 /*************************************************
944 * Pseudo-random number generation *
945 *************************************************/
946
947 /* Pseudo-random number generation. The result is not "expected" to be
948 cryptographically strong but not so weak that someone will shoot themselves
949 in the foot using it as a nonce in some email header scheme or whatever
950 weirdness they'll twist this into. The result should ideally handle fork().
951
952 However, if we're stuck unable to provide this, then we'll fall back to
953 appallingly bad randomness.
954
955 If SUPPORT_TLS is defined then this will not be used except as an emergency
956 fallback.
957
958 Arguments:
959 max range maximum
960 Returns a random number in range [0, max-1]
961 */
962
963 #ifdef SUPPORT_TLS
964 # define vaguely_random_number vaguely_random_number_fallback
965 #endif
966 int
967 vaguely_random_number(int max)
968 {
969 #ifdef SUPPORT_TLS
970 # undef vaguely_random_number
971 #endif
972 static pid_t pid = 0;
973 pid_t p2;
974 #if defined(HAVE_SRANDOM) && !defined(HAVE_SRANDOMDEV)
975 struct timeval tv;
976 #endif
977
978 p2 = getpid();
979 if (p2 != pid)
980 {
981 if (pid != 0)
982 {
983
984 #ifdef HAVE_ARC4RANDOM
985 /* cryptographically strong randomness, common on *BSD platforms, not
986 so much elsewhere. Alas. */
987 #ifndef NOT_HAVE_ARC4RANDOM_STIR
988 arc4random_stir();
989 #endif
990 #elif defined(HAVE_SRANDOM) || defined(HAVE_SRANDOMDEV)
991 #ifdef HAVE_SRANDOMDEV
992 /* uses random(4) for seeding */
993 srandomdev();
994 #else
995 gettimeofday(&tv, NULL);
996 srandom(tv.tv_sec | tv.tv_usec | getpid());
997 #endif
998 #else
999 /* Poor randomness and no seeding here */
1000 #endif
1001
1002 }
1003 pid = p2;
1004 }
1005
1006 #ifdef HAVE_ARC4RANDOM
1007 return arc4random() % max;
1008 #elif defined(HAVE_SRANDOM) || defined(HAVE_SRANDOMDEV)
1009 return random() % max;
1010 #else
1011 /* This one returns a 16-bit number, definitely not crypto-strong */
1012 return random_number(max);
1013 #endif
1014 }
1015
1016
1017
1018
1019 /*************************************************
1020 * Pick out a name from a string *
1021 *************************************************/
1022
1023 /* If the name is too long, it is silently truncated.
1024
1025 Arguments:
1026 name points to a buffer into which to put the name
1027 max is the length of the buffer
1028 s points to the first alphabetic character of the name
1029 extras chars other than alphanumerics to permit
1030
1031 Returns: pointer to the first character after the name
1032
1033 Note: The test for *s != 0 in the while loop is necessary because
1034 Ustrchr() yields non-NULL if the character is zero (which is not something
1035 I expected). */
1036
1037 static const uschar *
1038 read_name(uschar *name, int max, const uschar *s, uschar *extras)
1039 {
1040 int ptr = 0;
1041 while (*s != 0 && (isalnum(*s) || Ustrchr(extras, *s) != NULL))
1042 {
1043 if (ptr < max-1) name[ptr++] = *s;
1044 s++;
1045 }
1046 name[ptr] = 0;
1047 return s;
1048 }
1049
1050
1051
1052 /*************************************************
1053 * Pick out the rest of a header name *
1054 *************************************************/
1055
1056 /* A variable name starting $header_ (or just $h_ for those who like
1057 abbreviations) might not be the complete header name because headers can
1058 contain any printing characters in their names, except ':'. This function is
1059 called to read the rest of the name, chop h[eader]_ off the front, and put ':'
1060 on the end, if the name was terminated by white space.
1061
1062 Arguments:
1063 name points to a buffer in which the name read so far exists
1064 max is the length of the buffer
1065 s points to the first character after the name so far, i.e. the
1066 first non-alphameric character after $header_xxxxx
1067
1068 Returns: a pointer to the first character after the header name
1069 */
1070
1071 static const uschar *
1072 read_header_name(uschar *name, int max, const uschar *s)
1073 {
1074 int prelen = Ustrchr(name, '_') - name + 1;
1075 int ptr = Ustrlen(name) - prelen;
1076 if (ptr > 0) memmove(name, name+prelen, ptr);
1077 while (mac_isgraph(*s) && *s != ':')
1078 {
1079 if (ptr < max-1) name[ptr++] = *s;
1080 s++;
1081 }
1082 if (*s == ':') s++;
1083 name[ptr++] = ':';
1084 name[ptr] = 0;
1085 return s;
1086 }
1087
1088
1089
1090 /*************************************************
1091 * Pick out a number from a string *
1092 *************************************************/
1093
1094 /* Arguments:
1095 n points to an integer into which to put the number
1096 s points to the first digit of the number
1097
1098 Returns: a pointer to the character after the last digit
1099 */
1100 /*XXX consider expanding to int_eximarith_t. But the test for
1101 "overbig numbers" in 0002 still needs to overflow it. */
1102
1103 static uschar *
1104 read_number(int *n, uschar *s)
1105 {
1106 *n = 0;
1107 while (isdigit(*s)) *n = *n * 10 + (*s++ - '0');
1108 return s;
1109 }
1110
1111 static const uschar *
1112 read_cnumber(int *n, const uschar *s)
1113 {
1114 *n = 0;
1115 while (isdigit(*s)) *n = *n * 10 + (*s++ - '0');
1116 return s;
1117 }
1118
1119
1120
1121 /*************************************************
1122 * Extract keyed subfield from a string *
1123 *************************************************/
1124
1125 /* The yield is in dynamic store; NULL means that the key was not found.
1126
1127 Arguments:
1128 key points to the name of the key
1129 s points to the string from which to extract the subfield
1130
1131 Returns: NULL if the subfield was not found, or
1132 a pointer to the subfield's data
1133 */
1134
1135 static uschar *
1136 expand_getkeyed(uschar * key, const uschar * s)
1137 {
1138 int length = Ustrlen(key);
1139 while (isspace(*s)) s++;
1140
1141 /* Loop to search for the key */
1142
1143 while (*s)
1144 {
1145 int dkeylength;
1146 uschar * data;
1147 const uschar * dkey = s;
1148
1149 while (*s && *s != '=' && !isspace(*s)) s++;
1150 dkeylength = s - dkey;
1151 while (isspace(*s)) s++;
1152 if (*s == '=') while (isspace((*(++s))));
1153
1154 data = string_dequote(&s);
1155 if (length == dkeylength && strncmpic(key, dkey, length) == 0)
1156 return data;
1157
1158 while (isspace(*s)) s++;
1159 }
1160
1161 return NULL;
1162 }
1163
1164
1165
1166 static var_entry *
1167 find_var_ent(uschar * name)
1168 {
1169 int first = 0;
1170 int last = var_table_size;
1171
1172 while (last > first)
1173 {
1174 int middle = (first + last)/2;
1175 int c = Ustrcmp(name, var_table[middle].name);
1176
1177 if (c > 0) { first = middle + 1; continue; }
1178 if (c < 0) { last = middle; continue; }
1179 return &var_table[middle];
1180 }
1181 return NULL;
1182 }
1183
1184 /*************************************************
1185 * Extract numbered subfield from string *
1186 *************************************************/
1187
1188 /* Extracts a numbered field from a string that is divided by tokens - for
1189 example a line from /etc/passwd is divided by colon characters. First field is
1190 numbered one. Negative arguments count from the right. Zero returns the whole
1191 string. Returns NULL if there are insufficient tokens in the string
1192
1193 ***WARNING***
1194 Modifies final argument - this is a dynamically generated string, so that's OK.
1195
1196 Arguments:
1197 field number of field to be extracted,
1198 first field = 1, whole string = 0, last field = -1
1199 separators characters that are used to break string into tokens
1200 s points to the string from which to extract the subfield
1201
1202 Returns: NULL if the field was not found,
1203 a pointer to the field's data inside s (modified to add 0)
1204 */
1205
1206 static uschar *
1207 expand_gettokened (int field, uschar *separators, uschar *s)
1208 {
1209 int sep = 1;
1210 int count;
1211 uschar *ss = s;
1212 uschar *fieldtext = NULL;
1213
1214 if (field == 0) return s;
1215
1216 /* Break the line up into fields in place; for field > 0 we stop when we have
1217 done the number of fields we want. For field < 0 we continue till the end of
1218 the string, counting the number of fields. */
1219
1220 count = (field > 0)? field : INT_MAX;
1221
1222 while (count-- > 0)
1223 {
1224 size_t len;
1225
1226 /* Previous field was the last one in the string. For a positive field
1227 number, this means there are not enough fields. For a negative field number,
1228 check that there are enough, and scan back to find the one that is wanted. */
1229
1230 if (sep == 0)
1231 {
1232 if (field > 0 || (-field) > (INT_MAX - count - 1)) return NULL;
1233 if ((-field) == (INT_MAX - count - 1)) return s;
1234 while (field++ < 0)
1235 {
1236 ss--;
1237 while (ss[-1] != 0) ss--;
1238 }
1239 fieldtext = ss;
1240 break;
1241 }
1242
1243 /* Previous field was not last in the string; save its start and put a
1244 zero at its end. */
1245
1246 fieldtext = ss;
1247 len = Ustrcspn(ss, separators);
1248 sep = ss[len];
1249 ss[len] = 0;
1250 ss += len + 1;
1251 }
1252
1253 return fieldtext;
1254 }
1255
1256
1257 static uschar *
1258 expand_getlistele(int field, const uschar * list)
1259 {
1260 const uschar * tlist = list;
1261 int sep = 0;
1262 uschar dummy;
1263
1264 if (field < 0)
1265 {
1266 for (field++; string_nextinlist(&tlist, &sep, &dummy, 1); ) field++;
1267 sep = 0;
1268 }
1269 if (field == 0) return NULL;
1270 while (--field > 0 && (string_nextinlist(&list, &sep, &dummy, 1))) ;
1271 return string_nextinlist(&list, &sep, NULL, 0);
1272 }
1273
1274
1275 /* Certificate fields, by name. Worry about by-OID later */
1276 /* Names are chosen to not have common prefixes */
1277
1278 #ifdef SUPPORT_TLS
1279 typedef struct
1280 {
1281 uschar * name;
1282 int namelen;
1283 uschar * (*getfn)(void * cert, uschar * mod);
1284 } certfield;
1285 static certfield certfields[] =
1286 { /* linear search; no special order */
1287 { US"version", 7, &tls_cert_version },
1288 { US"serial_number", 13, &tls_cert_serial_number },
1289 { US"subject", 7, &tls_cert_subject },
1290 { US"notbefore", 9, &tls_cert_not_before },
1291 { US"notafter", 8, &tls_cert_not_after },
1292 { US"issuer", 6, &tls_cert_issuer },
1293 { US"signature", 9, &tls_cert_signature },
1294 { US"sig_algorithm", 13, &tls_cert_signature_algorithm },
1295 { US"subj_altname", 12, &tls_cert_subject_altname },
1296 { US"ocsp_uri", 8, &tls_cert_ocsp_uri },
1297 { US"crl_uri", 7, &tls_cert_crl_uri },
1298 };
1299
1300 static uschar *
1301 expand_getcertele(uschar * field, uschar * certvar)
1302 {
1303 var_entry * vp;
1304
1305 if (!(vp = find_var_ent(certvar)))
1306 {
1307 expand_string_message =
1308 string_sprintf("no variable named \"%s\"", certvar);
1309 return NULL; /* Unknown variable name */
1310 }
1311 /* NB this stops us passing certs around in variable. Might
1312 want to do that in future */
1313 if (vp->type != vtype_cert)
1314 {
1315 expand_string_message =
1316 string_sprintf("\"%s\" is not a certificate", certvar);
1317 return NULL; /* Unknown variable name */
1318 }
1319 if (!*(void **)vp->value)
1320 return NULL;
1321
1322 if (*field >= '0' && *field <= '9')
1323 return tls_cert_ext_by_oid(*(void **)vp->value, field, 0);
1324
1325 for (certfield * cp = certfields;
1326 cp < certfields + nelem(certfields);
1327 cp++)
1328 if (Ustrncmp(cp->name, field, cp->namelen) == 0)
1329 {
1330 uschar * modifier = *(field += cp->namelen) == ','
1331 ? ++field : NULL;
1332 return (*cp->getfn)( *(void **)vp->value, modifier );
1333 }
1334
1335 expand_string_message =
1336 string_sprintf("bad field selector \"%s\" for certextract", field);
1337 return NULL;
1338 }
1339 #endif /*SUPPORT_TLS*/
1340
1341 /*************************************************
1342 * Extract a substring from a string *
1343 *************************************************/
1344
1345 /* Perform the ${substr or ${length expansion operations.
1346
1347 Arguments:
1348 subject the input string
1349 value1 the offset from the start of the input string to the start of
1350 the output string; if negative, count from the right.
1351 value2 the length of the output string, or negative (-1) for unset
1352 if value1 is positive, unset means "all after"
1353 if value1 is negative, unset means "all before"
1354 len set to the length of the returned string
1355
1356 Returns: pointer to the output string, or NULL if there is an error
1357 */
1358
1359 static uschar *
1360 extract_substr(uschar *subject, int value1, int value2, int *len)
1361 {
1362 int sublen = Ustrlen(subject);
1363
1364 if (value1 < 0) /* count from right */
1365 {
1366 value1 += sublen;
1367
1368 /* If the position is before the start, skip to the start, and adjust the
1369 length. If the length ends up negative, the substring is null because nothing
1370 can precede. This falls out naturally when the length is unset, meaning "all
1371 to the left". */
1372
1373 if (value1 < 0)
1374 {
1375 value2 += value1;
1376 if (value2 < 0) value2 = 0;
1377 value1 = 0;
1378 }
1379
1380 /* Otherwise an unset length => characters before value1 */
1381
1382 else if (value2 < 0)
1383 {
1384 value2 = value1;
1385 value1 = 0;
1386 }
1387 }
1388
1389 /* For a non-negative offset, if the starting position is past the end of the
1390 string, the result will be the null string. Otherwise, an unset length means
1391 "rest"; just set it to the maximum - it will be cut down below if necessary. */
1392
1393 else
1394 {
1395 if (value1 > sublen)
1396 {
1397 value1 = sublen;
1398 value2 = 0;
1399 }
1400 else if (value2 < 0) value2 = sublen;
1401 }
1402
1403 /* Cut the length down to the maximum possible for the offset value, and get
1404 the required characters. */
1405
1406 if (value1 + value2 > sublen) value2 = sublen - value1;
1407 *len = value2;
1408 return subject + value1;
1409 }
1410
1411
1412
1413
1414 /*************************************************
1415 * Old-style hash of a string *
1416 *************************************************/
1417
1418 /* Perform the ${hash expansion operation.
1419
1420 Arguments:
1421 subject the input string (an expanded substring)
1422 value1 the length of the output string; if greater or equal to the
1423 length of the input string, the input string is returned
1424 value2 the number of hash characters to use, or 26 if negative
1425 len set to the length of the returned string
1426
1427 Returns: pointer to the output string, or NULL if there is an error
1428 */
1429
1430 static uschar *
1431 compute_hash(uschar *subject, int value1, int value2, int *len)
1432 {
1433 int sublen = Ustrlen(subject);
1434
1435 if (value2 < 0) value2 = 26;
1436 else if (value2 > Ustrlen(hashcodes))
1437 {
1438 expand_string_message =
1439 string_sprintf("hash count \"%d\" too big", value2);
1440 return NULL;
1441 }
1442
1443 /* Calculate the hash text. We know it is shorter than the original string, so
1444 can safely place it in subject[] (we know that subject is always itself an
1445 expanded substring). */
1446
1447 if (value1 < sublen)
1448 {
1449 int c;
1450 int i = 0;
1451 int j = value1;
1452 while ((c = (subject[j])) != 0)
1453 {
1454 int shift = (c + j++) & 7;
1455 subject[i] ^= (c << shift) | (c >> (8-shift));
1456 if (++i >= value1) i = 0;
1457 }
1458 for (i = 0; i < value1; i++)
1459 subject[i] = hashcodes[(subject[i]) % value2];
1460 }
1461 else value1 = sublen;
1462
1463 *len = value1;
1464 return subject;
1465 }
1466
1467
1468
1469
1470 /*************************************************
1471 * Numeric hash of a string *
1472 *************************************************/
1473
1474 /* Perform the ${nhash expansion operation. The first characters of the
1475 string are treated as most important, and get the highest prime numbers.
1476
1477 Arguments:
1478 subject the input string
1479 value1 the maximum value of the first part of the result
1480 value2 the maximum value of the second part of the result,
1481 or negative to produce only a one-part result
1482 len set to the length of the returned string
1483
1484 Returns: pointer to the output string, or NULL if there is an error.
1485 */
1486
1487 static uschar *
1488 compute_nhash (uschar *subject, int value1, int value2, int *len)
1489 {
1490 uschar *s = subject;
1491 int i = 0;
1492 unsigned long int total = 0; /* no overflow */
1493
1494 while (*s != 0)
1495 {
1496 if (i == 0) i = nelem(prime) - 1;
1497 total += prime[i--] * (unsigned int)(*s++);
1498 }
1499
1500 /* If value2 is unset, just compute one number */
1501
1502 if (value2 < 0)
1503 s = string_sprintf("%lu", total % value1);
1504
1505 /* Otherwise do a div/mod hash */
1506
1507 else
1508 {
1509 total = total % (value1 * value2);
1510 s = string_sprintf("%lu/%lu", total/value2, total % value2);
1511 }
1512
1513 *len = Ustrlen(s);
1514 return s;
1515 }
1516
1517
1518
1519
1520
1521 /*************************************************
1522 * Find the value of a header or headers *
1523 *************************************************/
1524
1525 /* Multiple instances of the same header get concatenated, and this function
1526 can also return a concatenation of all the header lines. When concatenating
1527 specific headers that contain lists of addresses, a comma is inserted between
1528 them. Otherwise we use a straight concatenation. Because some messages can have
1529 pathologically large number of lines, there is a limit on the length that is
1530 returned.
1531
1532 Arguments:
1533 name the name of the header, without the leading $header_ or $h_,
1534 or NULL if a concatenation of all headers is required
1535 newsize return the size of memory block that was obtained; may be NULL
1536 if exists_only is TRUE
1537 flags FH_EXISTS_ONLY
1538 set if called from a def: test; don't need to build a string;
1539 just return a string that is not "" and not "0" if the header
1540 exists
1541 FH_WANT_RAW
1542 set if called for $rh_ or $rheader_ items; no processing,
1543 other than concatenating, will be done on the header. Also used
1544 for $message_headers_raw.
1545 FH_WANT_LIST
1546 Double colon chars in the content, and replace newline with
1547 colon between each element when concatenating; returning a
1548 colon-sep list (elements might contain newlines)
1549 charset name of charset to translate MIME words to; used only if
1550 want_raw is false; if NULL, no translation is done (this is
1551 used for $bh_ and $bheader_)
1552
1553 Returns: NULL if the header does not exist, else a pointer to a new
1554 store block
1555 */
1556
1557 static uschar *
1558 find_header(uschar *name, int *newsize, unsigned flags, uschar *charset)
1559 {
1560 BOOL found = !name;
1561 int len = name ? Ustrlen(name) : 0;
1562 BOOL comma = FALSE;
1563 gstring * g = NULL;
1564
1565 for (header_line * h = header_list; h; h = h->next)
1566 if (h->type != htype_old && h->text) /* NULL => Received: placeholder */
1567 if (!name || (len <= h->slen && strncmpic(name, h->text, len) == 0))
1568 {
1569 uschar * s, * t;
1570 size_t inc;
1571
1572 if (flags & FH_EXISTS_ONLY)
1573 return US"1"; /* don't need actual string */
1574
1575 found = TRUE;
1576 s = h->text + len; /* text to insert */
1577 if (!(flags & FH_WANT_RAW)) /* unless wanted raw, */
1578 while (isspace(*s)) s++; /* remove leading white space */
1579 t = h->text + h->slen; /* end-point */
1580
1581 /* Unless wanted raw, remove trailing whitespace, including the
1582 newline. */
1583
1584 if (flags & FH_WANT_LIST)
1585 while (t > s && t[-1] == '\n') t--;
1586 else if (!(flags & FH_WANT_RAW))
1587 {
1588 while (t > s && isspace(t[-1])) t--;
1589
1590 /* Set comma if handling a single header and it's one of those
1591 that contains an address list, except when asked for raw headers. Only
1592 need to do this once. */
1593
1594 if (name && !comma && Ustrchr("BCFRST", h->type)) comma = TRUE;
1595 }
1596
1597 /* Trim the header roughly if we're approaching limits */
1598 inc = t - s;
1599 if ((g ? g->ptr : 0) + inc > header_insert_maxlen)
1600 inc = header_insert_maxlen - (g ? g->ptr : 0);
1601
1602 /* For raw just copy the data; for a list, add the data as a colon-sep
1603 list-element; for comma-list add as an unchecked comma,newline sep
1604 list-elemment; for other nonraw add as an unchecked newline-sep list (we
1605 stripped trailing WS above including the newline). We ignore the potential
1606 expansion due to colon-doubling, just leaving the loop if the limit is met
1607 or exceeded. */
1608
1609 if (flags & FH_WANT_LIST)
1610 g = string_append_listele_n(g, ':', s, (unsigned)inc);
1611 else if (flags & FH_WANT_RAW)
1612 {
1613 g = string_catn(g, s, (unsigned)inc);
1614 (void) string_from_gstring(g);
1615 }
1616 else if (inc > 0)
1617 if (comma)
1618 g = string_append2_listele_n(g, US",\n", s, (unsigned)inc);
1619 else
1620 g = string_append2_listele_n(g, US"\n", s, (unsigned)inc);
1621
1622 if (g && g->ptr >= header_insert_maxlen) break;
1623 }
1624
1625 if (!found) return NULL; /* No header found */
1626 if (!g) return US"";
1627
1628 /* That's all we do for raw header expansion. */
1629
1630 *newsize = g->size;
1631 if (flags & FH_WANT_RAW)
1632 return g->s;
1633
1634 /* Otherwise do RFC 2047 decoding, translating the charset if requested.
1635 The rfc2047_decode2() function can return an error with decoded data if the
1636 charset translation fails. If decoding fails, it returns NULL. */
1637
1638 else
1639 {
1640 uschar *decoded, *error;
1641
1642 decoded = rfc2047_decode2(g->s, check_rfc2047_length, charset, '?', NULL,
1643 newsize, &error);
1644 if (error)
1645 {
1646 DEBUG(D_any) debug_printf("*** error in RFC 2047 decoding: %s\n"
1647 " input was: %s\n", error, g->s);
1648 }
1649 return decoded ? decoded : g->s;
1650 }
1651 }
1652
1653
1654
1655
1656 /* Append a "local" element to an Authentication-Results: header
1657 if this was a non-smtp message.
1658 */
1659
1660 static gstring *
1661 authres_local(gstring * g, const uschar * sysname)
1662 {
1663 if (!f.authentication_local)
1664 return g;
1665 g = string_append(g, 3, US";\n\tlocal=pass (non-smtp, ", sysname, US")");
1666 if (authenticated_id) g = string_append(g, 2, " u=", authenticated_id);
1667 return g;
1668 }
1669
1670
1671 /* Append an "iprev" element to an Authentication-Results: header
1672 if we have attempted to get the calling host's name.
1673 */
1674
1675 static gstring *
1676 authres_iprev(gstring * g)
1677 {
1678 if (sender_host_name)
1679 g = string_append(g, 3, US";\n\tiprev=pass (", sender_host_name, US")");
1680 else if (host_lookup_deferred)
1681 g = string_catn(g, US";\n\tiprev=temperror", 19);
1682 else if (host_lookup_failed)
1683 g = string_catn(g, US";\n\tiprev=fail", 13);
1684 else
1685 return g;
1686
1687 if (sender_host_address)
1688 g = string_append(g, 2, US" smtp.remote-ip=", sender_host_address);
1689 return g;
1690 }
1691
1692
1693
1694 /*************************************************
1695 * Return list of recipients *
1696 *************************************************/
1697 /* A recipients list is available only during system message filtering,
1698 during ACL processing after DATA, and while expanding pipe commands
1699 generated from a system filter, but not elsewhere. */
1700
1701 static uschar *
1702 fn_recipients(void)
1703 {
1704 uschar * s;
1705 gstring * g = NULL;
1706
1707 if (!f.enable_dollar_recipients) return NULL;
1708
1709 for (int i = 0; i < recipients_count; i++)
1710 {
1711 s = recipients_list[i].address;
1712 g = string_append2_listele_n(g, US", ", s, Ustrlen(s));
1713 }
1714 return g ? g->s : NULL;
1715 }
1716
1717
1718 /*************************************************
1719 * Find value of a variable *
1720 *************************************************/
1721
1722 /* The table of variables is kept in alphabetic order, so we can search it
1723 using a binary chop. The "choplen" variable is nothing to do with the binary
1724 chop.
1725
1726 Arguments:
1727 name the name of the variable being sought
1728 exists_only TRUE if this is a def: test; passed on to find_header()
1729 skipping TRUE => skip any processing evaluation; this is not the same as
1730 exists_only because def: may test for values that are first
1731 evaluated here
1732 newsize pointer to an int which is initially zero; if the answer is in
1733 a new memory buffer, *newsize is set to its size
1734
1735 Returns: NULL if the variable does not exist, or
1736 a pointer to the variable's contents, or
1737 something non-NULL if exists_only is TRUE
1738 */
1739
1740 static uschar *
1741 find_variable(uschar *name, BOOL exists_only, BOOL skipping, int *newsize)
1742 {
1743 var_entry * vp;
1744 uschar *s, *domain;
1745 uschar **ss;
1746 void * val;
1747
1748 /* Handle ACL variables, whose names are of the form acl_cxxx or acl_mxxx.
1749 Originally, xxx had to be a number in the range 0-9 (later 0-19), but from
1750 release 4.64 onwards arbitrary names are permitted, as long as the first 5
1751 characters are acl_c or acl_m and the sixth is either a digit or an underscore
1752 (this gave backwards compatibility at the changeover). There may be built-in
1753 variables whose names start acl_ but they should never start in this way. This
1754 slightly messy specification is a consequence of the history, needless to say.
1755
1756 If an ACL variable does not exist, treat it as empty, unless strict_acl_vars is
1757 set, in which case give an error. */
1758
1759 if ((Ustrncmp(name, "acl_c", 5) == 0 || Ustrncmp(name, "acl_m", 5) == 0) &&
1760 !isalpha(name[5]))
1761 {
1762 tree_node *node =
1763 tree_search((name[4] == 'c')? acl_var_c : acl_var_m, name + 4);
1764 return node ? node->data.ptr : strict_acl_vars ? NULL : US"";
1765 }
1766
1767 /* Handle $auth<n> variables. */
1768
1769 if (Ustrncmp(name, "auth", 4) == 0)
1770 {
1771 uschar *endptr;
1772 int n = Ustrtoul(name + 4, &endptr, 10);
1773 if (*endptr == 0 && n != 0 && n <= AUTH_VARS)
1774 return !auth_vars[n-1] ? US"" : auth_vars[n-1];
1775 }
1776 else if (Ustrncmp(name, "regex", 5) == 0)
1777 {
1778 uschar *endptr;
1779 int n = Ustrtoul(name + 5, &endptr, 10);
1780 if (*endptr == 0 && n != 0 && n <= REGEX_VARS)
1781 return !regex_vars[n-1] ? US"" : regex_vars[n-1];
1782 }
1783
1784 /* For all other variables, search the table */
1785
1786 if (!(vp = find_var_ent(name)))
1787 return NULL; /* Unknown variable name */
1788
1789 /* Found an existing variable. If in skipping state, the value isn't needed,
1790 and we want to avoid processing (such as looking up the host name). */
1791
1792 if (skipping)
1793 return US"";
1794
1795 val = vp->value;
1796 switch (vp->type)
1797 {
1798 case vtype_filter_int:
1799 if (!f.filter_running) return NULL;
1800 /* Fall through */
1801 /* VVVVVVVVVVVV */
1802 case vtype_int:
1803 sprintf(CS var_buffer, "%d", *(int *)(val)); /* Integer */
1804 return var_buffer;
1805
1806 case vtype_ino:
1807 sprintf(CS var_buffer, "%ld", (long int)(*(ino_t *)(val))); /* Inode */
1808 return var_buffer;
1809
1810 case vtype_gid:
1811 sprintf(CS var_buffer, "%ld", (long int)(*(gid_t *)(val))); /* gid */
1812 return var_buffer;
1813
1814 case vtype_uid:
1815 sprintf(CS var_buffer, "%ld", (long int)(*(uid_t *)(val))); /* uid */
1816 return var_buffer;
1817
1818 case vtype_bool:
1819 sprintf(CS var_buffer, "%s", *(BOOL *)(val) ? "yes" : "no"); /* bool */
1820 return var_buffer;
1821
1822 case vtype_stringptr: /* Pointer to string */
1823 return (s = *((uschar **)(val))) ? s : US"";
1824
1825 case vtype_pid:
1826 sprintf(CS var_buffer, "%d", (int)getpid()); /* pid */
1827 return var_buffer;
1828
1829 case vtype_load_avg:
1830 sprintf(CS var_buffer, "%d", OS_GETLOADAVG()); /* load_average */
1831 return var_buffer;
1832
1833 case vtype_host_lookup: /* Lookup if not done so */
1834 if ( !sender_host_name && sender_host_address
1835 && !host_lookup_failed && host_name_lookup() == OK)
1836 host_build_sender_fullhost();
1837 return sender_host_name ? sender_host_name : US"";
1838
1839 case vtype_localpart: /* Get local part from address */
1840 s = *((uschar **)(val));
1841 if (s == NULL) return US"";
1842 domain = Ustrrchr(s, '@');
1843 if (domain == NULL) return s;
1844 if (domain - s > sizeof(var_buffer) - 1)
1845 log_write(0, LOG_MAIN|LOG_PANIC_DIE, "local part longer than " SIZE_T_FMT
1846 " in string expansion", sizeof(var_buffer));
1847 Ustrncpy(var_buffer, s, domain - s);
1848 var_buffer[domain - s] = 0;
1849 return var_buffer;
1850
1851 case vtype_domain: /* Get domain from address */
1852 s = *((uschar **)(val));
1853 if (s == NULL) return US"";
1854 domain = Ustrrchr(s, '@');
1855 return (domain == NULL)? US"" : domain + 1;
1856
1857 case vtype_msgheaders:
1858 return find_header(NULL, newsize, exists_only ? FH_EXISTS_ONLY : 0, NULL);
1859
1860 case vtype_msgheaders_raw:
1861 return find_header(NULL, newsize,
1862 exists_only ? FH_EXISTS_ONLY|FH_WANT_RAW : FH_WANT_RAW, NULL);
1863
1864 case vtype_msgbody: /* Pointer to msgbody string */
1865 case vtype_msgbody_end: /* Ditto, the end of the msg */
1866 ss = (uschar **)(val);
1867 if (!*ss && deliver_datafile >= 0) /* Read body when needed */
1868 {
1869 uschar *body;
1870 off_t start_offset = SPOOL_DATA_START_OFFSET;
1871 int len = message_body_visible;
1872 if (len > message_size) len = message_size;
1873 *ss = body = store_malloc(len+1);
1874 body[0] = 0;
1875 if (vp->type == vtype_msgbody_end)
1876 {
1877 struct stat statbuf;
1878 if (fstat(deliver_datafile, &statbuf) == 0)
1879 {
1880 start_offset = statbuf.st_size - len;
1881 if (start_offset < SPOOL_DATA_START_OFFSET)
1882 start_offset = SPOOL_DATA_START_OFFSET;
1883 }
1884 }
1885 if (lseek(deliver_datafile, start_offset, SEEK_SET) < 0)
1886 log_write(0, LOG_MAIN|LOG_PANIC_DIE, "deliver_datafile lseek: %s",
1887 strerror(errno));
1888 len = read(deliver_datafile, body, len);
1889 if (len > 0)
1890 {
1891 body[len] = 0;
1892 if (message_body_newlines) /* Separate loops for efficiency */
1893 while (len > 0)
1894 { if (body[--len] == 0) body[len] = ' '; }
1895 else
1896 while (len > 0)
1897 { if (body[--len] == '\n' || body[len] == 0) body[len] = ' '; }
1898 }
1899 }
1900 return *ss ? *ss : US"";
1901
1902 case vtype_todbsdin: /* BSD inbox time of day */
1903 return tod_stamp(tod_bsdin);
1904
1905 case vtype_tode: /* Unix epoch time of day */
1906 return tod_stamp(tod_epoch);
1907
1908 case vtype_todel: /* Unix epoch/usec time of day */
1909 return tod_stamp(tod_epoch_l);
1910
1911 case vtype_todf: /* Full time of day */
1912 return tod_stamp(tod_full);
1913
1914 case vtype_todl: /* Log format time of day */
1915 return tod_stamp(tod_log_bare); /* (without timezone) */
1916
1917 case vtype_todzone: /* Time zone offset only */
1918 return tod_stamp(tod_zone);
1919
1920 case vtype_todzulu: /* Zulu time */
1921 return tod_stamp(tod_zulu);
1922
1923 case vtype_todlf: /* Log file datestamp tod */
1924 return tod_stamp(tod_log_datestamp_daily);
1925
1926 case vtype_reply: /* Get reply address */
1927 s = find_header(US"reply-to:", newsize,
1928 exists_only ? FH_EXISTS_ONLY|FH_WANT_RAW : FH_WANT_RAW,
1929 headers_charset);
1930 if (s) while (isspace(*s)) s++;
1931 if (!s || !*s)
1932 {
1933 *newsize = 0; /* For the *s==0 case */
1934 s = find_header(US"from:", newsize,
1935 exists_only ? FH_EXISTS_ONLY|FH_WANT_RAW : FH_WANT_RAW,
1936 headers_charset);
1937 }
1938 if (s)
1939 {
1940 uschar *t;
1941 while (isspace(*s)) s++;
1942 for (t = s; *t != 0; t++) if (*t == '\n') *t = ' ';
1943 while (t > s && isspace(t[-1])) t--;
1944 *t = 0;
1945 }
1946 return s ? s : US"";
1947
1948 case vtype_string_func:
1949 {
1950 uschar * (*fn)() = val;
1951 return fn();
1952 }
1953
1954 case vtype_pspace:
1955 {
1956 int inodes;
1957 sprintf(CS var_buffer, PR_EXIM_ARITH,
1958 receive_statvfs(val == (void *)TRUE, &inodes));
1959 }
1960 return var_buffer;
1961
1962 case vtype_pinodes:
1963 {
1964 int inodes;
1965 (void) receive_statvfs(val == (void *)TRUE, &inodes);
1966 sprintf(CS var_buffer, "%d", inodes);
1967 }
1968 return var_buffer;
1969
1970 case vtype_cert:
1971 return *(void **)val ? US"<cert>" : US"";
1972
1973 #ifndef DISABLE_DKIM
1974 case vtype_dkim:
1975 return dkim_exim_expand_query((int)(long)val);
1976 #endif
1977
1978 }
1979
1980 return NULL; /* Unknown variable. Silences static checkers. */
1981 }
1982
1983
1984
1985
1986 void
1987 modify_variable(uschar *name, void * value)
1988 {
1989 var_entry * vp;
1990 if ((vp = find_var_ent(name))) vp->value = value;
1991 return; /* Unknown variable name, fail silently */
1992 }
1993
1994
1995
1996
1997
1998
1999 /*************************************************
2000 * Read and expand substrings *
2001 *************************************************/
2002
2003 /* This function is called to read and expand argument substrings for various
2004 expansion items. Some have a minimum requirement that is less than the maximum;
2005 in these cases, the first non-present one is set to NULL.
2006
2007 Arguments:
2008 sub points to vector of pointers to set
2009 n maximum number of substrings
2010 m minimum required
2011 sptr points to current string pointer
2012 skipping the skipping flag
2013 check_end if TRUE, check for final '}'
2014 name name of item, for error message
2015 resetok if not NULL, pointer to flag - write FALSE if unsafe to reset
2016 the store.
2017
2018 Returns: 0 OK; string pointer updated
2019 1 curly bracketing error (too few arguments)
2020 2 too many arguments (only if check_end is set); message set
2021 3 other error (expansion failure)
2022 */
2023
2024 static int
2025 read_subs(uschar **sub, int n, int m, const uschar **sptr, BOOL skipping,
2026 BOOL check_end, uschar *name, BOOL *resetok)
2027 {
2028 const uschar *s = *sptr;
2029
2030 while (isspace(*s)) s++;
2031 for (int i = 0; i < n; i++)
2032 {
2033 if (*s != '{')
2034 {
2035 if (i < m)
2036 {
2037 expand_string_message = string_sprintf("Not enough arguments for '%s' "
2038 "(min is %d)", name, m);
2039 return 1;
2040 }
2041 sub[i] = NULL;
2042 break;
2043 }
2044 if (!(sub[i] = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, resetok)))
2045 return 3;
2046 if (*s++ != '}') return 1;
2047 while (isspace(*s)) s++;
2048 }
2049 if (check_end && *s++ != '}')
2050 {
2051 if (s[-1] == '{')
2052 {
2053 expand_string_message = string_sprintf("Too many arguments for '%s' "
2054 "(max is %d)", name, n);
2055 return 2;
2056 }
2057 expand_string_message = string_sprintf("missing '}' after '%s'", name);
2058 return 1;
2059 }
2060
2061 *sptr = s;
2062 return 0;
2063 }
2064
2065
2066
2067
2068 /*************************************************
2069 * Elaborate message for bad variable *
2070 *************************************************/
2071
2072 /* For the "unknown variable" message, take a look at the variable's name, and
2073 give additional information about possible ACL variables. The extra information
2074 is added on to expand_string_message.
2075
2076 Argument: the name of the variable
2077 Returns: nothing
2078 */
2079
2080 static void
2081 check_variable_error_message(uschar *name)
2082 {
2083 if (Ustrncmp(name, "acl_", 4) == 0)
2084 expand_string_message = string_sprintf("%s (%s)", expand_string_message,
2085 (name[4] == 'c' || name[4] == 'm')?
2086 (isalpha(name[5])?
2087 US"6th character of a user-defined ACL variable must be a digit or underscore" :
2088 US"strict_acl_vars is set" /* Syntax is OK, it has to be this */
2089 ) :
2090 US"user-defined ACL variables must start acl_c or acl_m");
2091 }
2092
2093
2094
2095 /*
2096 Load args from sub array to globals, and call acl_check().
2097 Sub array will be corrupted on return.
2098
2099 Returns: OK access is granted by an ACCEPT verb
2100 DISCARD access is (apparently) granted by a DISCARD verb
2101 FAIL access is denied
2102 FAIL_DROP access is denied; drop the connection
2103 DEFER can't tell at the moment
2104 ERROR disaster
2105 */
2106 static int
2107 eval_acl(uschar ** sub, int nsub, uschar ** user_msgp)
2108 {
2109 int i;
2110 int sav_narg = acl_narg;
2111 int ret;
2112 uschar * dummy_logmsg;
2113 extern int acl_where;
2114
2115 if(--nsub > nelem(acl_arg)) nsub = nelem(acl_arg);
2116 for (i = 0; i < nsub && sub[i+1]; i++)
2117 {
2118 uschar * tmp = acl_arg[i];
2119 acl_arg[i] = sub[i+1]; /* place callers args in the globals */
2120 sub[i+1] = tmp; /* stash the old args using our caller's storage */
2121 }
2122 acl_narg = i;
2123 while (i < nsub)
2124 {
2125 sub[i+1] = acl_arg[i];
2126 acl_arg[i++] = NULL;
2127 }
2128
2129 DEBUG(D_expand)
2130 debug_printf_indent("expanding: acl: %s arg: %s%s\n",
2131 sub[0],
2132 acl_narg>0 ? acl_arg[0] : US"<none>",
2133 acl_narg>1 ? " +more" : "");
2134
2135 ret = acl_eval(acl_where, sub[0], user_msgp, &dummy_logmsg);
2136
2137 for (i = 0; i < nsub; i++)
2138 acl_arg[i] = sub[i+1]; /* restore old args */
2139 acl_narg = sav_narg;
2140
2141 return ret;
2142 }
2143
2144
2145
2146
2147 /*************************************************
2148 * Read and evaluate a condition *
2149 *************************************************/
2150
2151 /*
2152 Arguments:
2153 s points to the start of the condition text
2154 resetok points to a BOOL which is written false if it is unsafe to
2155 free memory. Certain condition types (acl) may have side-effect
2156 allocation which must be preserved.
2157 yield points to a BOOL to hold the result of the condition test;
2158 if NULL, we are just reading through a condition that is
2159 part of an "or" combination to check syntax, or in a state
2160 where the answer isn't required
2161
2162 Returns: a pointer to the first character after the condition, or
2163 NULL after an error
2164 */
2165
2166 static const uschar *
2167 eval_condition(const uschar *s, BOOL *resetok, BOOL *yield)
2168 {
2169 BOOL testfor = TRUE;
2170 BOOL tempcond, combined_cond;
2171 BOOL *subcondptr;
2172 BOOL sub2_honour_dollar = TRUE;
2173 int rc, cond_type, roffset;
2174 int_eximarith_t num[2];
2175 struct stat statbuf;
2176 uschar name[256];
2177 const uschar *sub[10];
2178
2179 const pcre *re;
2180 const uschar *rerror;
2181
2182 for (;;)
2183 {
2184 while (isspace(*s)) s++;
2185 if (*s == '!') { testfor = !testfor; s++; } else break;
2186 }
2187
2188 /* Numeric comparisons are symbolic */
2189
2190 if (*s == '=' || *s == '>' || *s == '<')
2191 {
2192 int p = 0;
2193 name[p++] = *s++;
2194 if (*s == '=')
2195 {
2196 name[p++] = '=';
2197 s++;
2198 }
2199 name[p] = 0;
2200 }
2201
2202 /* All other conditions are named */
2203
2204 else s = read_name(name, 256, s, US"_");
2205
2206 /* If we haven't read a name, it means some non-alpha character is first. */
2207
2208 if (name[0] == 0)
2209 {
2210 expand_string_message = string_sprintf("condition name expected, "
2211 "but found \"%.16s\"", s);
2212 return NULL;
2213 }
2214
2215 /* Find which condition we are dealing with, and switch on it */
2216
2217 cond_type = chop_match(name, cond_table, nelem(cond_table));
2218 switch(cond_type)
2219 {
2220 /* def: tests for a non-empty variable, or for the existence of a header. If
2221 yield == NULL we are in a skipping state, and don't care about the answer. */
2222
2223 case ECOND_DEF:
2224 {
2225 uschar * t;
2226
2227 if (*s != ':')
2228 {
2229 expand_string_message = US"\":\" expected after \"def\"";
2230 return NULL;
2231 }
2232
2233 s = read_name(name, 256, s+1, US"_");
2234
2235 /* Test for a header's existence. If the name contains a closing brace
2236 character, this may be a user error where the terminating colon has been
2237 omitted. Set a flag to adjust a subsequent error message in this case. */
2238
2239 if ( ( *(t = name) == 'h'
2240 || (*t == 'r' || *t == 'l' || *t == 'b') && *++t == 'h'
2241 )
2242 && (*++t == '_' || Ustrncmp(t, "eader_", 6) == 0)
2243 )
2244 {
2245 s = read_header_name(name, 256, s);
2246 /* {-for-text-editors */
2247 if (Ustrchr(name, '}') != NULL) malformed_header = TRUE;
2248 if (yield) *yield =
2249 (find_header(name, NULL, FH_EXISTS_ONLY, NULL) != NULL) == testfor;
2250 }
2251
2252 /* Test for a variable's having a non-empty value. A non-existent variable
2253 causes an expansion failure. */
2254
2255 else
2256 {
2257 if (!(t = find_variable(name, TRUE, yield == NULL, NULL)))
2258 {
2259 expand_string_message = (name[0] == 0)?
2260 string_sprintf("variable name omitted after \"def:\"") :
2261 string_sprintf("unknown variable \"%s\" after \"def:\"", name);
2262 check_variable_error_message(name);
2263 return NULL;
2264 }
2265 if (yield) *yield = (t[0] != 0) == testfor;
2266 }
2267
2268 return s;
2269 }
2270
2271
2272 /* first_delivery tests for first delivery attempt */
2273
2274 case ECOND_FIRST_DELIVERY:
2275 if (yield != NULL) *yield = f.deliver_firsttime == testfor;
2276 return s;
2277
2278
2279 /* queue_running tests for any process started by a queue runner */
2280
2281 case ECOND_QUEUE_RUNNING:
2282 if (yield != NULL) *yield = (queue_run_pid != (pid_t)0) == testfor;
2283 return s;
2284
2285
2286 /* exists: tests for file existence
2287 isip: tests for any IP address
2288 isip4: tests for an IPv4 address
2289 isip6: tests for an IPv6 address
2290 pam: does PAM authentication
2291 radius: does RADIUS authentication
2292 ldapauth: does LDAP authentication
2293 pwcheck: does Cyrus SASL pwcheck authentication
2294 */
2295
2296 case ECOND_EXISTS:
2297 case ECOND_ISIP:
2298 case ECOND_ISIP4:
2299 case ECOND_ISIP6:
2300 case ECOND_PAM:
2301 case ECOND_RADIUS:
2302 case ECOND_LDAPAUTH:
2303 case ECOND_PWCHECK:
2304
2305 while (isspace(*s)) s++;
2306 if (*s != '{') goto COND_FAILED_CURLY_START; /* }-for-text-editors */
2307
2308 sub[0] = expand_string_internal(s+1, TRUE, &s, yield == NULL, TRUE, resetok);
2309 if (sub[0] == NULL) return NULL;
2310 /* {-for-text-editors */
2311 if (*s++ != '}') goto COND_FAILED_CURLY_END;
2312
2313 if (yield == NULL) return s; /* No need to run the test if skipping */
2314
2315 switch(cond_type)
2316 {
2317 case ECOND_EXISTS:
2318 if ((expand_forbid & RDO_EXISTS) != 0)
2319 {
2320 expand_string_message = US"File existence tests are not permitted";
2321 return NULL;
2322 }
2323 *yield = (Ustat(sub[0], &statbuf) == 0) == testfor;
2324 break;
2325
2326 case ECOND_ISIP:
2327 case ECOND_ISIP4:
2328 case ECOND_ISIP6:
2329 rc = string_is_ip_address(sub[0], NULL);
2330 *yield = ((cond_type == ECOND_ISIP)? (rc != 0) :
2331 (cond_type == ECOND_ISIP4)? (rc == 4) : (rc == 6)) == testfor;
2332 break;
2333
2334 /* Various authentication tests - all optionally compiled */
2335
2336 case ECOND_PAM:
2337 #ifdef SUPPORT_PAM
2338 rc = auth_call_pam(sub[0], &expand_string_message);
2339 goto END_AUTH;
2340 #else
2341 goto COND_FAILED_NOT_COMPILED;
2342 #endif /* SUPPORT_PAM */
2343
2344 case ECOND_RADIUS:
2345 #ifdef RADIUS_CONFIG_FILE
2346 rc = auth_call_radius(sub[0], &expand_string_message);
2347 goto END_AUTH;
2348 #else
2349 goto COND_FAILED_NOT_COMPILED;
2350 #endif /* RADIUS_CONFIG_FILE */
2351
2352 case ECOND_LDAPAUTH:
2353 #ifdef LOOKUP_LDAP
2354 {
2355 /* Just to keep the interface the same */
2356 BOOL do_cache;
2357 int old_pool = store_pool;
2358 store_pool = POOL_SEARCH;
2359 rc = eldapauth_find((void *)(-1), NULL, sub[0], Ustrlen(sub[0]), NULL,
2360 &expand_string_message, &do_cache);
2361 store_pool = old_pool;
2362 }
2363 goto END_AUTH;
2364 #else
2365 goto COND_FAILED_NOT_COMPILED;
2366 #endif /* LOOKUP_LDAP */
2367
2368 case ECOND_PWCHECK:
2369 #ifdef CYRUS_PWCHECK_SOCKET
2370 rc = auth_call_pwcheck(sub[0], &expand_string_message);
2371 goto END_AUTH;
2372 #else
2373 goto COND_FAILED_NOT_COMPILED;
2374 #endif /* CYRUS_PWCHECK_SOCKET */
2375
2376 #if defined(SUPPORT_PAM) || defined(RADIUS_CONFIG_FILE) || \
2377 defined(LOOKUP_LDAP) || defined(CYRUS_PWCHECK_SOCKET)
2378 END_AUTH:
2379 if (rc == ERROR || rc == DEFER) return NULL;
2380 *yield = (rc == OK) == testfor;
2381 #endif
2382 }
2383 return s;
2384
2385
2386 /* call ACL (in a conditional context). Accept true, deny false.
2387 Defer is a forced-fail. Anything set by message= goes to $value.
2388 Up to ten parameters are used; we use the braces round the name+args
2389 like the saslauthd condition does, to permit a variable number of args.
2390 See also the expansion-item version EITEM_ACL and the traditional
2391 acl modifier ACLC_ACL.
2392 Since the ACL may allocate new global variables, tell our caller to not
2393 reclaim memory.
2394 */
2395
2396 case ECOND_ACL:
2397 /* ${if acl {{name}{arg1}{arg2}...} {yes}{no}} */
2398 {
2399 uschar *sub[10];
2400 uschar *user_msg;
2401 BOOL cond = FALSE;
2402
2403 while (isspace(*s)) s++;
2404 if (*s++ != '{') goto COND_FAILED_CURLY_START; /*}*/
2405
2406 switch(read_subs(sub, nelem(sub), 1,
2407 &s, yield == NULL, TRUE, US"acl", resetok))
2408 {
2409 case 1: expand_string_message = US"too few arguments or bracketing "
2410 "error for acl";
2411 case 2:
2412 case 3: return NULL;
2413 }
2414
2415 if (yield != NULL)
2416 {
2417 *resetok = FALSE; /* eval_acl() might allocate; do not reclaim */
2418 switch(eval_acl(sub, nelem(sub), &user_msg))
2419 {
2420 case OK:
2421 cond = TRUE;
2422 case FAIL:
2423 lookup_value = NULL;
2424 if (user_msg)
2425 lookup_value = string_copy(user_msg);
2426 *yield = cond == testfor;
2427 break;
2428
2429 case DEFER:
2430 f.expand_string_forcedfail = TRUE;
2431 /*FALLTHROUGH*/
2432 default:
2433 expand_string_message = string_sprintf("error from acl \"%s\"", sub[0]);
2434 return NULL;
2435 }
2436 }
2437 return s;
2438 }
2439
2440
2441 /* saslauthd: does Cyrus saslauthd authentication. Four parameters are used:
2442
2443 ${if saslauthd {{username}{password}{service}{realm}} {yes}{no}}
2444
2445 However, the last two are optional. That is why the whole set is enclosed
2446 in their own set of braces. */
2447
2448 case ECOND_SASLAUTHD:
2449 #ifndef CYRUS_SASLAUTHD_SOCKET
2450 goto COND_FAILED_NOT_COMPILED;
2451 #else
2452 {
2453 uschar *sub[4];
2454 while (isspace(*s)) s++;
2455 if (*s++ != '{') goto COND_FAILED_CURLY_START; /* }-for-text-editors */
2456 switch(read_subs(sub, nelem(sub), 2, &s, yield == NULL, TRUE, US"saslauthd",
2457 resetok))
2458 {
2459 case 1: expand_string_message = US"too few arguments or bracketing "
2460 "error for saslauthd";
2461 case 2:
2462 case 3: return NULL;
2463 }
2464 if (sub[2] == NULL) sub[3] = NULL; /* realm if no service */
2465 if (yield != NULL)
2466 {
2467 int rc = auth_call_saslauthd(sub[0], sub[1], sub[2], sub[3],
2468 &expand_string_message);
2469 if (rc == ERROR || rc == DEFER) return NULL;
2470 *yield = (rc == OK) == testfor;
2471 }
2472 return s;
2473 }
2474 #endif /* CYRUS_SASLAUTHD_SOCKET */
2475
2476
2477 /* symbolic operators for numeric and string comparison, and a number of
2478 other operators, all requiring two arguments.
2479
2480 crypteq: encrypts plaintext and compares against an encrypted text,
2481 using crypt(), crypt16(), MD5 or SHA-1
2482 inlist/inlisti: checks if first argument is in the list of the second
2483 match: does a regular expression match and sets up the numerical
2484 variables if it succeeds
2485 match_address: matches in an address list
2486 match_domain: matches in a domain list
2487 match_ip: matches a host list that is restricted to IP addresses
2488 match_local_part: matches in a local part list
2489 */
2490
2491 case ECOND_MATCH_ADDRESS:
2492 case ECOND_MATCH_DOMAIN:
2493 case ECOND_MATCH_IP:
2494 case ECOND_MATCH_LOCAL_PART:
2495 #ifndef EXPAND_LISTMATCH_RHS
2496 sub2_honour_dollar = FALSE;
2497 #endif
2498 /* FALLTHROUGH */
2499
2500 case ECOND_CRYPTEQ:
2501 case ECOND_INLIST:
2502 case ECOND_INLISTI:
2503 case ECOND_MATCH:
2504
2505 case ECOND_NUM_L: /* Numerical comparisons */
2506 case ECOND_NUM_LE:
2507 case ECOND_NUM_E:
2508 case ECOND_NUM_EE:
2509 case ECOND_NUM_G:
2510 case ECOND_NUM_GE:
2511
2512 case ECOND_STR_LT: /* String comparisons */
2513 case ECOND_STR_LTI:
2514 case ECOND_STR_LE:
2515 case ECOND_STR_LEI:
2516 case ECOND_STR_EQ:
2517 case ECOND_STR_EQI:
2518 case ECOND_STR_GT:
2519 case ECOND_STR_GTI:
2520 case ECOND_STR_GE:
2521 case ECOND_STR_GEI:
2522
2523 for (int i = 0; i < 2; i++)
2524 {
2525 /* Sometimes, we don't expand substrings; too many insecure configurations
2526 created using match_address{}{} and friends, where the second param
2527 includes information from untrustworthy sources. */
2528 BOOL honour_dollar = TRUE;
2529 if ((i > 0) && !sub2_honour_dollar)
2530 honour_dollar = FALSE;
2531
2532 while (isspace(*s)) s++;
2533 if (*s != '{')
2534 {
2535 if (i == 0) goto COND_FAILED_CURLY_START;
2536 expand_string_message = string_sprintf("missing 2nd string in {} "
2537 "after \"%s\"", name);
2538 return NULL;
2539 }
2540 if (!(sub[i] = expand_string_internal(s+1, TRUE, &s, yield == NULL,
2541 honour_dollar, resetok)))
2542 return NULL;
2543 DEBUG(D_expand) if (i == 1 && !sub2_honour_dollar && Ustrchr(sub[1], '$'))
2544 debug_printf_indent("WARNING: the second arg is NOT expanded,"
2545 " for security reasons\n");
2546 if (*s++ != '}') goto COND_FAILED_CURLY_END;
2547
2548 /* Convert to numerical if required; we know that the names of all the
2549 conditions that compare numbers do not start with a letter. This just saves
2550 checking for them individually. */
2551
2552 if (!isalpha(name[0]) && yield != NULL)
2553 if (sub[i][0] == 0)
2554 {
2555 num[i] = 0;
2556 DEBUG(D_expand)
2557 debug_printf_indent("empty string cast to zero for numerical comparison\n");
2558 }
2559 else
2560 {
2561 num[i] = expanded_string_integer(sub[i], FALSE);
2562 if (expand_string_message != NULL) return NULL;
2563 }
2564 }
2565
2566 /* Result not required */
2567
2568 if (yield == NULL) return s;
2569
2570 /* Do an appropriate comparison */
2571
2572 switch(cond_type)
2573 {
2574 case ECOND_NUM_E:
2575 case ECOND_NUM_EE:
2576 tempcond = (num[0] == num[1]);
2577 break;
2578
2579 case ECOND_NUM_G:
2580 tempcond = (num[0] > num[1]);
2581 break;
2582
2583 case ECOND_NUM_GE:
2584 tempcond = (num[0] >= num[1]);
2585 break;
2586
2587 case ECOND_NUM_L:
2588 tempcond = (num[0] < num[1]);
2589 break;
2590
2591 case ECOND_NUM_LE:
2592 tempcond = (num[0] <= num[1]);
2593 break;
2594
2595 case ECOND_STR_LT:
2596 tempcond = (Ustrcmp(sub[0], sub[1]) < 0);
2597 break;
2598
2599 case ECOND_STR_LTI:
2600 tempcond = (strcmpic(sub[0], sub[1]) < 0);
2601 break;
2602
2603 case ECOND_STR_LE:
2604 tempcond = (Ustrcmp(sub[0], sub[1]) <= 0);
2605 break;
2606
2607 case ECOND_STR_LEI:
2608 tempcond = (strcmpic(sub[0], sub[1]) <= 0);
2609 break;
2610
2611 case ECOND_STR_EQ:
2612 tempcond = (Ustrcmp(sub[0], sub[1]) == 0);
2613 break;
2614
2615 case ECOND_STR_EQI:
2616 tempcond = (strcmpic(sub[0], sub[1]) == 0);
2617 break;
2618
2619 case ECOND_STR_GT:
2620 tempcond = (Ustrcmp(sub[0], sub[1]) > 0);
2621 break;
2622
2623 case ECOND_STR_GTI:
2624 tempcond = (strcmpic(sub[0], sub[1]) > 0);
2625 break;
2626
2627 case ECOND_STR_GE:
2628 tempcond = (Ustrcmp(sub[0], sub[1]) >= 0);
2629 break;
2630
2631 case ECOND_STR_GEI:
2632 tempcond = (strcmpic(sub[0], sub[1]) >= 0);
2633 break;
2634
2635 case ECOND_MATCH: /* Regular expression match */
2636 re = pcre_compile(CS sub[1], PCRE_COPT, (const char **)&rerror, &roffset,
2637 NULL);
2638 if (re == NULL)
2639 {
2640 expand_string_message = string_sprintf("regular expression error in "
2641 "\"%s\": %s at offset %d", sub[1], rerror, roffset);
2642 return NULL;
2643 }
2644 tempcond = regex_match_and_setup(re, sub[0], 0, -1);
2645 break;
2646
2647 case ECOND_MATCH_ADDRESS: /* Match in an address list */
2648 rc = match_address_list(sub[0], TRUE, FALSE, &(sub[1]), NULL, -1, 0, NULL);
2649 goto MATCHED_SOMETHING;
2650
2651 case ECOND_MATCH_DOMAIN: /* Match in a domain list */
2652 rc = match_isinlist(sub[0], &(sub[1]), 0, &domainlist_anchor, NULL,
2653 MCL_DOMAIN + MCL_NOEXPAND, TRUE, NULL);
2654 goto MATCHED_SOMETHING;
2655
2656 case ECOND_MATCH_IP: /* Match IP address in a host list */
2657 if (sub[0][0] != 0 && string_is_ip_address(sub[0], NULL) == 0)
2658 {
2659 expand_string_message = string_sprintf("\"%s\" is not an IP address",
2660 sub[0]);
2661 return NULL;
2662 }
2663 else
2664 {
2665 unsigned int *nullcache = NULL;
2666 check_host_block cb;
2667
2668 cb.host_name = US"";
2669 cb.host_address = sub[0];
2670
2671 /* If the host address starts off ::ffff: it is an IPv6 address in
2672 IPv4-compatible mode. Find the IPv4 part for checking against IPv4
2673 addresses. */
2674
2675 cb.host_ipv4 = (Ustrncmp(cb.host_address, "::ffff:", 7) == 0)?
2676 cb.host_address + 7 : cb.host_address;
2677
2678 rc = match_check_list(
2679 &sub[1], /* the list */
2680 0, /* separator character */
2681 &hostlist_anchor, /* anchor pointer */
2682 &nullcache, /* cache pointer */
2683 check_host, /* function for testing */
2684 &cb, /* argument for function */
2685 MCL_HOST, /* type of check */
2686 sub[0], /* text for debugging */
2687 NULL); /* where to pass back data */
2688 }
2689 goto MATCHED_SOMETHING;
2690
2691 case ECOND_MATCH_LOCAL_PART:
2692 rc = match_isinlist(sub[0], &(sub[1]), 0, &localpartlist_anchor, NULL,
2693 MCL_LOCALPART + MCL_NOEXPAND, TRUE, NULL);
2694 /* Fall through */
2695 /* VVVVVVVVVVVV */
2696 MATCHED_SOMETHING:
2697 switch(rc)
2698 {
2699 case OK:
2700 tempcond = TRUE;
2701 break;
2702
2703 case FAIL:
2704 tempcond = FALSE;
2705 break;
2706
2707 case DEFER:
2708 expand_string_message = string_sprintf("unable to complete match "
2709 "against \"%s\": %s", sub[1], search_error_message);
2710 return NULL;
2711 }
2712
2713 break;
2714
2715 /* Various "encrypted" comparisons. If the second string starts with
2716 "{" then an encryption type is given. Default to crypt() or crypt16()
2717 (build-time choice). */
2718 /* }-for-text-editors */
2719
2720 case ECOND_CRYPTEQ:
2721 #ifndef SUPPORT_CRYPTEQ
2722 goto COND_FAILED_NOT_COMPILED;
2723 #else
2724 if (strncmpic(sub[1], US"{md5}", 5) == 0)
2725 {
2726 int sublen = Ustrlen(sub[1]+5);
2727 md5 base;
2728 uschar digest[16];
2729
2730 md5_start(&base);
2731 md5_end(&base, sub[0], Ustrlen(sub[0]), digest);
2732
2733 /* If the length that we are comparing against is 24, the MD5 digest
2734 is expressed as a base64 string. This is the way LDAP does it. However,
2735 some other software uses a straightforward hex representation. We assume
2736 this if the length is 32. Other lengths fail. */
2737
2738 if (sublen == 24)
2739 {
2740 uschar *coded = b64encode(CUS digest, 16);
2741 DEBUG(D_auth) debug_printf("crypteq: using MD5+B64 hashing\n"
2742 " subject=%s\n crypted=%s\n", coded, sub[1]+5);
2743 tempcond = (Ustrcmp(coded, sub[1]+5) == 0);
2744 }
2745 else if (sublen == 32)
2746 {
2747 uschar coded[36];
2748 for (int i = 0; i < 16; i++) sprintf(CS (coded+2*i), "%02X", digest[i]);
2749 coded[32] = 0;
2750 DEBUG(D_auth) debug_printf("crypteq: using MD5+hex hashing\n"
2751 " subject=%s\n crypted=%s\n", coded, sub[1]+5);
2752 tempcond = (strcmpic(coded, sub[1]+5) == 0);
2753 }
2754 else
2755 {
2756 DEBUG(D_auth) debug_printf("crypteq: length for MD5 not 24 or 32: "
2757 "fail\n crypted=%s\n", sub[1]+5);
2758 tempcond = FALSE;
2759 }
2760 }
2761
2762 else if (strncmpic(sub[1], US"{sha1}", 6) == 0)
2763 {
2764 int sublen = Ustrlen(sub[1]+6);
2765 hctx h;
2766 uschar digest[20];
2767
2768 sha1_start(&h);
2769 sha1_end(&h, sub[0], Ustrlen(sub[0]), digest);
2770
2771 /* If the length that we are comparing against is 28, assume the SHA1
2772 digest is expressed as a base64 string. If the length is 40, assume a
2773 straightforward hex representation. Other lengths fail. */
2774
2775 if (sublen == 28)
2776 {
2777 uschar *coded = b64encode(CUS digest, 20);
2778 DEBUG(D_auth) debug_printf("crypteq: using SHA1+B64 hashing\n"
2779 " subject=%s\n crypted=%s\n", coded, sub[1]+6);
2780 tempcond = (Ustrcmp(coded, sub[1]+6) == 0);
2781 }
2782 else if (sublen == 40)
2783 {
2784 uschar coded[44];
2785 for (int i = 0; i < 20; i++) sprintf(CS (coded+2*i), "%02X", digest[i]);
2786 coded[40] = 0;
2787 DEBUG(D_auth) debug_printf("crypteq: using SHA1+hex hashing\n"
2788 " subject=%s\n crypted=%s\n", coded, sub[1]+6);
2789 tempcond = (strcmpic(coded, sub[1]+6) == 0);
2790 }
2791 else
2792 {
2793 DEBUG(D_auth) debug_printf("crypteq: length for SHA-1 not 28 or 40: "
2794 "fail\n crypted=%s\n", sub[1]+6);
2795 tempcond = FALSE;
2796 }
2797 }
2798
2799 else /* {crypt} or {crypt16} and non-{ at start */
2800 /* }-for-text-editors */
2801 {
2802 int which = 0;
2803 uschar *coded;
2804
2805 if (strncmpic(sub[1], US"{crypt}", 7) == 0)
2806 {
2807 sub[1] += 7;
2808 which = 1;
2809 }
2810 else if (strncmpic(sub[1], US"{crypt16}", 9) == 0)
2811 {
2812 sub[1] += 9;
2813 which = 2;
2814 }
2815 else if (sub[1][0] == '{') /* }-for-text-editors */
2816 {
2817 expand_string_message = string_sprintf("unknown encryption mechanism "
2818 "in \"%s\"", sub[1]);
2819 return NULL;
2820 }
2821
2822 switch(which)
2823 {
2824 case 0: coded = US DEFAULT_CRYPT(CS sub[0], CS sub[1]); break;
2825 case 1: coded = US crypt(CS sub[0], CS sub[1]); break;
2826 default: coded = US crypt16(CS sub[0], CS sub[1]); break;
2827 }
2828
2829 #define STR(s) # s
2830 #define XSTR(s) STR(s)
2831 DEBUG(D_auth) debug_printf("crypteq: using %s()\n"
2832 " subject=%s\n crypted=%s\n",
2833 which == 0 ? XSTR(DEFAULT_CRYPT) : which == 1 ? "crypt" : "crypt16",
2834 coded, sub[1]);
2835 #undef STR
2836 #undef XSTR
2837
2838 /* If the encrypted string contains fewer than two characters (for the
2839 salt), force failure. Otherwise we get false positives: with an empty
2840 string the yield of crypt() is an empty string! */
2841
2842 if (coded)
2843 tempcond = Ustrlen(sub[1]) < 2 ? FALSE : Ustrcmp(coded, sub[1]) == 0;
2844 else if (errno == EINVAL)
2845 tempcond = FALSE;
2846 else
2847 {
2848 expand_string_message = string_sprintf("crypt error: %s\n",
2849 US strerror(errno));
2850 return NULL;
2851 }
2852 }
2853 break;
2854 #endif /* SUPPORT_CRYPTEQ */
2855
2856 case ECOND_INLIST:
2857 case ECOND_INLISTI:
2858 {
2859 const uschar * list = sub[1];
2860 int sep = 0;
2861 uschar *save_iterate_item = iterate_item;
2862 int (*compare)(const uschar *, const uschar *);
2863
2864 DEBUG(D_expand) debug_printf_indent("condition: %s item: %s\n", name, sub[0]);
2865
2866 tempcond = FALSE;
2867 compare = cond_type == ECOND_INLISTI
2868 ? strcmpic : (int (*)(const uschar *, const uschar *)) strcmp;
2869
2870 while ((iterate_item = string_nextinlist(&list, &sep, NULL, 0)))
2871 {
2872 DEBUG(D_expand) debug_printf_indent(" compare %s\n", iterate_item);
2873 if (compare(sub[0], iterate_item) == 0)
2874 {
2875 tempcond = TRUE;
2876 break;
2877 }
2878 }
2879 iterate_item = save_iterate_item;
2880 }
2881
2882 } /* Switch for comparison conditions */
2883
2884 *yield = tempcond == testfor;
2885 return s; /* End of comparison conditions */
2886
2887
2888 /* and/or: computes logical and/or of several conditions */
2889
2890 case ECOND_AND:
2891 case ECOND_OR:
2892 subcondptr = (yield == NULL)? NULL : &tempcond;
2893 combined_cond = (cond_type == ECOND_AND);
2894
2895 while (isspace(*s)) s++;
2896 if (*s++ != '{') goto COND_FAILED_CURLY_START; /* }-for-text-editors */
2897
2898 for (;;)
2899 {
2900 while (isspace(*s)) s++;
2901 /* {-for-text-editors */
2902 if (*s == '}') break;
2903 if (*s != '{') /* }-for-text-editors */
2904 {
2905 expand_string_message = string_sprintf("each subcondition "
2906 "inside an \"%s{...}\" condition must be in its own {}", name);
2907 return NULL;
2908 }
2909
2910 if (!(s = eval_condition(s+1, resetok, subcondptr)))
2911 {
2912 expand_string_message = string_sprintf("%s inside \"%s{...}\" condition",
2913 expand_string_message, name);
2914 return NULL;
2915 }
2916 while (isspace(*s)) s++;
2917
2918 /* {-for-text-editors */
2919 if (*s++ != '}')
2920 {
2921 /* {-for-text-editors */
2922 expand_string_message = string_sprintf("missing } at end of condition "
2923 "inside \"%s\" group", name);
2924 return NULL;
2925 }
2926
2927 if (yield != NULL)
2928 {
2929 if (cond_type == ECOND_AND)
2930 {
2931 combined_cond &= tempcond;
2932 if (!combined_cond) subcondptr = NULL; /* once false, don't */
2933 } /* evaluate any more */
2934 else
2935 {
2936 combined_cond |= tempcond;
2937 if (combined_cond) subcondptr = NULL; /* once true, don't */
2938 } /* evaluate any more */
2939 }
2940 }
2941
2942 if (yield != NULL) *yield = (combined_cond == testfor);
2943 return ++s;
2944
2945
2946 /* forall/forany: iterates a condition with different values */
2947
2948 case ECOND_FORALL:
2949 case ECOND_FORANY:
2950 {
2951 const uschar * list;
2952 int sep = 0;
2953 uschar *save_iterate_item = iterate_item;
2954
2955 DEBUG(D_expand) debug_printf_indent("condition: %s\n", name);
2956
2957 while (isspace(*s)) s++;
2958 if (*s++ != '{') goto COND_FAILED_CURLY_START; /* }-for-text-editors */
2959 sub[0] = expand_string_internal(s, TRUE, &s, (yield == NULL), TRUE, resetok);
2960 if (sub[0] == NULL) return NULL;
2961 /* {-for-text-editors */
2962 if (*s++ != '}') goto COND_FAILED_CURLY_END;
2963
2964 while (isspace(*s)) s++;
2965 if (*s++ != '{') goto COND_FAILED_CURLY_START; /* }-for-text-editors */
2966
2967 sub[1] = s;
2968
2969 /* Call eval_condition once, with result discarded (as if scanning a
2970 "false" part). This allows us to find the end of the condition, because if
2971 the list it empty, we won't actually evaluate the condition for real. */
2972
2973 if (!(s = eval_condition(sub[1], resetok, NULL)))
2974 {
2975 expand_string_message = string_sprintf("%s inside \"%s\" condition",
2976 expand_string_message, name);
2977 return NULL;
2978 }
2979 while (isspace(*s)) s++;
2980
2981 /* {-for-text-editors */
2982 if (*s++ != '}')
2983 {
2984 /* {-for-text-editors */
2985 expand_string_message = string_sprintf("missing } at end of condition "
2986 "inside \"%s\"", name);
2987 return NULL;
2988 }
2989
2990 if (yield != NULL) *yield = !testfor;
2991 list = sub[0];
2992 while ((iterate_item = string_nextinlist(&list, &sep, NULL, 0)) != NULL)
2993 {
2994 DEBUG(D_expand) debug_printf_indent("%s: $item = \"%s\"\n", name, iterate_item);
2995 if (!eval_condition(sub[1], resetok, &tempcond))
2996 {
2997 expand_string_message = string_sprintf("%s inside \"%s\" condition",
2998 expand_string_message, name);
2999 iterate_item = save_iterate_item;
3000 return NULL;
3001 }
3002 DEBUG(D_expand) debug_printf_indent("%s: condition evaluated to %s\n", name,
3003 tempcond? "true":"false");
3004
3005 if (yield != NULL) *yield = (tempcond == testfor);
3006 if (tempcond == (cond_type == ECOND_FORANY)) break;
3007 }
3008
3009 iterate_item = save_iterate_item;
3010 return s;
3011 }
3012
3013
3014 /* The bool{} expansion condition maps a string to boolean.
3015 The values supported should match those supported by the ACL condition
3016 (acl.c, ACLC_CONDITION) so that we keep to a minimum the different ideas
3017 of true/false. Note that Router "condition" rules have a different
3018 interpretation, where general data can be used and only a few values
3019 map to FALSE.
3020 Note that readconf.c boolean matching, for boolean configuration options,
3021 only matches true/yes/false/no.
3022 The bool_lax{} condition matches the Router logic, which is much more
3023 liberal. */
3024 case ECOND_BOOL:
3025 case ECOND_BOOL_LAX:
3026 {
3027 uschar *sub_arg[1];
3028 uschar *t, *t2;
3029 uschar *ourname;
3030 size_t len;
3031 BOOL boolvalue = FALSE;
3032 while (isspace(*s)) s++;
3033 if (*s != '{') goto COND_FAILED_CURLY_START; /* }-for-text-editors */
3034 ourname = cond_type == ECOND_BOOL_LAX ? US"bool_lax" : US"bool";
3035 switch(read_subs(sub_arg, 1, 1, &s, yield == NULL, FALSE, ourname, resetok))
3036 {
3037 case 1: expand_string_message = string_sprintf(
3038 "too few arguments or bracketing error for %s",
3039 ourname);
3040 /*FALLTHROUGH*/
3041 case 2:
3042 case 3: return NULL;
3043 }
3044 t = sub_arg[0];
3045 while (isspace(*t)) t++;
3046 len = Ustrlen(t);
3047 if (len)
3048 {
3049 /* trailing whitespace: seems like a good idea to ignore it too */
3050 t2 = t + len - 1;
3051 while (isspace(*t2)) t2--;
3052 if (t2 != (t + len))
3053 {
3054 *++t2 = '\0';
3055 len = t2 - t;
3056 }
3057 }
3058 DEBUG(D_expand)
3059 debug_printf_indent("considering %s: %s\n", ourname, len ? t : US"<empty>");
3060 /* logic for the lax case from expand_check_condition(), which also does
3061 expands, and the logic is both short and stable enough that there should
3062 be no maintenance burden from replicating it. */
3063 if (len == 0)
3064 boolvalue = FALSE;
3065 else if (*t == '-'
3066 ? Ustrspn(t+1, "0123456789") == len-1
3067 : Ustrspn(t, "0123456789") == len)
3068 {
3069 boolvalue = (Uatoi(t) == 0) ? FALSE : TRUE;
3070 /* expand_check_condition only does a literal string "0" check */
3071 if ((cond_type == ECOND_BOOL_LAX) && (len > 1))
3072 boolvalue = TRUE;
3073 }
3074 else if (strcmpic(t, US"true") == 0 || strcmpic(t, US"yes") == 0)
3075 boolvalue = TRUE;
3076 else if (strcmpic(t, US"false") == 0 || strcmpic(t, US"no") == 0)
3077 boolvalue = FALSE;
3078 else if (cond_type == ECOND_BOOL_LAX)
3079 boolvalue = TRUE;
3080 else
3081 {
3082 expand_string_message = string_sprintf("unrecognised boolean "
3083 "value \"%s\"", t);
3084 return NULL;
3085 }
3086 DEBUG(D_expand) debug_printf_indent("%s: condition evaluated to %s\n", ourname,
3087 boolvalue? "true":"false");
3088 if (yield != NULL) *yield = (boolvalue == testfor);
3089 return s;
3090 }
3091
3092 /* Unknown condition */
3093
3094 default:
3095 expand_string_message = string_sprintf("unknown condition \"%s\"", name);
3096 return NULL;
3097 } /* End switch on condition type */
3098
3099 /* Missing braces at start and end of data */
3100
3101 COND_FAILED_CURLY_START:
3102 expand_string_message = string_sprintf("missing { after \"%s\"", name);
3103 return NULL;
3104
3105 COND_FAILED_CURLY_END:
3106 expand_string_message = string_sprintf("missing } at end of \"%s\" condition",
3107 name);
3108 return NULL;
3109
3110 /* A condition requires code that is not compiled */
3111
3112 #if !defined(SUPPORT_PAM) || !defined(RADIUS_CONFIG_FILE) || \
3113 !defined(LOOKUP_LDAP) || !defined(CYRUS_PWCHECK_SOCKET) || \
3114 !defined(SUPPORT_CRYPTEQ) || !defined(CYRUS_SASLAUTHD_SOCKET)
3115 COND_FAILED_NOT_COMPILED:
3116 expand_string_message = string_sprintf("support for \"%s\" not compiled",
3117 name);
3118 return NULL;
3119 #endif
3120 }
3121
3122
3123
3124
3125 /*************************************************
3126 * Save numerical variables *
3127 *************************************************/
3128
3129 /* This function is called from items such as "if" that want to preserve and
3130 restore the numbered variables.
3131
3132 Arguments:
3133 save_expand_string points to an array of pointers to set
3134 save_expand_nlength points to an array of ints for the lengths
3135
3136 Returns: the value of expand max to save
3137 */
3138
3139 static int
3140 save_expand_strings(uschar **save_expand_nstring, int *save_expand_nlength)
3141 {
3142 for (int i = 0; i <= expand_nmax; i++)
3143 {
3144 save_expand_nstring[i] = expand_nstring[i];
3145 save_expand_nlength[i] = expand_nlength[i];
3146 }
3147 return expand_nmax;
3148 }
3149
3150
3151
3152 /*************************************************
3153 * Restore numerical variables *
3154 *************************************************/
3155
3156 /* This function restored saved values of numerical strings.
3157
3158 Arguments:
3159 save_expand_nmax the number of strings to restore
3160 save_expand_string points to an array of pointers
3161 save_expand_nlength points to an array of ints
3162
3163 Returns: nothing
3164 */
3165
3166 static void
3167 restore_expand_strings(int save_expand_nmax, uschar **save_expand_nstring,
3168 int *save_expand_nlength)
3169 {
3170 expand_nmax = save_expand_nmax;
3171 for (int i = 0; i <= expand_nmax; i++)
3172 {
3173 expand_nstring[i] = save_expand_nstring[i];
3174 expand_nlength[i] = save_expand_nlength[i];
3175 }
3176 }
3177
3178
3179
3180
3181
3182 /*************************************************
3183 * Handle yes/no substrings *
3184 *************************************************/
3185
3186 /* This function is used by ${if}, ${lookup} and ${extract} to handle the
3187 alternative substrings that depend on whether or not the condition was true,
3188 or the lookup or extraction succeeded. The substrings always have to be
3189 expanded, to check their syntax, but "skipping" is set when the result is not
3190 needed - this avoids unnecessary nested lookups.
3191
3192 Arguments:
3193 skipping TRUE if we were skipping when this item was reached
3194 yes TRUE if the first string is to be used, else use the second
3195 save_lookup a value to put back into lookup_value before the 2nd expansion
3196 sptr points to the input string pointer
3197 yieldptr points to the output growable-string pointer
3198 type "lookup", "if", "extract", "run", "env", "listextract" or
3199 "certextract" for error message
3200 resetok if not NULL, pointer to flag - write FALSE if unsafe to reset
3201 the store.
3202
3203 Returns: 0 OK; lookup_value has been reset to save_lookup
3204 1 expansion failed
3205 2 expansion failed because of bracketing error
3206 */
3207
3208 static int
3209 process_yesno(BOOL skipping, BOOL yes, uschar *save_lookup, const uschar **sptr,
3210 gstring ** yieldptr, uschar *type, BOOL *resetok)
3211 {
3212 int rc = 0;
3213 const uschar *s = *sptr; /* Local value */
3214 uschar *sub1, *sub2;
3215 const uschar * errwhere;
3216
3217 /* If there are no following strings, we substitute the contents of $value for
3218 lookups and for extractions in the success case. For the ${if item, the string
3219 "true" is substituted. In the fail case, nothing is substituted for all three
3220 items. */
3221
3222 while (isspace(*s)) s++;
3223 if (*s == '}')
3224 {
3225 if (type[0] == 'i')
3226 {
3227 if (yes && !skipping)
3228 *yieldptr = string_catn(*yieldptr, US"true", 4);
3229 }
3230 else
3231 {
3232 if (yes && lookup_value && !skipping)
3233 *yieldptr = string_cat(*yieldptr, lookup_value);
3234 lookup_value = save_lookup;
3235 }
3236 s++;
3237 goto RETURN;
3238 }
3239
3240 /* The first following string must be braced. */
3241
3242 if (*s++ != '{')
3243 {
3244 errwhere = US"'yes' part did not start with '{'";
3245 goto FAILED_CURLY;
3246 }
3247
3248 /* Expand the first substring. Forced failures are noticed only if we actually
3249 want this string. Set skipping in the call in the fail case (this will always
3250 be the case if we were already skipping). */
3251
3252 sub1 = expand_string_internal(s, TRUE, &s, !yes, TRUE, resetok);
3253 if (sub1 == NULL && (yes || !f.expand_string_forcedfail)) goto FAILED;
3254 f.expand_string_forcedfail = FALSE;
3255 if (*s++ != '}')
3256 {
3257 errwhere = US"'yes' part did not end with '}'";
3258 goto FAILED_CURLY;
3259 }
3260
3261 /* If we want the first string, add it to the output */
3262
3263 if (yes)
3264 *yieldptr = string_cat(*yieldptr, sub1);
3265
3266 /* If this is called from a lookup/env or a (cert)extract, we want to restore
3267 $value to what it was at the start of the item, so that it has this value
3268 during the second string expansion. For the call from "if" or "run" to this
3269 function, save_lookup is set to lookup_value, so that this statement does
3270 nothing. */
3271
3272 lookup_value = save_lookup;
3273
3274 /* There now follows either another substring, or "fail", or nothing. This
3275 time, forced failures are noticed only if we want the second string. We must
3276 set skipping in the nested call if we don't want this string, or if we were
3277 already skipping. */
3278
3279 while (isspace(*s)) s++;
3280 if (*s == '{')
3281 {
3282 sub2 = expand_string_internal(s+1, TRUE, &s, yes || skipping, TRUE, resetok);
3283 if (sub2 == NULL && (!yes || !f.expand_string_forcedfail)) goto FAILED;
3284 f.expand_string_forcedfail = FALSE;
3285 if (*s++ != '}')
3286 {
3287 errwhere = US"'no' part did not start with '{'";
3288 goto FAILED_CURLY;
3289 }
3290
3291 /* If we want the second string, add it to the output */
3292
3293 if (!yes)
3294 *yieldptr = string_cat(*yieldptr, sub2);
3295 }
3296
3297 /* If there is no second string, but the word "fail" is present when the use of
3298 the second string is wanted, set a flag indicating it was a forced failure
3299 rather than a syntactic error. Swallow the terminating } in case this is nested
3300 inside another lookup or if or extract. */
3301
3302 else if (*s != '}')
3303 {
3304 uschar name[256];
3305 /* deconst cast ok here as source is s anyway */
3306 s = US read_name(name, sizeof(name), s, US"_");
3307 if (Ustrcmp(name, "fail") == 0)
3308 {
3309 if (!yes && !skipping)
3310 {
3311 while (isspace(*s)) s++;
3312 if (*s++ != '}')
3313 {
3314 errwhere = US"did not close with '}' after forcedfail";
3315 goto FAILED_CURLY;
3316 }
3317 expand_string_message =
3318 string_sprintf("\"%s\" failed and \"fail\" requested", type);
3319 f.expand_string_forcedfail = TRUE;
3320 goto FAILED;
3321 }
3322 }
3323 else
3324 {
3325 expand_string_message =
3326 string_sprintf("syntax error in \"%s\" item - \"fail\" expected", type);
3327 goto FAILED;
3328 }
3329 }
3330
3331 /* All we have to do now is to check on the final closing brace. */
3332
3333 while (isspace(*s)) s++;
3334 if (*s++ != '}')
3335 {
3336 errwhere = US"did not close with '}'";
3337 goto FAILED_CURLY;
3338 }
3339
3340
3341 RETURN:
3342 /* Update the input pointer value before returning */
3343 *sptr = s;
3344 return rc;
3345
3346 FAILED_CURLY:
3347 /* Get here if there is a bracketing failure */
3348 expand_string_message = string_sprintf(
3349 "curly-bracket problem in conditional yes/no parsing: %s\n"
3350 " remaining string is '%s'", errwhere, --s);
3351 rc = 2;
3352 goto RETURN;
3353
3354 FAILED:
3355 /* Get here for other failures */
3356 rc = 1;
3357 goto RETURN;
3358 }
3359
3360
3361
3362
3363 /*************************************************
3364 * Handle MD5 or SHA-1 computation for HMAC *
3365 *************************************************/
3366
3367 /* These are some wrapping functions that enable the HMAC code to be a bit
3368 cleaner. A good compiler will spot the tail recursion.
3369
3370 Arguments:
3371 type HMAC_MD5 or HMAC_SHA1
3372 remaining are as for the cryptographic hash functions
3373
3374 Returns: nothing
3375 */
3376
3377 static void
3378 chash_start(int type, void *base)
3379 {
3380 if (type == HMAC_MD5)
3381 md5_start((md5 *)base);
3382 else
3383 sha1_start((hctx *)base);
3384 }
3385
3386 static void
3387 chash_mid(int type, void *base, uschar *string)
3388 {
3389 if (type == HMAC_MD5)
3390 md5_mid((md5 *)base, string);
3391 else
3392 sha1_mid((hctx *)base, string);
3393 }
3394
3395 static void
3396 chash_end(int type, void *base, uschar *string, int length, uschar *digest)
3397 {
3398 if (type == HMAC_MD5)
3399 md5_end((md5 *)base, string, length, digest);
3400 else
3401 sha1_end((hctx *)base, string, length, digest);
3402 }
3403
3404
3405
3406
3407
3408 /********************************************************
3409 * prvs: Get last three digits of days since Jan 1, 1970 *
3410 ********************************************************/
3411
3412 /* This is needed to implement the "prvs" BATV reverse
3413 path signing scheme
3414
3415 Argument: integer "days" offset to add or substract to
3416 or from the current number of days.
3417
3418 Returns: pointer to string containing the last three
3419 digits of the number of days since Jan 1, 1970,
3420 modified by the offset argument, NULL if there
3421 was an error in the conversion.
3422
3423 */
3424
3425 static uschar *
3426 prvs_daystamp(int day_offset)
3427 {
3428 uschar *days = store_get(32); /* Need at least 24 for cases */
3429 (void)string_format(days, 32, TIME_T_FMT, /* where TIME_T_FMT is %lld */
3430 (time(NULL) + day_offset*86400)/86400);
3431 return (Ustrlen(days) >= 3) ? &days[Ustrlen(days)-3] : US"100";
3432 }
3433
3434
3435
3436 /********************************************************
3437 * prvs: perform HMAC-SHA1 computation of prvs bits *
3438 ********************************************************/
3439
3440 /* This is needed to implement the "prvs" BATV reverse
3441 path signing scheme
3442
3443 Arguments:
3444 address RFC2821 Address to use
3445 key The key to use (must be less than 64 characters
3446 in size)
3447 key_num Single-digit key number to use. Defaults to
3448 '0' when NULL.
3449
3450 Returns: pointer to string containing the first three
3451 bytes of the final hash in hex format, NULL if
3452 there was an error in the process.
3453 */
3454
3455 static uschar *
3456 prvs_hmac_sha1(uschar *address, uschar *key, uschar *key_num, uschar *daystamp)
3457 {
3458 gstring * hash_source;
3459 uschar * p;
3460 hctx h;
3461 uschar innerhash[20];
3462 uschar finalhash[20];
3463 uschar innerkey[64];
3464 uschar outerkey[64];
3465 uschar *finalhash_hex = store_get(40);
3466
3467 if (key_num == NULL)
3468 key_num = US"0";
3469
3470 if (Ustrlen(key) > 64)
3471 return NULL;
3472
3473 hash_source = string_catn(NULL, key_num, 1);
3474 hash_source = string_catn(hash_source, daystamp, 3);
3475 hash_source = string_cat(hash_source, address);
3476 (void) string_from_gstring(hash_source);
3477
3478 DEBUG(D_expand)
3479 debug_printf_indent("prvs: hash source is '%s'\n", hash_source->s);
3480
3481 memset(innerkey, 0x36, 64);
3482 memset(outerkey, 0x5c, 64);
3483
3484 for (int i = 0; i < Ustrlen(key); i++)
3485 {
3486 innerkey[i] ^= key[i];
3487 outerkey[i] ^= key[i];
3488 }
3489
3490 chash_start(HMAC_SHA1, &h);
3491 chash_mid(HMAC_SHA1, &h, innerkey);
3492 chash_end(HMAC_SHA1, &h, hash_source->s, hash_source->ptr, innerhash);
3493
3494 chash_start(HMAC_SHA1, &h);
3495 chash_mid(HMAC_SHA1, &h, outerkey);
3496 chash_end(HMAC_SHA1, &h, innerhash, 20, finalhash);
3497
3498 p = finalhash_hex;
3499 for (int i = 0; i < 3; i++)
3500 {
3501 *p++ = hex_digits[(finalhash[i] & 0xf0) >> 4];
3502 *p++ = hex_digits[finalhash[i] & 0x0f];
3503 }
3504 *p = '\0';
3505
3506 return finalhash_hex;
3507 }
3508
3509
3510
3511
3512 /*************************************************
3513 * Join a file onto the output string *
3514 *************************************************/
3515
3516 /* This is used for readfile/readsock and after a run expansion.
3517 It joins the contents of a file onto the output string, globally replacing
3518 newlines with a given string (optionally).
3519
3520 Arguments:
3521 f the FILE
3522 yield pointer to the expandable string struct
3523 eol newline replacement string, or NULL
3524
3525 Returns: new pointer for expandable string, terminated if non-null
3526 */
3527
3528 static gstring *
3529 cat_file(FILE *f, gstring *yield, uschar *eol)
3530 {
3531 uschar buffer[1024];
3532
3533 while (Ufgets(buffer, sizeof(buffer), f))
3534 {
3535 int len = Ustrlen(buffer);
3536 if (eol && buffer[len-1] == '\n') len--;
3537 yield = string_catn(yield, buffer, len);
3538 if (eol && buffer[len])
3539 yield = string_cat(yield, eol);
3540 }
3541
3542 (void) string_from_gstring(yield);
3543 return yield;
3544 }
3545
3546
3547 #ifdef SUPPORT_TLS
3548 static gstring *
3549 cat_file_tls(void * tls_ctx, gstring * yield, uschar * eol)
3550 {
3551 int rc;
3552 uschar buffer[1024];
3553
3554 /*XXX could we read direct into a pre-grown string? */
3555
3556 while ((rc = tls_read(tls_ctx, buffer, sizeof(buffer))) > 0)
3557 for (uschar * s = buffer; rc--; s++)
3558 yield = eol && *s == '\n'
3559 ? string_cat(yield, eol) : string_catn(yield, s, 1);
3560
3561 /* We assume that all errors, and any returns of zero bytes,
3562 are actually EOF. */
3563
3564 (void) string_from_gstring(yield);
3565 return yield;
3566 }
3567 #endif
3568
3569
3570 /*************************************************
3571 * Evaluate numeric expression *
3572 *************************************************/
3573
3574 /* This is a set of mutually recursive functions that evaluate an arithmetic
3575 expression involving + - * / % & | ^ ~ << >> and parentheses. The only one of
3576 these functions that is called from elsewhere is eval_expr, whose interface is:
3577
3578 Arguments:
3579 sptr pointer to the pointer to the string - gets updated
3580 decimal TRUE if numbers are to be assumed decimal
3581 error pointer to where to put an error message - must be NULL on input
3582 endket TRUE if ')' must terminate - FALSE for external call
3583
3584 Returns: on success: the value of the expression, with *error still NULL
3585 on failure: an undefined value, with *error = a message
3586 */
3587
3588 static int_eximarith_t eval_op_or(uschar **, BOOL, uschar **);
3589
3590
3591 static int_eximarith_t
3592 eval_expr(uschar **sptr, BOOL decimal, uschar **error, BOOL endket)
3593 {
3594 uschar *s = *sptr;
3595 int_eximarith_t x = eval_op_or(&s, decimal, error);
3596 if (*error == NULL)
3597 {
3598 if (endket)
3599 {
3600 if (*s != ')')
3601 *error = US"expecting closing parenthesis";
3602 else
3603 while (isspace(*(++s)));
3604 }
3605 else if (*s != 0) *error = US"expecting operator";
3606 }
3607 *sptr = s;
3608 return x;
3609 }
3610
3611
3612 static int_eximarith_t
3613 eval_number(uschar **sptr, BOOL decimal, uschar **error)
3614 {
3615 register int c;
3616 int_eximarith_t n;
3617 uschar *s = *sptr;
3618 while (isspace(*s)) s++;
3619 c = *s;
3620 if (isdigit(c))
3621 {
3622 int count;
3623 (void)sscanf(CS s, (decimal? SC_EXIM_DEC "%n" : SC_EXIM_ARITH "%n"), &n, &count);
3624 s += count;
3625 switch (tolower(*s))
3626 {
3627 default: break;
3628 case 'k': n *= 1024; s++; break;
3629 case 'm': n *= 1024*1024; s++; break;
3630 case 'g': n *= 1024*1024*1024; s++; break;
3631 }
3632 while (isspace (*s)) s++;
3633 }
3634 else if (c == '(')
3635 {
3636 s++;
3637 n = eval_expr(&s, decimal, error, 1);
3638 }
3639 else
3640 {
3641 *error = US"expecting number or opening parenthesis";
3642 n = 0;
3643 }
3644 *sptr = s;
3645 return n;
3646 }
3647
3648
3649 static int_eximarith_t
3650 eval_op_unary(uschar **sptr, BOOL decimal, uschar **error)
3651 {
3652 uschar *s = *sptr;
3653 int_eximarith_t x;
3654 while (isspace(*s)) s++;
3655 if (*s == '+' || *s == '-' || *s == '~')
3656 {
3657 int op = *s++;
3658 x = eval_op_unary(&s, decimal, error);
3659 if (op == '-') x = -x;
3660 else if (op == '~') x = ~x;
3661 }
3662 else
3663 {
3664 x = eval_number(&s, decimal, error);
3665 }
3666 *sptr = s;
3667 return x;
3668 }
3669
3670
3671 static int_eximarith_t
3672 eval_op_mult(uschar **sptr, BOOL decimal, uschar **error)
3673 {
3674 uschar *s = *sptr;
3675 int_eximarith_t x = eval_op_unary(&s, decimal, error);
3676 if (*error == NULL)
3677 {
3678 while (*s == '*' || *s == '/' || *s == '%')
3679 {
3680 int op = *s++;
3681 int_eximarith_t y = eval_op_unary(&s, decimal, error);
3682 if (*error != NULL) break;
3683 /* SIGFPE both on div/mod by zero and on INT_MIN / -1, which would give
3684 * a value of INT_MAX+1. Note that INT_MIN * -1 gives INT_MIN for me, which
3685 * is a bug somewhere in [gcc 4.2.1, FreeBSD, amd64]. In fact, -N*-M where
3686 * -N*M is INT_MIN will yield INT_MIN.
3687 * Since we don't support floating point, this is somewhat simpler.
3688 * Ideally, we'd return an error, but since we overflow for all other
3689 * arithmetic, consistency suggests otherwise, but what's the correct value
3690 * to use? There is none.
3691 * The C standard guarantees overflow for unsigned arithmetic but signed
3692 * overflow invokes undefined behaviour; in practice, this is overflow
3693 * except for converting INT_MIN to INT_MAX+1. We also can't guarantee
3694 * that long/longlong larger than int are available, or we could just work
3695 * with larger types. We should consider whether to guarantee 32bit eval
3696 * and 64-bit working variables, with errors returned. For now ...
3697 * So, the only SIGFPEs occur with a non-shrinking div/mod, thus -1; we
3698 * can just let the other invalid results occur otherwise, as they have
3699 * until now. For this one case, we can coerce.
3700 */
3701 if (y == -1 && x == EXIM_ARITH_MIN && op != '*')
3702 {
3703 DEBUG(D_expand)
3704 debug_printf("Integer exception dodging: " PR_EXIM_ARITH "%c-1 coerced to " PR_EXIM_ARITH "\n",
3705 EXIM_ARITH_MIN, op, EXIM_ARITH_MAX);
3706 x = EXIM_ARITH_MAX;
3707 continue;
3708 }
3709 if (op == '*')
3710 x *= y;
3711 else
3712 {
3713 if (y == 0)
3714 {
3715 *error = (op == '/') ? US"divide by zero" : US"modulo by zero";
3716 x = 0;
3717 break;
3718 }
3719 if (op == '/')
3720 x /= y;
3721 else
3722 x %= y;
3723 }
3724 }
3725 }
3726 *sptr = s;
3727 return x;
3728 }
3729
3730
3731 static int_eximarith_t
3732 eval_op_sum(uschar **sptr, BOOL decimal, uschar **error)
3733 {
3734 uschar *s = *sptr;
3735 int_eximarith_t x = eval_op_mult(&s, decimal, error);
3736 if (!*error)
3737 {
3738 while (*s == '+' || *s == '-')
3739 {
3740 int op = *s++;
3741 int_eximarith_t y = eval_op_mult(&s, decimal, error);
3742 if (*error) break;
3743 if ( (x >= EXIM_ARITH_MAX/2 && x >= EXIM_ARITH_MAX/2)
3744 || (x <= -(EXIM_ARITH_MAX/2) && y <= -(EXIM_ARITH_MAX/2)))
3745 { /* over-conservative check */
3746 *error = op == '+'
3747 ? US"overflow in sum" : US"overflow in difference";
3748 break;
3749 }
3750 if (op == '+') x += y; else x -= y;
3751 }
3752 }
3753 *sptr = s;
3754 return x;
3755 }
3756
3757
3758 static int_eximarith_t
3759 eval_op_shift(uschar **sptr, BOOL decimal, uschar **error)
3760 {
3761 uschar *s = *sptr;
3762 int_eximarith_t x = eval_op_sum(&s, decimal, error);
3763 if (*error == NULL)
3764 {
3765 while ((*s == '<' || *s == '>') && s[1] == s[0])
3766 {
3767 int_eximarith_t y;
3768 int op = *s++;
3769 s++;
3770 y = eval_op_sum(&s, decimal, error);
3771 if (*error != NULL) break;
3772 if (op == '<') x <<= y; else x >>= y;
3773 }
3774 }
3775 *sptr = s;
3776 return x;
3777 }
3778
3779
3780 static int_eximarith_t
3781 eval_op_and(uschar **sptr, BOOL decimal, uschar **error)
3782 {
3783 uschar *s = *sptr;
3784 int_eximarith_t x = eval_op_shift(&s, decimal, error);
3785 if (*error == NULL)
3786 {
3787 while (*s == '&')
3788 {
3789 int_eximarith_t y;
3790 s++;
3791 y = eval_op_shift(&s, decimal, error);
3792 if (*error != NULL) break;
3793 x &= y;
3794 }
3795 }
3796 *sptr = s;
3797 return x;
3798 }
3799
3800
3801 static int_eximarith_t
3802 eval_op_xor(uschar **sptr, BOOL decimal, uschar **error)
3803 {
3804 uschar *s = *sptr;
3805 int_eximarith_t x = eval_op_and(&s, decimal, error);
3806 if (*error == NULL)
3807 {
3808 while (*s == '^')
3809 {
3810 int_eximarith_t y;
3811 s++;
3812 y = eval_op_and(&s, decimal, error);
3813 if (*error != NULL) break;
3814 x ^= y;
3815 }
3816 }
3817 *sptr = s;
3818 return x;
3819 }
3820
3821
3822 static int_eximarith_t
3823 eval_op_or(uschar **sptr, BOOL decimal, uschar **error)
3824 {
3825 uschar *s = *sptr;
3826 int_eximarith_t x = eval_op_xor(&s, decimal, error);
3827 if (*error == NULL)
3828 {
3829 while (*s == '|')
3830 {
3831 int_eximarith_t y;
3832 s++;
3833 y = eval_op_xor(&s, decimal, error);
3834 if (*error != NULL) break;
3835 x |= y;
3836 }
3837 }
3838 *sptr = s;
3839 return x;
3840 }
3841
3842
3843
3844 /* Return pointer to dewrapped string, with enclosing specified chars removed.
3845 The given string is modified on return. Leading whitespace is skipped while
3846 looking for the opening wrap character, then the rest is scanned for the trailing
3847 (non-escaped) wrap character. A backslash in the string will act as an escape.
3848
3849 A nul is written over the trailing wrap, and a pointer to the char after the
3850 leading wrap is returned.
3851
3852 Arguments:
3853 s String for de-wrapping
3854 wrap Two-char string, the first being the opener, second the closer wrapping
3855 character
3856 Return:
3857 Pointer to de-wrapped string, or NULL on error (with expand_string_message set).
3858 */
3859
3860 static uschar *
3861 dewrap(uschar * s, const uschar * wrap)
3862 {
3863 uschar * p = s;
3864 unsigned depth = 0;
3865 BOOL quotesmode = wrap[0] == wrap[1];
3866
3867 while (isspace(*p)) p++;
3868
3869 if (*p == *wrap)
3870 {
3871 s = ++p;
3872 wrap++;
3873 while (*p)
3874 {
3875 if (*p == '\\') p++;
3876 else if (!quotesmode && *p == wrap[-1]) depth++;
3877 else if (*p == *wrap)
3878 if (depth == 0)
3879 {
3880 *p = '\0';
3881 return s;
3882 }
3883 else
3884 depth--;
3885 p++;
3886 }
3887 }
3888 expand_string_message = string_sprintf("missing '%c'", *wrap);
3889 return NULL;
3890 }
3891
3892
3893 /* Pull off the leading array or object element, returning
3894 a copy in an allocated string. Update the list pointer.
3895
3896 The element may itself be an object or array.
3897 Return NULL when the list is empty.
3898 */
3899
3900 uschar *
3901 json_nextinlist(const uschar ** list)
3902 {
3903 unsigned array_depth = 0, object_depth = 0;
3904 const uschar * s = *list, * item;
3905
3906 while (isspace(*s)) s++;
3907
3908 for (item = s;
3909 *s && (*s != ',' || array_depth != 0 || object_depth != 0);
3910 s++)
3911 switch (*s)
3912 {
3913 case '[': array_depth++; break;
3914 case ']': array_depth--; break;
3915 case '{': object_depth++; break;
3916 case '}': object_depth--; break;
3917 }
3918 *list = *s ? s+1 : s;
3919 if (item == s) return NULL;
3920 item = string_copyn(item, s - item);
3921 DEBUG(D_expand) debug_printf_indent(" json ele: '%s'\n", item);
3922 return US item;
3923 }
3924
3925
3926
3927 /*************************************************
3928 * Expand string *
3929 *************************************************/
3930
3931 /* Returns either an unchanged string, or the expanded string in stacking pool
3932 store. Interpreted sequences are:
3933
3934 \... normal escaping rules
3935 $name substitutes the variable
3936 ${name} ditto
3937 ${op:string} operates on the expanded string value
3938 ${item{arg1}{arg2}...} expands the args and then does the business
3939 some literal args are not enclosed in {}
3940
3941 There are now far too many operators and item types to make it worth listing
3942 them here in detail any more.
3943
3944 We use an internal routine recursively to handle embedded substrings. The
3945 external function follows. The yield is NULL if the expansion failed, and there
3946 are two cases: if something collapsed syntactically, or if "fail" was given
3947 as the action on a lookup failure. These can be distinguished by looking at the
3948 variable expand_string_forcedfail, which is TRUE in the latter case.
3949
3950 The skipping flag is set true when expanding a substring that isn't actually
3951 going to be used (after "if" or "lookup") and it prevents lookups from
3952 happening lower down.
3953
3954 Store usage: At start, a store block of the length of the input plus 64
3955 is obtained. This is expanded as necessary by string_cat(), which might have to
3956 get a new block, or might be able to expand the original. At the end of the
3957 function we can release any store above that portion of the yield block that
3958 was actually used. In many cases this will be optimal.
3959
3960 However: if the first item in the expansion is a variable name or header name,
3961 we reset the store before processing it; if the result is in fresh store, we
3962 use that without copying. This is helpful for expanding strings like
3963 $message_headers which can get very long.
3964
3965 There's a problem if a ${dlfunc item has side-effects that cause allocation,
3966 since resetting the store at the end of the expansion will free store that was
3967 allocated by the plugin code as well as the slop after the expanded string. So
3968 we skip any resets if ${dlfunc } has been used. The same applies for ${acl }
3969 and, given the acl condition, ${if }. This is an unfortunate consequence of
3970 string expansion becoming too powerful.
3971
3972 Arguments:
3973 string the string to be expanded
3974 ket_ends true if expansion is to stop at }
3975 left if not NULL, a pointer to the first character after the
3976 expansion is placed here (typically used with ket_ends)
3977 skipping TRUE for recursive calls when the value isn't actually going
3978 to be used (to allow for optimisation)
3979 honour_dollar TRUE if $ is to be expanded,
3980 FALSE if it's just another character
3981 resetok_p if not NULL, pointer to flag - write FALSE if unsafe to reset
3982 the store.
3983
3984 Returns: NULL if expansion fails:
3985 expand_string_forcedfail is set TRUE if failure was forced
3986 expand_string_message contains a textual error message
3987 a pointer to the expanded string on success
3988 */
3989
3990 static uschar *
3991 expand_string_internal(const uschar *string, BOOL ket_ends, const uschar **left,
3992 BOOL skipping, BOOL honour_dollar, BOOL *resetok_p)
3993 {
3994 gstring * yield = string_get(Ustrlen(string) + 64);
3995 int item_type;
3996 const uschar *s = string;
3997 uschar *save_expand_nstring[EXPAND_MAXN+1];
3998 int save_expand_nlength[EXPAND_MAXN+1];
3999 BOOL resetok = TRUE;
4000
4001 expand_level++;
4002 DEBUG(D_expand)
4003 DEBUG(D_noutf8)
4004 debug_printf_indent("/%s: %s\n",
4005 skipping ? "---scanning" : "considering", string);
4006 else
4007 debug_printf_indent(UTF8_DOWN_RIGHT "%s: %s\n",
4008 skipping
4009 ? UTF8_HORIZ UTF8_HORIZ UTF8_HORIZ "scanning"
4010 : "considering",
4011 string);
4012
4013 f.expand_string_forcedfail = FALSE;
4014 expand_string_message = US"";
4015
4016 while (*s != 0)
4017 {
4018 uschar *value;
4019 uschar name[256];
4020
4021 /* \ escapes the next character, which must exist, or else
4022 the expansion fails. There's a special escape, \N, which causes
4023 copying of the subject verbatim up to the next \N. Otherwise,
4024 the escapes are the standard set. */
4025
4026 if (*s == '\\')
4027 {
4028 if (s[1] == 0)
4029 {
4030 expand_string_message = US"\\ at end of string";
4031 goto EXPAND_FAILED;
4032 }
4033
4034 if (s[1] == 'N')
4035 {
4036 const uschar * t = s + 2;
4037 for (s = t; *s != 0; s++) if (*s == '\\' && s[1] == 'N') break;
4038 yield = string_catn(yield, t, s - t);
4039 if (*s != 0) s += 2;
4040 }
4041
4042 else
4043 {
4044 uschar ch[1];
4045 ch[0] = string_interpret_escape(&s);
4046 s++;
4047 yield = string_catn(yield, ch, 1);
4048 }
4049
4050 continue;
4051 }
4052
4053 /*{*/
4054 /* Anything other than $ is just copied verbatim, unless we are
4055 looking for a terminating } character. */
4056
4057 /*{*/
4058 if (ket_ends && *s == '}') break;
4059
4060 if (*s != '$' || !honour_dollar)
4061 {
4062 yield = string_catn(yield, s++, 1);
4063 continue;
4064 }
4065
4066 /* No { after the $ - must be a plain name or a number for string
4067 match variable. There has to be a fudge for variables that are the
4068 names of header fields preceded by "$header_" because header field
4069 names can contain any printing characters except space and colon.
4070 For those that don't like typing this much, "$h_" is a synonym for
4071 "$header_". A non-existent header yields a NULL value; nothing is
4072 inserted. */ /*}*/
4073
4074 if (isalpha((*(++s))))
4075 {
4076 int len;
4077 int newsize = 0;
4078 gstring * g = NULL;
4079 uschar * t;
4080
4081 s = read_name(name, sizeof(name), s, US"_");
4082
4083 /* If this is the first thing to be expanded, release the pre-allocated
4084 buffer. */
4085
4086 if (!yield)
4087 g = store_get(sizeof(gstring));
4088 else if (yield->ptr == 0)
4089 {
4090 if (resetok) store_reset(yield);
4091 yield = NULL;
4092 g = store_get(sizeof(gstring)); /* alloc _before_ calling find_variable() */
4093 }
4094
4095 /* Header */
4096
4097 if ( ( *(t = name) == 'h'
4098 || (*t == 'r' || *t == 'l' || *t == 'b') && *++t == 'h'
4099 )
4100 && (*++t == '_' || Ustrncmp(t, "eader_", 6) == 0)
4101 )
4102 {
4103 unsigned flags = *name == 'r' ? FH_WANT_RAW
4104 : *name == 'l' ? FH_WANT_RAW|FH_WANT_LIST
4105 : 0;
4106 uschar * charset = *name == 'b' ? NULL : headers_charset;
4107
4108 s = read_header_name(name, sizeof(name), s);
4109 value = find_header(name, &newsize, flags, charset);
4110
4111 /* If we didn't find the header, and the header contains a closing brace
4112 character, this may be a user error where the terminating colon
4113 has been omitted. Set a flag to adjust the error message in this case.
4114 But there is no error here - nothing gets inserted. */
4115
4116 if (!value)
4117 {
4118 if (Ustrchr(name, '}') != NULL) malformed_header = TRUE;
4119 continue;
4120 }
4121 }
4122
4123 /* Variable */
4124
4125 else if (!(value = find_variable(name, FALSE, skipping, &newsize)))
4126 {
4127 expand_string_message =
4128 string_sprintf("unknown variable name \"%s\"", name);
4129 check_variable_error_message(name);
4130 goto EXPAND_FAILED;
4131 }
4132
4133 /* If the data is known to be in a new buffer, newsize will be set to the
4134 size of that buffer. If this is the first thing in an expansion string,
4135 yield will be NULL; just point it at the new store instead of copying. Many
4136 expansion strings contain just one reference, so this is a useful
4137 optimization, especially for humungous headers. We need to use a gstring
4138 structure that is not allocated after that new-buffer, else a later store
4139 reset in the middle of the buffer will make it inaccessible. */
4140
4141 len = Ustrlen(value);
4142 if (!yield && newsize != 0)
4143 {
4144 yield = g;
4145 yield->size = newsize;
4146 yield->ptr = len;
4147 yield->s = value;
4148 }
4149 else
4150 yield = string_catn(yield, value, len);
4151
4152 continue;
4153 }
4154
4155 if (isdigit(*s))
4156 {
4157 int n;
4158 s = read_cnumber(&n, s);
4159 if (n >= 0 && n <= expand_nmax)
4160 yield = string_catn(yield, expand_nstring[n], expand_nlength[n]);
4161 continue;
4162 }
4163
4164 /* Otherwise, if there's no '{' after $ it's an error. */ /*}*/
4165
4166 if (*s != '{') /*}*/
4167 {
4168 expand_string_message = US"$ not followed by letter, digit, or {"; /*}*/
4169 goto EXPAND_FAILED;
4170 }
4171
4172 /* After { there can be various things, but they all start with
4173 an initial word, except for a number for a string match variable. */
4174
4175 if (isdigit((*(++s))))
4176 {
4177 int n;
4178 s = read_cnumber(&n, s); /*{*/
4179 if (*s++ != '}')
4180 { /*{*/
4181 expand_string_message = US"} expected after number";
4182 goto EXPAND_FAILED;
4183 }
4184 if (n >= 0 && n <= expand_nmax)
4185 yield = string_catn(yield, expand_nstring[n], expand_nlength[n]);
4186 continue;
4187 }
4188
4189 if (!isalpha(*s))
4190 {
4191 expand_string_message = US"letter or digit expected after ${"; /*}*/
4192 goto EXPAND_FAILED;
4193 }
4194
4195 /* Allow "-" in names to cater for substrings with negative
4196 arguments. Since we are checking for known names after { this is
4197 OK. */
4198
4199 s = read_name(name, sizeof(name), s, US"_-");
4200 item_type = chop_match(name, item_table, nelem(item_table));
4201
4202 switch(item_type)
4203 {
4204 /* Call an ACL from an expansion. We feed data in via $acl_arg1 - $acl_arg9.
4205 If the ACL returns accept or reject we return content set by "message ="
4206 There is currently no limit on recursion; this would have us call
4207 acl_check_internal() directly and get a current level from somewhere.
4208 See also the acl expansion condition ECOND_ACL and the traditional
4209 acl modifier ACLC_ACL.
4210 Assume that the function has side-effects on the store that must be preserved.
4211 */
4212
4213 case EITEM_ACL:
4214 /* ${acl {name} {arg1}{arg2}...} */
4215 {
4216 uschar *sub[10]; /* name + arg1-arg9 (which must match number of acl_arg[]) */
4217 uschar *user_msg;
4218
4219 switch(read_subs(sub, nelem(sub), 1, &s, skipping, TRUE, US"acl",
4220 &resetok))
4221 {
4222 case 1: goto EXPAND_FAILED_CURLY;
4223 case 2:
4224 case 3: goto EXPAND_FAILED;
4225 }
4226 if (skipping) continue;
4227
4228 resetok = FALSE;
4229 switch(eval_acl(sub, nelem(sub), &user_msg))
4230 {
4231 case OK:
4232 case FAIL:
4233 DEBUG(D_expand)
4234 debug_printf_indent("acl expansion yield: %s\n", user_msg);
4235 if (user_msg)
4236 yield = string_cat(yield, user_msg);
4237 continue;
4238
4239 case DEFER:
4240 f.expand_string_forcedfail = TRUE;
4241 /*FALLTHROUGH*/
4242 default:
4243 expand_string_message = string_sprintf("error from acl \"%s\"", sub[0]);
4244 goto EXPAND_FAILED;
4245 }
4246 }
4247
4248 case EITEM_AUTHRESULTS:
4249 /* ${authresults {mysystemname}} */
4250 {
4251 uschar *sub_arg[1];
4252
4253 switch(read_subs(sub_arg, nelem(sub_arg), 1, &s, skipping, TRUE, name,
4254 &resetok))
4255 {
4256 case 1: goto EXPAND_FAILED_CURLY;
4257 case 2:
4258 case 3: goto EXPAND_FAILED;
4259 }
4260
4261 yield = string_append(yield, 3,
4262 US"Authentication-Results: ", sub_arg[0], US"; none");
4263 yield->ptr -= 6;
4264
4265 yield = authres_local(yield, sub_arg[0]);
4266 yield = authres_iprev(yield);
4267 yield = authres_smtpauth(yield);
4268 #ifdef SUPPORT_SPF
4269 yield = authres_spf(yield);
4270 #endif
4271 #ifndef DISABLE_DKIM
4272 yield = authres_dkim(yield);
4273 #endif
4274 #ifdef EXPERIMENTAL_DMARC
4275 yield = authres_dmarc(yield);
4276 #endif
4277 #ifdef EXPERIMENTAL_ARC
4278 yield = authres_arc(yield);
4279 #endif
4280 continue;
4281 }
4282
4283 /* Handle conditionals - preserve the values of the numerical expansion
4284 variables in case they get changed by a regular expression match in the
4285 condition. If not, they retain their external settings. At the end
4286 of this "if" section, they get restored to their previous values. */
4287
4288 case EITEM_IF:
4289 {
4290 BOOL cond = FALSE;
4291 const uschar *next_s;
4292 int save_expand_nmax =
4293 save_expand_strings(save_expand_nstring, save_expand_nlength);
4294
4295 while (isspace(*s)) s++;
4296 next_s = eval_condition(s, &resetok, skipping ? NULL : &cond);
4297 if (next_s == NULL) goto EXPAND_FAILED; /* message already set */
4298
4299 DEBUG(D_expand)
4300 DEBUG(D_noutf8)
4301 {
4302 debug_printf_indent("|--condition: %.*s\n", (int)(next_s - s), s);
4303 debug_printf_indent("|-----result: %s\n", cond ? "true" : "false");
4304 }
4305 else
4306 {
4307 debug_printf_indent(UTF8_VERT_RIGHT UTF8_HORIZ UTF8_HORIZ
4308 "condition: %.*s\n",
4309 (int)(next_s - s), s);
4310 debug_printf_indent(UTF8_VERT_RIGHT UTF8_HORIZ UTF8_HORIZ
4311 UTF8_HORIZ UTF8_HORIZ UTF8_HORIZ
4312 "result: %s\n",
4313 cond ? "true" : "false");
4314 }
4315
4316 s = next_s;
4317
4318 /* The handling of "yes" and "no" result strings is now in a separate
4319 function that is also used by ${lookup} and ${extract} and ${run}. */
4320
4321 switch(process_yesno(
4322 skipping, /* were previously skipping */
4323 cond, /* success/failure indicator */
4324 lookup_value, /* value to reset for string2 */
4325 &s, /* input pointer */
4326 &yield, /* output pointer */
4327 US"if", /* condition type */
4328 &resetok))
4329 {
4330 case 1: goto EXPAND_FAILED; /* when all is well, the */
4331 case 2: goto EXPAND_FAILED_CURLY; /* returned value is 0 */
4332 }
4333
4334 /* Restore external setting of expansion variables for continuation
4335 at this level. */
4336
4337 restore_expand_strings(save_expand_nmax, save_expand_nstring,
4338 save_expand_nlength);
4339 continue;
4340 }
4341
4342 #ifdef SUPPORT_I18N
4343 case EITEM_IMAPFOLDER:
4344 { /* ${imapfolder {name}{sep]{specials}} */
4345 uschar *sub_arg[3];
4346 uschar *encoded;
4347
4348 switch(read_subs(sub_arg, nelem(sub_arg), 1, &s, skipping, TRUE, name,
4349 &resetok))
4350 {
4351 case 1: goto EXPAND_FAILED_CURLY;
4352 case 2:
4353 case 3: goto EXPAND_FAILED;
4354 }
4355
4356 if (sub_arg[1] == NULL) /* One argument */
4357 {
4358 sub_arg[1] = US"/"; /* default separator */
4359 sub_arg[2] = NULL;
4360 }
4361 else if (Ustrlen(sub_arg[1]) != 1)
4362 {
4363 expand_string_message =
4364 string_sprintf(
4365 "IMAP folder separator must be one character, found \"%s\"",
4366 sub_arg[1]);
4367 goto EXPAND_FAILED;
4368 }
4369
4370 if (!skipping)
4371 {
4372 if (!(encoded = imap_utf7_encode(sub_arg[0], headers_charset,
4373 sub_arg[1][0], sub_arg[2], &expand_string_message)))
4374 goto EXPAND_FAILED;
4375 yield = string_cat(yield, encoded);
4376 }
4377 continue;
4378 }
4379 #endif
4380
4381 /* Handle database lookups unless locked out. If "skipping" is TRUE, we are
4382 expanding an internal string that isn't actually going to be used. All we
4383 need to do is check the syntax, so don't do a lookup at all. Preserve the
4384 values of the numerical expansion variables in case they get changed by a
4385 partial lookup. If not, they retain their external settings. At the end
4386 of this "lookup" section, they get restored to their previous values. */
4387
4388 case EITEM_LOOKUP:
4389 {
4390 int stype, partial, affixlen, starflags;
4391 int expand_setup = 0;
4392 int nameptr = 0;
4393 uschar *key, *filename;
4394 const uschar *affix;
4395 uschar *save_lookup_value = lookup_value;
4396 int save_expand_nmax =
4397 save_expand_strings(save_expand_nstring, save_expand_nlength);
4398
4399 if ((expand_forbid & RDO_LOOKUP) != 0)
4400 {
4401 expand_string_message = US"lookup expansions are not permitted";
4402 goto EXPAND_FAILED;
4403 }
4404
4405 /* Get the key we are to look up for single-key+file style lookups.
4406 Otherwise set the key NULL pro-tem. */
4407
4408 while (isspace(*s)) s++;
4409 if (*s == '{') /*}*/
4410 {
4411 key = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok);
4412 if (!key) goto EXPAND_FAILED; /*{{*/
4413 if (*s++ != '}')
4414 {
4415 expand_string_message = US"missing '}' after lookup key";
4416 goto EXPAND_FAILED_CURLY;
4417 }
4418 while (isspace(*s)) s++;
4419 }
4420 else key = NULL;
4421
4422 /* Find out the type of database */
4423
4424 if (!isalpha(*s))
4425 {
4426 expand_string_message = US"missing lookup type";
4427 goto EXPAND_FAILED;
4428 }
4429
4430 /* The type is a string that may contain special characters of various
4431 kinds. Allow everything except space or { to appear; the actual content
4432 is checked by search_findtype_partial. */ /*}*/
4433
4434 while (*s != 0 && *s != '{' && !isspace(*s)) /*}*/
4435 {
4436 if (nameptr < sizeof(name) - 1) name[nameptr++] = *s;
4437 s++;
4438 }
4439 name[nameptr] = 0;
4440 while (isspace(*s)) s++;
4441
4442 /* Now check for the individual search type and any partial or default
4443 options. Only those types that are actually in the binary are valid. */
4444
4445 stype = search_findtype_partial(name, &partial, &affix, &affixlen,
4446 &starflags);
4447 if (stype < 0)
4448 {
4449 expand_string_message = search_error_message;
4450 goto EXPAND_FAILED;
4451 }
4452
4453 /* Check that a key was provided for those lookup types that need it,
4454 and was not supplied for those that use the query style. */
4455
4456 if (!mac_islookup(stype, lookup_querystyle|lookup_absfilequery))
4457 {
4458 if (key == NULL)
4459 {
4460 expand_string_message = string_sprintf("missing {key} for single-"
4461 "key \"%s\" lookup", name);
4462 goto EXPAND_FAILED;
4463 }
4464 }
4465 else
4466 {
4467 if (key != NULL)
4468 {
4469 expand_string_message = string_sprintf("a single key was given for "
4470 "lookup type \"%s\", which is not a single-key lookup type", name);
4471 goto EXPAND_FAILED;
4472 }
4473 }
4474
4475 /* Get the next string in brackets and expand it. It is the file name for
4476 single-key+file lookups, and the whole query otherwise. In the case of
4477 queries that also require a file name (e.g. sqlite), the file name comes
4478 first. */
4479
4480 if (*s != '{')
4481 {
4482 expand_string_message = US"missing '{' for lookup file-or-query arg";
4483 goto EXPAND_FAILED_CURLY;
4484 }
4485 filename = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok);
4486 if (filename == NULL) goto EXPAND_FAILED;
4487 if (*s++ != '}')
4488 {
4489 expand_string_message = US"missing '}' closing lookup file-or-query arg";
4490 goto EXPAND_FAILED_CURLY;
4491 }
4492 while (isspace(*s)) s++;
4493
4494 /* If this isn't a single-key+file lookup, re-arrange the variables
4495 to be appropriate for the search_ functions. For query-style lookups,
4496 there is just a "key", and no file name. For the special query-style +
4497 file types, the query (i.e. "key") starts with a file name. */
4498
4499 if (!key)
4500 {
4501 while (isspace(*filename)) filename++;
4502 key = filename;
4503
4504 if (mac_islookup(stype, lookup_querystyle))
4505 filename = NULL;
4506 else
4507 {
4508 if (*filename != '/')
4509 {
4510 expand_string_message = string_sprintf(
4511 "absolute file name expected for \"%s\" lookup", name);
4512 goto EXPAND_FAILED;
4513 }
4514 while (*key != 0 && !isspace(*key)) key++;
4515 if (*key != 0) *key++ = 0;
4516 }
4517 }
4518
4519 /* If skipping, don't do the next bit - just lookup_value == NULL, as if
4520 the entry was not found. Note that there is no search_close() function.
4521 Files are left open in case of re-use. At suitable places in higher logic,
4522 search_tidyup() is called to tidy all open files. This can save opening
4523 the same file several times. However, files may also get closed when
4524 others are opened, if too many are open at once. The rule is that a
4525 handle should not be used after a second search_open().
4526
4527 Request that a partial search sets up $1 and maybe $2 by passing
4528 expand_setup containing zero. If its value changes, reset expand_nmax,
4529 since new variables will have been set. Note that at the end of this
4530 "lookup" section, the old numeric variables are restored. */
4531
4532 if (skipping)
4533 lookup_value = NULL;
4534 else
4535 {
4536 void *handle = search_open(filename, stype, 0, NULL, NULL);
4537 if (handle == NULL)
4538 {
4539 expand_string_message = search_error_message;
4540 goto EXPAND_FAILED;
4541 }
4542 lookup_value = search_find(handle, filename, key, partial, affix,
4543 affixlen, starflags, &expand_setup);
4544 if (f.search_find_defer)
4545 {
4546 expand_string_message =
4547 string_sprintf("lookup of \"%s\" gave DEFER: %s",
4548 string_printing2(key, FALSE), search_error_message);
4549 goto EXPAND_FAILED;
4550 }
4551 if (expand_setup > 0) expand_nmax = expand_setup;
4552 }
4553
4554 /* The handling of "yes" and "no" result strings is now in a separate
4555 function that is also used by ${if} and ${extract}. */
4556
4557 switch(process_yesno(
4558 skipping, /* were previously skipping */
4559 lookup_value != NULL, /* success/failure indicator */
4560 save_lookup_value, /* value to reset for string2 */
4561 &s, /* input pointer */
4562 &yield, /* output pointer */
4563 US"lookup", /* condition type */
4564 &resetok))
4565 {
4566 case 1: goto EXPAND_FAILED; /* when all is well, the */
4567 case 2: goto EXPAND_FAILED_CURLY; /* returned value is 0 */
4568 }
4569
4570 /* Restore external setting of expansion variables for carrying on
4571 at this level, and continue. */
4572
4573 restore_expand_strings(save_expand_nmax, save_expand_nstring,
4574 save_expand_nlength);
4575 continue;
4576 }
4577
4578 /* If Perl support is configured, handle calling embedded perl subroutines,
4579 unless locked out at this time. Syntax is ${perl{sub}} or ${perl{sub}{arg}}
4580 or ${perl{sub}{arg1}{arg2}} or up to a maximum of EXIM_PERL_MAX_ARGS
4581 arguments (defined below). */
4582
4583 #define EXIM_PERL_MAX_ARGS 8
4584
4585 case EITEM_PERL:
4586 #ifndef EXIM_PERL
4587 expand_string_message = US"\"${perl\" encountered, but this facility " /*}*/
4588 "is not included in this binary";
4589 goto EXPAND_FAILED;
4590
4591 #else /* EXIM_PERL */
4592 {
4593 uschar *sub_arg[EXIM_PERL_MAX_ARGS + 2];
4594 gstring *new_yield;
4595
4596 if ((expand_forbid & RDO_PERL) != 0)
4597 {
4598 expand_string_message = US"Perl calls are not permitted";
4599 goto EXPAND_FAILED;
4600 }
4601
4602 switch(read_subs(sub_arg, EXIM_PERL_MAX_ARGS + 1, 1, &s, skipping, TRUE,
4603 US"perl", &resetok))
4604 {
4605 case 1: goto EXPAND_FAILED_CURLY;
4606 case 2:
4607 case 3: goto EXPAND_FAILED;
4608 }
4609
4610 /* If skipping, we don't actually do anything */
4611
4612 if (skipping) continue;
4613
4614 /* Start the interpreter if necessary */
4615
4616 if (!opt_perl_started)
4617 {
4618 uschar *initerror;
4619 if (opt_perl_startup == NULL)
4620 {
4621 expand_string_message = US"A setting of perl_startup is needed when "
4622 "using the Perl interpreter";
4623 goto EXPAND_FAILED;
4624 }
4625 DEBUG(D_any) debug_printf("Starting Perl interpreter\n");
4626 initerror = init_perl(opt_perl_startup);
4627 if (initerror != NULL)
4628 {
4629 expand_string_message =
4630 string_sprintf("error in perl_startup code: %s\n", initerror);
4631 goto EXPAND_FAILED;
4632 }
4633 opt_perl_started = TRUE;
4634 }
4635
4636 /* Call the function */
4637
4638 sub_arg[EXIM_PERL_MAX_ARGS + 1] = NULL;
4639 new_yield = call_perl_cat(yield, &expand_string_message,
4640 sub_arg[0], sub_arg + 1);
4641
4642 /* NULL yield indicates failure; if the message pointer has been set to
4643 NULL, the yield was undef, indicating a forced failure. Otherwise the
4644 message will indicate some kind of Perl error. */
4645
4646 if (new_yield == NULL)
4647 {
4648 if (expand_string_message == NULL)
4649 {
4650 expand_string_message =
4651 string_sprintf("Perl subroutine \"%s\" returned undef to force "
4652 "failure", sub_arg[0]);
4653 f.expand_string_forcedfail = TRUE;
4654 }
4655 goto EXPAND_FAILED;
4656 }
4657
4658 /* Yield succeeded. Ensure forcedfail is unset, just in case it got
4659 set during a callback from Perl. */
4660
4661 f.expand_string_forcedfail = FALSE;
4662 yield = new_yield;
4663 continue;
4664 }
4665 #endif /* EXIM_PERL */
4666
4667 /* Transform email address to "prvs" scheme to use
4668 as BATV-signed return path */
4669
4670 case EITEM_PRVS:
4671 {
4672 uschar *sub_arg[3];
4673 uschar *p,*domain;
4674
4675 switch(read_subs(sub_arg, 3, 2, &s, skipping, TRUE, US"prvs", &resetok))
4676 {
4677 case 1: goto EXPAND_FAILED_CURLY;
4678 case 2:
4679 case 3: goto EXPAND_FAILED;
4680 }
4681
4682 /* If skipping, we don't actually do anything */
4683 if (skipping) continue;
4684
4685 /* sub_arg[0] is the address */
4686 if ( !(domain = Ustrrchr(sub_arg[0],'@'))
4687 || domain == sub_arg[0] || Ustrlen(domain) == 1)
4688 {
4689 expand_string_message = US"prvs first argument must be a qualified email address";
4690 goto EXPAND_FAILED;
4691 }
4692
4693 /* Calculate the hash. The third argument must be a single-digit
4694 key number, or unset. */
4695
4696 if ( sub_arg[2]
4697 && (!isdigit(sub_arg[2][0]) || sub_arg[2][1] != 0))
4698 {
4699 expand_string_message = US"prvs third argument must be a single digit";
4700 goto EXPAND_FAILED;
4701 }
4702
4703 p = prvs_hmac_sha1(sub_arg[0], sub_arg[1], sub_arg[2], prvs_daystamp(7));
4704 if (!p)
4705 {
4706 expand_string_message = US"prvs hmac-sha1 conversion failed";
4707 goto EXPAND_FAILED;
4708 }
4709
4710 /* Now separate the domain from the local part */
4711 *domain++ = '\0';
4712
4713 yield = string_catn(yield, US"prvs=", 5);
4714 yield = string_catn(yield, sub_arg[2] ? sub_arg[2] : US"0", 1);
4715 yield = string_catn(yield, prvs_daystamp(7), 3);
4716 yield = string_catn(yield, p, 6);
4717 yield = string_catn(yield, US"=", 1);
4718 yield = string_cat (yield, sub_arg[0]);
4719 yield = string_catn(yield, US"@", 1);
4720 yield = string_cat (yield, domain);
4721
4722 continue;
4723 }
4724
4725 /* Check a prvs-encoded address for validity */
4726
4727 case EITEM_PRVSCHECK:
4728 {
4729 uschar *sub_arg[3];
4730 gstring * g;
4731 const pcre *re;
4732 uschar *p;
4733
4734 /* TF: Ugliness: We want to expand parameter 1 first, then set
4735 up expansion variables that are used in the expansion of
4736 parameter 2. So we clone the string for the first
4737 expansion, where we only expand parameter 1.
4738
4739 PH: Actually, that isn't necessary. The read_subs() function is
4740 designed to work this way for the ${if and ${lookup expansions. I've
4741 tidied the code.
4742 */
4743
4744 /* Reset expansion variables */
4745 prvscheck_result = NULL;
4746 prvscheck_address = NULL;
4747 prvscheck_keynum = NULL;
4748
4749 switch(read_subs(sub_arg, 1, 1, &s, skipping, FALSE, US"prvs", &resetok))
4750 {
4751 case 1: goto EXPAND_FAILED_CURLY;
4752 case 2:
4753 case 3: goto EXPAND_FAILED;
4754 }
4755
4756 re = regex_must_compile(US"^prvs\\=([0-9])([0-9]{3})([A-F0-9]{6})\\=(.+)\\@(.+)$",
4757 TRUE,FALSE);
4758
4759 if (regex_match_and_setup(re,sub_arg[0],0,-1))
4760 {
4761 uschar *local_part = string_copyn(expand_nstring[4],expand_nlength[4]);
4762 uschar *key_num = string_copyn(expand_nstring[1],expand_nlength[1]);
4763 uschar *daystamp = string_copyn(expand_nstring[2],expand_nlength[2]);
4764 uschar *hash = string_copyn(expand_nstring[3],expand_nlength[3]);
4765 uschar *domain = string_copyn(expand_nstring[5],expand_nlength[5]);
4766
4767 DEBUG(D_expand) debug_printf_indent("prvscheck localpart: %s\n", local_part);
4768 DEBUG(D_expand) debug_printf_indent("prvscheck key number: %s\n", key_num);
4769 DEBUG(D_expand) debug_printf_indent("prvscheck daystamp: %s\n", daystamp);
4770 DEBUG(D_expand) debug_printf_indent("prvscheck hash: %s\n", hash);
4771 DEBUG(D_expand) debug_printf_indent("prvscheck domain: %s\n", domain);
4772
4773 /* Set up expansion variables */
4774 g = string_cat (NULL, local_part);
4775 g = string_catn(g, US"@", 1);
4776 g = string_cat (g, domain);
4777 prvscheck_address = string_from_gstring(g);
4778 prvscheck_keynum = string_copy(key_num);
4779
4780 /* Now expand the second argument */
4781 switch(read_subs(sub_arg, 1, 1, &s, skipping, FALSE, US"prvs", &resetok))
4782 {
4783 case 1: goto EXPAND_FAILED_CURLY;
4784 case 2:
4785 case 3: goto EXPAND_FAILED;
4786 }
4787
4788 /* Now we have the key and can check the address. */
4789
4790 p = prvs_hmac_sha1(prvscheck_address, sub_arg[0], prvscheck_keynum,
4791 daystamp);
4792
4793 if (!p)
4794 {
4795 expand_string_message = US"hmac-sha1 conversion failed";
4796 goto EXPAND_FAILED;
4797 }
4798
4799 DEBUG(D_expand) debug_printf_indent("prvscheck: received hash is %s\n", hash);
4800 DEBUG(D_expand) debug_printf_indent("prvscheck: own hash is %s\n", p);
4801
4802 if (Ustrcmp(p,hash) == 0)
4803 {
4804 /* Success, valid BATV address. Now check the expiry date. */
4805 uschar *now = prvs_daystamp(0);
4806 unsigned int inow = 0,iexpire = 1;
4807
4808 (void)sscanf(CS now,"%u",&inow);
4809 (void)sscanf(CS daystamp,"%u",&iexpire);
4810
4811 /* When "iexpire" is < 7, a "flip" has occurred.
4812 Adjust "inow" accordingly. */
4813 if ( (iexpire < 7) && (inow >= 993) ) inow = 0;
4814
4815 if (iexpire >= inow)
4816 {
4817 prvscheck_result = US"1";
4818 DEBUG(D_expand) debug_printf_indent("prvscheck: success, $pvrs_result set to 1\n");
4819 }
4820 else
4821 {
4822 prvscheck_result = NULL;
4823 DEBUG(D_expand) debug_printf_indent("prvscheck: signature expired, $pvrs_result unset\n");
4824 }
4825 }
4826 else
4827 {
4828 prvscheck_result = NULL;
4829 DEBUG(D_expand) debug_printf_indent("prvscheck: hash failure, $pvrs_result unset\n");
4830 }
4831
4832 /* Now expand the final argument. We leave this till now so that
4833 it can include $prvscheck_result. */
4834
4835 switch(read_subs(sub_arg, 1, 0, &s, skipping, TRUE, US"prvs", &resetok))
4836 {
4837 case 1: goto EXPAND_FAILED_CURLY;
4838 case 2:
4839 case 3: goto EXPAND_FAILED;
4840 }
4841
4842 yield = string_cat(yield,
4843 !sub_arg[0] || !*sub_arg[0] ? prvscheck_address : sub_arg[0]);
4844
4845 /* Reset the "internal" variables afterwards, because they are in
4846 dynamic store that will be reclaimed if the expansion succeeded. */
4847
4848 prvscheck_address = NULL;
4849 prvscheck_keynum = NULL;
4850 }
4851 else
4852 /* Does not look like a prvs encoded address, return the empty string.
4853 We need to make sure all subs are expanded first, so as to skip over
4854 the entire item. */
4855
4856 switch(read_subs(sub_arg, 2, 1, &s, skipping, TRUE, US"prvs", &resetok))
4857 {
4858 case 1: goto EXPAND_FAILED_CURLY;
4859 case 2:
4860 case 3: goto EXPAND_FAILED;
4861 }
4862
4863 continue;
4864 }
4865
4866 /* Handle "readfile" to insert an entire file */
4867
4868 case EITEM_READFILE:
4869 {
4870 FILE *f;
4871 uschar *sub_arg[2];
4872
4873 if ((expand_forbid & RDO_READFILE) != 0)
4874 {
4875 expand_string_message = US"file insertions are not permitted";
4876 goto EXPAND_FAILED;
4877 }
4878
4879 switch(read_subs(sub_arg, 2, 1, &s, skipping, TRUE, US"readfile", &resetok))
4880 {
4881 case 1: goto EXPAND_FAILED_CURLY;
4882 case 2:
4883 case 3: goto EXPAND_FAILED;
4884 }
4885
4886 /* If skipping, we don't actually do anything */
4887
4888 if (skipping) continue;
4889
4890 /* Open the file and read it */
4891
4892 if (!(f = Ufopen(sub_arg[0], "rb")))
4893 {
4894 expand_string_message = string_open_failed(errno, "%s", sub_arg[0]);
4895 goto EXPAND_FAILED;
4896 }
4897
4898 yield = cat_file(f, yield, sub_arg[1]);
4899 (void)fclose(f);
4900 continue;
4901 }
4902
4903 /* Handle "readsocket" to insert data from a socket, either
4904 Inet or Unix domain */
4905
4906 case EITEM_READSOCK:
4907 {
4908 int fd;
4909 int timeout = 5;
4910 int save_ptr = yield->ptr;
4911 FILE * fp;
4912 uschar * arg;
4913 uschar * sub_arg[4];
4914 uschar * server_name = NULL;
4915 host_item host;
4916 BOOL do_shutdown = TRUE;
4917 BOOL do_tls = FALSE; /* Only set under SUPPORT_TLS */
4918 void * tls_ctx = NULL; /* ditto */
4919 blob reqstr;
4920
4921 if (expand_forbid & RDO_READSOCK)
4922 {
4923 expand_string_message = US"socket insertions are not permitted";
4924 goto EXPAND_FAILED;
4925 }
4926
4927 /* Read up to 4 arguments, but don't do the end of item check afterwards,
4928 because there may be a string for expansion on failure. */
4929
4930 switch(read_subs(sub_arg, 4, 2, &s, skipping, FALSE, US"readsocket", &resetok))
4931 {
4932 case 1: goto EXPAND_FAILED_CURLY;
4933 case 2: /* Won't occur: no end check */
4934 case 3: goto EXPAND_FAILED;
4935 }
4936
4937 /* Grab the request string, if any */
4938
4939 reqstr.data = sub_arg[1];
4940 reqstr.len = Ustrlen(sub_arg[1]);
4941
4942 /* Sort out timeout, if given. The second arg is a list with the first element
4943 being a time value. Any more are options of form "name=value". Currently the
4944 only option recognised is "shutdown". */
4945
4946 if (sub_arg[2])
4947 {
4948 const uschar * list = sub_arg[2];
4949 uschar * item;
4950 int sep = 0;
4951
4952 item = string_nextinlist(&list, &sep, NULL, 0);
4953 if ((timeout = readconf_readtime(item, 0, FALSE)) < 0)
4954 {
4955 expand_string_message = string_sprintf("bad time value %s", item);
4956 goto EXPAND_FAILED;
4957 }
4958
4959 while ((item = string_nextinlist(&list, &sep, NULL, 0)))
4960 if (Ustrncmp(item, US"shutdown=", 9) == 0)
4961 { if (Ustrcmp(item + 9, US"no") == 0) do_shutdown = FALSE; }
4962 #ifdef SUPPORT_TLS
4963 else if (Ustrncmp(item, US"tls=", 4) == 0)
4964 { if (Ustrcmp(item + 9, US"no") != 0) do_tls = TRUE; }
4965 #endif
4966 }
4967 else
4968 sub_arg[3] = NULL; /* No eol if no timeout */
4969
4970 /* If skipping, we don't actually do anything. Otherwise, arrange to
4971 connect to either an IP or a Unix socket. */
4972
4973 if (!skipping)
4974 {
4975 /* Handle an IP (internet) domain */
4976
4977 if (Ustrncmp(sub_arg[0], "inet:", 5) == 0)
4978 {
4979 int port;
4980 uschar * port_name;
4981
4982 server_name = sub_arg[0] + 5;
4983 port_name = Ustrrchr(server_name, ':');
4984
4985 /* Sort out the port */
4986
4987 if (!port_name)
4988 {
4989 expand_string_message =
4990 string_sprintf("missing port for readsocket %s", sub_arg[0]);
4991 goto EXPAND_FAILED;
4992 }
4993 *port_name++ = 0; /* Terminate server name */
4994
4995 if (isdigit(*port_name))
4996 {
4997 uschar *end;
4998 port = Ustrtol(port_name, &end, 0);
4999 if (end != port_name + Ustrlen(port_name))
5000 {
5001 expand_string_message =
5002 string_sprintf("invalid port number %s", port_name);
5003 goto EXPAND_FAILED;
5004 }
5005 }
5006 else
5007 {
5008 struct servent *service_info = getservbyname(CS port_name, "tcp");
5009 if (!service_info)
5010 {
5011 expand_string_message = string_sprintf("unknown port \"%s\"",
5012 port_name);
5013 goto EXPAND_FAILED;
5014 }
5015 port = ntohs(service_info->s_port);
5016 }
5017
5018 /*XXX we trust that the request is idempotent. Hmm. */
5019 fd = ip_connectedsocket(SOCK_STREAM, server_name, port, port,
5020 timeout, &host, &expand_string_message,
5021 do_tls ? NULL : &reqstr);
5022 callout_address = NULL;
5023 if (fd < 0)
5024 goto SOCK_FAIL;
5025 if (!do_tls)
5026 reqstr.len = 0;
5027 }
5028
5029 /* Handle a Unix domain socket */
5030
5031 else
5032 {
5033 struct sockaddr_un sockun; /* don't call this "sun" ! */
5034 int rc;
5035
5036 if ((fd = socket(PF_UNIX, SOCK_STREAM, 0)) == -1)
5037 {
5038 expand_string_message = string_sprintf("failed to create socket: %s",
5039 strerror(errno));
5040 goto SOCK_FAIL;
5041 }
5042
5043 sockun.sun_family = AF_UNIX;
5044 sprintf(sockun.sun_path, "%.*s", (int)(sizeof(sockun.sun_path)-1),
5045 sub_arg[0]);
5046 server_name = US sockun.sun_path;
5047
5048 sigalrm_seen = FALSE;
5049 ALARM(timeout);
5050 rc = connect(fd, (struct sockaddr *)(&sockun), sizeof(sockun));
5051 ALARM_CLR(0);
5052 if (sigalrm_seen)
5053 {
5054 expand_string_message = US "socket connect timed out";
5055 goto SOCK_FAIL;
5056 }
5057 if (rc < 0)
5058 {
5059 expand_string_message = string_sprintf("failed to connect to socket "
5060 "%s: %s", sub_arg[0], strerror(errno));
5061 goto SOCK_FAIL;
5062 }
5063 host.name = server_name;
5064 host.address = US"";
5065 }
5066
5067 DEBUG(D_expand) debug_printf_indent("connected to socket %s\n", sub_arg[0]);
5068
5069 #ifdef SUPPORT_TLS
5070 if (do_tls)
5071 {
5072 tls_support tls_dummy = {.sni=NULL};
5073 uschar * errstr;
5074
5075 if (!(tls_ctx = tls_client_start(fd, &host, NULL, NULL,
5076 # ifdef SUPPORT_DANE
5077 NULL,
5078 # endif
5079 &tls_dummy, &errstr)))
5080 {
5081 expand_string_message = string_sprintf("TLS connect failed: %s", errstr);
5082 goto SOCK_FAIL;
5083 }
5084 }
5085 #endif
5086
5087 /* Allow sequencing of test actions */
5088 if (f.running_in_test_harness) millisleep(100);
5089
5090 /* Write the request string, if not empty or already done */
5091
5092 if (reqstr.len)
5093 {
5094 DEBUG(D_expand) debug_printf_indent("writing \"%s\" to socket\n",
5095 reqstr.data);
5096 if ( (
5097 #ifdef SUPPORT_TLS
5098 tls_ctx ? tls_write(tls_ctx, reqstr.data, reqstr.len, FALSE) :
5099 #endif
5100 write(fd, reqstr.data, reqstr.len)) != reqstr.len)
5101 {
5102 expand_string_message = string_sprintf("request write to socket "
5103 "failed: %s", strerror(errno));
5104 goto SOCK_FAIL;
5105 }
5106 }
5107
5108 /* Shut down the sending side of the socket. This helps some servers to
5109 recognise that it is their turn to do some work. Just in case some
5110 system doesn't have this function, make it conditional. */
5111
5112 #ifdef SHUT_WR
5113 if (!tls_ctx && do_shutdown) shutdown(fd, SHUT_WR);
5114 #endif
5115
5116 if (f.running_in_test_harness) millisleep(100);
5117
5118 /* Now we need to read from the socket, under a timeout. The function
5119 that reads a file can be used. */
5120
5121 if (!tls_ctx)
5122 fp = fdopen(fd, "rb");
5123 sigalrm_seen = FALSE;
5124 ALARM(timeout);
5125 yield =
5126 #ifdef SUPPORT_TLS
5127 tls_ctx ? cat_file_tls(tls_ctx, yield, sub_arg[3]) :
5128 #endif
5129 cat_file(fp, yield, sub_arg[3]);
5130 ALARM_CLR(0);
5131
5132 #ifdef SUPPORT_TLS
5133 if (tls_ctx)
5134 {
5135 tls_close(tls_ctx, TRUE);
5136 close(fd);
5137 }
5138 else
5139 #endif
5140 (void)fclose(fp);
5141
5142 /* After a timeout, we restore the pointer in the result, that is,
5143 make sure we add nothing from the socket. */
5144
5145 if (sigalrm_seen)
5146 {
5147 yield->ptr = save_ptr;
5148 expand_string_message = US "socket read timed out";
5149 goto SOCK_FAIL;
5150 }
5151 }
5152
5153 /* The whole thing has worked (or we were skipping). If there is a
5154 failure string following, we need to skip it. */
5155
5156 if (*s == '{')
5157 {
5158 if (expand_string_internal(s+1, TRUE, &s, TRUE, TRUE, &resetok) == NULL)
5159 goto EXPAND_FAILED;
5160 if (*s++ != '}')
5161 {
5162 expand_string_message = US"missing '}' closing failstring for readsocket";
5163 goto EXPAND_FAILED_CURLY;
5164 }
5165 while (isspace(*s)) s++;
5166 }
5167
5168 READSOCK_DONE:
5169 if (*s++ != '}')
5170 {
5171 expand_string_message = US"missing '}' closing readsocket";
5172 goto EXPAND_FAILED_CURLY;
5173 }
5174 continue;
5175
5176 /* Come here on failure to create socket, connect socket, write to the
5177 socket, or timeout on reading. If another substring follows, expand and
5178 use it. Otherwise, those conditions give expand errors. */
5179
5180 SOCK_FAIL:
5181 if (*s != '{') goto EXPAND_FAILED;
5182 DEBUG(D_any) debug_printf("%s\n", expand_string_message);
5183 if (!(arg = expand_string_internal(s+1, TRUE, &s, FALSE, TRUE, &resetok)))
5184 goto EXPAND_FAILED;
5185 yield = string_cat(yield, arg);
5186 if (*s++ != '}')
5187 {
5188 expand_string_message = US"missing '}' closing failstring for readsocket";
5189 goto EXPAND_FAILED_CURLY;
5190 }
5191 while (isspace(*s)) s++;
5192 goto READSOCK_DONE;
5193 }
5194
5195 /* Handle "run" to execute a program. */
5196
5197 case EITEM_RUN:
5198 {
5199 FILE *f;
5200 uschar *arg;
5201 const uschar **argv;
5202 pid_t pid;
5203 int fd_in, fd_out;
5204
5205 if ((expand_forbid & RDO_RUN) != 0)
5206 {
5207 expand_string_message = US"running a command is not permitted";
5208 goto EXPAND_FAILED;
5209 }
5210
5211 while (isspace(*s)) s++;
5212 if (*s != '{')
5213 {
5214 expand_string_message = US"missing '{' for command arg of run";
5215 goto EXPAND_FAILED_CURLY;
5216 }
5217 arg = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok);
5218 if (arg == NULL) goto EXPAND_FAILED;
5219 while (isspace(*s)) s++;
5220 if (*s++ != '}')
5221 {
5222 expand_string_message = US"missing '}' closing command arg of run";
5223 goto EXPAND_FAILED_CURLY;
5224 }
5225
5226 if (skipping) /* Just pretend it worked when we're skipping */
5227 {
5228 runrc = 0;
5229 lookup_value = NULL;
5230 }
5231 else
5232 {
5233 if (!transport_set_up_command(&argv, /* anchor for arg list */
5234 arg, /* raw command */
5235 FALSE, /* don't expand the arguments */
5236 0, /* not relevant when... */
5237 NULL, /* no transporting address */
5238 US"${run} expansion", /* for error messages */
5239 &expand_string_message)) /* where to put error message */
5240 goto EXPAND_FAILED;
5241
5242 /* Create the child process, making it a group leader. */
5243
5244 if ((pid = child_open(USS argv, NULL, 0077, &fd_in, &fd_out, TRUE)) < 0)
5245 {
5246 expand_string_message =
5247 string_sprintf("couldn't create child process: %s", strerror(errno));
5248 goto EXPAND_FAILED;
5249 }
5250
5251 /* Nothing is written to the standard input. */
5252
5253 (void)close(fd_in);
5254
5255 /* Read the pipe to get the command's output into $value (which is kept
5256 in lookup_value). Read during execution, so that if the output exceeds
5257 the OS pipe buffer limit, we don't block forever. Remember to not release
5258 memory just allocated for $value. */
5259
5260 resetok = FALSE;
5261 f = fdopen(fd_out, "rb");
5262 sigalrm_seen = FALSE;
5263 ALARM(60);
5264 lookup_value = string_from_gstring(cat_file(f, NULL, NULL));
5265 ALARM_CLR(0);
5266 (void)fclose(f);
5267
5268 /* Wait for the process to finish, applying the timeout, and inspect its
5269 return code for serious disasters. Simple non-zero returns are passed on.
5270 */
5271
5272 if (sigalrm_seen || (runrc = child_close(pid, 30)) < 0)
5273 {
5274 if (sigalrm_seen || runrc == -256)
5275 {
5276 expand_string_message = string_sprintf("command timed out");
5277 killpg(pid, SIGKILL); /* Kill the whole process group */
5278 }
5279
5280 else if (runrc == -257)
5281 expand_string_message = string_sprintf("wait() failed: %s",
5282 strerror(errno));
5283
5284 else
5285 expand_string_message = string_sprintf("command killed by signal %d",
5286 -runrc);
5287
5288 goto EXPAND_FAILED;
5289 }
5290 }
5291
5292 /* Process the yes/no strings; $value may be useful in both cases */
5293
5294 switch(process_yesno(
5295 skipping, /* were previously skipping */
5296 runrc == 0, /* success/failure indicator */
5297 lookup_value, /* value to reset for string2 */
5298 &s, /* input pointer */
5299 &yield, /* output pointer */
5300 US"run", /* condition type */
5301 &resetok))
5302 {
5303 case 1: goto EXPAND_FAILED; /* when all is well, the */
5304 case 2: goto EXPAND_FAILED_CURLY; /* returned value is 0 */
5305 }
5306
5307 continue;
5308 }
5309
5310 /* Handle character translation for "tr" */
5311
5312 case EITEM_TR:
5313 {
5314 int oldptr = yield->ptr;
5315 int o2m;
5316 uschar *sub[3];
5317
5318 switch(read_subs(sub, 3, 3, &s, skipping, TRUE, US"tr", &resetok))
5319 {
5320 case 1: goto EXPAND_FAILED_CURLY;
5321 case 2:
5322 case 3: goto EXPAND_FAILED;
5323 }
5324
5325 yield = string_cat(yield, sub[0]);
5326 o2m = Ustrlen(sub[2]) - 1;
5327
5328 if (o2m >= 0) for (; oldptr < yield->ptr; oldptr++)
5329 {
5330 uschar *m = Ustrrchr(sub[1], yield->s[oldptr]);
5331 if (m != NULL)
5332 {
5333 int o = m - sub[1];
5334 yield->s[oldptr] = sub[2][(o < o2m)? o : o2m];
5335 }
5336 }
5337
5338 continue;
5339 }
5340
5341 /* Handle "hash", "length", "nhash", and "substr" when they are given with
5342 expanded arguments. */
5343
5344 case EITEM_HASH:
5345 case EITEM_LENGTH:
5346 case EITEM_NHASH:
5347 case EITEM_SUBSTR:
5348 {
5349 int len;
5350 uschar *ret;
5351 int val[2] = { 0, -1 };
5352 uschar *sub[3];
5353
5354 /* "length" takes only 2 arguments whereas the others take 2 or 3.
5355 Ensure that sub[2] is set in the ${length } case. */
5356
5357 sub[2] = NULL;
5358 switch(read_subs(sub, (item_type == EITEM_LENGTH)? 2:3, 2, &s, skipping,
5359 TRUE, name, &resetok))
5360 {
5361 case 1: goto EXPAND_FAILED_CURLY;
5362 case 2:
5363 case 3: goto EXPAND_FAILED;
5364 }
5365
5366 /* Juggle the arguments if there are only two of them: always move the
5367 string to the last position and make ${length{n}{str}} equivalent to
5368 ${substr{0}{n}{str}}. See the defaults for val[] above. */
5369
5370 if (sub[2] == NULL)
5371 {
5372 sub[2] = sub[1];
5373 sub[1] = NULL;
5374 if (item_type == EITEM_LENGTH)
5375 {
5376 sub[1] = sub[0];
5377 sub[0] = NULL;
5378 }
5379 }
5380
5381 for (int i = 0; i < 2; i++) if (sub[i])
5382 {
5383 val[i] = (int)Ustrtol(sub[i], &ret, 10);
5384 if (*ret != 0 || (i != 0 && val[i] < 0))
5385 {
5386 expand_string_message = string_sprintf("\"%s\" is not a%s number "
5387 "(in \"%s\" expansion)", sub[i], (i != 0)? " positive" : "", name);
5388 goto EXPAND_FAILED;
5389 }
5390 }
5391
5392 ret =
5393 (item_type == EITEM_HASH)?
5394 compute_hash(sub[2], val[0], val[1], &len) :
5395 (item_type == EITEM_NHASH)?
5396 compute_nhash(sub[2], val[0], val[1], &len) :
5397 extract_substr(sub[2], val[0], val[1], &len);
5398
5399 if (ret == NULL) goto EXPAND_FAILED;
5400 yield = string_catn(yield, ret, len);
5401 continue;
5402 }
5403
5404 /* Handle HMAC computation: ${hmac{<algorithm>}{<secret>}{<text>}}
5405 This code originally contributed by Steve Haslam. It currently supports
5406 the use of MD5 and SHA-1 hashes.
5407
5408 We need some workspace that is large enough to handle all the supported
5409 hash types. Use macros to set the sizes rather than be too elaborate. */
5410
5411 #define MAX_HASHLEN 20
5412 #define MAX_HASHBLOCKLEN 64
5413
5414 case EITEM_HMAC:
5415 {
5416 uschar *sub[3];
5417 md5 md5_base;
5418 hctx sha1_ctx;
5419 void *use_base;
5420 int type;
5421 int hashlen; /* Number of octets for the hash algorithm's output */
5422 int hashblocklen; /* Number of octets the hash algorithm processes */
5423 uschar *keyptr, *p;
5424 unsigned int keylen;
5425
5426 uschar keyhash[MAX_HASHLEN];
5427 uschar innerhash[MAX_HASHLEN];
5428 uschar finalhash[MAX_HASHLEN];
5429 uschar finalhash_hex[2*MAX_HASHLEN];
5430 uschar innerkey[MAX_HASHBLOCKLEN];
5431 uschar outerkey[MAX_HASHBLOCKLEN];
5432
5433 switch (read_subs(sub, 3, 3, &s, skipping, TRUE, name, &resetok))
5434 {
5435 case 1: goto EXPAND_FAILED_CURLY;
5436 case 2:
5437 case 3: goto EXPAND_FAILED;
5438 }
5439
5440 if (!skipping)
5441 {
5442 if (Ustrcmp(sub[0], "md5") == 0)
5443 {
5444 type = HMAC_MD5;
5445 use_base = &md5_base;
5446 hashlen = 16;
5447 hashblocklen = 64;
5448 }
5449 else if (Ustrcmp(sub[0], "sha1") == 0)
5450 {
5451 type = HMAC_SHA1;
5452 use_base = &sha1_ctx;
5453 hashlen = 20;
5454 hashblocklen = 64;
5455 }
5456 else
5457 {
5458 expand_string_message =
5459 string_sprintf("hmac algorithm \"%s\" is not recognised", sub[0]);
5460 goto EXPAND_FAILED;
5461 }
5462
5463 keyptr = sub[1];
5464 keylen = Ustrlen(keyptr);
5465
5466 /* If the key is longer than the hash block length, then hash the key
5467 first */
5468
5469 if (keylen > hashblocklen)
5470 {
5471 chash_start(type, use_base);
5472 chash_end(type, use_base, keyptr, keylen, keyhash);
5473 keyptr = keyhash;
5474 keylen = hashlen;
5475 }
5476
5477 /* Now make the inner and outer key values */
5478
5479 memset(innerkey, 0x36, hashblocklen);
5480 memset(outerkey, 0x5c, hashblocklen);
5481
5482 for (int i = 0; i < keylen; i++)
5483 {
5484 innerkey[i] ^= keyptr[i];
5485 outerkey[i] ^= keyptr[i];
5486 }
5487
5488 /* Now do the hashes */
5489
5490 chash_start(type, use_base);
5491 chash_mid(type, use_base, innerkey);
5492 chash_end(type, use_base, sub[2], Ustrlen(sub[2]), innerhash);
5493
5494 chash_start(type, use_base);
5495 chash_mid(type, use_base, outerkey);
5496 chash_end(type, use_base, innerhash, hashlen, finalhash);
5497
5498 /* Encode the final hash as a hex string */
5499
5500 p = finalhash_hex;
5501 for (int i = 0; i < hashlen; i++)
5502 {
5503 *p++ = hex_digits[(finalhash[i] & 0xf0) >> 4];
5504 *p++ = hex_digits[finalhash[i] & 0x0f];
5505 }
5506
5507 DEBUG(D_any) debug_printf("HMAC[%s](%.*s,%s)=%.*s\n",
5508 sub[0], (int)keylen, keyptr, sub[2], hashlen*2, finalhash_hex);
5509
5510 yield = string_catn(yield, finalhash_hex, hashlen*2);
5511 }
5512 continue;
5513 }
5514
5515 /* Handle global substitution for "sg" - like Perl's s/xxx/yyy/g operator.
5516 We have to save the numerical variables and restore them afterwards. */
5517
5518 case EITEM_SG:
5519 {
5520 const pcre *re;
5521 int moffset, moffsetextra, slen;
5522 int roffset;
5523 int emptyopt;
5524 const uschar *rerror;
5525 uschar *subject;
5526 uschar *sub[3];
5527 int save_expand_nmax =
5528 save_expand_strings(save_expand_nstring, save_expand_nlength);
5529
5530 switch(read_subs(sub, 3, 3, &s, skipping, TRUE, US"sg", &resetok))
5531 {
5532 case 1: goto EXPAND_FAILED_CURLY;
5533 case 2:
5534 case 3: goto EXPAND_FAILED;
5535 }
5536
5537 /* Compile the regular expression */
5538
5539 re = pcre_compile(CS sub[1], PCRE_COPT, (const char **)&rerror, &roffset,
5540 NULL);
5541
5542 if (re == NULL)
5543 {
5544 expand_string_message = string_sprintf("regular expression error in "
5545 "\"%s\": %s at offset %d", sub[1], rerror, roffset);
5546 goto EXPAND_FAILED;
5547 }
5548
5549 /* Now run a loop to do the substitutions as often as necessary. It ends
5550 when there are no more matches. Take care over matches of the null string;
5551 do the same thing as Perl does. */
5552
5553 subject = sub[0];
5554 slen = Ustrlen(sub[0]);
5555 moffset = moffsetextra = 0;
5556 emptyopt = 0;
5557
5558 for (;;)
5559 {
5560 int ovector[3*(EXPAND_MAXN+1)];
5561 int n = pcre_exec(re, NULL, CS subject, slen, moffset + moffsetextra,
5562 PCRE_EOPT | emptyopt, ovector, nelem(ovector));
5563 uschar *insert;
5564
5565 /* No match - if we previously set PCRE_NOTEMPTY after a null match, this
5566 is not necessarily the end. We want to repeat the match from one
5567 character further along, but leaving the basic offset the same (for
5568 copying below). We can't be at the end of the string - that was checked
5569 before setting PCRE_NOTEMPTY. If PCRE_NOTEMPTY is not set, we are
5570 finished; copy the remaining string and end the loop. */
5571
5572 if (n < 0)
5573 {
5574 if (emptyopt != 0)
5575 {
5576 moffsetextra = 1;
5577 emptyopt = 0;
5578 continue;
5579 }
5580 yield = string_catn(yield, subject+moffset, slen-moffset);
5581 break;
5582 }
5583
5584 /* Match - set up for expanding the replacement. */
5585
5586 if (n == 0) n = EXPAND_MAXN + 1;
5587 expand_nmax = 0;
5588 for (int nn = 0; nn < n*2; nn += 2)
5589 {
5590 expand_nstring[expand_nmax] = subject + ovector[nn];
5591 expand_nlength[expand_nmax++] = ovector[nn+1] - ovector[nn];
5592 }
5593 expand_nmax--;
5594
5595 /* Copy the characters before the match, plus the expanded insertion. */
5596
5597 yield = string_catn(yield, subject + moffset, ovector[0] - moffset);
5598 insert = expand_string(sub[2]);
5599 if (insert == NULL) goto EXPAND_FAILED;
5600 yield = string_cat(yield, insert);
5601
5602 moffset = ovector[1];
5603 moffsetextra = 0;
5604 emptyopt = 0;
5605
5606 /* If we have matched an empty string, first check to see if we are at
5607 the end of the subject. If so, the loop is over. Otherwise, mimic
5608 what Perl's /g options does. This turns out to be rather cunning. First
5609 we set PCRE_NOTEMPTY and PCRE_ANCHORED and try the match a non-empty
5610 string at the same point. If this fails (picked up above) we advance to
5611 the next character. */
5612
5613 if (ovector[0] == ovector[1])
5614 {
5615 if (ovector[0] == slen) break;
5616 emptyopt = PCRE_NOTEMPTY | PCRE_ANCHORED;
5617 }
5618 }
5619
5620 /* All done - restore numerical variables. */
5621
5622 restore_expand_strings(save_expand_nmax, save_expand_nstring,
5623 save_expand_nlength);
5624 continue;
5625 }
5626
5627 /* Handle keyed and numbered substring extraction. If the first argument
5628 consists entirely of digits, then a numerical extraction is assumed. */
5629
5630 case EITEM_EXTRACT:
5631 {
5632 int field_number = 1;
5633 BOOL field_number_set = FALSE;
5634 uschar *save_lookup_value = lookup_value;
5635 uschar *sub[3];
5636 int save_expand_nmax =
5637 save_expand_strings(save_expand_nstring, save_expand_nlength);
5638 enum {extract_basic, extract_json} fmt = extract_basic;
5639
5640 while (isspace(*s)) s++;
5641
5642 /* Check for a format-variant specifier */
5643
5644 if (*s != '{') /*}*/
5645 if (Ustrncmp(s, "json", 4) == 0)
5646 {fmt = extract_json; s += 4;}
5647
5648 /* While skipping we cannot rely on the data for expansions being
5649 available (eg. $item) hence cannot decide on numeric vs. keyed.
5650 Read a maximum of 5 arguments (including the yes/no) */
5651
5652 if (skipping)
5653 {
5654 for (int j = 5; j > 0 && *s == '{'; j--) /*'}'*/
5655 {
5656 if (!expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok))
5657 goto EXPAND_FAILED; /*'{'*/
5658 if (*s++ != '}')
5659 {
5660 expand_string_message = US"missing '{' for arg of extract";
5661 goto EXPAND_FAILED_CURLY;
5662 }
5663 while (isspace(*s)) s++;
5664 }
5665 if ( Ustrncmp(s, "fail", 4) == 0 /*'{'*/
5666 && (s[4] == '}' || s[4] == ' ' || s[4] == '\t' || !s[4])
5667 )
5668 {
5669 s += 4;
5670 while (isspace(*s)) s++;
5671 } /*'{'*/
5672 if (*s != '}')
5673 {
5674 expand_string_message = US"missing '}' closing extract";
5675 goto EXPAND_FAILED_CURLY;
5676 }
5677 }
5678
5679 else for (int i = 0, j = 2; i < j; i++) /* Read the proper number of arguments */
5680 {
5681 while (isspace(*s)) s++;
5682 if (*s == '{') /*'}'*/
5683 {
5684 sub[i] = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok);
5685 if (sub[i] == NULL) goto EXPAND_FAILED; /*'{'*/
5686 if (*s++ != '}')
5687 {
5688 expand_string_message = string_sprintf(
5689 "missing '}' closing arg %d of extract", i+1);
5690 goto EXPAND_FAILED_CURLY;
5691 }
5692
5693 /* After removal of leading and trailing white space, the first
5694 argument must not be empty; if it consists entirely of digits
5695 (optionally preceded by a minus sign), this is a numerical
5696 extraction, and we expect 3 arguments (normal) or 2 (json). */
5697
5698 if (i == 0)
5699 {
5700 int len;
5701 int x = 0;
5702 uschar *p = sub[0];
5703
5704 while (isspace(*p)) p++;
5705 sub[0] = p;
5706
5707 len = Ustrlen(p);
5708 while (len > 0 && isspace(p[len-1])) len--;
5709 p[len] = 0;
5710
5711 if (*p == 0)
5712 {
5713 expand_string_message = US"first argument of \"extract\" must "
5714 "not be empty";
5715 goto EXPAND_FAILED;
5716 }
5717
5718 if (*p == '-')
5719 {
5720 field_number = -1;
5721 p++;
5722 }
5723 while (*p != 0 && isdigit(*p)) x = x * 10 + *p++ - '0';
5724 if (*p == 0)
5725 {
5726 field_number *= x;
5727 if (fmt != extract_json) j = 3; /* Need 3 args */
5728 field_number_set = TRUE;
5729 }
5730 }
5731 }
5732 else
5733 {
5734 expand_string_message = string_sprintf(
5735 "missing '{' for arg %d of extract", i+1);
5736 goto EXPAND_FAILED_CURLY;
5737 }
5738 }
5739
5740 /* Extract either the numbered or the keyed substring into $value. If
5741 skipping, just pretend the extraction failed. */
5742
5743 if (skipping)
5744 lookup_value = NULL;
5745 else switch (fmt)
5746 {
5747 case extract_basic:
5748 lookup_value = field_number_set
5749 ? expand_gettokened(field_number, sub[1], sub[2])
5750 : expand_getkeyed(sub[0], sub[1]);
5751 break;
5752
5753 case extract_json:
5754 {
5755 uschar * s, * item;
5756 const uschar * list;
5757
5758 /* Array: Bracket-enclosed and comma-separated.
5759 Object: Brace-enclosed, comma-sep list of name:value pairs */
5760
5761 if (!(s = dewrap(sub[1], field_number_set ? US"[]" : US"{}")))
5762 {
5763 expand_string_message =
5764 string_sprintf("%s wrapping %s for extract json",
5765 expand_string_message,
5766 field_number_set ? "array" : "object");
5767 goto EXPAND_FAILED_CURLY;
5768 }
5769
5770 list = s;
5771 if (field_number_set)
5772 {
5773 if (field_number <= 0)
5774 {
5775 expand_string_message = US"first argument of \"extract\" must "
5776 "be greater than zero";
5777 goto EXPAND_FAILED;
5778 }
5779 while (field_number > 0 && (item = json_nextinlist(&list)))
5780 field_number--;
5781 if ((lookup_value = s = item))
5782 {
5783 while (*s) s++;
5784 while (--s >= lookup_value && isspace(*s)) *s = '\0';
5785 }
5786 }
5787 else
5788 {
5789 lookup_value = NULL;
5790 while ((item = json_nextinlist(&list)))
5791 {
5792 /* Item is: string name-sep value. string is quoted.
5793 Dequote the string and compare with the search key. */
5794
5795 if (!(item = dewrap(item, US"\"\"")))
5796 {
5797 expand_string_message =
5798 string_sprintf("%s wrapping string key for extract json",
5799 expand_string_message);
5800 goto EXPAND_FAILED_CURLY;
5801 }
5802 if (Ustrcmp(item, sub[0]) == 0) /*XXX should be a UTF8-compare */
5803 {
5804 s = item + Ustrlen(item) + 1;
5805 while (isspace(*s)) s++;
5806 if (*s != ':')
5807 {
5808 expand_string_message = string_sprintf(
5809 "missing object value-separator for extract json");
5810 goto EXPAND_FAILED_CURLY;
5811 }
5812 s++;
5813 while (isspace(*s)) s++;
5814 lookup_value = s;
5815 break;
5816 }
5817 }
5818 }
5819 }
5820 }
5821
5822 /* If no string follows, $value gets substituted; otherwise there can
5823 be yes/no strings, as for lookup or if. */
5824
5825 switch(process_yesno(
5826 skipping, /* were previously skipping */
5827 lookup_value != NULL, /* success/failure indicator */
5828 save_lookup_value, /* value to reset for string2 */
5829 &s, /* input pointer */
5830 &yield, /* output pointer */
5831 US"extract", /* condition type */
5832 &resetok))
5833 {
5834 case 1: goto EXPAND_FAILED; /* when all is well, the */
5835 case 2: goto EXPAND_FAILED_CURLY; /* returned value is 0 */
5836 }
5837
5838 /* All done - restore numerical variables. */
5839
5840 restore_expand_strings(save_expand_nmax, save_expand_nstring,
5841 save_expand_nlength);
5842
5843 continue;
5844 }
5845
5846 /* return the Nth item from a list */
5847
5848 case EITEM_LISTEXTRACT:
5849 {
5850 int field_number = 1;
5851 uschar *save_lookup_value = lookup_value;
5852 uschar *sub[2];
5853 int save_expand_nmax =
5854 save_expand_strings(save_expand_nstring, save_expand_nlength);
5855
5856 /* Read the field & list arguments */
5857
5858 for (int i = 0; i < 2; i++)
5859 {
5860 while (isspace(*s)) s++;
5861 if (*s != '{') /*'}'*/
5862 {
5863 expand_string_message = string_sprintf(
5864 "missing '{' for arg %d of listextract", i+1);
5865 goto EXPAND_FAILED_CURLY;
5866 }
5867
5868 sub[i] = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok);
5869 if (!sub[i]) goto EXPAND_FAILED; /*{*/
5870 if (*s++ != '}')
5871 {
5872 expand_string_message = string_sprintf(
5873 "missing '}' closing arg %d of listextract", i+1);
5874 goto EXPAND_FAILED_CURLY;
5875 }
5876
5877 /* After removal of leading and trailing white space, the first
5878 argument must be numeric and nonempty. */
5879
5880 if (i == 0)
5881 {
5882 int len;
5883 int x = 0;
5884 uschar *p = sub[0];
5885
5886 while (isspace(*p)) p++;
5887 sub[0] = p;
5888
5889 len = Ustrlen(p);
5890 while (len > 0 && isspace(p[len-1])) len--;
5891 p[len] = 0;
5892
5893 if (!*p && !skipping)
5894 {
5895 expand_string_message = US"first argument of \"listextract\" must "
5896 "not be empty";
5897 goto EXPAND_FAILED;
5898 }
5899
5900 if (*p == '-')
5901 {
5902 field_number = -1;
5903 p++;
5904 }
5905 while (*p && isdigit(*p)) x = x * 10 + *p++ - '0';
5906 if (*p)
5907 {
5908 expand_string_message = US"first argument of \"listextract\" must "
5909 "be numeric";
5910 goto EXPAND_FAILED;
5911 }
5912 field_number *= x;
5913 }
5914 }
5915
5916 /* Extract the numbered element into $value. If
5917 skipping, just pretend the extraction failed. */
5918
5919 lookup_value = skipping ? NULL : expand_getlistele(field_number, sub[1]);
5920
5921 /* If no string follows, $value gets substituted; otherwise there can
5922 be yes/no strings, as for lookup or if. */
5923
5924 switch(process_yesno(
5925 skipping, /* were previously skipping */
5926 lookup_value != NULL, /* success/failure indicator */
5927 save_lookup_value, /* value to reset for string2 */
5928 &s, /* input pointer */
5929 &yield, /* output pointer */
5930 US"listextract", /* condition type */
5931 &resetok))
5932 {
5933 case 1: goto EXPAND_FAILED; /* when all is well, the */
5934 case 2: goto EXPAND_FAILED_CURLY; /* returned value is 0 */
5935 }
5936
5937 /* All done - restore numerical variables. */
5938
5939 restore_expand_strings(save_expand_nmax, save_expand_nstring,
5940 save_expand_nlength);
5941
5942 continue;
5943 }
5944
5945 #ifdef SUPPORT_TLS
5946 case EITEM_CERTEXTRACT:
5947 {
5948 uschar *save_lookup_value = lookup_value;
5949 uschar *sub[2];
5950 int save_expand_nmax =
5951 save_expand_strings(save_expand_nstring, save_expand_nlength);
5952
5953 /* Read the field argument */
5954 while (isspace(*s)) s++;
5955 if (*s != '{') /*}*/
5956 {
5957 expand_string_message = US"missing '{' for field arg of certextract";
5958 goto EXPAND_FAILED_CURLY;
5959 }
5960 sub[0] = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok);
5961 if (!sub[0]) goto EXPAND_FAILED; /*{*/
5962 if (*s++ != '}')
5963 {
5964 expand_string_message = US"missing '}' closing field arg of certextract";
5965 goto EXPAND_FAILED_CURLY;
5966 }
5967 /* strip spaces fore & aft */
5968 {
5969 int len;
5970 uschar *p = sub[0];
5971
5972 while (isspace(*p)) p++;
5973 sub[0] = p;
5974
5975 len = Ustrlen(p);
5976 while (len > 0 && isspace(p[len-1])) len--;
5977 p[len] = 0;
5978 }
5979
5980 /* inspect the cert argument */
5981 while (isspace(*s)) s++;
5982 if (*s != '{') /*}*/
5983 {
5984 expand_string_message = US"missing '{' for cert variable arg of certextract";
5985 goto EXPAND_FAILED_CURLY;
5986 }
5987 if (*++s != '$')
5988 {
5989 expand_string_message = US"second argument of \"certextract\" must "
5990 "be a certificate variable";
5991 goto EXPAND_FAILED;
5992 }
5993 sub[1] = expand_string_internal(s+1, TRUE, &s, skipping, FALSE, &resetok);
5994 if (!sub[1]) goto EXPAND_FAILED; /*{*/
5995 if (*s++ != '}')
5996 {
5997 expand_string_message = US"missing '}' closing cert variable arg of certextract";
5998 goto EXPAND_FAILED_CURLY;
5999 }
6000
6001 if (skipping)
6002 lookup_value = NULL;
6003 else
6004 {
6005 lookup_value = expand_getcertele(sub[0], sub[1]);
6006 if (*expand_string_message) goto EXPAND_FAILED;
6007 }
6008 switch(process_yesno(
6009 skipping, /* were previously skipping */
6010 lookup_value != NULL, /* success/failure indicator */
6011 save_lookup_value, /* value to reset for string2 */
6012 &s, /* input pointer */
6013 &yield, /* output pointer */
6014 US"certextract", /* condition type */
6015 &resetok))
6016 {
6017 case 1: goto EXPAND_FAILED; /* when all is well, the */
6018 case 2: goto EXPAND_FAILED_CURLY; /* returned value is 0 */
6019 }
6020
6021 restore_expand_strings(save_expand_nmax, save_expand_nstring,
6022 save_expand_nlength);
6023 continue;
6024 }
6025 #endif /*SUPPORT_TLS*/
6026
6027 /* Handle list operations */
6028
6029 case EITEM_FILTER:
6030 case EITEM_MAP:
6031 case EITEM_REDUCE:
6032 {
6033 int sep = 0;
6034 int save_ptr = yield->ptr;
6035 uschar outsep[2] = { '\0', '\0' };
6036 const uschar *list, *expr, *temp;
6037 uschar *save_iterate_item = iterate_item;
6038 uschar *save_lookup_value = lookup_value;
6039
6040 while (isspace(*s)) s++;
6041 if (*s++ != '{')
6042 {
6043 expand_string_message =
6044 string_sprintf("missing '{' for first arg of %s", name);
6045 goto EXPAND_FAILED_CURLY;
6046 }
6047
6048 list = expand_string_internal(s, TRUE, &s, skipping, TRUE, &resetok);
6049 if (list == NULL) goto EXPAND_FAILED;
6050 if (*s++ != '}')
6051 {
6052 expand_string_message =
6053 string_sprintf("missing '}' closing first arg of %s", name);
6054 goto EXPAND_FAILED_CURLY;
6055 }
6056
6057 if (item_type == EITEM_REDUCE)
6058 {
6059 uschar * t;
6060 while (isspace(*s)) s++;
6061 if (*s++ != '{')
6062 {
6063 expand_string_message = US"missing '{' for second arg of reduce";
6064 goto EXPAND_FAILED_CURLY;
6065 }
6066 t = expand_string_internal(s, TRUE, &s, skipping, TRUE, &resetok);
6067 if (!t) goto EXPAND_FAILED;
6068 lookup_value = t;
6069 if (*s++ != '}')
6070 {
6071 expand_string_message = US"missing '}' closing second arg of reduce";
6072 goto EXPAND_FAILED_CURLY;
6073 }
6074 }
6075
6076 while (isspace(*s)) s++;
6077 if (*s++ != '{')
6078 {
6079 expand_string_message =
6080 string_sprintf("missing '{' for last arg of %s", name);
6081 goto EXPAND_FAILED_CURLY;
6082 }
6083
6084 expr = s;
6085
6086 /* For EITEM_FILTER, call eval_condition once, with result discarded (as
6087 if scanning a "false" part). This allows us to find the end of the
6088 condition, because if the list is empty, we won't actually evaluate the
6089 condition for real. For EITEM_MAP and EITEM_REDUCE, do the same, using
6090 the normal internal expansion function. */
6091
6092 if (item_type == EITEM_FILTER)
6093 {
6094 temp = eval_condition(expr, &resetok, NULL);
6095 if (temp != NULL) s = temp;
6096 }
6097 else
6098 temp = expand_string_internal(s, TRUE, &s, TRUE, TRUE, &resetok);
6099
6100 if (temp == NULL)
6101 {
6102 expand_string_message = string_sprintf("%s inside \"%s\" item",
6103 expand_string_message, name);
6104 goto EXPAND_FAILED;
6105 }
6106
6107 while (isspace(*s)) s++;
6108 if (*s++ != '}')
6109 { /*{*/
6110 expand_string_message = string_sprintf("missing } at end of condition "
6111 "or expression inside \"%s\"; could be an unquoted } in the content",
6112 name);
6113 goto EXPAND_FAILED;
6114 }
6115
6116 while (isspace(*s)) s++; /*{*/
6117 if (*s++ != '}')
6118 { /*{*/
6119 expand_string_message = string_sprintf("missing } at end of \"%s\"",
6120 name);
6121 goto EXPAND_FAILED;
6122 }
6123
6124 /* If we are skipping, we can now just move on to the next item. When
6125 processing for real, we perform the iteration. */
6126
6127 if (skipping) continue;
6128 while ((iterate_item = string_nextinlist(&list, &sep, NULL, 0)))
6129 {
6130 *outsep = (uschar)sep; /* Separator as a string */
6131
6132 DEBUG(D_expand) debug_printf_indent("%s: $item = '%s' $value = '%s'\n",
6133 name, iterate_item, lookup_value);
6134
6135 if (item_type == EITEM_FILTER)
6136 {
6137 BOOL condresult;
6138 if (eval_condition(expr, &resetok, &condresult) == NULL)
6139 {
6140 iterate_item = save_iterate_item;
6141 lookup_value = save_lookup_value;
6142 expand_string_message = string_sprintf("%s inside \"%s\" condition",
6143 expand_string_message, name);
6144 goto EXPAND_FAILED;
6145 }
6146 DEBUG(D_expand) debug_printf_indent("%s: condition is %s\n", name,
6147 condresult? "true":"false");
6148 if (condresult)
6149 temp = iterate_item; /* TRUE => include this item */
6150 else
6151 continue; /* FALSE => skip this item */
6152 }
6153
6154 /* EITEM_MAP and EITEM_REDUCE */
6155
6156 else
6157 {
6158 uschar * t = expand_string_internal(expr, TRUE, NULL, skipping, TRUE, &resetok);
6159 temp = t;
6160 if (temp == NULL)
6161 {
6162 iterate_item = save_iterate_item;
6163 expand_string_message = string_sprintf("%s inside \"%s\" item",
6164 expand_string_message, name);
6165 goto EXPAND_FAILED;
6166 }
6167 if (item_type == EITEM_REDUCE)
6168 {
6169 lookup_value = t; /* Update the value of $value */
6170 continue; /* and continue the iteration */
6171 }
6172 }
6173
6174 /* We reach here for FILTER if the condition is true, always for MAP,
6175 and never for REDUCE. The value in "temp" is to be added to the output
6176 list that is being created, ensuring that any occurrences of the
6177 separator character are doubled. Unless we are dealing with the first
6178 item of the output list, add in a space if the new item begins with the
6179 separator character, or is an empty string. */
6180
6181 if (yield->ptr != save_ptr && (temp[0] == *outsep || temp[0] == 0))
6182 yield = string_catn(yield, US" ", 1);
6183
6184 /* Add the string in "temp" to the output list that we are building,
6185 This is done in chunks by searching for the separator character. */
6186
6187 for (;;)
6188 {
6189 size_t seglen = Ustrcspn(temp, outsep);
6190
6191 yield = string_catn(yield, temp, seglen + 1);
6192
6193 /* If we got to the end of the string we output one character
6194 too many; backup and end the loop. Otherwise arrange to double the
6195 separator. */
6196
6197 if (temp[seglen] == '\0') { yield->ptr--; break; }
6198 yield = string_catn(yield, outsep, 1);
6199 temp += seglen + 1;
6200 }
6201
6202 /* Output a separator after the string: we will remove the redundant
6203 final one at the end. */
6204
6205 yield = string_catn(yield, outsep, 1);
6206 } /* End of iteration over the list loop */
6207
6208 /* REDUCE has generated no output above: output the final value of
6209 $value. */
6210
6211 if (item_type == EITEM_REDUCE)
6212 {
6213 yield = string_cat(yield, lookup_value);
6214 lookup_value = save_lookup_value; /* Restore $value */
6215 }
6216
6217 /* FILTER and MAP generate lists: if they have generated anything, remove
6218 the redundant final separator. Even though an empty item at the end of a
6219 list does not count, this is tidier. */
6220
6221 else if (yield->ptr != save_ptr) yield->ptr--;
6222
6223 /* Restore preserved $item */
6224
6225 iterate_item = save_iterate_item;
6226 continue;
6227 }
6228
6229 case EITEM_SORT:
6230 {
6231 int sep = 0;
6232 const uschar *srclist, *cmp, *xtract;
6233 uschar *srcitem;
6234 const uschar *dstlist = NULL, *dstkeylist = NULL;
6235 uschar * tmp;
6236 uschar *save_iterate_item = iterate_item;
6237
6238 while (isspace(*s)) s++;
6239 if (*s++ != '{')
6240 {
6241 expand_string_message = US"missing '{' for list arg of sort";
6242 goto EXPAND_FAILED_CURLY;
6243 }
6244
6245 srclist = expand_string_internal(s, TRUE, &s, skipping, TRUE, &resetok);
6246 if (!srclist) goto EXPAND_FAILED;
6247 if (*s++ != '}')
6248 {
6249 expand_string_message = US"missing '}' closing list arg of sort";
6250 goto EXPAND_FAILED_CURLY;
6251 }
6252
6253 while (isspace(*s)) s++;
6254 if (*s++ != '{')
6255 {
6256 expand_string_message = US"missing '{' for comparator arg of sort";
6257 goto EXPAND_FAILED_CURLY;
6258 }
6259
6260 cmp = expand_string_internal(s, TRUE, &s, skipping, FALSE, &resetok);
6261 if (!cmp) goto EXPAND_FAILED;
6262 if (*s++ != '}')
6263 {
6264 expand_string_message = US"missing '}' closing comparator arg of sort";
6265 goto EXPAND_FAILED_CURLY;
6266 }
6267
6268 while (isspace(*s)) s++;
6269 if (*s++ != '{')
6270 {
6271 expand_string_message = US"missing '{' for extractor arg of sort";
6272 goto EXPAND_FAILED_CURLY;
6273 }
6274
6275 xtract = s;
6276 tmp = expand_string_internal(s, TRUE, &s, TRUE, TRUE, &resetok);
6277 if (!tmp) goto EXPAND_FAILED;
6278 xtract = string_copyn(xtract, s - xtract);
6279
6280 if (*s++ != '}')
6281 {
6282 expand_string_message = US"missing '}' closing extractor arg of sort";
6283 goto EXPAND_FAILED_CURLY;
6284 }
6285 /*{*/
6286 if (*s++ != '}')
6287 { /*{*/
6288 expand_string_message = US"missing } at end of \"sort\"";
6289 goto EXPAND_FAILED;
6290 }
6291
6292 if (skipping) continue;
6293
6294 while ((srcitem = string_nextinlist(&srclist, &sep, NULL, 0)))
6295 {
6296 uschar * dstitem;
6297 gstring * newlist = NULL;
6298 gstring * newkeylist = NULL;
6299 uschar * srcfield;
6300
6301 DEBUG(D_expand) debug_printf_indent("%s: $item = \"%s\"\n", name, srcitem);
6302
6303 /* extract field for comparisons */
6304 iterate_item = srcitem;
6305 if ( !(srcfield = expand_string_internal(xtract, FALSE, NULL, FALSE,
6306 TRUE, &resetok))
6307 || !*srcfield)
6308 {
6309 expand_string_message = string_sprintf(
6310 "field-extract in sort: \"%s\"", xtract);
6311 goto EXPAND_FAILED;
6312 }
6313
6314 /* Insertion sort */
6315
6316 /* copy output list until new-item < list-item */
6317 while ((dstitem = string_nextinlist(&dstlist, &sep, NULL, 0)))
6318 {
6319 uschar * dstfield;
6320 uschar * expr;
6321 BOOL before;
6322
6323 /* field for comparison */
6324 if (!(dstfield = string_nextinlist(&dstkeylist, &sep, NULL, 0)))
6325 goto sort_mismatch;
6326
6327 /* build and run condition string */
6328 expr = string_sprintf("%s{%s}{%s}", cmp, srcfield, dstfield);
6329
6330 DEBUG(D_expand) debug_printf_indent("%s: cond = \"%s\"\n", name, expr);
6331 if (!eval_condition(expr, &resetok, &before))
6332 {
6333 expand_string_message = string_sprintf("comparison in sort: %s",
6334 expr);
6335 goto EXPAND_FAILED;
6336 }
6337
6338 if (before)
6339 {
6340 /* New-item sorts before this dst-item. Append new-item,
6341 then dst-item, then remainder of dst list. */
6342
6343 newlist = string_append_listele(newlist, sep, srcitem);
6344 newkeylist = string_append_listele(newkeylist, sep, srcfield);
6345 srcitem = NULL;
6346
6347 newlist = string_append_listele(newlist, sep, dstitem);
6348 newkeylist = string_append_listele(newkeylist, sep, dstfield);
6349
6350 while ((dstitem = string_nextinlist(&dstlist, &sep, NULL, 0)))
6351 {
6352 if (!(dstfield = string_nextinlist(&dstkeylist, &sep, NULL, 0)))
6353 goto sort_mismatch;
6354 newlist = string_append_listele(newlist, sep, dstitem);
6355 newkeylist = string_append_listele(newkeylist, sep, dstfield);
6356 }
6357
6358 break;
6359 }
6360
6361 newlist = string_append_listele(newlist, sep, dstitem);
6362 newkeylist = string_append_listele(newkeylist, sep, dstfield);
6363 }
6364
6365 /* If we ran out of dstlist without consuming srcitem, append it */
6366 if (srcitem)
6367 {
6368 newlist = string_append_listele(newlist, sep, srcitem);
6369 newkeylist = string_append_listele(newkeylist, sep, srcfield);
6370 }
6371
6372 dstlist = newlist->s;
6373 dstkeylist = newkeylist->s;
6374
6375 DEBUG(D_expand) debug_printf_indent("%s: dstlist = \"%s\"\n", name, dstlist);
6376 DEBUG(D_expand) debug_printf_indent("%s: dstkeylist = \"%s\"\n", name, dstkeylist);
6377 }
6378
6379 if (dstlist)
6380 yield = string_cat(yield, dstlist);
6381
6382 /* Restore preserved $item */
6383 iterate_item = save_iterate_item;
6384 continue;
6385
6386 sort_mismatch:
6387 expand_string_message = US"Internal error in sort (list mismatch)";
6388 goto EXPAND_FAILED;
6389 }
6390
6391
6392 /* If ${dlfunc } support is configured, handle calling dynamically-loaded
6393 functions, unless locked out at this time. Syntax is ${dlfunc{file}{func}}
6394 or ${dlfunc{file}{func}{arg}} or ${dlfunc{file}{func}{arg1}{arg2}} or up to
6395 a maximum of EXPAND_DLFUNC_MAX_ARGS arguments (defined below). */
6396
6397 #define EXPAND_DLFUNC_MAX_ARGS 8
6398
6399 case EITEM_DLFUNC:
6400 #ifndef EXPAND_DLFUNC
6401 expand_string_message = US"\"${dlfunc\" encountered, but this facility " /*}*/
6402 "is not included in this binary";
6403 goto EXPAND_FAILED;
6404
6405 #else /* EXPAND_DLFUNC */
6406 {
6407 tree_node *t;
6408 exim_dlfunc_t *func;
6409 uschar *result;
6410 int status, argc;
6411 uschar *argv[EXPAND_DLFUNC_MAX_ARGS + 3];
6412
6413 if ((expand_forbid & RDO_DLFUNC) != 0)
6414 {
6415 expand_string_message =
6416 US"dynamically-loaded functions are not permitted";
6417 goto EXPAND_FAILED;
6418 }
6419
6420 switch(read_subs(argv, EXPAND_DLFUNC_MAX_ARGS + 2, 2, &s, skipping,
6421 TRUE, US"dlfunc", &resetok))
6422 {
6423 case 1: goto EXPAND_FAILED_CURLY;
6424 case 2:
6425 case 3: goto EXPAND_FAILED;
6426 }
6427
6428 /* If skipping, we don't actually do anything */
6429
6430 if (skipping) continue;
6431
6432 /* Look up the dynamically loaded object handle in the tree. If it isn't
6433 found, dlopen() the file and put the handle in the tree for next time. */
6434
6435 if (!(t = tree_search(dlobj_anchor, argv[0])))
6436 {
6437 void *handle = dlopen(CS argv[0], RTLD_LAZY);
6438 if (handle == NULL)
6439 {
6440 expand_string_message = string_sprintf("dlopen \"%s\" failed: %s",
6441 argv[0], dlerror());
6442 log_write(0, LOG_MAIN|LOG_PANIC, "%s", expand_string_message);
6443 goto EXPAND_FAILED;
6444 }
6445 t = store_get_perm(sizeof(tree_node) + Ustrlen(argv[0]));
6446 Ustrcpy(t->name, argv[0]);
6447 t->data.ptr = handle;
6448 (void)tree_insertnode(&dlobj_anchor, t);
6449 }
6450
6451 /* Having obtained the dynamically loaded object handle, look up the
6452 function pointer. */
6453
6454 func = (exim_dlfunc_t *)dlsym(t->data.ptr, CS argv[1]);
6455 if (func == NULL)
6456 {
6457 expand_string_message = string_sprintf("dlsym \"%s\" in \"%s\" failed: "
6458 "%s", argv[1], argv[0], dlerror());
6459 log_write(0, LOG_MAIN|LOG_PANIC, "%s", expand_string_message);
6460 goto EXPAND_FAILED;
6461 }
6462
6463 /* Call the function and work out what to do with the result. If it
6464 returns OK, we have a replacement string; if it returns DEFER then
6465 expansion has failed in a non-forced manner; if it returns FAIL then
6466 failure was forced; if it returns ERROR or any other value there's a
6467 problem, so panic slightly. In any case, assume that the function has
6468 side-effects on the store that must be preserved. */
6469
6470 resetok = FALSE;
6471 result = NULL;
6472 for (argc = 0; argv[argc] != NULL; argc++);
6473 status = func(&result, argc - 2, &argv[2]);
6474 if(status == OK)
6475 {
6476 if (result == NULL) result = US"";
6477 yield = string_cat(yield, result);
6478 continue;
6479 }
6480 else
6481 {
6482 expand_string_message = result == NULL ? US"(no message)" : result;
6483 if(status == FAIL_FORCED) f.expand_string_forcedfail = TRUE;
6484 else if(status != FAIL)
6485 log_write(0, LOG_MAIN|LOG_PANIC, "dlfunc{%s}{%s} failed (%d): %s",
6486 argv[0], argv[1], status, expand_string_message);
6487 goto EXPAND_FAILED;
6488 }
6489 }
6490 #endif /* EXPAND_DLFUNC */
6491
6492 case EITEM_ENV: /* ${env {name} {val_if_found} {val_if_unfound}} */
6493 {
6494 uschar * key;
6495 uschar *save_lookup_value = lookup_value;
6496
6497 while (isspace(*s)) s++;
6498 if (*s != '{') /*}*/
6499 goto EXPAND_FAILED;
6500
6501 key = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok);
6502 if (!key) goto EXPAND_FAILED; /*{*/
6503 if (*s++ != '}')
6504 {
6505 expand_string_message = US"missing '{' for name arg of env";
6506 goto EXPAND_FAILED_CURLY;
6507 }
6508
6509 lookup_value = US getenv(CS key);
6510
6511 switch(process_yesno(
6512 skipping, /* were previously skipping */
6513 lookup_value != NULL, /* success/failure indicator */
6514 save_lookup_value, /* value to reset for string2 */
6515 &s, /* input pointer */
6516 &yield, /* output pointer */
6517 US"env", /* condition type */
6518 &resetok))
6519 {
6520 case 1: goto EXPAND_FAILED; /* when all is well, the */
6521 case 2: goto EXPAND_FAILED_CURLY; /* returned value is 0 */
6522 }
6523 continue;
6524 }
6525 } /* EITEM_* switch */
6526
6527 /* Control reaches here if the name is not recognized as one of the more
6528 complicated expansion items. Check for the "operator" syntax (name terminated
6529 by a colon). Some of the operators have arguments, separated by _ from the
6530 name. */
6531
6532 if (*s == ':')
6533 {
6534 int c;
6535 uschar *arg = NULL;
6536 uschar *sub;
6537 #ifdef SUPPORT_TLS
6538 var_entry *vp = NULL;
6539 #endif
6540
6541 /* Owing to an historical mis-design, an underscore may be part of the
6542 operator name, or it may introduce arguments. We therefore first scan the
6543 table of names that contain underscores. If there is no match, we cut off
6544 the arguments and then scan the main table. */
6545
6546 if ((c = chop_match(name, op_table_underscore,
6547 nelem(op_table_underscore))) < 0)
6548 {
6549 arg = Ustrchr(name, '_');
6550 if (arg != NULL) *arg = 0;
6551 c = chop_match(name, op_table_main, nelem(op_table_main));
6552 if (c >= 0) c += nelem(op_table_underscore);
6553 if (arg != NULL) *arg++ = '_'; /* Put back for error messages */
6554 }
6555
6556 /* Deal specially with operators that might take a certificate variable
6557 as we do not want to do the usual expansion. For most, expand the string.*/
6558 switch(c)
6559 {
6560 #ifdef SUPPORT_TLS
6561 case EOP_MD5:
6562 case EOP_SHA1:
6563 case EOP_SHA256:
6564 case EOP_BASE64:
6565 if (s[1] == '$')
6566 {
6567 const uschar * s1 = s;
6568 sub = expand_string_internal(s+2, TRUE, &s1, skipping,
6569 FALSE, &resetok);
6570 if (!sub) goto EXPAND_FAILED; /*{*/
6571 if (*s1 != '}')
6572 {
6573 expand_string_message =
6574 string_sprintf("missing '}' closing cert arg of %s", name);
6575 goto EXPAND_FAILED_CURLY;
6576 }
6577 if ((vp = find_var_ent(sub)) && vp->type == vtype_cert)
6578 {
6579 s = s1+1;
6580 break;
6581 }
6582 vp = NULL;
6583 }
6584 /*FALLTHROUGH*/
6585 #endif
6586 default:
6587 sub = expand_string_internal(s+1, TRUE, &s, skipping, TRUE, &resetok);
6588 if (!sub) goto EXPAND_FAILED;
6589 s++;
6590 break;
6591 }
6592
6593 /* If we are skipping, we don't need to perform the operation at all.
6594 This matters for operations like "mask", because the data may not be
6595 in the correct format when skipping. For example, the expression may test
6596 for the existence of $sender_host_address before trying to mask it. For
6597 other operations, doing them may not fail, but it is a waste of time. */
6598
6599 if (skipping && c >= 0) continue;
6600
6601 /* Otherwise, switch on the operator type */
6602
6603 switch(c)
6604 {
6605 case EOP_BASE32:
6606 {
6607 uschar *t;
6608 unsigned long int n = Ustrtoul(sub, &t, 10);
6609 gstring * g = NULL;
6610
6611 if (*t != 0)
6612 {
6613 expand_string_message = string_sprintf("argument for base32 "
6614 "operator is \"%s\", which is not a decimal number", sub);
6615 goto EXPAND_FAILED;
6616 }
6617 for ( ; n; n >>= 5)
6618 g = string_catn(g, &base32_chars[n & 0x1f], 1);
6619
6620 if (g) while (g->ptr > 0) yield = string_catn(yield, &g->s[--g->ptr], 1);
6621 continue;
6622 }
6623
6624 case EOP_BASE32D:
6625 {
6626 uschar *tt = sub;
6627 unsigned long int n = 0;
6628 uschar * s;
6629 while (*tt)
6630 {
6631 uschar * t = Ustrchr(base32_chars, *tt++);
6632 if (t == NULL)
6633 {
6634 expand_string_message = string_sprintf("argument for base32d "
6635 "operator is \"%s\", which is not a base 32 number", sub);
6636 goto EXPAND_FAILED;
6637 }
6638 n = n * 32 + (t - base32_chars);
6639 }
6640 s = string_sprintf("%ld", n);
6641 yield = string_cat(yield, s);
6642 continue;
6643 }
6644
6645 case EOP_BASE62:
6646 {
6647 uschar *t;
6648 unsigned long int n = Ustrtoul(sub, &t, 10);
6649 if (*t != 0)
6650 {
6651 expand_string_message = string_sprintf("argument for base62 "
6652 "operator is \"%s\", which is not a decimal number", sub);
6653 goto EXPAND_FAILED;
6654 }
6655 t = string_base62(n);
6656 yield = string_cat(yield, t);
6657 continue;
6658 }
6659
6660 /* Note that for Darwin and Cygwin, BASE_62 actually has the value 36 */
6661
6662 case EOP_BASE62D:
6663 {
6664 uschar *tt = sub;
6665 unsigned long int n = 0;
6666 while (*tt != 0)
6667 {
6668 uschar *t = Ustrchr(base62_chars, *tt++);
6669 if (t == NULL)
6670 {
6671 expand_string_message = string_sprintf("argument for base62d "
6672 "operator is \"%s\", which is not a base %d number", sub,
6673 BASE_62);
6674 goto EXPAND_FAILED;
6675 }
6676 n = n * BASE_62 + (t - base62_chars);
6677 }
6678 yield = string_fmt_append(yield, "%ld", n);
6679 continue;
6680 }
6681
6682 case EOP_EXPAND:
6683 {
6684 uschar *expanded = expand_string_internal(sub, FALSE, NULL, skipping, TRUE, &resetok);
6685 if (expanded == NULL)
6686 {
6687 expand_string_message =
6688 string_sprintf("internal expansion of \"%s\" failed: %s", sub,
6689 expand_string_message);
6690 goto EXPAND_FAILED;
6691 }
6692 yield = string_cat(yield, expanded);
6693 continue;
6694 }
6695
6696 case EOP_LC:
6697 {
6698 int count = 0;
6699 uschar *t = sub - 1;
6700 while (*(++t) != 0) { *t = tolower(*t); count++; }
6701 yield = string_catn(yield, sub, count);
6702 continue;
6703 }
6704
6705 case EOP_UC:
6706 {
6707 int count = 0;
6708 uschar *t = sub - 1;
6709 while (*(++t) != 0) { *t = toupper(*t); count++; }
6710 yield = string_catn(yield, sub, count);
6711 continue;
6712 }
6713
6714 case EOP_MD5:
6715 #ifdef SUPPORT_TLS
6716 if (vp && *(void **)vp->value)
6717 {
6718 uschar * cp = tls_cert_fprt_md5(*(void **)vp->value);
6719 yield = string_cat(yield, cp);
6720 }
6721 else
6722 #endif
6723 {
6724 md5 base;
6725 uschar digest[16];
6726 md5_start(&base);
6727 md5_end(&base, sub, Ustrlen(sub), digest);
6728 for (int j = 0; j < 16; j++)
6729 yield = string_fmt_append(yield, "%02x", digest[j]);
6730 }
6731 continue;
6732
6733 case EOP_SHA1:
6734 #ifdef SUPPORT_TLS
6735 if (vp && *(void **)vp->value)
6736 {
6737 uschar * cp = tls_cert_fprt_sha1(*(void **)vp->value);
6738 yield = string_cat(yield, cp);
6739 }
6740 else
6741 #endif
6742 {
6743 hctx h;
6744 uschar digest[20];
6745 sha1_start(&h);
6746 sha1_end(&h, sub, Ustrlen(sub), digest);
6747 for (int j = 0; j < 20; j++)
6748 yield = string_fmt_append(yield, "%02X", digest[j]);
6749 }
6750 continue;
6751
6752 case EOP_SHA256:
6753 #ifdef EXIM_HAVE_SHA2
6754 if (vp && *(void **)vp->value)
6755 {
6756 uschar * cp = tls_cert_fprt_sha256(*(void **)vp->value);
6757 yield = string_cat(yield, cp);
6758 }
6759 else
6760 {
6761 hctx h;
6762 blob b;
6763
6764 if (!exim_sha_init(&h, HASH_SHA2_256))
6765 {
6766 expand_string_message = US"unrecognised sha256 variant";
6767 goto EXPAND_FAILED;
6768 }
6769 exim_sha_update(&h, sub, Ustrlen(sub));
6770 exim_sha_finish(&h, &b);
6771 while (b.len-- > 0)
6772 yield = string_fmt_append(yield, "%02X", *b.data++);
6773 }
6774 #else
6775 expand_string_message = US"sha256 only supported with TLS";
6776 #endif
6777 continue;
6778
6779 case EOP_SHA3:
6780 #ifdef EXIM_HAVE_SHA3
6781 {
6782 hctx h;
6783 blob b;
6784 hashmethod m = !arg ? HASH_SHA3_256
6785 : Ustrcmp(arg, "224") == 0 ? HASH_SHA3_224
6786 : Ustrcmp(arg, "256") == 0 ? HASH_SHA3_256
6787 : Ustrcmp(arg, "384") == 0 ? HASH_SHA3_384
6788 : Ustrcmp(arg, "512") == 0 ? HASH_SHA3_512
6789 : HASH_BADTYPE;
6790
6791 if (m == HASH_BADTYPE || !exim_sha_init(&h, m))
6792 {
6793 expand_string_message = US"unrecognised sha3 variant";
6794 goto EXPAND_FAILED;
6795 }
6796
6797 exim_sha_update(&h, sub, Ustrlen(sub));
6798 exim_sha_finish(&h, &b);
6799 while (b.len-- > 0)
6800 yield = string_fmt_append(yield, "%02X", *b.data++);
6801 }
6802 continue;
6803 #else
6804 expand_string_message = US"sha3 only supported with GnuTLS 3.5.0 + or OpenSSL 1.1.1 +";
6805 goto EXPAND_FAILED;
6806 #endif
6807
6808 /* Convert hex encoding to base64 encoding */
6809
6810 case EOP_HEX2B64:
6811 {
6812 int c = 0;
6813 int b = -1;
6814 uschar *in = sub;
6815 uschar *out = sub;
6816 uschar *enc;
6817
6818 for (enc = sub; *enc; enc++)
6819 {
6820 if (!isxdigit(*enc))
6821 {
6822 expand_string_message = string_sprintf("\"%s\" is not a hex "
6823 "string", sub);
6824 goto EXPAND_FAILED;
6825 }
6826 c++;
6827 }
6828
6829 if ((c & 1) != 0)
6830 {
6831 expand_string_message = string_sprintf("\"%s\" contains an odd "
6832 "number of characters", sub);
6833 goto EXPAND_FAILED;
6834 }
6835
6836 while ((c = *in++) != 0)
6837 {
6838 if (isdigit(c)) c -= '0';
6839 else c = toupper(c) - 'A' + 10;
6840 if (b == -1)
6841 b = c << 4;
6842 else
6843 {
6844 *out++ = b | c;
6845 b = -1;
6846 }
6847 }
6848
6849 enc = b64encode(CUS sub, out - sub);
6850 yield = string_cat(yield, enc);
6851 continue;
6852 }
6853
6854 /* Convert octets outside 0x21..0x7E to \xXX form */
6855
6856 case EOP_HEXQUOTE:
6857 {
6858 uschar *t = sub - 1;
6859 while (*(++t) != 0)
6860 {
6861 if (*t < 0x21 || 0x7E < *t)
6862 yield = string_fmt_append(yield, "\\x%02x", *t);
6863 else
6864 yield = string_catn(yield, t, 1);
6865 }
6866 continue;
6867 }
6868
6869 /* count the number of list elements */
6870
6871 case EOP_LISTCOUNT:
6872 {
6873 int cnt = 0;
6874 int sep = 0;
6875 uschar buffer[256];
6876
6877 while (string_nextinlist(CUSS &sub, &sep, buffer, sizeof(buffer)) != NULL) cnt++;
6878 yield = string_fmt_append(yield, "%d", cnt);
6879 continue;
6880 }
6881
6882 /* expand a named list given the name */
6883 /* handles nested named lists; requotes as colon-sep list */
6884
6885 case EOP_LISTNAMED:
6886 {
6887 tree_node *t = NULL;
6888 const uschar * list;
6889 int sep = 0;
6890 uschar * item;
6891 uschar * suffix = US"";
6892 BOOL needsep = FALSE;
6893 uschar buffer[256];
6894
6895 if (*sub == '+') sub++;
6896 if (arg == NULL) /* no-argument version */
6897 {
6898 if (!(t = tree_search(addresslist_anchor, sub)) &&
6899 !(t = tree_search(domainlist_anchor, sub)) &&
6900 !(t = tree_search(hostlist_anchor, sub)))
6901 t = tree_search(localpartlist_anchor, sub);
6902 }
6903 else switch(*arg) /* specific list-type version */
6904 {
6905 case 'a': t = tree_search(addresslist_anchor, sub); suffix = US"_a"; break;
6906 case 'd': t = tree_search(domainlist_anchor, sub); suffix = US"_d"; break;
6907 case 'h': t = tree_search(hostlist_anchor, sub); suffix = US"_h"; break;
6908 case 'l': t = tree_search(localpartlist_anchor, sub); suffix = US"_l"; break;
6909 default:
6910 expand_string_message = string_sprintf("bad suffix on \"list\" operator");
6911 goto EXPAND_FAILED;
6912 }
6913
6914 if(!t)
6915 {
6916 expand_string_message = string_sprintf("\"%s\" is not a %snamed list",
6917 sub, !arg?""
6918 : *arg=='a'?"address "
6919 : *arg=='d'?"domain "
6920 : *arg=='h'?"host "
6921 : *arg=='l'?"localpart "
6922 : 0);
6923 goto EXPAND_FAILED;
6924 }
6925
6926 list = ((namedlist_block *)(t->data.ptr))->string;
6927
6928 while ((item = string_nextinlist(&list, &sep, buffer, sizeof(buffer))))
6929 {
6930 uschar * buf = US" : ";
6931 if (needsep)
6932 yield = string_catn(yield, buf, 3);
6933 else
6934 needsep = TRUE;
6935
6936 if (*item == '+') /* list item is itself a named list */
6937 {
6938 uschar * sub = string_sprintf("${listnamed%s:%s}", suffix, item);
6939 item = expand_string_internal(sub, FALSE, NULL, FALSE, TRUE, &resetok);
6940 }
6941 else if (sep != ':') /* item from non-colon-sep list, re-quote for colon list-separator */
6942 {
6943 char * cp;
6944 char tok[3];
6945 tok[0] = sep; tok[1] = ':'; tok[2] = 0;
6946 while ((cp= strpbrk(CCS item, tok)))
6947 {
6948 yield = string_catn(yield, item, cp - CS item);
6949 if (*cp++ == ':') /* colon in a non-colon-sep list item, needs doubling */
6950 {
6951 yield = string_catn(yield, US"::", 2);
6952 item = US cp;
6953 }
6954 else /* sep in item; should already be doubled; emit once */
6955 {
6956 yield = string_catn(yield, US tok, 1);
6957 if (*cp == sep) cp++;
6958 item = US cp;
6959 }
6960 }
6961 }
6962 yield = string_cat(yield, item);
6963 }
6964 continue;
6965 }
6966
6967 /* mask applies a mask to an IP address; for example the result of
6968 ${mask:131.111.10.206/28} is 131.111.10.192/28. */
6969
6970 case EOP_MASK:
6971 {
6972 int count;
6973 uschar *endptr;
6974 int binary[4];
6975 int mask, maskoffset;
6976 int type = string_is_ip_address(sub, &maskoffset);
6977 uschar buffer[64];
6978
6979 if (type == 0)
6980 {
6981 expand_string_message = string_sprintf("\"%s\" is not an IP address",
6982 sub);
6983 goto EXPAND_FAILED;
6984 }
6985
6986 if (maskoffset == 0)
6987 {
6988 expand_string_message = string_sprintf("missing mask value in \"%s\"",
6989 sub);
6990 goto EXPAND_FAILED;
6991 }
6992
6993 mask = Ustrtol(sub + maskoffset + 1, &endptr, 10);
6994
6995 if (*endptr != 0 || mask < 0 || mask > ((type == 4)? 32 : 128))
6996 {
6997 expand_string_message = string_sprintf("mask value too big in \"%s\"",
6998 sub);
6999 goto EXPAND_FAILED;
7000 }
7001
7002 /* Convert the address to binary integer(s) and apply the mask */
7003
7004 sub[maskoffset] = 0;
7005 count = host_aton(sub, binary);
7006 host_mask(count, binary, mask);
7007
7008 /* Convert to masked textual format and add to output. */
7009
7010 yield = string_catn(yield, buffer,
7011 host_nmtoa(count, binary, mask, buffer, '.'));
7012 continue;
7013 }
7014
7015 case EOP_IPV6NORM:
7016 case EOP_IPV6DENORM:
7017 {
7018 int type = string_is_ip_address(sub, NULL);
7019 int binary[4];
7020 uschar buffer[44];
7021
7022 switch (type)
7023 {
7024 case 6:
7025 (void) host_aton(sub, binary);
7026 break;
7027
7028 case 4: /* convert to IPv4-mapped IPv6 */
7029 binary[0] = binary[1] = 0;
7030 binary[2] = 0x0000ffff;
7031 (void) host_aton(sub, binary+3);
7032 break;
7033
7034 case 0:
7035 expand_string_message =
7036 string_sprintf("\"%s\" is not an IP address", sub);
7037 goto EXPAND_FAILED;
7038 }
7039
7040 yield = string_catn(yield, buffer, c == EOP_IPV6NORM
7041 ? ipv6_nmtoa(binary, buffer)
7042 : host_nmtoa(4, binary, -1, buffer, ':')
7043 );
7044 continue;
7045 }
7046
7047 case EOP_ADDRESS:
7048 case EOP_LOCAL_PART:
7049 case EOP_DOMAIN:
7050 {
7051 uschar * error;
7052 int start, end, domain;
7053 uschar * t = parse_extract_address(sub, &error, &start, &end, &domain,
7054 FALSE);
7055 if (t)
7056 if (c != EOP_DOMAIN)
7057 {
7058 if (c == EOP_LOCAL_PART && domain != 0) end = start + domain - 1;
7059 yield = string_catn(yield, sub+start, end-start);
7060 }
7061 else if (domain != 0)
7062 {
7063 domain += start;
7064 yield = string_catn(yield, sub+domain, end-domain);
7065 }
7066 continue;
7067 }
7068
7069 case EOP_ADDRESSES:
7070 {
7071 uschar outsep[2] = { ':', '\0' };
7072 uschar *address, *error;
7073 int save_ptr = yield->ptr;
7074 int start, end, domain; /* Not really used */
7075
7076 while (isspace(*sub)) sub++;
7077 if (*sub == '>')
7078 if (*outsep = *++sub) ++sub;
7079 else
7080 {
7081 expand_string_message = string_sprintf("output separator "
7082 "missing in expanding ${addresses:%s}", --sub);
7083 goto EXPAND_FAILED;
7084 }
7085 f.parse_allow_group = TRUE;
7086
7087 for (;;)
7088 {
7089 uschar *p = parse_find_address_end(sub, FALSE);
7090 uschar saveend = *p;
7091 *p = '\0';
7092 address = parse_extract_address(sub, &error, &start, &end, &domain,
7093 FALSE);
7094 *p = saveend;
7095
7096 /* Add the address to the output list that we are building. This is
7097 done in chunks by searching for the separator character. At the
7098 start, unless we are dealing with the first address of the output
7099 list, add in a space if the new address begins with the separator
7100 character, or is an empty string. */
7101
7102 if (address != NULL)
7103 {
7104 if (yield->ptr != save_ptr && address[0] == *outsep)
7105 yield = string_catn(yield, US" ", 1);
7106
7107 for (;;)
7108 {
7109 size_t seglen = Ustrcspn(address, outsep);
7110 yield = string_catn(yield, address, seglen + 1);
7111
7112 /* If we got to the end of the string we output one character
7113 too many. */
7114
7115 if (address[seglen] == '\0') { yield->ptr--; break; }
7116 yield = string_catn(yield, outsep, 1);
7117 address += seglen + 1;
7118 }
7119
7120 /* Output a separator after the string: we will remove the
7121 redundant final one at the end. */
7122
7123 yield = string_catn(yield, outsep, 1);
7124 }
7125
7126 if (saveend == '\0') break;
7127 sub = p + 1;
7128 }
7129
7130 /* If we have generated anything, remove the redundant final
7131 separator. */
7132
7133 if (yield->ptr != save_ptr) yield->ptr--;
7134 f.parse_allow_group = FALSE;
7135 continue;
7136 }
7137
7138
7139 /* quote puts a string in quotes if it is empty or contains anything
7140 other than alphamerics, underscore, dot, or hyphen.
7141
7142 quote_local_part puts a string in quotes if RFC 2821/2822 requires it to
7143 be quoted in order to be a valid local part.
7144
7145 In both cases, newlines and carriage returns are converted into \n and \r
7146 respectively */
7147
7148 case EOP_QUOTE:
7149 case EOP_QUOTE_LOCAL_PART:
7150 if (arg == NULL)
7151 {
7152 BOOL needs_quote = (*sub == 0); /* TRUE for empty string */
7153 uschar *t = sub - 1;
7154
7155 if (c == EOP_QUOTE)
7156 {
7157 while (!needs_quote && *(++t) != 0)
7158 needs_quote = !isalnum(*t) && !strchr("_-.", *t);
7159 }
7160 else /* EOP_QUOTE_LOCAL_PART */
7161 {
7162 while (!needs_quote && *(++t) != 0)
7163 needs_quote = !isalnum(*t) &&
7164 strchr("!#$%&'*+-/=?^_`{|}~", *t) == NULL &&
7165 (*t != '.' || t == sub || t[1] == 0);
7166 }
7167
7168 if (needs_quote)
7169 {
7170 yield = string_catn(yield, US"\"", 1);
7171 t = sub - 1;
7172 while (*(++t) != 0)
7173 {
7174 if (*t == '\n')
7175 yield = string_catn(yield, US"\\n", 2);
7176 else if (*t == '\r')
7177 yield = string_catn(yield, US"\\r", 2);
7178 else
7179 {
7180 if (*t == '\\' || *t == '"')
7181 yield = string_catn(yield, US"\\", 1);
7182 yield = string_catn(yield, t, 1);
7183 }
7184 }
7185 yield = string_catn(yield, US"\"", 1);
7186 }
7187 else yield = string_cat(yield, sub);
7188 continue;
7189 }
7190
7191 /* quote_lookuptype does lookup-specific quoting */
7192
7193 else
7194 {
7195 int n;
7196 uschar *opt = Ustrchr(arg, '_');
7197
7198 if (opt != NULL) *opt++ = 0;
7199
7200 n = search_findtype(arg, Ustrlen(arg));
7201 if (n < 0)
7202 {
7203 expand_string_message = search_error_message;
7204 goto EXPAND_FAILED;
7205 }
7206
7207 if (lookup_list[n]->quote != NULL)
7208 sub = (lookup_list[n]->quote)(sub, opt);
7209 else if (opt != NULL) sub = NULL;
7210
7211 if (sub == NULL)
7212 {
7213 expand_string_message = string_sprintf(
7214 "\"%s\" unrecognized after \"${quote_%s\"",
7215 opt, arg);
7216 goto EXPAND_FAILED;
7217 }
7218
7219 yield = string_cat(yield, sub);
7220 continue;
7221 }
7222
7223 /* rx quote sticks in \ before any non-alphameric character so that
7224 the insertion works in a regular expression. */
7225
7226 case EOP_RXQUOTE:
7227 {
7228 uschar *t = sub - 1;
7229 while (*(++t) != 0)
7230 {
7231 if (!isalnum(*t))
7232 yield = string_catn(yield, US"\\", 1);
7233 yield = string_catn(yield, t, 1);
7234 }
7235 continue;
7236 }
7237
7238 /* RFC 2047 encodes, assuming headers_charset (default ISO 8859-1) as
7239 prescribed by the RFC, if there are characters that need to be encoded */
7240
7241 case EOP_RFC2047:
7242 {
7243 uschar buffer[2048];
7244 yield = string_cat(yield,
7245 parse_quote_2047(sub, Ustrlen(sub), headers_charset,
7246 buffer, sizeof(buffer), FALSE));
7247 continue;
7248 }
7249
7250 /* RFC 2047 decode */
7251
7252 case EOP_RFC2047D:
7253 {
7254 int len;
7255 uschar *error;
7256 uschar *decoded = rfc2047_decode(sub, check_rfc2047_length,
7257 headers_charset, '?', &len, &error);
7258 if (error != NULL)
7259 {
7260 expand_string_message = error;
7261 goto EXPAND_FAILED;
7262 }
7263 yield = string_catn(yield, decoded, len);
7264 continue;
7265 }
7266
7267 /* from_utf8 converts UTF-8 to 8859-1, turning non-existent chars into
7268 underscores */
7269
7270 case EOP_FROM_UTF8:
7271 {
7272 while (*sub != 0)
7273 {
7274 int c;
7275 uschar buff[4];
7276 GETUTF8INC(c, sub);
7277 if (c > 255) c = '_';
7278 buff[0] = c;
7279 yield = string_catn(yield, buff, 1);
7280 }
7281 continue;
7282 }
7283
7284 /* replace illegal UTF-8 sequences by replacement character */
7285
7286 #define UTF8_REPLACEMENT_CHAR US"?"
7287
7288 case EOP_UTF8CLEAN:
7289 {
7290 int seq_len = 0, index = 0;
7291 int bytes_left = 0;
7292 long codepoint = -1;
7293 int complete;
7294 uschar seq_buff[4]; /* accumulate utf-8 here */
7295
7296 while (*sub != 0)
7297 {
7298 complete = 0;
7299 uschar c = *sub++;
7300
7301 if (bytes_left)
7302 {
7303 if ((c & 0xc0) != 0x80)
7304 /* wrong continuation byte; invalidate all bytes */
7305 complete = 1; /* error */
7306 else
7307 {
7308 codepoint = (codepoint << 6) | (c & 0x3f);
7309 seq_buff[index++] = c;
7310 if (--bytes_left == 0) /* codepoint complete */
7311 if(codepoint > 0x10FFFF) /* is it too large? */
7312 complete = -1; /* error (RFC3629 limit) */
7313 else
7314 { /* finished; output utf-8 sequence */
7315 yield = string_catn(yield, seq_buff, seq_len);
7316 index = 0;
7317 }
7318 }
7319 }
7320 else /* no bytes left: new sequence */
7321 {
7322 if((c & 0x80) == 0) /* 1-byte sequence, US-ASCII, keep it */
7323 {
7324 yield = string_catn(yield, &c, 1);
7325 continue;
7326 }
7327 if((c & 0xe0) == 0xc0) /* 2-byte sequence */
7328 {
7329 if(c == 0xc0 || c == 0xc1) /* 0xc0 and 0xc1 are illegal */
7330 complete = -1;
7331 else
7332 {
7333 bytes_left = 1;
7334 codepoint = c & 0x1f;
7335 }
7336 }
7337 else if((c & 0xf0) == 0xe0) /* 3-byte sequence */
7338 {
7339 bytes_left = 2;
7340 codepoint = c & 0x0f;
7341 }
7342 else if((c & 0xf8) == 0xf0) /* 4-byte sequence */
7343 {
7344 bytes_left = 3;
7345 codepoint = c & 0x07;
7346 }
7347 else /* invalid or too long (RFC3629 allows only 4 bytes) */
7348 complete = -1;
7349
7350 seq_buff[index++] = c;
7351 seq_len = bytes_left + 1;
7352 } /* if(bytes_left) */
7353
7354 if (complete != 0)
7355 {
7356 bytes_left = index = 0;
7357 yield = string_catn(yield, UTF8_REPLACEMENT_CHAR, 1);
7358 }
7359 if ((complete == 1) && ((c & 0x80) == 0))
7360 /* ASCII character follows incomplete sequence */
7361 yield = string_catn(yield, &c, 1);
7362 }
7363 /* If given a sequence truncated mid-character, we also want to report ?
7364 * Eg, ${length_1:フィル} is one byte, not one character, so we expect
7365 * ${utf8clean:${length_1:フィル}} to yield '?' */
7366 if (bytes_left != 0)
7367 {
7368 yield = string_catn(yield, UTF8_REPLACEMENT_CHAR, 1);
7369 }
7370 continue;
7371 }
7372
7373 #ifdef SUPPORT_I18N
7374 case EOP_UTF8_DOMAIN_TO_ALABEL:
7375 {
7376 uschar * error = NULL;
7377 uschar * s = string_domain_utf8_to_alabel(sub, &error);
7378 if (error)
7379 {
7380 expand_string_message = string_sprintf(
7381 "error converting utf8 (%s) to alabel: %s",
7382 string_printing(sub), error);
7383 goto EXPAND_FAILED;
7384 }
7385 yield = string_cat(yield, s);
7386 continue;
7387 }
7388
7389 case EOP_UTF8_DOMAIN_FROM_ALABEL:
7390 {
7391 uschar * error = NULL;
7392 uschar * s = string_domain_alabel_to_utf8(sub, &error);
7393 if (error)
7394 {
7395 expand_string_message = string_sprintf(
7396 "error converting alabel (%s) to utf8: %s",
7397 string_printing(sub), error);
7398 goto EXPAND_FAILED;
7399 }
7400 yield = string_cat(yield, s);
7401 continue;
7402 }
7403
7404 case EOP_UTF8_LOCALPART_TO_ALABEL:
7405 {
7406 uschar * error = NULL;
7407 uschar * s = string_localpart_utf8_to_alabel(sub, &error);
7408 if (error)
7409 {
7410 expand_string_message = string_sprintf(
7411 "error converting utf8 (%s) to alabel: %s",
7412 string_printing(sub), error);
7413 goto EXPAND_FAILED;
7414 }
7415 yield = string_cat(yield, s);
7416 DEBUG(D_expand) debug_printf_indent("yield: '%s'\n", yield->s);
7417 continue;
7418 }
7419
7420 case EOP_UTF8_LOCALPART_FROM_ALABEL:
7421 {
7422 uschar * error = NULL;
7423 uschar * s = string_localpart_alabel_to_utf8(sub, &error);
7424 if (error)
7425 {
7426 expand_string_message = string_sprintf(
7427 "error converting alabel (%s) to utf8: %s",
7428 string_printing(sub), error);
7429 goto EXPAND_FAILED;
7430 }
7431 yield = string_cat(yield, s);
7432 continue;
7433 }
7434 #endif /* EXPERIMENTAL_INTERNATIONAL */
7435
7436 /* escape turns all non-printing characters into escape sequences. */
7437
7438 case EOP_ESCAPE:
7439 {
7440 const uschar * t = string_printing(sub);
7441 yield = string_cat(yield, t);
7442 continue;
7443 }
7444
7445 case EOP_ESCAPE8BIT:
7446 {
7447 uschar c;
7448
7449 for (const uschar * s = sub; (c = *s); s++)
7450 yield = c < 127 && c != '\\'
7451 ? string_catn(yield, s, 1)
7452 : string_fmt_append(yield, "\\%03o", c);
7453 continue;
7454 }
7455
7456 /* Handle numeric expression evaluation */
7457
7458 case EOP_EVAL:
7459 case EOP_EVAL10:
7460 {
7461 uschar *save_sub = sub;
7462 uschar *error = NULL;
7463 int_eximarith_t n = eval_expr(&sub, (c == EOP_EVAL10), &error, FALSE);
7464 if (error)
7465 {
7466 expand_string_message = string_sprintf("error in expression "
7467 "evaluation: %s (after processing \"%.*s\")", error,
7468 (int)(sub-save_sub), save_sub);
7469 goto EXPAND_FAILED;
7470 }
7471 yield = string_fmt_append(yield, PR_EXIM_ARITH, n);
7472 continue;
7473 }
7474
7475 /* Handle time period formatting */
7476
7477 case EOP_TIME_EVAL:
7478 {
7479 int n = readconf_readtime(sub, 0, FALSE);
7480 if (n < 0)
7481 {
7482 expand_string_message = string_sprintf("string \"%s\" is not an "
7483 "Exim time interval in \"%s\" operator", sub, name);
7484 goto EXPAND_FAILED;
7485 }
7486 yield = string_fmt_append(yield, "%d", n);
7487 continue;
7488 }
7489
7490 case EOP_TIME_INTERVAL:
7491 {
7492 int n;
7493 uschar *t = read_number(&n, sub);
7494 if (*t != 0) /* Not A Number*/
7495 {
7496 expand_string_message = string_sprintf("string \"%s\" is not a "
7497 "positive number in \"%s\" operator", sub, name);
7498 goto EXPAND_FAILED;
7499 }
7500 t = readconf_printtime(n);
7501 yield = string_cat(yield, t);
7502 continue;
7503 }
7504
7505 /* Convert string to base64 encoding */
7506
7507 case EOP_STR2B64:
7508 case EOP_BASE64:
7509 {
7510 #ifdef SUPPORT_TLS
7511 uschar * s = vp && *(void **)vp->value
7512 ? tls_cert_der_b64(*(void **)vp->value)
7513 : b64encode(CUS sub, Ustrlen(sub));
7514 #else
7515 uschar * s = b64encode(CUS sub, Ustrlen(sub));
7516 #endif
7517 yield = string_cat(yield, s);
7518 continue;
7519 }
7520
7521 case EOP_BASE64D:
7522 {
7523 uschar * s;
7524 int len = b64decode(sub, &s);
7525 if (len < 0)
7526 {
7527 expand_string_message = string_sprintf("string \"%s\" is not "
7528 "well-formed for \"%s\" operator", sub, name);
7529 goto EXPAND_FAILED;
7530 }
7531 yield = string_cat(yield, s);
7532 continue;
7533 }
7534
7535 /* strlen returns the length of the string */
7536
7537 case EOP_STRLEN:
7538 yield = string_fmt_append(yield, "%d", Ustrlen(sub));
7539 continue;
7540
7541 /* length_n or l_n takes just the first n characters or the whole string,
7542 whichever is the shorter;
7543
7544 substr_m_n, and s_m_n take n characters from offset m; negative m take
7545 from the end; l_n is synonymous with s_0_n. If n is omitted in substr it
7546 takes the rest, either to the right or to the left.
7547
7548 hash_n or h_n makes a hash of length n from the string, yielding n
7549 characters from the set a-z; hash_n_m makes a hash of length n, but
7550 uses m characters from the set a-zA-Z0-9.
7551
7552 nhash_n returns a single number between 0 and n-1 (in text form), while
7553 nhash_n_m returns a div/mod hash as two numbers "a/b". The first lies
7554 between 0 and n-1 and the second between 0 and m-1. */
7555
7556 case EOP_LENGTH:
7557 case EOP_L:
7558 case EOP_SUBSTR:
7559 case EOP_S:
7560 case EOP_HASH:
7561 case EOP_H:
7562 case EOP_NHASH:
7563 case EOP_NH:
7564 {
7565 int sign = 1;
7566 int value1 = 0;
7567 int value2 = -1;
7568 int *pn;
7569 int len;
7570 uschar *ret;
7571
7572 if (!arg)
7573 {
7574 expand_string_message = string_sprintf("missing values after %s",
7575 name);
7576 goto EXPAND_FAILED;
7577 }
7578
7579 /* "length" has only one argument, effectively being synonymous with
7580 substr_0_n. */
7581
7582 if (c == EOP_LENGTH || c == EOP_L)
7583 {
7584 pn = &value2;
7585 value2 = 0;
7586 }
7587
7588 /* The others have one or two arguments; for "substr" the first may be
7589 negative. The second being negative means "not supplied". */
7590
7591 else
7592 {
7593 pn = &value1;
7594 if (name[0] == 's' && *arg == '-') { sign = -1; arg++; }
7595 }
7596
7597 /* Read up to two numbers, separated by underscores */
7598
7599 ret = arg;
7600 while (*arg != 0)
7601 {
7602 if (arg != ret && *arg == '_' && pn == &value1)
7603 {
7604 pn = &value2;
7605 value2 = 0;
7606 if (arg[1] != 0) arg++;
7607 }
7608 else if (!isdigit(*arg))
7609 {
7610 expand_string_message =
7611 string_sprintf("non-digit after underscore in \"%s\"", name);
7612 goto EXPAND_FAILED;
7613 }
7614 else *pn = (*pn)*10 + *arg++ - '0';
7615 }
7616 value1 *= sign;
7617
7618 /* Perform the required operation */
7619
7620 ret =
7621 (c == EOP_HASH || c == EOP_H)?
7622 compute_hash(sub, value1, value2, &len) :
7623 (c == EOP_NHASH || c == EOP_NH)?
7624 compute_nhash(sub, value1, value2, &len) :
7625 extract_substr(sub, value1, value2, &len);
7626
7627 if (ret == NULL) goto EXPAND_FAILED;
7628 yield = string_catn(yield, ret, len);
7629 continue;
7630 }
7631
7632 /* Stat a path */
7633
7634 case EOP_STAT:
7635 {
7636 uschar smode[12];
7637 uschar **modetable[3];
7638 mode_t mode;
7639 struct stat st;
7640
7641 if (expand_forbid & RDO_EXISTS)
7642 {
7643 expand_string_message = US"Use of the stat() expansion is not permitted";
7644 goto EXPAND_FAILED;
7645 }
7646
7647 if (stat(CS sub, &st) < 0)
7648 {
7649 expand_string_message = string_sprintf("stat(%s) failed: %s",
7650 sub, strerror(errno));
7651 goto EXPAND_FAILED;
7652 }
7653 mode = st.st_mode;
7654 switch (mode & S_IFMT)
7655 {
7656 case S_IFIFO: smode[0] = 'p'; break;
7657 case S_IFCHR: smode[0] = 'c'; break;
7658 case S_IFDIR: smode[0] = 'd'; break;
7659 case S_IFBLK: smode[0] = 'b'; break;
7660 case S_IFREG: smode[0] = '-'; break;
7661 default: smode[0] = '?'; break;
7662 }
7663
7664 modetable[0] = ((mode & 01000) == 0)? mtable_normal : mtable_sticky;
7665 modetable[1] = ((mode & 02000) == 0)? mtable_normal : mtable_setid;
7666 modetable[2] = ((mode & 04000) == 0)? mtable_normal : mtable_setid;
7667
7668 for (int i = 0; i < 3; i++)
7669 {
7670 memcpy(CS(smode + 7 - i*3), CS(modetable[i][mode & 7]), 3);
7671 mode >>= 3;
7672 }
7673
7674 smode[10] = 0;
7675 yield = string_fmt_append(yield,
7676 "mode=%04lo smode=%s inode=%ld device=%ld links=%ld "
7677 "uid=%ld gid=%ld size=" OFF_T_FMT " atime=%ld mtime=%ld ctime=%ld",
7678 (long)(st.st_mode & 077777), smode, (long)st.st_ino,
7679 (long)st.st_dev, (long)st.st_nlink, (long)st.st_uid,
7680 (long)st.st_gid, st.st_size, (long)st.st_atime,
7681 (long)st.st_mtime, (long)st.st_ctime);
7682 continue;
7683 }
7684
7685 /* vaguely random number less than N */
7686
7687 case EOP_RANDINT:
7688 {
7689 int_eximarith_t max = expanded_string_integer(sub, TRUE);
7690
7691 if (expand_string_message)
7692 goto EXPAND_FAILED;
7693 yield = string_fmt_append(yield, "%d", vaguely_random_number((int)max));
7694 continue;
7695 }
7696
7697 /* Reverse IP, including IPv6 to dotted-nibble */
7698
7699 case EOP_REVERSE_IP:
7700 {
7701 int family, maskptr;
7702 uschar reversed[128];
7703
7704 family = string_is_ip_address(sub, &maskptr);
7705 if (family == 0)
7706 {
7707 expand_string_message = string_sprintf(
7708 "reverse_ip() not given an IP address [%s]", sub);
7709 goto EXPAND_FAILED;
7710 }
7711 invert_address(reversed, sub);
7712 yield = string_cat(yield, reversed);
7713 continue;
7714 }
7715
7716 /* Unknown operator */
7717
7718 default:
7719 expand_string_message =
7720 string_sprintf("unknown expansion operator \"%s\"", name);
7721 goto EXPAND_FAILED;
7722 }
7723 }
7724
7725 /* Handle a plain name. If this is the first thing in the expansion, release
7726 the pre-allocated buffer. If the result data is known to be in a new buffer,
7727 newsize will be set to the size of that buffer, and we can just point at that
7728 store instead of copying. Many expansion strings contain just one reference,
7729 so this is a useful optimization, especially for humungous headers
7730 ($message_headers). */
7731 /*{*/
7732 if (*s++ == '}')
7733 {
7734 int len;
7735 int newsize = 0;
7736 gstring * g = NULL;
7737
7738 if (!yield)
7739 g = store_get(sizeof(gstring));
7740 else if (yield->ptr == 0)
7741 {
7742 if (resetok) store_reset(yield);
7743 yield = NULL;
7744 g = store_get(sizeof(gstring)); /* alloc _before_ calling find_variable() */
7745 }
7746 if (!(value = find_variable(name, FALSE, skipping, &newsize)))
7747 {
7748 expand_string_message =
7749 string_sprintf("unknown variable in \"${%s}\"", name);
7750 check_variable_error_message(name);
7751 goto EXPAND_FAILED;
7752 }
7753 len = Ustrlen(value);
7754 if (!yield && newsize)
7755 {
7756 yield = g;
7757 yield->size = newsize;
7758 yield->ptr = len;
7759 yield->s = value;
7760 }
7761 else
7762 yield = string_catn(yield, value, len);
7763 continue;
7764 }
7765
7766 /* Else there's something wrong */
7767
7768 expand_string_message =
7769 string_sprintf("\"${%s\" is not a known operator (or a } is missing "
7770 "in a variable reference)", name);
7771 goto EXPAND_FAILED;
7772 }
7773
7774 /* If we hit the end of the string when ket_ends is set, there is a missing
7775 terminating brace. */
7776
7777 if (ket_ends && *s == 0)
7778 {
7779 expand_string_message = malformed_header
7780 ? US"missing } at end of string - could be header name not terminated by colon"
7781 : US"missing } at end of string";
7782 goto EXPAND_FAILED;
7783 }
7784
7785 /* Expansion succeeded; yield may still be NULL here if nothing was actually
7786 added to the string. If so, set up an empty string. Add a terminating zero. If
7787 left != NULL, return a pointer to the terminator. */
7788
7789 if (!yield)
7790 yield = string_get(1);
7791 (void) string_from_gstring(yield);
7792 if (left) *left = s;
7793
7794 /* Any stacking store that was used above the final string is no longer needed.
7795 In many cases the final string will be the first one that was got and so there
7796 will be optimal store usage. */
7797
7798 if (resetok) store_reset(yield->s + (yield->size = yield->ptr + 1));
7799 else if (resetok_p) *resetok_p = FALSE;
7800
7801 DEBUG(D_expand)
7802 DEBUG(D_noutf8)
7803 {
7804 debug_printf_indent("|--expanding: %.*s\n", (int)(s - string), string);
7805 debug_printf_indent("%sresult: %s\n",
7806 skipping ? "|-----" : "\\_____", yield->s);
7807 if (skipping)
7808 debug_printf_indent("\\___skipping: result is not used\n");
7809 }
7810 else
7811 {
7812 debug_printf_indent(UTF8_VERT_RIGHT UTF8_HORIZ UTF8_HORIZ
7813 "expanding: %.*s\n",
7814 (int)(s - string), string);
7815 debug_printf_indent("%s"
7816 UTF8_HORIZ UTF8_HORIZ UTF8_HORIZ UTF8_HORIZ UTF8_HORIZ
7817 "result: %s\n",
7818 skipping ? UTF8_VERT_RIGHT : UTF8_UP_RIGHT,
7819 yield->s);
7820 if (skipping)
7821 debug_printf_indent(UTF8_UP_RIGHT UTF8_HORIZ UTF8_HORIZ UTF8_HORIZ
7822 "skipping: result is not used\n");
7823 }
7824 expand_level--;
7825 return yield->s;
7826
7827 /* This is the failure exit: easiest to program with a goto. We still need
7828 to update the pointer to the terminator, for cases of nested calls with "fail".
7829 */
7830
7831 EXPAND_FAILED_CURLY:
7832 if (malformed_header)
7833 expand_string_message =
7834 US"missing or misplaced { or } - could be header name not terminated by colon";
7835
7836 else if (!expand_string_message || !*expand_string_message)
7837 expand_string_message = US"missing or misplaced { or }";
7838
7839 /* At one point, Exim reset the store to yield (if yield was not NULL), but
7840 that is a bad idea, because expand_string_message is in dynamic store. */
7841
7842 EXPAND_FAILED:
7843 if (left) *left = s;
7844 DEBUG(D_expand)
7845 DEBUG(D_noutf8)
7846 {
7847 debug_printf_indent("|failed to expand: %s\n", string);
7848 debug_printf_indent("%serror message: %s\n",
7849 f.expand_string_forcedfail ? "|---" : "\\___", expand_string_message);
7850 if (f.expand_string_forcedfail)
7851 debug_printf_indent("\\failure was forced\n");
7852 }
7853 else
7854 {
7855 debug_printf_indent(UTF8_VERT_RIGHT "failed to expand: %s\n",
7856 string);
7857 debug_printf_indent("%s" UTF8_HORIZ UTF8_HORIZ UTF8_HORIZ
7858 "error message: %s\n",
7859 f.expand_string_forcedfail ? UTF8_VERT_RIGHT : UTF8_UP_RIGHT,
7860 expand_string_message);
7861 if (f.expand_string_forcedfail)
7862 debug_printf_indent(UTF8_UP_RIGHT "failure was forced\n");
7863 }
7864 if (resetok_p && !resetok) *resetok_p = FALSE;
7865 expand_level--;
7866 return NULL;
7867 }
7868
7869
7870 /* This is the external function call. Do a quick check for any expansion
7871 metacharacters, and if there are none, just return the input string.
7872
7873 Argument: the string to be expanded
7874 Returns: the expanded string, or NULL if expansion failed; if failure was
7875 due to a lookup deferring, search_find_defer will be TRUE
7876 */
7877
7878 const uschar *
7879 expand_cstring(const uschar * string)
7880 {
7881 if (Ustrpbrk(string, "$\\") != NULL)
7882 {
7883 int old_pool = store_pool;
7884 uschar * s;
7885
7886 f.search_find_defer = FALSE;
7887 malformed_header = FALSE;
7888 store_pool = POOL_MAIN;
7889 s = expand_string_internal(string, FALSE, NULL, FALSE, TRUE, NULL);
7890 store_pool = old_pool;
7891 return s;
7892 }
7893 return string;
7894 }
7895
7896
7897 uschar *
7898 expand_string(uschar * string)
7899 {
7900 return US expand_cstring(CUS string);
7901 }
7902
7903
7904
7905
7906
7907 /*************************************************
7908 * Expand and copy *
7909 *************************************************/
7910
7911 /* Now and again we want to expand a string and be sure that the result is in a
7912 new bit of store. This function does that.
7913 Since we know it has been copied, the de-const cast is safe.
7914
7915 Argument: the string to be expanded
7916 Returns: the expanded string, always in a new bit of store, or NULL
7917 */
7918
7919 uschar *
7920 expand_string_copy(const uschar *string)
7921 {
7922 const uschar *yield = expand_cstring(string);
7923 if (yield == string) yield = string_copy(string);
7924 return US yield;
7925 }
7926
7927
7928
7929 /*************************************************
7930 * Expand and interpret as an integer *
7931 *************************************************/
7932
7933 /* Expand a string, and convert the result into an integer.
7934
7935 Arguments:
7936 string the string to be expanded
7937 isplus TRUE if a non-negative number is expected
7938
7939 Returns: the integer value, or
7940 -1 for an expansion error ) in both cases, message in
7941 -2 for an integer interpretation error ) expand_string_message
7942 expand_string_message is set NULL for an OK integer
7943 */
7944
7945 int_eximarith_t
7946 expand_string_integer(uschar *string, BOOL isplus)
7947 {
7948 return expanded_string_integer(expand_string(string), isplus);
7949 }
7950
7951
7952 /*************************************************
7953 * Interpret string as an integer *
7954 *************************************************/
7955
7956 /* Convert a string (that has already been expanded) into an integer.
7957
7958 This function is used inside the expansion code.
7959
7960 Arguments:
7961 s the string to be expanded
7962 isplus TRUE if a non-negative number is expected
7963
7964 Returns: the integer value, or
7965 -1 if string is NULL (which implies an expansion error)
7966 -2 for an integer interpretation error
7967 expand_string_message is set NULL for an OK integer
7968 */
7969
7970 static int_eximarith_t
7971 expanded_string_integer(const uschar *s, BOOL isplus)
7972 {
7973 int_eximarith_t value;
7974 uschar *msg = US"invalid integer \"%s\"";
7975 uschar *endptr;
7976
7977 /* If expansion failed, expand_string_message will be set. */
7978
7979 if (s == NULL) return -1;
7980
7981 /* On an overflow, strtol() returns LONG_MAX or LONG_MIN, and sets errno
7982 to ERANGE. When there isn't an overflow, errno is not changed, at least on some
7983 systems, so we set it zero ourselves. */
7984
7985 errno = 0;
7986 expand_string_message = NULL; /* Indicates no error */
7987
7988 /* Before Exim 4.64, strings consisting entirely of whitespace compared
7989 equal to 0. Unfortunately, people actually relied upon that, so preserve
7990 the behaviour explicitly. Stripping leading whitespace is a harmless
7991 noop change since strtol skips it anyway (provided that there is a number
7992 to find at all). */
7993 if (isspace(*s))
7994 {
7995 while (isspace(*s)) ++s;
7996 if (*s == '\0')
7997 {
7998 DEBUG(D_expand)
7999 debug_printf_indent("treating blank string as number 0\n");
8000 return 0;
8001 }
8002 }
8003
8004 value = strtoll(CS s, CSS &endptr, 10);
8005
8006 if (endptr == s)
8007 {
8008 msg = US"integer expected but \"%s\" found";
8009 }
8010 else if (value < 0 && isplus)
8011 {
8012 msg = US"non-negative integer expected but \"%s\" found";
8013 }
8014 else
8015 {
8016 switch (tolower(*endptr))
8017 {
8018 default:
8019 break;
8020 case 'k':
8021 if (value > EXIM_ARITH_MAX/1024 || value < EXIM_ARITH_MIN/1024) errno = ERANGE;
8022 else value *= 1024;
8023 endptr++;
8024 break;
8025 case 'm':
8026 if (value > EXIM_ARITH_MAX/(1024*1024) || value < EXIM_ARITH_MIN/(1024*1024)) errno = ERANGE;
8027 else value *= 1024*1024;
8028 endptr++;
8029 break;
8030 case 'g':
8031 if (value > EXIM_ARITH_MAX/(1024*1024*1024) || value < EXIM_ARITH_MIN/(1024*1024*1024)) errno = ERANGE;
8032 else value *= 1024*1024*1024;
8033 endptr++;
8034 break;
8035 }
8036 if (errno == ERANGE)
8037 msg = US"absolute value of integer \"%s\" is too large (overflow)";
8038 else
8039 {
8040 while (isspace(*endptr)) endptr++;
8041 if (*endptr == 0) return value;
8042 }
8043 }
8044
8045 expand_string_message = string_sprintf(CS msg, s);
8046 return -2;
8047 }
8048
8049
8050 /* These values are usually fixed boolean values, but they are permitted to be
8051 expanded strings.
8052
8053 Arguments:
8054 addr address being routed
8055 mtype the module type
8056 mname the module name
8057 dbg_opt debug selectors
8058 oname the option name
8059 bvalue the router's boolean value
8060 svalue the router's string value
8061 rvalue where to put the returned value
8062
8063 Returns: OK value placed in rvalue
8064 DEFER expansion failed
8065 */
8066
8067 int
8068 exp_bool(address_item *addr,
8069 uschar *mtype, uschar *mname, unsigned dbg_opt,
8070 uschar *oname, BOOL bvalue,
8071 uschar *svalue, BOOL *rvalue)
8072 {
8073 uschar *expanded;
8074 if (svalue == NULL) { *rvalue = bvalue; return OK; }
8075
8076 expanded = expand_string(svalue);
8077 if (expanded == NULL)
8078 {
8079 if (f.expand_string_forcedfail)
8080 {
8081 DEBUG(dbg_opt) debug_printf("expansion of \"%s\" forced failure\n", oname);
8082 *rvalue = bvalue;
8083 return OK;
8084 }
8085 addr->message = string_sprintf("failed to expand \"%s\" in %s %s: %s",
8086 oname, mname, mtype, expand_string_message);
8087 DEBUG(dbg_opt) debug_printf("%s\n", addr->message);
8088 return DEFER;
8089 }
8090
8091 DEBUG(dbg_opt) debug_printf("expansion of \"%s\" yields \"%s\"\n", oname,
8092 expanded);
8093
8094 if (strcmpic(expanded, US"true") == 0 || strcmpic(expanded, US"yes") == 0)
8095 *rvalue = TRUE;
8096 else if (strcmpic(expanded, US"false") == 0 || strcmpic(expanded, US"no") == 0)
8097 *rvalue = FALSE;
8098 else
8099 {
8100 addr->message = string_sprintf("\"%s\" is not a valid value for the "
8101 "\"%s\" option in the %s %s", expanded, oname, mname, mtype);
8102 return DEFER;
8103 }
8104
8105 return OK;
8106 }
8107
8108
8109
8110 /* Avoid potentially exposing a password in a string about to be logged */
8111
8112 uschar *
8113 expand_hide_passwords(uschar * s)
8114 {
8115 return ( ( Ustrstr(s, "failed to expand") != NULL
8116 || Ustrstr(s, "expansion of ") != NULL
8117 )
8118 && ( Ustrstr(s, "mysql") != NULL
8119 || Ustrstr(s, "pgsql") != NULL
8120 || Ustrstr(s, "redis") != NULL
8121 || Ustrstr(s, "sqlite") != NULL
8122 || Ustrstr(s, "ldap:") != NULL
8123 || Ustrstr(s, "ldaps:") != NULL
8124 || Ustrstr(s, "ldapi:") != NULL
8125 || Ustrstr(s, "ldapdn:") != NULL
8126 || Ustrstr(s, "ldapm:") != NULL
8127 ) )
8128 ? US"Temporary internal error" : s;
8129 }
8130
8131
8132 /* Read given named file into big_buffer. Use for keying material etc.
8133 The content will have an ascii NUL appended.
8134
8135 Arguments:
8136 filename as it says
8137
8138 Return: pointer to buffer, or NULL on error.
8139 */
8140
8141 uschar *
8142 expand_file_big_buffer(const uschar * filename)
8143 {
8144 int fd, off = 0, len;
8145
8146 if ((fd = open(CS filename, O_RDONLY)) < 0)
8147 {
8148 log_write(0, LOG_MAIN | LOG_PANIC, "unable to open file for reading: %s",
8149 filename);
8150 return NULL;
8151 }
8152
8153 do
8154 {
8155 if ((len = read(fd, big_buffer + off, big_buffer_size - 2 - off)) < 0)
8156 {
8157 (void) close(fd);
8158 log_write(0, LOG_MAIN|LOG_PANIC, "unable to read file: %s", filename);
8159 return NULL;
8160 }
8161 off += len;
8162 }
8163 while (len > 0);
8164
8165 (void) close(fd);
8166 big_buffer[off] = '\0';
8167 return big_buffer;
8168 }
8169
8170
8171
8172 /*************************************************
8173 * Error-checking for testsuite *
8174 *************************************************/
8175 typedef struct {
8176 uschar * region_start;
8177 uschar * region_end;
8178 const uschar *var_name;
8179 const uschar *var_data;
8180 } err_ctx;
8181
8182 static void
8183 assert_variable_notin(uschar * var_name, uschar * var_data, void * ctx)
8184 {
8185 err_ctx * e = ctx;
8186 if (var_data >= e->region_start && var_data < e->region_end)
8187 {
8188 e->var_name = CUS var_name;
8189 e->var_data = CUS var_data;
8190 }
8191 }
8192
8193 void
8194 assert_no_variables(void * ptr, int len, const char * filename, int linenumber)
8195 {
8196 err_ctx e = { .region_start = ptr, .region_end = US ptr + len,
8197 .var_name = NULL, .var_data = NULL };
8198
8199 /* check acl_ variables */
8200 tree_walk(acl_var_c, assert_variable_notin, &e);
8201 tree_walk(acl_var_m, assert_variable_notin, &e);
8202
8203 /* check auth<n> variables */
8204 for (int i = 0; i < AUTH_VARS; i++) if (auth_vars[i])
8205 assert_variable_notin(US"auth<n>", auth_vars[i], &e);
8206
8207 /* check regex<n> variables */
8208 for (int i = 0; i < REGEX_VARS; i++) if (regex_vars[i])
8209 assert_variable_notin(US"regex<n>", regex_vars[i], &e);
8210
8211 /* check known-name variables */
8212 for (var_entry * v = var_table; v < var_table + var_table_size; v++)
8213 if (v->type == vtype_stringptr)
8214 assert_variable_notin(US v->name, *(USS v->value), &e);
8215
8216 /* check dns and address trees */
8217 tree_walk(tree_dns_fails, assert_variable_notin, &e);
8218 tree_walk(tree_duplicates, assert_variable_notin, &e);
8219 tree_walk(tree_nonrecipients, assert_variable_notin, &e);
8220 tree_walk(tree_unusable, assert_variable_notin, &e);
8221
8222 if (e.var_name)
8223 log_write(0, LOG_MAIN|LOG_PANIC_DIE,
8224 "live variable '%s' destroyed by reset_store at %s:%d\n- value '%.64s'",
8225 e.var_name, filename, linenumber, e.var_data);
8226 }
8227
8228
8229
8230 /*************************************************
8231 **************************************************
8232 * Stand-alone test program *
8233 **************************************************
8234 *************************************************/
8235
8236 #ifdef STAND_ALONE
8237
8238
8239 BOOL
8240 regex_match_and_setup(const pcre *re, uschar *subject, int options, int setup)
8241 {
8242 int ovector[3*(EXPAND_MAXN+1)];
8243 int n = pcre_exec(re, NULL, subject, Ustrlen(subject), 0, PCRE_EOPT|options,
8244 ovector, nelem(ovector));
8245 BOOL yield = n >= 0;
8246 if (n == 0) n = EXPAND_MAXN + 1;
8247 if (yield)
8248 {
8249 expand_nmax = setup < 0 ? 0 : setup + 1;
8250 for (int nn = setup < 0 ? 0 : 2; nn < n*2; nn += 2)
8251 {
8252 expand_nstring[expand_nmax] = subject + ovector[nn];
8253 expand_nlength[expand_nmax++] = ovector[nn+1] - ovector[nn];
8254 }
8255 expand_nmax--;
8256 }
8257 return yield;
8258 }
8259
8260
8261 int main(int argc, uschar **argv)
8262 {
8263 uschar buffer[1024];
8264
8265 debug_selector = D_v;
8266 debug_file = stderr;
8267 debug_fd = fileno(debug_file);
8268 big_buffer = malloc(big_buffer_size);
8269
8270 for (int i = 1; i < argc; i++)
8271 {
8272 if (argv[i][0] == '+')
8273 {
8274 debug_trace_memory = 2;
8275 argv[i]++;
8276 }
8277 if (isdigit(argv[i][0]))
8278 debug_selector = Ustrtol(argv[i], NULL, 0);
8279 else
8280 if (Ustrspn(argv[i], "abcdefghijklmnopqrtsuvwxyz0123456789-.:/") ==
8281 Ustrlen(argv[i]))
8282 {
8283 #ifdef LOOKUP_LDAP
8284 eldap_default_servers = argv[i];
8285 #endif
8286 #ifdef LOOKUP_MYSQL
8287 mysql_servers = argv[i];
8288 #endif
8289 #ifdef LOOKUP_PGSQL
8290 pgsql_servers = argv[i];
8291 #endif
8292 #ifdef LOOKUP_REDIS
8293 redis_servers = argv[i];
8294 #endif
8295 }
8296 #ifdef EXIM_PERL
8297 else opt_perl_startup = argv[i];
8298 #endif
8299 }
8300
8301 printf("Testing string expansion: debug_level = %d\n\n", debug_level);
8302
8303 expand_nstring[1] = US"string 1....";
8304 expand_nlength[1] = 8;
8305 expand_nmax = 1;
8306
8307 #ifdef EXIM_PERL
8308 if (opt_perl_startup != NULL)
8309 {
8310 uschar *errstr;
8311 printf("Starting Perl interpreter\n");
8312 errstr = init_perl(opt_perl_startup);
8313 if (errstr != NULL)
8314 {
8315 printf("** error in perl_startup code: %s\n", errstr);
8316 return EXIT_FAILURE;
8317 }
8318 }
8319 #endif /* EXIM_PERL */
8320
8321 while (fgets(buffer, sizeof(buffer), stdin) != NULL)
8322 {
8323 void *reset_point = store_get(0);
8324 uschar *yield = expand_string(buffer);
8325 if (yield != NULL)
8326 {
8327 printf("%s\n", yield);
8328 store_reset(reset_point);
8329 }
8330 else
8331 {
8332 if (f.search_find_defer) printf("search_find deferred\n");
8333 printf("Failed: %s\n", expand_string_message);
8334 if (f.expand_string_forcedfail) printf("Forced failure\n");
8335 printf("\n");
8336 }
8337 }
8338
8339 search_tidyup();
8340
8341 return 0;
8342 }
8343
8344 #endif
8345
8346 /* vi: aw ai sw=2
8347 */
8348 /* End of expand.c */