MacOS: probe for a usable TFO system configuration
[exim.git] / src / src / acl.c
CommitLineData
059ec3d9
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1/*************************************************
2* Exim - an Internet mail transport agent *
3*************************************************/
4
f9ba5e22 5/* Copyright (c) University of Cambridge 1995 - 2018 */
059ec3d9
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6/* See the file NOTICE for conditions of use and distribution. */
7
8/* Code for handling Access Control Lists (ACLs) */
9
10#include "exim.h"
11
12
13/* Default callout timeout */
14
15#define CALLOUT_TIMEOUT_DEFAULT 30
16
17/* ACL verb codes - keep in step with the table of verbs that follows */
18
19enum { ACL_ACCEPT, ACL_DEFER, ACL_DENY, ACL_DISCARD, ACL_DROP, ACL_REQUIRE,
20 ACL_WARN };
21
22/* ACL verbs */
23
f9d04f08 24static uschar *verbs[] = {
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25 [ACL_ACCEPT] = US"accept",
26 [ACL_DEFER] = US"defer",
27 [ACL_DENY] = US"deny",
28 [ACL_DISCARD] = US"discard",
29 [ACL_DROP] = US"drop",
30 [ACL_REQUIRE] = US"require",
31 [ACL_WARN] = US"warn"
32};
059ec3d9 33
4e88a19f
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34/* For each verb, the conditions for which "message" or "log_message" are used
35are held as a bitmap. This is to avoid expanding the strings unnecessarily. For
36"accept", the FAIL case is used only after "endpass", but that is selected in
37the code. */
38
39static int msgcond[] = {
e3a69b62
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40 [ACL_ACCEPT] = BIT(OK) | BIT(FAIL) | BIT(FAIL_DROP),
41 [ACL_DEFER] = BIT(OK),
42 [ACL_DENY] = BIT(OK),
43 [ACL_DISCARD] = BIT(OK) | BIT(FAIL) | BIT(FAIL_DROP),
44 [ACL_DROP] = BIT(OK),
45 [ACL_REQUIRE] = BIT(FAIL) | BIT(FAIL_DROP),
46 [ACL_WARN] = BIT(OK)
4e88a19f 47 };
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48
49/* ACL condition and modifier codes - keep in step with the table that
2d009132 50follows.
71fafd95 51down. */
059ec3d9 52
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53enum { ACLC_ACL,
54 ACLC_ADD_HEADER,
55 ACLC_AUTHENTICATED,
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56#ifdef EXPERIMENTAL_BRIGHTMAIL
57 ACLC_BMI_OPTIN,
58#endif
71fafd95 59 ACLC_CONDITION,
c3611384 60 ACLC_CONTINUE,
71fafd95 61 ACLC_CONTROL,
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62#ifdef EXPERIMENTAL_DCC
63 ACLC_DCC,
64#endif
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65#ifdef WITH_CONTENT_SCAN
66 ACLC_DECODE,
67#endif
68 ACLC_DELAY,
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69#ifndef DISABLE_DKIM
70 ACLC_DKIM_SIGNER,
71 ACLC_DKIM_STATUS,
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72#endif
73#ifdef EXPERIMENTAL_DMARC
74 ACLC_DMARC_STATUS,
8e669ac1 75#endif
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76 ACLC_DNSLISTS,
77 ACLC_DOMAINS,
78 ACLC_ENCRYPTED,
79 ACLC_ENDPASS,
80 ACLC_HOSTS,
81 ACLC_LOCAL_PARTS,
82 ACLC_LOG_MESSAGE,
6ea85e9a 83 ACLC_LOG_REJECT_TARGET,
71fafd95 84 ACLC_LOGWRITE,
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85#ifdef WITH_CONTENT_SCAN
86 ACLC_MALWARE,
87#endif
88 ACLC_MESSAGE,
89#ifdef WITH_CONTENT_SCAN
90 ACLC_MIME_REGEX,
91#endif
b0b9dbb1 92 ACLC_QUEUE,
870f6ba8 93 ACLC_RATELIMIT,
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94 ACLC_RECIPIENTS,
95#ifdef WITH_CONTENT_SCAN
96 ACLC_REGEX,
97#endif
e7568d51 98 ACLC_REMOVE_HEADER,
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99 ACLC_SENDER_DOMAINS,
100 ACLC_SENDERS,
101 ACLC_SET,
8523533c 102#ifdef WITH_CONTENT_SCAN
8e669ac1 103 ACLC_SPAM,
8523533c 104#endif
7952eef9 105#ifdef SUPPORT_SPF
8523533c 106 ACLC_SPF,
65a7d8c3 107 ACLC_SPF_GUESS,
8523533c 108#endif
b0019c78 109 ACLC_UDPSEND,
8523533c 110 ACLC_VERIFY };
059ec3d9 111
c3611384 112/* ACL conditions/modifiers: "delay", "control", "continue", "endpass",
b0b9dbb1 113"message", "log_message", "log_reject_target", "logwrite", "queue" and "set" are
c3611384
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114modifiers that look like conditions but always return TRUE. They are used for
115their side effects. */
059ec3d9 116
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117typedef struct condition_def {
118 uschar *name;
c5fcb476 119
2d009132 120/* Flag to indicate the condition/modifier has a string expansion done
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121at the outer level. In the other cases, expansion already occurs in the
122checking functions. */
2d009132 123 BOOL expand_at_top:1;
059ec3d9 124
2d009132 125 BOOL is_modifier:1;
059ec3d9 126
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127/* Bit map vector of which conditions and modifiers are not allowed at certain
128times. For each condition and modifier, there's a bitmap of dis-allowed times.
129For some, it is easier to specify the negation of a small number of allowed
130times. */
131 unsigned forbids;
132
133} condition_def;
134
135static condition_def conditions[] = {
f2ed27cf 136 [ACLC_ACL] = { US"acl", FALSE, FALSE, 0 },
2d009132 137
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138 [ACLC_ADD_HEADER] = { US"add_header", TRUE, TRUE,
139 (unsigned int)
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140 ~(ACL_BIT_MAIL | ACL_BIT_RCPT |
141 ACL_BIT_PREDATA | ACL_BIT_DATA |
2d009132 142#ifndef DISABLE_PRDR
e3a69b62 143 ACL_BIT_PRDR |
2d009132 144#endif
e3a69b62
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145 ACL_BIT_MIME | ACL_BIT_NOTSMTP |
146 ACL_BIT_DKIM |
147 ACL_BIT_NOTSMTP_START),
2d009132 148 },
059ec3d9 149
f2ed27cf 150 [ACLC_AUTHENTICATED] = { US"authenticated", FALSE, FALSE,
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151 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START |
152 ACL_BIT_CONNECT | ACL_BIT_HELO,
2d009132 153 },
8523533c 154#ifdef EXPERIMENTAL_BRIGHTMAIL
f2ed27cf 155 [ACLC_BMI_OPTIN] = { US"bmi_optin", TRUE, TRUE,
e3a69b62
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156 ACL_BIT_AUTH |
157 ACL_BIT_CONNECT | ACL_BIT_HELO |
158 ACL_BIT_DATA | ACL_BIT_MIME |
2d009132 159# ifndef DISABLE_PRDR
e3a69b62 160 ACL_BIT_PRDR |
2d009132 161# endif
e3a69b62
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162 ACL_BIT_ETRN | ACL_BIT_EXPN |
163 ACL_BIT_MAILAUTH |
164 ACL_BIT_MAIL | ACL_BIT_STARTTLS |
165 ACL_BIT_VRFY | ACL_BIT_PREDATA |
166 ACL_BIT_NOTSMTP_START,
2d009132 167 },
8e669ac1 168#endif
f2ed27cf
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169 [ACLC_CONDITION] = { US"condition", TRUE, FALSE, 0 },
170 [ACLC_CONTINUE] = { US"continue", TRUE, TRUE, 0 },
2d009132
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171
172 /* Certain types of control are always allowed, so we let it through
173 always and check in the control processing itself. */
f2ed27cf 174 [ACLC_CONTROL] = { US"control", TRUE, TRUE, 0 },
2d009132 175
6a8f9482 176#ifdef EXPERIMENTAL_DCC
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177 [ACLC_DCC] = { US"dcc", TRUE, FALSE,
178 (unsigned int)
e3a69b62 179 ~(ACL_BIT_DATA |
2d009132 180# ifndef DISABLE_PRDR
e3a69b62 181 ACL_BIT_PRDR |
2d009132 182# endif
e3a69b62 183 ACL_BIT_NOTSMTP),
2d009132 184 },
6a8f9482 185#endif
8523533c 186#ifdef WITH_CONTENT_SCAN
e3a69b62 187 [ACLC_DECODE] = { US"decode", TRUE, FALSE, (unsigned int) ~ACL_BIT_MIME },
2d009132 188
8523533c 189#endif
e3a69b62 190 [ACLC_DELAY] = { US"delay", TRUE, TRUE, ACL_BIT_NOTQUIT },
80a47a2c 191#ifndef DISABLE_DKIM
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192 [ACLC_DKIM_SIGNER] = { US"dkim_signers", TRUE, FALSE, (unsigned int) ~ACL_BIT_DKIM },
193 [ACLC_DKIM_STATUS] = { US"dkim_status", TRUE, FALSE, (unsigned int) ~ACL_BIT_DKIM },
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194#endif
195#ifdef EXPERIMENTAL_DMARC
e3a69b62 196 [ACLC_DMARC_STATUS] = { US"dmarc_status", TRUE, FALSE, (unsigned int) ~ACL_BIT_DATA },
8523533c 197#endif
059ec3d9 198
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199 /* Explicit key lookups can be made in non-smtp ACLs so pass
200 always and check in the verify processing itself. */
f2ed27cf 201 [ACLC_DNSLISTS] = { US"dnslists", TRUE, FALSE, 0 },
c3611384 202
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203 [ACLC_DOMAINS] = { US"domains", FALSE, FALSE,
204 (unsigned int)
e3a69b62 205 ~(ACL_BIT_RCPT | ACL_BIT_VRFY
2d009132 206#ifndef DISABLE_PRDR
e3a69b62 207 |ACL_BIT_PRDR
2d009132
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208#endif
209 ),
210 },
f2ed27cf 211 [ACLC_ENCRYPTED] = { US"encrypted", FALSE, FALSE,
e3a69b62
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212 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START |
213 ACL_BIT_HELO,
2d009132 214 },
8e669ac1 215
f2ed27cf 216 [ACLC_ENDPASS] = { US"endpass", TRUE, TRUE, 0 },
8e669ac1 217
f2ed27cf 218 [ACLC_HOSTS] = { US"hosts", FALSE, FALSE,
e3a69b62 219 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START,
2d009132 220 },
f2ed27cf
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221 [ACLC_LOCAL_PARTS] = { US"local_parts", FALSE, FALSE,
222 (unsigned int)
e3a69b62 223 ~(ACL_BIT_RCPT | ACL_BIT_VRFY
f2ed27cf 224#ifndef DISABLE_PRDR
e3a69b62 225 | ACL_BIT_PRDR
f2ed27cf 226#endif
2d009132
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227 ),
228 },
6a8f9482 229
f2ed27cf 230 [ACLC_LOG_MESSAGE] = { US"log_message", TRUE, TRUE, 0 },
e3a69b62 231 [ACLC_LOG_REJECT_TARGET] = { US"log_reject_target", TRUE, TRUE, 0 },
f2ed27cf 232 [ACLC_LOGWRITE] = { US"logwrite", TRUE, TRUE, 0 },
8523533c 233
2d009132 234#ifdef WITH_CONTENT_SCAN
f2ed27cf
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235 [ACLC_MALWARE] = { US"malware", TRUE, FALSE,
236 (unsigned int)
e3a69b62 237 ~(ACL_BIT_DATA |
2d009132 238# ifndef DISABLE_PRDR
e3a69b62 239 ACL_BIT_PRDR |
2d009132 240# endif
e3a69b62 241 ACL_BIT_NOTSMTP),
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242 },
243#endif
8e669ac1 244
f2ed27cf 245 [ACLC_MESSAGE] = { US"message", TRUE, TRUE, 0 },
2d009132 246#ifdef WITH_CONTENT_SCAN
e3a69b62 247 [ACLC_MIME_REGEX] = { US"mime_regex", TRUE, FALSE, (unsigned int) ~ACL_BIT_MIME },
2d009132 248#endif
84330b7b 249
f2ed27cf 250 [ACLC_QUEUE] = { US"queue", TRUE, TRUE,
e3a69b62 251 ACL_BIT_NOTSMTP |
2d009132 252#ifndef DISABLE_PRDR
e3a69b62 253 ACL_BIT_PRDR |
2d009132 254#endif
e3a69b62 255 ACL_BIT_DATA,
2d009132 256 },
fb2274d4 257
f2ed27cf 258 [ACLC_RATELIMIT] = { US"ratelimit", TRUE, FALSE, 0 },
e3a69b62 259 [ACLC_RECIPIENTS] = { US"recipients", FALSE, FALSE, (unsigned int) ~ACL_BIT_RCPT },
4840604e 260
2d009132 261#ifdef WITH_CONTENT_SCAN
f2ed27cf
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262 [ACLC_REGEX] = { US"regex", TRUE, FALSE,
263 (unsigned int)
e3a69b62 264 ~(ACL_BIT_DATA |
2d009132 265# ifndef DISABLE_PRDR
e3a69b62 266 ACL_BIT_PRDR |
2d009132 267# endif
e3a69b62
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268 ACL_BIT_NOTSMTP |
269 ACL_BIT_MIME),
2d009132 270 },
379ba7d0 271
2d009132 272#endif
f2ed27cf
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273 [ACLC_REMOVE_HEADER] = { US"remove_header", TRUE, TRUE,
274 (unsigned int)
e3a69b62
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275 ~(ACL_BIT_MAIL|ACL_BIT_RCPT |
276 ACL_BIT_PREDATA | ACL_BIT_DATA |
2d009132 277#ifndef DISABLE_PRDR
e3a69b62 278 ACL_BIT_PRDR |
2d009132 279#endif
e3a69b62
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280 ACL_BIT_MIME | ACL_BIT_NOTSMTP |
281 ACL_BIT_NOTSMTP_START),
2d009132 282 },
f2ed27cf 283 [ACLC_SENDER_DOMAINS] = { US"sender_domains", FALSE, FALSE,
e3a69b62
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284 ACL_BIT_AUTH | ACL_BIT_CONNECT |
285 ACL_BIT_HELO |
286 ACL_BIT_MAILAUTH | ACL_BIT_QUIT |
287 ACL_BIT_ETRN | ACL_BIT_EXPN |
288 ACL_BIT_STARTTLS | ACL_BIT_VRFY,
2d009132 289 },
f2ed27cf 290 [ACLC_SENDERS] = { US"senders", FALSE, FALSE,
e3a69b62
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291 ACL_BIT_AUTH | ACL_BIT_CONNECT |
292 ACL_BIT_HELO |
293 ACL_BIT_MAILAUTH | ACL_BIT_QUIT |
294 ACL_BIT_ETRN | ACL_BIT_EXPN |
295 ACL_BIT_STARTTLS | ACL_BIT_VRFY,
2d009132 296 },
65a7d8c3 297
f2ed27cf 298 [ACLC_SET] = { US"set", TRUE, TRUE, 0 },
8523533c 299
2d009132 300#ifdef WITH_CONTENT_SCAN
f2ed27cf 301 [ACLC_SPAM] = { US"spam", TRUE, FALSE,
e3a69b62 302 (unsigned int) ~(ACL_BIT_DATA |
2d009132 303# ifndef DISABLE_PRDR
e3a69b62 304 ACL_BIT_PRDR |
2d009132 305# endif
e3a69b62 306 ACL_BIT_NOTSMTP),
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307 },
308#endif
7952eef9 309#ifdef SUPPORT_SPF
f2ed27cf 310 [ACLC_SPF] = { US"spf", TRUE, FALSE,
e3a69b62
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311 ACL_BIT_AUTH | ACL_BIT_CONNECT |
312 ACL_BIT_HELO | ACL_BIT_MAILAUTH |
313 ACL_BIT_ETRN | ACL_BIT_EXPN |
314 ACL_BIT_STARTTLS | ACL_BIT_VRFY |
315 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START,
2d009132 316 },
6e1a8743 317 [ACLC_SPF_GUESS] = { US"spf_guess", TRUE, FALSE,
e3a69b62
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318 ACL_BIT_AUTH | ACL_BIT_CONNECT |
319 ACL_BIT_HELO | ACL_BIT_MAILAUTH |
320 ACL_BIT_ETRN | ACL_BIT_EXPN |
321 ACL_BIT_STARTTLS | ACL_BIT_VRFY |
322 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START,
2d009132
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323 },
324#endif
f2ed27cf 325 [ACLC_UDPSEND] = { US"udpsend", TRUE, TRUE, 0 },
b0019c78 326
059ec3d9
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327 /* Certain types of verify are always allowed, so we let it through
328 always and check in the verify function itself */
f2ed27cf 329 [ACLC_VERIFY] = { US"verify", TRUE, FALSE, 0 },
059ec3d9
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330};
331
332
2d009132 333
d7bed771
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334/* Return values from decode_control(); used as index so keep in step
335with the controls_list table that follows! */
c46782ef 336
d7bed771
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337enum {
338 CONTROL_AUTH_UNADVERTISED,
3c8b3577 339#ifdef EXPERIMENTAL_BRIGHTMAIL
d7bed771 340 CONTROL_BMI_RUN,
3c8b3577 341#endif
d7bed771
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342 CONTROL_CASEFUL_LOCAL_PART,
343 CONTROL_CASELOWER_LOCAL_PART,
344 CONTROL_CUTTHROUGH_DELIVERY,
345 CONTROL_DEBUG,
3c8b3577 346#ifndef DISABLE_DKIM
d7bed771 347 CONTROL_DKIM_VERIFY,
3c8b3577 348#endif
3c8b3577 349#ifdef EXPERIMENTAL_DMARC
d7bed771
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350 CONTROL_DMARC_VERIFY,
351 CONTROL_DMARC_FORENSIC,
3c8b3577 352#endif
d7bed771
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353 CONTROL_DSCP,
354 CONTROL_ENFORCE_SYNC,
355 CONTROL_ERROR, /* pseudo-value for decode errors */
356 CONTROL_FAKEDEFER,
357 CONTROL_FAKEREJECT,
358 CONTROL_FREEZE,
4840604e 359
d7bed771
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360 CONTROL_NO_CALLOUT_FLUSH,
361 CONTROL_NO_DELAY_FLUSH,
362 CONTROL_NO_ENFORCE_SYNC,
3c8b3577 363#ifdef WITH_CONTENT_SCAN
d7bed771 364 CONTROL_NO_MBOX_UNSPOOL,
3c8b3577 365#endif
d7bed771
JH
366 CONTROL_NO_MULTILINE,
367 CONTROL_NO_PIPELINING,
8523533c 368
d7bed771 369 CONTROL_QUEUE_ONLY,
8ac90765
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370#if defined(SUPPORT_TLS) && defined(EXPERIMENTAL_REQUIRETLS)
371 CONTROL_REQUIRETLS,
372#endif
d7bed771
JH
373 CONTROL_SUBMISSION,
374 CONTROL_SUPPRESS_LOCAL_FIXUPS,
8c5d388a 375#ifdef SUPPORT_I18N
d7bed771 376 CONTROL_UTF8_DOWNCONVERT,
3c8b3577 377#endif
d7bed771 378};
3c8b3577 379
4c590bd1 380
c5fcb476 381
d7bed771
JH
382/* Structure listing various control arguments, with their characteristics.
383For each control, there's a bitmap of dis-allowed times. For some, it is easier
384to specify the negation of a small number of allowed times. */
059ec3d9
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385
386typedef struct control_def {
d7bed771
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387 uschar *name;
388 BOOL has_option; /* Has /option(s) following */
389 unsigned forbids; /* bitmap of dis-allowed times */
059ec3d9
PH
390} control_def;
391
392static control_def controls_list[] = {
f2ed27cf
JH
393 /* name has_option forbids */
394[CONTROL_AUTH_UNADVERTISED] =
d7bed771 395 { US"allow_auth_unadvertised", FALSE,
f2ed27cf 396 (unsigned)
e3a69b62 397 ~(ACL_BIT_CONNECT | ACL_BIT_HELO)
d7bed771 398 },
8523533c 399#ifdef EXPERIMENTAL_BRIGHTMAIL
f2ed27cf
JH
400[CONTROL_BMI_RUN] =
401 { US"bmi_run", FALSE, 0 },
fb2274d4 402#endif
f2ed27cf 403[CONTROL_CASEFUL_LOCAL_PART] =
e3a69b62 404 { US"caseful_local_part", FALSE, (unsigned) ~ACL_BIT_RCPT },
f2ed27cf 405[CONTROL_CASELOWER_LOCAL_PART] =
e3a69b62 406 { US"caselower_local_part", FALSE, (unsigned) ~ACL_BIT_RCPT },
f2ed27cf
JH
407[CONTROL_CUTTHROUGH_DELIVERY] =
408 { US"cutthrough_delivery", TRUE, 0 },
409[CONTROL_DEBUG] =
410 { US"debug", TRUE, 0 },
d7bed771 411
80a47a2c 412#ifndef DISABLE_DKIM
f2ed27cf 413[CONTROL_DKIM_VERIFY] =
d7bed771 414 { US"dkim_disable_verify", FALSE,
e3a69b62 415 ACL_BIT_DATA | ACL_BIT_NOTSMTP |
d7bed771 416# ifndef DISABLE_PRDR
e3a69b62 417 ACL_BIT_PRDR |
d7bed771 418# endif
e3a69b62 419 ACL_BIT_NOTSMTP_START
d7bed771 420 },
4840604e 421#endif
d7bed771 422
4840604e 423#ifdef EXPERIMENTAL_DMARC
9904d08c 424[CONTROL_DMARC_VERIFY] =
d7bed771 425 { US"dmarc_disable_verify", FALSE,
e3a69b62 426 ACL_BIT_DATA | ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START
d7bed771 427 },
9904d08c 428[CONTROL_DMARC_FORENSIC] =
d7bed771 429 { US"dmarc_enable_forensic", FALSE,
e3a69b62 430 ACL_BIT_DATA | ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START
d7bed771
JH
431 },
432#endif
433
f2ed27cf 434[CONTROL_DSCP] =
d7bed771 435 { US"dscp", TRUE,
e3a69b62 436 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START | ACL_BIT_NOTQUIT
d7bed771 437 },
f2ed27cf 438[CONTROL_ENFORCE_SYNC] =
d7bed771 439 { US"enforce_sync", FALSE,
e3a69b62 440 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START
d7bed771
JH
441 },
442
443 /* Pseudo-value for decode errors */
f2ed27cf 444[CONTROL_ERROR] =
d7bed771
JH
445 { US"error", FALSE, 0 },
446
f2ed27cf 447[CONTROL_FAKEDEFER] =
d7bed771 448 { US"fakedefer", TRUE,
f2ed27cf 449 (unsigned)
e3a69b62
JH
450 ~(ACL_BIT_MAIL | ACL_BIT_RCPT |
451 ACL_BIT_PREDATA | ACL_BIT_DATA |
d7bed771 452#ifndef DISABLE_PRDR
e3a69b62 453 ACL_BIT_PRDR |
d7bed771 454#endif
e3a69b62 455 ACL_BIT_MIME)
d7bed771 456 },
f2ed27cf 457[CONTROL_FAKEREJECT] =
d7bed771 458 { US"fakereject", TRUE,
f2ed27cf 459 (unsigned)
e3a69b62
JH
460 ~(ACL_BIT_MAIL | ACL_BIT_RCPT |
461 ACL_BIT_PREDATA | ACL_BIT_DATA |
d7bed771 462#ifndef DISABLE_PRDR
e3a69b62 463 ACL_BIT_PRDR |
d7bed771 464#endif
e3a69b62 465 ACL_BIT_MIME)
d7bed771 466 },
f2ed27cf 467[CONTROL_FREEZE] =
d7bed771 468 { US"freeze", TRUE,
f2ed27cf 469 (unsigned)
e3a69b62
JH
470 ~(ACL_BIT_MAIL | ACL_BIT_RCPT |
471 ACL_BIT_PREDATA | ACL_BIT_DATA |
472 // ACL_BIT_PRDR| /* Not allow one user to freeze for all */
473 ACL_BIT_NOTSMTP | ACL_BIT_MIME)
d7bed771
JH
474 },
475
f2ed27cf 476[CONTROL_NO_CALLOUT_FLUSH] =
d7bed771 477 { US"no_callout_flush", FALSE,
e3a69b62 478 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START
d7bed771 479 },
f2ed27cf 480[CONTROL_NO_DELAY_FLUSH] =
d7bed771 481 { US"no_delay_flush", FALSE,
e3a69b62 482 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START
d7bed771
JH
483 },
484
f2ed27cf 485[CONTROL_NO_ENFORCE_SYNC] =
d7bed771 486 { US"no_enforce_sync", FALSE,
e3a69b62 487 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START
d7bed771 488 },
8523533c 489#ifdef WITH_CONTENT_SCAN
f2ed27cf 490[CONTROL_NO_MBOX_UNSPOOL] =
d7bed771 491 { US"no_mbox_unspool", FALSE,
f2ed27cf 492 (unsigned)
e3a69b62
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493 ~(ACL_BIT_MAIL | ACL_BIT_RCPT |
494 ACL_BIT_PREDATA | ACL_BIT_DATA |
495 // ACL_BIT_PRDR| /* Not allow one user to freeze for all */
496 ACL_BIT_MIME)
d7bed771
JH
497 },
498#endif
f2ed27cf 499[CONTROL_NO_MULTILINE] =
d7bed771 500 { US"no_multiline_responses", FALSE,
e3a69b62 501 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START
d7bed771 502 },
f2ed27cf 503[CONTROL_NO_PIPELINING] =
d7bed771 504 { US"no_pipelining", FALSE,
e3a69b62 505 ACL_BIT_NOTSMTP | ACL_BIT_NOTSMTP_START
d7bed771
JH
506 },
507
f2ed27cf 508[CONTROL_QUEUE_ONLY] =
d7bed771 509 { US"queue_only", FALSE,
f2ed27cf 510 (unsigned)
e3a69b62
JH
511 ~(ACL_BIT_MAIL | ACL_BIT_RCPT |
512 ACL_BIT_PREDATA | ACL_BIT_DATA |
513 // ACL_BIT_PRDR| /* Not allow one user to freeze for all */
514 ACL_BIT_NOTSMTP | ACL_BIT_MIME)
d7bed771 515 },
8ac90765
JH
516
517
518#if defined(SUPPORT_TLS) && defined(EXPERIMENTAL_REQUIRETLS)
519[CONTROL_REQUIRETLS] =
520 { US"requiretls", FALSE,
521 (unsigned)
522 ~(ACL_BIT_MAIL | ACL_BIT_RCPT | ACL_BIT_PREDATA |
523 ACL_BIT_DATA | ACL_BIT_MIME |
524 ACL_BIT_NOTSMTP)
525 },
526#endif
527
f2ed27cf 528[CONTROL_SUBMISSION] =
d7bed771 529 { US"submission", TRUE,
f2ed27cf 530 (unsigned)
e3a69b62 531 ~(ACL_BIT_MAIL | ACL_BIT_RCPT | ACL_BIT_PREDATA)
d7bed771 532 },
f2ed27cf 533[CONTROL_SUPPRESS_LOCAL_FIXUPS] =
d7bed771
JH
534 { US"suppress_local_fixups", FALSE,
535 (unsigned)
e3a69b62
JH
536 ~(ACL_BIT_MAIL | ACL_BIT_RCPT | ACL_BIT_PREDATA |
537 ACL_BIT_NOTSMTP_START)
d7bed771 538 },
8c5d388a 539#ifdef SUPPORT_I18N
f2ed27cf 540[CONTROL_UTF8_DOWNCONVERT] =
6741531c
JH
541 { US"utf8_downconvert", TRUE, (unsigned) ~(ACL_BIT_RCPT | ACL_BIT_VRFY)
542 }
3c8b3577 543#endif
d7bed771 544};
059ec3d9 545
e5a9dba6
PH
546/* Support data structures for Client SMTP Authorization. acl_verify_csa()
547caches its result in a tree to avoid repeated DNS queries. The result is an
548integer code which is used as an index into the following tables of
549explanatory strings and verification return codes. */
550
551static tree_node *csa_cache = NULL;
552
553enum { CSA_UNKNOWN, CSA_OK, CSA_DEFER_SRV, CSA_DEFER_ADDR,
554 CSA_FAIL_EXPLICIT, CSA_FAIL_DOMAIN, CSA_FAIL_NOADDR, CSA_FAIL_MISMATCH };
555
556/* The acl_verify_csa() return code is translated into an acl_verify() return
557code using the following table. It is OK unless the client is definitely not
558authorized. This is because CSA is supposed to be optional for sending sites,
559so recipients should not be too strict about checking it - especially because
560DNS problems are quite likely to occur. It's possible to use $csa_status in
561further ACL conditions to distinguish ok, unknown, and defer if required, but
562the aim is to make the usual configuration simple. */
563
564static int csa_return_code[] = {
f2ed27cf
JH
565 [CSA_UNKNOWN] = OK,
566 [CSA_OK] = OK,
567 [CSA_DEFER_SRV] = OK,
568 [CSA_DEFER_ADDR] = OK,
569 [CSA_FAIL_EXPLICIT] = FAIL,
570 [CSA_FAIL_DOMAIN] = FAIL,
571 [CSA_FAIL_NOADDR] = FAIL,
572 [CSA_FAIL_MISMATCH] = FAIL
e5a9dba6
PH
573};
574
575static uschar *csa_status_string[] = {
f2ed27cf
JH
576 [CSA_UNKNOWN] = US"unknown",
577 [CSA_OK] = US"ok",
578 [CSA_DEFER_SRV] = US"defer",
579 [CSA_DEFER_ADDR] = US"defer",
580 [CSA_FAIL_EXPLICIT] = US"fail",
581 [CSA_FAIL_DOMAIN] = US"fail",
582 [CSA_FAIL_NOADDR] = US"fail",
583 [CSA_FAIL_MISMATCH] = US"fail"
e5a9dba6
PH
584};
585
586static uschar *csa_reason_string[] = {
f2ed27cf
JH
587 [CSA_UNKNOWN] = US"unknown",
588 [CSA_OK] = US"ok",
589 [CSA_DEFER_SRV] = US"deferred (SRV lookup failed)",
590 [CSA_DEFER_ADDR] = US"deferred (target address lookup failed)",
591 [CSA_FAIL_EXPLICIT] = US"failed (explicit authorization required)",
592 [CSA_FAIL_DOMAIN] = US"failed (host name not authorized)",
593 [CSA_FAIL_NOADDR] = US"failed (no authorized addresses)",
594 [CSA_FAIL_MISMATCH] = US"failed (client address mismatch)"
e5a9dba6
PH
595};
596
c99ce5c9
TF
597/* Options for the ratelimit condition. Note that there are two variants of
598the per_rcpt option, depending on the ACL that is used to measure the rate.
599However any ACL must be able to look up per_rcpt rates in /noupdate mode,
600so the two variants must have the same internal representation as well as
601the same configuration string. */
602
603enum {
604 RATE_PER_WHAT, RATE_PER_CLASH, RATE_PER_ADDR, RATE_PER_BYTE, RATE_PER_CMD,
605 RATE_PER_CONN, RATE_PER_MAIL, RATE_PER_RCPT, RATE_PER_ALLRCPTS
606};
607
608#define RATE_SET(var,new) \
609 (((var) == RATE_PER_WHAT) ? ((var) = RATE_##new) : ((var) = RATE_PER_CLASH))
610
611static uschar *ratelimit_option_string[] = {
f2ed27cf
JH
612 [RATE_PER_WHAT] = US"?",
613 [RATE_PER_CLASH] = US"!",
614 [RATE_PER_ADDR] = US"per_addr",
615 [RATE_PER_BYTE] = US"per_byte",
616 [RATE_PER_CMD] = US"per_cmd",
617 [RATE_PER_CONN] = US"per_conn",
618 [RATE_PER_MAIL] = US"per_mail",
619 [RATE_PER_RCPT] = US"per_rcpt",
620 [RATE_PER_ALLRCPTS] = US"per_rcpt"
c99ce5c9
TF
621};
622
059ec3d9
PH
623/* Enable recursion between acl_check_internal() and acl_check_condition() */
624
e1d04f48 625static int acl_check_wargs(int, address_item *, const uschar *, uschar **,
f60d98e8 626 uschar **);
059ec3d9
PH
627
628
d7bed771
JH
629/*************************************************
630* Find control in list *
631*************************************************/
632
633/* The lists are always in order, so binary chop can be used.
634
635Arguments:
636 name the control name to search for
637 ol the first entry in the control list
638 last one more than the offset of the last entry in the control list
639
640Returns: index of a control entry, or -1 if not found
641*/
642
643static int
644find_control(const uschar * name, control_def * ol, int last)
645{
646int first = 0;
647while (last > first)
648 {
649 int middle = (first + last)/2;
650 uschar * s = ol[middle].name;
651 int c = Ustrncmp(name, s, Ustrlen(s));
652 if (c == 0) return middle;
653 else if (c > 0) first = middle + 1;
654 else last = middle;
655 }
656return -1;
657}
658
659
660
2d009132
JH
661/*************************************************
662* Pick out condition from list *
663*************************************************/
664
665/* Use a binary chop method
666
667Arguments:
668 name name to find
669 list list of conditions
670 end size of list
671
672Returns: offset in list, or -1 if not found
673*/
674
675static int
676acl_checkcondition(uschar * name, condition_def * list, int end)
677{
678int start = 0;
679while (start < end)
680 {
681 int mid = (start + end)/2;
682 int c = Ustrcmp(name, list[mid].name);
683 if (c == 0) return mid;
684 if (c < 0) end = mid;
685 else start = mid + 1;
686 }
687return -1;
688}
689
690
059ec3d9
PH
691/*************************************************
692* Pick out name from list *
693*************************************************/
694
695/* Use a binary chop method
696
697Arguments:
698 name name to find
699 list list of names
700 end size of list
701
702Returns: offset in list, or -1 if not found
703*/
704
705static int
706acl_checkname(uschar *name, uschar **list, int end)
707{
708int start = 0;
709
710while (start < end)
711 {
712 int mid = (start + end)/2;
713 int c = Ustrcmp(name, list[mid]);
714 if (c == 0) return mid;
715 if (c < 0) end = mid; else start = mid + 1;
716 }
717
718return -1;
719}
720
721
722/*************************************************
723* Read and parse one ACL *
724*************************************************/
725
726/* This function is called both from readconf in order to parse the ACLs in the
727configuration file, and also when an ACL is encountered dynamically (e.g. as
728the result of an expansion). It is given a function to call in order to
729retrieve the lines of the ACL. This function handles skipping comments and
730blank lines (where relevant).
731
732Arguments:
733 func function to get next line of ACL
734 error where to put an error message
735
736Returns: pointer to ACL, or NULL
737 NULL can be legal (empty ACL); in this case error will be NULL
738*/
739
740acl_block *
741acl_read(uschar *(*func)(void), uschar **error)
742{
743acl_block *yield = NULL;
744acl_block **lastp = &yield;
745acl_block *this = NULL;
746acl_condition_block *cond;
747acl_condition_block **condp = NULL;
748uschar *s;
749
750*error = NULL;
751
752while ((s = (*func)()) != NULL)
753 {
754 int v, c;
755 BOOL negated = FALSE;
756 uschar *saveline = s;
757 uschar name[64];
758
759 /* Conditions (but not verbs) are allowed to be negated by an initial
760 exclamation mark. */
761
762 while (isspace(*s)) s++;
763 if (*s == '!')
764 {
765 negated = TRUE;
766 s++;
767 }
768
cf00dad6
PH
769 /* Read the name of a verb or a condition, or the start of a new ACL, which
770 can be started by a name, or by a macro definition. */
059ec3d9
PH
771
772 s = readconf_readname(name, sizeof(name), s);
b8dc3e4a 773 if (*s == ':' || (isupper(name[0]) && *s == '=')) return yield;
059ec3d9
PH
774
775 /* If a verb is unrecognized, it may be another condition or modifier that
776 continues the previous verb. */
777
2d009132 778 if ((v = acl_checkname(name, verbs, nelem(verbs))) < 0)
059ec3d9
PH
779 {
780 if (this == NULL)
781 {
4e167a8c
PH
782 *error = string_sprintf("unknown ACL verb \"%s\" in \"%s\"", name,
783 saveline);
059ec3d9
PH
784 return NULL;
785 }
786 }
787
788 /* New verb */
789
790 else
791 {
792 if (negated)
793 {
794 *error = string_sprintf("malformed ACL line \"%s\"", saveline);
795 return NULL;
796 }
797 this = store_get(sizeof(acl_block));
798 *lastp = this;
799 lastp = &(this->next);
800 this->next = NULL;
801 this->verb = v;
802 this->condition = NULL;
803 condp = &(this->condition);
804 if (*s == 0) continue; /* No condition on this line */
805 if (*s == '!')
806 {
807 negated = TRUE;
808 s++;
809 }
810 s = readconf_readname(name, sizeof(name), s); /* Condition name */
811 }
812
813 /* Handle a condition or modifier. */
814
2d009132 815 if ((c = acl_checkcondition(name, conditions, nelem(conditions))) < 0)
059ec3d9
PH
816 {
817 *error = string_sprintf("unknown ACL condition/modifier in \"%s\"",
818 saveline);
819 return NULL;
820 }
821
822 /* The modifiers may not be negated */
823
2d009132 824 if (negated && conditions[c].is_modifier)
059ec3d9
PH
825 {
826 *error = string_sprintf("ACL error: negation is not allowed with "
2d009132 827 "\"%s\"", conditions[c].name);
059ec3d9
PH
828 return NULL;
829 }
830
831 /* ENDPASS may occur only with ACCEPT or DISCARD. */
832
833 if (c == ACLC_ENDPASS &&
834 this->verb != ACL_ACCEPT &&
835 this->verb != ACL_DISCARD)
836 {
837 *error = string_sprintf("ACL error: \"%s\" is not allowed with \"%s\"",
2d009132 838 conditions[c].name, verbs[this->verb]);
059ec3d9
PH
839 return NULL;
840 }
841
842 cond = store_get(sizeof(acl_condition_block));
843 cond->next = NULL;
844 cond->type = c;
845 cond->u.negated = negated;
846
847 *condp = cond;
848 condp = &(cond->next);
849
850 /* The "set" modifier is different in that its argument is "name=value"
851 rather than just a value, and we can check the validity of the name, which
38a0a95f
PH
852 gives us a variable name to insert into the data block. The original ACL
853 variable names were acl_c0 ... acl_c9 and acl_m0 ... acl_m9. This was
854 extended to 20 of each type, but after that people successfully argued for
641cb756
PH
855 arbitrary names. In the new scheme, the names must start with acl_c or acl_m.
856 After that, we allow alphanumerics and underscores, but the first character
857 after c or m must be a digit or an underscore. This retains backwards
858 compatibility. */
059ec3d9
PH
859
860 if (c == ACLC_SET)
a79d8834
JH
861#ifndef DISABLE_DKIM
862 if ( Ustrncmp(s, "dkim_verify_status", 18) == 0
863 || Ustrncmp(s, "dkim_verify_reason", 18) == 0)
864 {
865 uschar * endptr = s+18;
866
867 if (isalnum(*endptr))
868 {
869 *error = string_sprintf("invalid variable name after \"set\" in ACL "
870 "modifier \"set %s\" "
871 "(only \"dkim_verify_status\" or \"dkim_verify_reason\" permitted)",
872 s);
873 return NULL;
874 }
875 cond->u.varname = string_copyn(s, 18);
876 s = endptr;
877 while (isspace(*s)) s++;
878 }
879 else
880#endif
059ec3d9 881 {
47ca6d6c
PH
882 uschar *endptr;
883
38a0a95f
PH
884 if (Ustrncmp(s, "acl_c", 5) != 0 &&
885 Ustrncmp(s, "acl_m", 5) != 0)
47ca6d6c 886 {
38a0a95f
PH
887 *error = string_sprintf("invalid variable name after \"set\" in ACL "
888 "modifier \"set %s\" (must start \"acl_c\" or \"acl_m\")", s);
889 return NULL;
47ca6d6c 890 }
38a0a95f
PH
891
892 endptr = s + 5;
641cb756
PH
893 if (!isdigit(*endptr) && *endptr != '_')
894 {
895 *error = string_sprintf("invalid variable name after \"set\" in ACL "
896 "modifier \"set %s\" (digit or underscore must follow acl_c or acl_m)",
897 s);
898 return NULL;
899 }
900
38a0a95f 901 while (*endptr != 0 && *endptr != '=' && !isspace(*endptr))
47ca6d6c 902 {
38a0a95f
PH
903 if (!isalnum(*endptr) && *endptr != '_')
904 {
905 *error = string_sprintf("invalid character \"%c\" in variable name "
906 "in ACL modifier \"set %s\"", *endptr, s);
907 return NULL;
908 }
909 endptr++;
47ca6d6c 910 }
47ca6d6c 911
38a0a95f 912 cond->u.varname = string_copyn(s + 4, endptr - s - 4);
47ca6d6c 913 s = endptr;
059ec3d9
PH
914 while (isspace(*s)) s++;
915 }
916
917 /* For "set", we are now positioned for the data. For the others, only
918 "endpass" has no data */
919
920 if (c != ACLC_ENDPASS)
921 {
922 if (*s++ != '=')
923 {
924 *error = string_sprintf("\"=\" missing after ACL \"%s\" %s", name,
2d009132 925 conditions[c].is_modifier ? US"modifier" : US"condition");
059ec3d9
PH
926 return NULL;
927 }
928 while (isspace(*s)) s++;
929 cond->arg = string_copy(s);
930 }
931 }
932
933return yield;
934}
935
936
937
71fafd95
PH
938/*************************************************
939* Set up added header line(s) *
940*************************************************/
941
942/* This function is called by the add_header modifier, and also from acl_warn()
943to implement the now-deprecated way of adding header lines using "message" on a
944"warn" verb. The argument is treated as a sequence of header lines which are
945added to a chain, provided there isn't an identical one already there.
946
947Argument: string of header lines
948Returns: nothing
949*/
950
951static void
55414b25 952setup_header(const uschar *hstring)
71fafd95 953{
55414b25 954const uschar *p, *q;
71fafd95
PH
955int hlen = Ustrlen(hstring);
956
b1b05573
JH
957/* Ignore any leading newlines */
958while (*hstring == '\n') hstring++, hlen--;
71fafd95 959
b1b05573 960/* An empty string does nothing; ensure exactly one final newline. */
71fafd95 961if (hlen <= 0) return;
96f5fe4c 962if (hstring[--hlen] != '\n') /* no newline */
55414b25 963 q = string_sprintf("%s\n", hstring);
96f5fe4c 964else if (hstring[hlen-1] == '\n') /* double newline */
55414b25
JH
965 {
966 uschar * s = string_copy(hstring);
967 while(s[--hlen] == '\n')
968 s[hlen+1] = '\0';
969 q = s;
970 }
971else
972 q = hstring;
71fafd95
PH
973
974/* Loop for multiple header lines, taking care about continuations */
975
617d3932 976for (p = q; *p; p = q)
71fafd95 977 {
55414b25
JH
978 const uschar *s;
979 uschar * hdr;
71fafd95
PH
980 int newtype = htype_add_bot;
981 header_line **hptr = &acl_added_headers;
982
983 /* Find next header line within the string */
984
985 for (;;)
986 {
96f5fe4c 987 q = Ustrchr(q, '\n'); /* we know there was a newline */
617d3932 988 if (*++q != ' ' && *q != '\t') break;
71fafd95
PH
989 }
990
991 /* If the line starts with a colon, interpret the instruction for where to
992 add it. This temporarily sets up a new type. */
993
994 if (*p == ':')
995 {
996 if (strncmpic(p, US":after_received:", 16) == 0)
997 {
998 newtype = htype_add_rec;
999 p += 16;
1000 }
1001 else if (strncmpic(p, US":at_start_rfc:", 14) == 0)
1002 {
1003 newtype = htype_add_rfc;
1004 p += 14;
1005 }
1006 else if (strncmpic(p, US":at_start:", 10) == 0)
1007 {
1008 newtype = htype_add_top;
1009 p += 10;
1010 }
1011 else if (strncmpic(p, US":at_end:", 8) == 0)
1012 {
1013 newtype = htype_add_bot;
1014 p += 8;
1015 }
1016 while (*p == ' ' || *p == '\t') p++;
1017 }
1018
1019 /* See if this line starts with a header name, and if not, add X-ACL-Warn:
1020 to the front of it. */
1021
1022 for (s = p; s < q - 1; s++)
71fafd95 1023 if (*s == ':' || !isgraph(*s)) break;
71fafd95 1024
617d3932 1025 hdr = string_sprintf("%s%.*s", *s == ':' ? "" : "X-ACL-Warn: ", (int) (q - p), p);
55414b25 1026 hlen = Ustrlen(hdr);
71fafd95
PH
1027
1028 /* See if this line has already been added */
1029
617d3932 1030 while (*hptr)
71fafd95 1031 {
55414b25 1032 if (Ustrncmp((*hptr)->text, hdr, hlen) == 0) break;
617d3932 1033 hptr = &(*hptr)->next;
71fafd95
PH
1034 }
1035
1036 /* Add if not previously present */
1037
617d3932 1038 if (!*hptr)
71fafd95
PH
1039 {
1040 header_line *h = store_get(sizeof(header_line));
55414b25 1041 h->text = hdr;
71fafd95
PH
1042 h->next = NULL;
1043 h->type = newtype;
1044 h->slen = hlen;
1045 *hptr = h;
617d3932 1046 hptr = &h->next;
71fafd95 1047 }
71fafd95
PH
1048 }
1049}
1050
1051
1052
362145b5
JH
1053/*************************************************
1054* List the added header lines *
1055*************************************************/
1056uschar *
1057fn_hdrs_added(void)
1058{
acec9514 1059gstring * g = NULL;
bce15b62 1060header_line * h;
362145b5 1061
bce15b62 1062for (h = acl_added_headers; h; h = h->next)
362145b5 1063 {
bce15b62
JH
1064 int i = h->slen;
1065 if (h->text[i-1] == '\n') i--;
1066 g = string_append_listele_n(g, '\n', h->text, i);
362145b5 1067 }
362145b5 1068
bce15b62 1069return g ? g->s : NULL;
362145b5
JH
1070}
1071
1072
e7568d51
TL
1073/*************************************************
1074* Set up removed header line(s) *
1075*************************************************/
1076
1077/* This function is called by the remove_header modifier. The argument is
1078treated as a sequence of header names which are added to a colon separated
1079list, provided there isn't an identical one already there.
1080
1081Argument: string of header names
1082Returns: nothing
1083*/
1084
1085static void
55414b25 1086setup_remove_header(const uschar *hnames)
e7568d51 1087{
48334568 1088if (*hnames)
55414b25
JH
1089 acl_removed_headers = acl_removed_headers
1090 ? string_sprintf("%s : %s", acl_removed_headers, hnames)
1091 : string_copy(hnames);
e7568d51
TL
1092}
1093
1094
71fafd95 1095
059ec3d9
PH
1096/*************************************************
1097* Handle warnings *
1098*************************************************/
1099
1100/* This function is called when a WARN verb's conditions are true. It adds to
1101the message's headers, and/or writes information to the log. In each case, this
1102only happens once (per message for headers, per connection for log).
1103
71fafd95
PH
1104** NOTE: The header adding action using the "message" setting is historic, and
1105its use is now deprecated. The new add_header modifier should be used instead.
1106
059ec3d9
PH
1107Arguments:
1108 where ACL_WHERE_xxxx indicating which ACL this is
1109 user_message message for adding to headers
1110 log_message message for logging, if different
1111
1112Returns: nothing
1113*/
1114
1115static void
1116acl_warn(int where, uschar *user_message, uschar *log_message)
1117{
059ec3d9
PH
1118if (log_message != NULL && log_message != user_message)
1119 {
1120 uschar *text;
1121 string_item *logged;
1122
1123 text = string_sprintf("%s Warning: %s", host_and_ident(TRUE),
1124 string_printing(log_message));
1125
1126 /* If a sender verification has failed, and the log message is "sender verify
1127 failed", add the failure message. */
1128
1129 if (sender_verified_failed != NULL &&
1130 sender_verified_failed->message != NULL &&
1131 strcmpic(log_message, US"sender verify failed") == 0)
1132 text = string_sprintf("%s: %s", text, sender_verified_failed->message);
1133
9c7a242c
PH
1134 /* Search previously logged warnings. They are kept in malloc
1135 store so they can be freed at the start of a new message. */
059ec3d9
PH
1136
1137 for (logged = acl_warn_logged; logged != NULL; logged = logged->next)
1138 if (Ustrcmp(logged->text, text) == 0) break;
1139
1140 if (logged == NULL)
1141 {
1142 int length = Ustrlen(text) + 1;
1143 log_write(0, LOG_MAIN, "%s", text);
1144 logged = store_malloc(sizeof(string_item) + length);
5903c6ff 1145 logged->text = US logged + sizeof(string_item);
059ec3d9
PH
1146 memcpy(logged->text, text, length);
1147 logged->next = acl_warn_logged;
1148 acl_warn_logged = logged;
1149 }
1150 }
1151
1152/* If there's no user message, we are done. */
1153
1154if (user_message == NULL) return;
1155
1156/* If this isn't a message ACL, we can't do anything with a user message.
1157Log an error. */
1158
1159if (where > ACL_WHERE_NOTSMTP)
1160 {
1161 log_write(0, LOG_MAIN|LOG_PANIC, "ACL \"warn\" with \"message\" setting "
1162 "found in a non-message (%s) ACL: cannot specify header lines here: "
1163 "message ignored", acl_wherenames[where]);
1164 return;
1165 }
1166
71fafd95
PH
1167/* The code for setting up header lines is now abstracted into a separate
1168function so that it can be used for the add_header modifier as well. */
059ec3d9 1169
71fafd95 1170setup_header(user_message);
059ec3d9
PH
1171}
1172
1173
1174
1175/*************************************************
1176* Verify and check reverse DNS *
1177*************************************************/
1178
1179/* Called from acl_verify() below. We look up the host name(s) of the client IP
1180address if this has not yet been done. The host_name_lookup() function checks
1181that one of these names resolves to an address list that contains the client IP
1182address, so we don't actually have to do the check here.
1183
1184Arguments:
1185 user_msgptr pointer for user message
1186 log_msgptr pointer for log message
1187
1188Returns: OK verification condition succeeded
1189 FAIL verification failed
1190 DEFER there was a problem verifying
1191*/
1192
1193static int
1194acl_verify_reverse(uschar **user_msgptr, uschar **log_msgptr)
1195{
1196int rc;
1197
1198user_msgptr = user_msgptr; /* stop compiler warning */
1199
1200/* Previous success */
1201
1202if (sender_host_name != NULL) return OK;
1203
1204/* Previous failure */
1205
1206if (host_lookup_failed)
1207 {
1208 *log_msgptr = string_sprintf("host lookup failed%s", host_lookup_msg);
1209 return FAIL;
1210 }
1211
1212/* Need to do a lookup */
1213
1214HDEBUG(D_acl)
e1d04f48 1215 debug_printf_indent("looking up host name to force name/address consistency check\n");
059ec3d9
PH
1216
1217if ((rc = host_name_lookup()) != OK)
1218 {
1219 *log_msgptr = (rc == DEFER)?
1220 US"host lookup deferred for reverse lookup check"
1221 :
1222 string_sprintf("host lookup failed for reverse lookup check%s",
1223 host_lookup_msg);
1224 return rc; /* DEFER or FAIL */
1225 }
1226
1227host_build_sender_fullhost();
1228return OK;
1229}
1230
1231
1232
e5a9dba6
PH
1233/*************************************************
1234* Check client IP address matches CSA target *
1235*************************************************/
1236
1237/* Called from acl_verify_csa() below. This routine scans a section of a DNS
1238response for address records belonging to the CSA target hostname. The section
1239is specified by the reset argument, either RESET_ADDITIONAL or RESET_ANSWERS.
1240If one of the addresses matches the client's IP address, then the client is
1241authorized by CSA. If there are target IP addresses but none of them match
1242then the client is using an unauthorized IP address. If there are no target IP
1243addresses then the client cannot be using an authorized IP address. (This is
1244an odd configuration - why didn't the SRV record have a weight of 1 instead?)
1245
1246Arguments:
1247 dnsa the DNS answer block
1248 dnss a DNS scan block for us to use
4c04137d 1249 reset option specifying what portion to scan, as described above
e5a9dba6
PH
1250 target the target hostname to use for matching RR names
1251
1252Returns: CSA_OK successfully authorized
1253 CSA_FAIL_MISMATCH addresses found but none matched
1254 CSA_FAIL_NOADDR no target addresses found
1255*/
1256
1257static int
1258acl_verify_csa_address(dns_answer *dnsa, dns_scan *dnss, int reset,
1259 uschar *target)
1260{
1261dns_record *rr;
1262dns_address *da;
1263
1264BOOL target_found = FALSE;
1265
1266for (rr = dns_next_rr(dnsa, dnss, reset);
1267 rr != NULL;
1268 rr = dns_next_rr(dnsa, dnss, RESET_NEXT))
1269 {
1270 /* Check this is an address RR for the target hostname. */
1271
1272 if (rr->type != T_A
1273 #if HAVE_IPV6
1274 && rr->type != T_AAAA
e5a9dba6
PH
1275 #endif
1276 ) continue;
1277
1278 if (strcmpic(target, rr->name) != 0) continue;
1279
1280 target_found = TRUE;
1281
1282 /* Turn the target address RR into a list of textual IP addresses and scan
1283 the list. There may be more than one if it is an A6 RR. */
1284
1285 for (da = dns_address_from_rr(dnsa, rr); da != NULL; da = da->next)
1286 {
1287 /* If the client IP address matches the target IP address, it's good! */
1288
e1d04f48 1289 DEBUG(D_acl) debug_printf_indent("CSA target address is %s\n", da->address);
e5a9dba6
PH
1290
1291 if (strcmpic(sender_host_address, da->address) == 0) return CSA_OK;
1292 }
1293 }
1294
1295/* If we found some target addresses but none of them matched, the client is
1296using an unauthorized IP address, otherwise the target has no authorized IP
1297addresses. */
1298
1299if (target_found) return CSA_FAIL_MISMATCH;
1300else return CSA_FAIL_NOADDR;
1301}
1302
1303
1304
1305/*************************************************
1306* Verify Client SMTP Authorization *
1307*************************************************/
1308
1309/* Called from acl_verify() below. This routine calls dns_lookup_special()
1310to find the CSA SRV record corresponding to the domain argument, or
1311$sender_helo_name if no argument is provided. It then checks that the
1312client is authorized, and that its IP address corresponds to the SRV
1313target's address by calling acl_verify_csa_address() above. The address
1314should have been returned in the DNS response's ADDITIONAL section, but if
1315not we perform another DNS lookup to get it.
1316
1317Arguments:
1318 domain pointer to optional parameter following verify = csa
1319
1320Returns: CSA_UNKNOWN no valid CSA record found
1321 CSA_OK successfully authorized
1322 CSA_FAIL_* client is definitely not authorized
1323 CSA_DEFER_* there was a DNS problem
1324*/
1325
1326static int
55414b25 1327acl_verify_csa(const uschar *domain)
e5a9dba6
PH
1328{
1329tree_node *t;
55414b25 1330const uschar *found;
e5a9dba6
PH
1331int priority, weight, port;
1332dns_answer dnsa;
1333dns_scan dnss;
1334dns_record *rr;
1335int rc, type;
1336uschar target[256];
1337
1338/* Work out the domain we are using for the CSA lookup. The default is the
1339client's HELO domain. If the client has not said HELO, use its IP address
1340instead. If it's a local client (exim -bs), CSA isn't applicable. */
1341
1342while (isspace(*domain) && *domain != '\0') ++domain;
1343if (*domain == '\0') domain = sender_helo_name;
1344if (domain == NULL) domain = sender_host_address;
1345if (sender_host_address == NULL) return CSA_UNKNOWN;
1346
1347/* If we have an address literal, strip off the framing ready for turning it
1348into a domain. The framing consists of matched square brackets possibly
1349containing a keyword and a colon before the actual IP address. */
1350
1351if (domain[0] == '[')
1352 {
55414b25 1353 const uschar *start = Ustrchr(domain, ':');
e5a9dba6
PH
1354 if (start == NULL) start = domain;
1355 domain = string_copyn(start + 1, Ustrlen(start) - 2);
1356 }
1357
1358/* Turn domains that look like bare IP addresses into domains in the reverse
1359DNS. This code also deals with address literals and $sender_host_address. It's
1360not quite kosher to treat bare domains such as EHLO 192.0.2.57 the same as
1361address literals, but it's probably the most friendly thing to do. This is an
1362extension to CSA, so we allow it to be turned off for proper conformance. */
1363
7e66e54d 1364if (string_is_ip_address(domain, NULL) != 0)
e5a9dba6
PH
1365 {
1366 if (!dns_csa_use_reverse) return CSA_UNKNOWN;
1367 dns_build_reverse(domain, target);
1368 domain = target;
1369 }
1370
1371/* Find out if we've already done the CSA check for this domain. If we have,
1372return the same result again. Otherwise build a new cached result structure
1373for this domain. The name is filled in now, and the value is filled in when
1374we return from this function. */
1375
1376t = tree_search(csa_cache, domain);
1377if (t != NULL) return t->data.val;
1378
1379t = store_get_perm(sizeof(tree_node) + Ustrlen(domain));
1380Ustrcpy(t->name, domain);
1381(void)tree_insertnode(&csa_cache, t);
1382
1383/* Now we are ready to do the actual DNS lookup(s). */
1384
28e6ef29 1385found = domain;
e5a9dba6
PH
1386switch (dns_special_lookup(&dnsa, domain, T_CSA, &found))
1387 {
1388 /* If something bad happened (most commonly DNS_AGAIN), defer. */
1389
1390 default:
1391 return t->data.val = CSA_DEFER_SRV;
1392
1393 /* If we found nothing, the client's authorization is unknown. */
1394
1395 case DNS_NOMATCH:
1396 case DNS_NODATA:
1397 return t->data.val = CSA_UNKNOWN;
1398
1399 /* We got something! Go on to look at the reply in more detail. */
1400
1401 case DNS_SUCCEED:
1402 break;
1403 }
1404
1405/* Scan the reply for well-formed CSA SRV records. */
1406
1407for (rr = dns_next_rr(&dnsa, &dnss, RESET_ANSWERS);
dd708fd7
JH
1408 rr;
1409 rr = dns_next_rr(&dnsa, &dnss, RESET_NEXT)) if (rr->type == T_SRV)
e5a9dba6 1410 {
dd708fd7 1411 const uschar * p = rr->data;
e5a9dba6
PH
1412
1413 /* Extract the numerical SRV fields (p is incremented) */
1414
e5a9dba6
PH
1415 GETSHORT(priority, p);
1416 GETSHORT(weight, p);
1417 GETSHORT(port, p);
1418
1419 DEBUG(D_acl)
e1d04f48 1420 debug_printf_indent("CSA priority=%d weight=%d port=%d\n", priority, weight, port);
e5a9dba6
PH
1421
1422 /* Check the CSA version number */
1423
1424 if (priority != 1) continue;
1425
1426 /* If the domain does not have a CSA SRV record of its own (i.e. the domain
1427 found by dns_special_lookup() is a parent of the one we asked for), we check
1428 the subdomain assertions in the port field. At the moment there's only one
1429 assertion: legitimate SMTP clients are all explicitly authorized with CSA
1430 SRV records of their own. */
1431
1dc92d5a 1432 if (Ustrcmp(found, domain) != 0)
dd708fd7 1433 return t->data.val = port & 1 ? CSA_FAIL_EXPLICIT : CSA_UNKNOWN;
e5a9dba6
PH
1434
1435 /* This CSA SRV record refers directly to our domain, so we check the value
1436 in the weight field to work out the domain's authorization. 0 and 1 are
1437 unauthorized; 3 means the client is authorized but we can't check the IP
1438 address in order to authenticate it, so we treat it as unknown; values
1439 greater than 3 are undefined. */
1440
1441 if (weight < 2) return t->data.val = CSA_FAIL_DOMAIN;
1442
1443 if (weight > 2) continue;
1444
1445 /* Weight == 2, which means the domain is authorized. We must check that the
1446 client's IP address is listed as one of the SRV target addresses. Save the
1447 target hostname then break to scan the additional data for its addresses. */
1448
1449 (void)dn_expand(dnsa.answer, dnsa.answer + dnsa.answerlen, p,
1450 (DN_EXPAND_ARG4_TYPE)target, sizeof(target));
1451
e1d04f48 1452 DEBUG(D_acl) debug_printf_indent("CSA target is %s\n", target);
e5a9dba6
PH
1453
1454 break;
1455 }
1456
1457/* If we didn't break the loop then no appropriate records were found. */
1458
1459if (rr == NULL) return t->data.val = CSA_UNKNOWN;
1460
1461/* Do not check addresses if the target is ".", in accordance with RFC 2782.
1462A target of "." indicates there are no valid addresses, so the client cannot
1463be authorized. (This is an odd configuration because weight=2 target=. is
1464equivalent to weight=1, but we check for it in order to keep load off the
1465root name servers.) Note that dn_expand() turns "." into "". */
1466
1467if (Ustrcmp(target, "") == 0) return t->data.val = CSA_FAIL_NOADDR;
1468
1469/* Scan the additional section of the CSA SRV reply for addresses belonging
1470to the target. If the name server didn't return any additional data (e.g.
1471because it does not fully support SRV records), we need to do another lookup
1472to obtain the target addresses; otherwise we have a definitive result. */
1473
1474rc = acl_verify_csa_address(&dnsa, &dnss, RESET_ADDITIONAL, target);
1475if (rc != CSA_FAIL_NOADDR) return t->data.val = rc;
1476
1477/* The DNS lookup type corresponds to the IP version used by the client. */
1478
1479#if HAVE_IPV6
1480if (Ustrchr(sender_host_address, ':') != NULL)
1481 type = T_AAAA;
1482else
1483#endif /* HAVE_IPV6 */
1484 type = T_A;
1485
1486
4e0983dc 1487lookup_dnssec_authenticated = NULL;
e5a9dba6
PH
1488switch (dns_lookup(&dnsa, target, type, NULL))
1489 {
1490 /* If something bad happened (most commonly DNS_AGAIN), defer. */
1491
1492 default:
cc00f4af 1493 return t->data.val = CSA_DEFER_ADDR;
e5a9dba6
PH
1494
1495 /* If the query succeeded, scan the addresses and return the result. */
1496
1497 case DNS_SUCCEED:
cc00f4af
JH
1498 rc = acl_verify_csa_address(&dnsa, &dnss, RESET_ANSWERS, target);
1499 if (rc != CSA_FAIL_NOADDR) return t->data.val = rc;
1500 /* else fall through */
e5a9dba6
PH
1501
1502 /* If the target has no IP addresses, the client cannot have an authorized
1503 IP address. However, if the target site uses A6 records (not AAAA records)
1504 we have to do yet another lookup in order to check them. */
1505
1506 case DNS_NOMATCH:
1507 case DNS_NODATA:
cc00f4af 1508 return t->data.val = CSA_FAIL_NOADDR;
e5a9dba6
PH
1509 }
1510}
1511
1512
1513
059ec3d9
PH
1514/*************************************************
1515* Handle verification (address & other) *
1516*************************************************/
1517
89583014 1518enum { VERIFY_REV_HOST_LKUP, VERIFY_CERT, VERIFY_HELO, VERIFY_CSA, VERIFY_HDR_SYNTAX,
770747fd 1519 VERIFY_NOT_BLIND, VERIFY_HDR_SNDR, VERIFY_SNDR, VERIFY_RCPT,
e3a69b62 1520 VERIFY_HDR_NAMES_ASCII, VERIFY_ARC
89583014
JH
1521 };
1522typedef struct {
1523 uschar * name;
1524 int value;
1525 unsigned where_allowed; /* bitmap */
1526 BOOL no_options; /* Never has /option(s) following */
1527 unsigned alt_opt_sep; /* >0 Non-/ option separator (custom parser) */
1528 } verify_type_t;
1529static verify_type_t verify_type_list[] = {
f2ed27cf 1530 /* name value where no-opt opt-sep */
7e8360e6 1531 { US"reverse_host_lookup", VERIFY_REV_HOST_LKUP, ~0, FALSE, 0 },
e3a69b62
JH
1532 { US"certificate", VERIFY_CERT, ~0, TRUE, 0 },
1533 { US"helo", VERIFY_HELO, ~0, TRUE, 0 },
89583014 1534 { US"csa", VERIFY_CSA, ~0, FALSE, 0 },
e3a69b62
JH
1535 { US"header_syntax", VERIFY_HDR_SYNTAX, ACL_BIT_DATA | ACL_BIT_NOTSMTP, TRUE, 0 },
1536 { US"not_blind", VERIFY_NOT_BLIND, ACL_BIT_DATA | ACL_BIT_NOTSMTP, TRUE, 0 },
1537 { US"header_sender", VERIFY_HDR_SNDR, ACL_BIT_DATA | ACL_BIT_NOTSMTP, FALSE, 0 },
1538 { US"sender", VERIFY_SNDR, ACL_BIT_MAIL | ACL_BIT_RCPT
1539 |ACL_BIT_PREDATA | ACL_BIT_DATA | ACL_BIT_NOTSMTP,
89583014 1540 FALSE, 6 },
e3a69b62
JH
1541 { US"recipient", VERIFY_RCPT, ACL_BIT_RCPT, FALSE, 0 },
1542 { US"header_names_ascii", VERIFY_HDR_NAMES_ASCII, ACL_BIT_DATA | ACL_BIT_NOTSMTP, TRUE, 0 },
1543#ifdef EXPERIMENTAL_ARC
f48946eb 1544 { US"arc", VERIFY_ARC, ACL_BIT_DATA, FALSE , 0 },
e3a69b62 1545#endif
89583014
JH
1546 };
1547
1548
1549enum { CALLOUT_DEFER_OK, CALLOUT_NOCACHE, CALLOUT_RANDOM, CALLOUT_USE_SENDER,
1550 CALLOUT_USE_POSTMASTER, CALLOUT_POSTMASTER, CALLOUT_FULLPOSTMASTER,
1551 CALLOUT_MAILFROM, CALLOUT_POSTMASTER_MAILFROM, CALLOUT_MAXWAIT, CALLOUT_CONNECT,
57cc2785 1552 CALLOUT_HOLD, CALLOUT_TIME /* TIME must be last */
89583014
JH
1553 };
1554typedef struct {
1555 uschar * name;
1556 int value;
1557 int flag;
1558 BOOL has_option; /* Has =option(s) following */
1559 BOOL timeval; /* Has a time value */
1560 } callout_opt_t;
1561static callout_opt_t callout_opt_list[] = {
f2ed27cf 1562 /* name value flag has-opt has-time */
89583014
JH
1563 { US"defer_ok", CALLOUT_DEFER_OK, 0, FALSE, FALSE },
1564 { US"no_cache", CALLOUT_NOCACHE, vopt_callout_no_cache, FALSE, FALSE },
1565 { US"random", CALLOUT_RANDOM, vopt_callout_random, FALSE, FALSE },
1566 { US"use_sender", CALLOUT_USE_SENDER, vopt_callout_recipsender, FALSE, FALSE },
1567 { US"use_postmaster", CALLOUT_USE_POSTMASTER,vopt_callout_recippmaster, FALSE, FALSE },
1568 { US"postmaster_mailfrom",CALLOUT_POSTMASTER_MAILFROM,0, TRUE, FALSE },
1569 { US"postmaster", CALLOUT_POSTMASTER, 0, FALSE, FALSE },
1570 { US"fullpostmaster", CALLOUT_FULLPOSTMASTER,vopt_callout_fullpm, FALSE, FALSE },
1571 { US"mailfrom", CALLOUT_MAILFROM, 0, TRUE, FALSE },
1572 { US"maxwait", CALLOUT_MAXWAIT, 0, TRUE, TRUE },
1573 { US"connect", CALLOUT_CONNECT, 0, TRUE, TRUE },
57cc2785 1574 { US"hold", CALLOUT_HOLD, vopt_callout_hold, FALSE, FALSE },
89583014
JH
1575 { NULL, CALLOUT_TIME, 0, FALSE, TRUE }
1576 };
1577
1578
1579
059ec3d9
PH
1580/* This function implements the "verify" condition. It is called when
1581encountered in any ACL, because some tests are almost always permitted. Some
1582just don't make sense, and always fail (for example, an attempt to test a host
1583lookup for a non-TCP/IP message). Others are restricted to certain ACLs.
1584
1585Arguments:
1586 where where called from
1587 addr the recipient address that the ACL is handling, or NULL
1588 arg the argument of "verify"
1589 user_msgptr pointer for user message
1590 log_msgptr pointer for log message
1591 basic_errno where to put verify errno
1592
1593Returns: OK verification condition succeeded
1594 FAIL verification failed
1595 DEFER there was a problem verifying
1596 ERROR syntax error
1597*/
1598
1599static int
55414b25 1600acl_verify(int where, address_item *addr, const uschar *arg,
059ec3d9
PH
1601 uschar **user_msgptr, uschar **log_msgptr, int *basic_errno)
1602{
1603int sep = '/';
1604int callout = -1;
1605int callout_overall = -1;
4deaf07d 1606int callout_connect = -1;
059ec3d9
PH
1607int verify_options = 0;
1608int rc;
1609BOOL verify_header_sender = FALSE;
1610BOOL defer_ok = FALSE;
1611BOOL callout_defer_ok = FALSE;
1612BOOL no_details = FALSE;
eafd343b 1613BOOL success_on_redirect = FALSE;
059ec3d9
PH
1614address_item *sender_vaddr = NULL;
1615uschar *verify_sender_address = NULL;
1616uschar *pm_mailfrom = NULL;
1617uschar *se_mailfrom = NULL;
596875b3
PH
1618
1619/* Some of the verify items have slash-separated options; some do not. Diagnose
89583014 1620an error if options are given for items that don't expect them.
596875b3
PH
1621*/
1622
1623uschar *slash = Ustrchr(arg, '/');
55414b25 1624const uschar *list = arg;
059ec3d9 1625uschar *ss = string_nextinlist(&list, &sep, big_buffer, big_buffer_size);
89583014 1626verify_type_t * vp;
059ec3d9 1627
e3a69b62 1628if (!ss) goto BAD_VERIFY;
059ec3d9
PH
1629
1630/* Handle name/address consistency verification in a separate function. */
1631
89583014 1632for (vp= verify_type_list;
5903c6ff 1633 CS vp < CS verify_type_list + sizeof(verify_type_list);
89583014
JH
1634 vp++
1635 )
1636 if (vp->alt_opt_sep ? strncmpic(ss, vp->name, vp->alt_opt_sep) == 0
1637 : strcmpic (ss, vp->name) == 0)
1638 break;
5903c6ff 1639if (CS vp >= CS verify_type_list + sizeof(verify_type_list))
89583014
JH
1640 goto BAD_VERIFY;
1641
e3a69b62 1642if (vp->no_options && slash)
059ec3d9 1643 {
89583014
JH
1644 *log_msgptr = string_sprintf("unexpected '/' found in \"%s\" "
1645 "(this verify item has no options)", arg);
1646 return ERROR;
059ec3d9 1647 }
e3a69b62 1648if (!(vp->where_allowed & BIT(where)))
059ec3d9 1649 {
e3a69b62
JH
1650 *log_msgptr = string_sprintf("cannot verify %s in ACL for %s",
1651 vp->name, acl_wherenames[where]);
89583014 1652 return ERROR;
059ec3d9 1653 }
89583014 1654switch(vp->value)
596875b3 1655 {
89583014 1656 case VERIFY_REV_HOST_LKUP:
617d3932 1657 if (!sender_host_address) return OK;
7e8360e6 1658 if ((rc = acl_verify_reverse(user_msgptr, log_msgptr)) == DEFER)
617d3932 1659 while ((ss = string_nextinlist(&list, &sep, NULL, 0)))
7e8360e6
JH
1660 if (strcmpic(ss, US"defer_ok") == 0)
1661 return OK;
1662 return rc;
059ec3d9 1663
89583014
JH
1664 case VERIFY_CERT:
1665 /* TLS certificate verification is done at STARTTLS time; here we just
1666 test whether it was successful or not. (This is for optional verification; for
1667 mandatory verification, the connection doesn't last this long.) */
e5a9dba6 1668
3703d818
JH
1669 if (tls_in.certificate_verified) return OK;
1670 *user_msgptr = US"no verified certificate";
1671 return FAIL;
e5a9dba6 1672
89583014
JH
1673 case VERIFY_HELO:
1674 /* We can test the result of optional HELO verification that might have
1675 occurred earlier. If not, we can attempt the verification now. */
059ec3d9 1676
8768d548
JH
1677 if (!f.helo_verified && !f.helo_verify_failed) smtp_verify_helo();
1678 return f.helo_verified ? OK : FAIL;
059ec3d9 1679
89583014
JH
1680 case VERIFY_CSA:
1681 /* Do Client SMTP Authorization checks in a separate function, and turn the
1682 result code into user-friendly strings. */
1c41c9cc 1683
3703d818
JH
1684 rc = acl_verify_csa(list);
1685 *log_msgptr = *user_msgptr = string_sprintf("client SMTP authorization %s",
89583014 1686 csa_reason_string[rc]);
3703d818 1687 csa_status = csa_status_string[rc];
e1d04f48 1688 DEBUG(D_acl) debug_printf_indent("CSA result %s\n", csa_status);
3703d818 1689 return csa_return_code[rc];
89583014 1690
617d3932
JH
1691#ifdef EXPERIMENTAL_ARC
1692 case VERIFY_ARC:
1693 { /* Do Authenticated Received Chain checks in a separate function. */
1694 const uschar * condlist = CUS string_nextinlist(&list, &sep, NULL, 0);
1695 int csep = 0;
1696 uschar * cond;
1697
1698 if (!(arc_state = acl_verify_arc())) return DEFER;
93c931f8
JH
1699 DEBUG(D_acl) debug_printf_indent("ARC verify result %s %s%s%s\n", arc_state,
1700 arc_state_reason ? "(":"", arc_state_reason, arc_state_reason ? ")":"");
617d3932
JH
1701
1702 if (!condlist) condlist = US"none:pass";
1703 while ((cond = string_nextinlist(&condlist, &csep, NULL, 0)))
1704 if (Ustrcmp(arc_state, cond) == 0) return OK;
1705 return FAIL;
1706 }
1707#endif
1708
89583014 1709 case VERIFY_HDR_SYNTAX:
db57e575 1710 /* Check that all relevant header lines have the correct 5322-syntax. If there is
89583014
JH
1711 a syntax error, we return details of the error to the sender if configured to
1712 send out full details. (But a "message" setting on the ACL can override, as
1713 always). */
1714
1715 rc = verify_check_headers(log_msgptr);
3703d818
JH
1716 if (rc != OK && *log_msgptr)
1717 if (smtp_return_error_details)
1718 *user_msgptr = string_sprintf("Rejected after DATA: %s", *log_msgptr);
1719 else
1720 acl_verify_message = *log_msgptr;
89583014 1721 return rc;
059ec3d9 1722
770747fd
MFM
1723 case VERIFY_HDR_NAMES_ASCII:
1724 /* Check that all header names are true 7 bit strings
1725 See RFC 5322, 2.2. and RFC 6532, 3. */
1726
1727 rc = verify_check_header_names_ascii(log_msgptr);
617d3932 1728 if (rc != OK && smtp_return_error_details && *log_msgptr)
770747fd
MFM
1729 *user_msgptr = string_sprintf("Rejected after DATA: %s", *log_msgptr);
1730 return rc;
1731
89583014
JH
1732 case VERIFY_NOT_BLIND:
1733 /* Check that no recipient of this message is "blind", that is, every envelope
1734 recipient must be mentioned in either To: or Cc:. */
059ec3d9 1735
617d3932 1736 if ((rc = verify_check_notblind()) != OK)
89583014
JH
1737 {
1738 *log_msgptr = string_sprintf("bcc recipient detected");
1739 if (smtp_return_error_details)
1740 *user_msgptr = string_sprintf("Rejected after DATA: %s", *log_msgptr);
1741 }
1742 return rc;
059ec3d9 1743
89583014
JH
1744 /* The remaining verification tests check recipient and sender addresses,
1745 either from the envelope or from the header. There are a number of
1746 slash-separated options that are common to all of them. */
059ec3d9 1747
89583014
JH
1748 case VERIFY_HDR_SNDR:
1749 verify_header_sender = TRUE;
1750 break;
059ec3d9 1751
89583014
JH
1752 case VERIFY_SNDR:
1753 /* In the case of a sender, this can optionally be followed by an address to use
1754 in place of the actual sender (rare special-case requirement). */
059ec3d9 1755 {
89583014
JH
1756 uschar *s = ss + 6;
1757 if (*s == 0)
1758 verify_sender_address = sender_address;
1759 else
1760 {
1761 while (isspace(*s)) s++;
1762 if (*s++ != '=') goto BAD_VERIFY;
1763 while (isspace(*s)) s++;
1764 verify_sender_address = string_copy(s);
1765 }
059ec3d9 1766 }
89583014
JH
1767 break;
1768
1769 case VERIFY_RCPT:
1770 break;
059ec3d9
PH
1771 }
1772
89583014
JH
1773
1774
596875b3
PH
1775/* Remaining items are optional; they apply to sender and recipient
1776verification, including "header sender" verification. */
059ec3d9
PH
1777
1778while ((ss = string_nextinlist(&list, &sep, big_buffer, big_buffer_size))
1779 != NULL)
1780 {
1781 if (strcmpic(ss, US"defer_ok") == 0) defer_ok = TRUE;
1782 else if (strcmpic(ss, US"no_details") == 0) no_details = TRUE;
eafd343b 1783 else if (strcmpic(ss, US"success_on_redirect") == 0) success_on_redirect = TRUE;
059ec3d9
PH
1784
1785 /* These two old options are left for backwards compatibility */
1786
1787 else if (strcmpic(ss, US"callout_defer_ok") == 0)
1788 {
1789 callout_defer_ok = TRUE;
1790 if (callout == -1) callout = CALLOUT_TIMEOUT_DEFAULT;
1791 }
1792
1793 else if (strcmpic(ss, US"check_postmaster") == 0)
1794 {
1795 pm_mailfrom = US"";
1796 if (callout == -1) callout = CALLOUT_TIMEOUT_DEFAULT;
1797 }
1798
1799 /* The callout option has a number of sub-options, comma separated */
1800
1801 else if (strncmpic(ss, US"callout", 7) == 0)
1802 {
1803 callout = CALLOUT_TIMEOUT_DEFAULT;
1804 ss += 7;
1805 if (*ss != 0)
1806 {
1807 while (isspace(*ss)) ss++;
1808 if (*ss++ == '=')
1809 {
55414b25 1810 const uschar * sublist = ss;
059ec3d9
PH
1811 int optsep = ',';
1812 uschar *opt;
1813 uschar buffer[256];
55414b25 1814 while (isspace(*sublist)) sublist++;
8e669ac1 1815
57cc2785 1816 while ((opt = string_nextinlist(&sublist, &optsep, buffer, sizeof(buffer))))
059ec3d9 1817 {
89583014 1818 callout_opt_t * op;
438257ba 1819 double period = 1.0F;
059ec3d9 1820
89583014 1821 for (op= callout_opt_list; op->name; op++)
438257ba 1822 if (strncmpic(opt, op->name, Ustrlen(op->name)) == 0)
89583014 1823 break;
059ec3d9 1824
89583014
JH
1825 verify_options |= op->flag;
1826 if (op->has_option)
1827 {
438257ba 1828 opt += Ustrlen(op->name);
4deaf07d
PH
1829 while (isspace(*opt)) opt++;
1830 if (*opt++ != '=')
1831 {
1832 *log_msgptr = string_sprintf("'=' expected after "
89583014 1833 "\"%s\" in ACL verify condition \"%s\"", op->name, arg);
4deaf07d
PH
1834 return ERROR;
1835 }
1836 while (isspace(*opt)) opt++;
89583014 1837 }
57cc2785 1838 if (op->timeval && (period = readconf_readtime(opt, 0, FALSE)) < 0)
89583014 1839 {
57cc2785
JH
1840 *log_msgptr = string_sprintf("bad time value in ACL condition "
1841 "\"verify %s\"", arg);
1842 return ERROR;
89583014
JH
1843 }
1844
1845 switch(op->value)
1846 {
1847 case CALLOUT_DEFER_OK: callout_defer_ok = TRUE; break;
1848 case CALLOUT_POSTMASTER: pm_mailfrom = US""; break;
1849 case CALLOUT_FULLPOSTMASTER: pm_mailfrom = US""; break;
1850 case CALLOUT_MAILFROM:
1851 if (!verify_header_sender)
1852 {
1853 *log_msgptr = string_sprintf("\"mailfrom\" is allowed as a "
1854 "callout option only for verify=header_sender (detected in ACL "
1855 "condition \"%s\")", arg);
1856 return ERROR;
1857 }
1858 se_mailfrom = string_copy(opt);
1859 break;
1860 case CALLOUT_POSTMASTER_MAILFROM: pm_mailfrom = string_copy(opt); break;
1861 case CALLOUT_MAXWAIT: callout_overall = period; break;
1862 case CALLOUT_CONNECT: callout_connect = period; break;
1863 case CALLOUT_TIME: callout = period; break;
1864 }
059ec3d9
PH
1865 }
1866 }
1867 else
1868 {
1869 *log_msgptr = string_sprintf("'=' expected after \"callout\" in "
1870 "ACL condition \"%s\"", arg);
1871 return ERROR;
1872 }
1873 }
1874 }
1875
1876 /* Option not recognized */
1877
1878 else
1879 {
1880 *log_msgptr = string_sprintf("unknown option \"%s\" in ACL "
1881 "condition \"verify %s\"", ss, arg);
1882 return ERROR;
1883 }
1884 }
1885
1886if ((verify_options & (vopt_callout_recipsender|vopt_callout_recippmaster)) ==
1887 (vopt_callout_recipsender|vopt_callout_recippmaster))
1888 {
1889 *log_msgptr = US"only one of use_sender and use_postmaster can be set "
1890 "for a recipient callout";
1891 return ERROR;
1892 }
1893
1894/* Handle sender-in-header verification. Default the user message to the log
1895message if giving out verification details. */
1896
1897if (verify_header_sender)
1898 {
8e669ac1 1899 int verrno;
2f682e45
JH
1900
1901 if ((rc = verify_check_header_address(user_msgptr, log_msgptr, callout,
fe5b5d0b 1902 callout_overall, callout_connect, se_mailfrom, pm_mailfrom, verify_options,
2f682e45 1903 &verrno)) != OK)
8e669ac1 1904 {
fe5b5d0b
PH
1905 *basic_errno = verrno;
1906 if (smtp_return_error_details)
1907 {
2f682e45 1908 if (!*user_msgptr && *log_msgptr)
fe5b5d0b 1909 *user_msgptr = string_sprintf("Rejected after DATA: %s", *log_msgptr);
8768d548 1910 if (rc == DEFER) f.acl_temp_details = TRUE;
fe5b5d0b 1911 }
8e669ac1 1912 }
059ec3d9
PH
1913 }
1914
1915/* Handle a sender address. The default is to verify *the* sender address, but
1916optionally a different address can be given, for special requirements. If the
1917address is empty, we are dealing with a bounce message that has no sender, so
1918we cannot do any checking. If the real sender address gets rewritten during
1919verification (e.g. DNS widening), set the flag to stop it being rewritten again
1920during message reception.
1921
1922A list of verified "sender" addresses is kept to try to avoid doing to much
1923work repetitively when there are multiple recipients in a message and they all
1924require sender verification. However, when callouts are involved, it gets too
1925complicated because different recipients may require different callout options.
1926Therefore, we always do a full sender verify when any kind of callout is
1927specified. Caching elsewhere, for instance in the DNS resolver and in the
1928callout handling, should ensure that this is not terribly inefficient. */
1929
2f682e45 1930else if (verify_sender_address)
059ec3d9 1931 {
2f682e45 1932 if ((verify_options & (vopt_callout_recipsender|vopt_callout_recippmaster)))
059ec3d9
PH
1933 {
1934 *log_msgptr = US"use_sender or use_postmaster cannot be used for a "
1935 "sender verify callout";
1936 return ERROR;
1937 }
1938
1939 sender_vaddr = verify_checked_sender(verify_sender_address);
1940 if (sender_vaddr != NULL && /* Previously checked */
1941 callout <= 0) /* No callout needed this time */
1942 {
1943 /* If the "routed" flag is set, it means that routing worked before, so
1944 this check can give OK (the saved return code value, if set, belongs to a
1945 callout that was done previously). If the "routed" flag is not set, routing
1946 must have failed, so we use the saved return code. */
1947
2f682e45
JH
1948 if (testflag(sender_vaddr, af_verify_routed))
1949 rc = OK;
1950 else
059ec3d9
PH
1951 {
1952 rc = sender_vaddr->special_action;
1953 *basic_errno = sender_vaddr->basic_errno;
1954 }
e1d04f48 1955 HDEBUG(D_acl) debug_printf_indent("using cached sender verify result\n");
059ec3d9
PH
1956 }
1957
1958 /* Do a new verification, and cache the result. The cache is used to avoid
1959 verifying the sender multiple times for multiple RCPTs when callouts are not
1960 specified (see comments above).
1961
1962 The cache is also used on failure to give details in response to the first
1963 RCPT that gets bounced for this reason. However, this can be suppressed by
1964 the no_details option, which sets the flag that says "this detail has already
1965 been sent". The cache normally contains just one address, but there may be
1966 more in esoteric circumstances. */
1967
1968 else
1969 {
1970 BOOL routed = TRUE;
2a3eea10 1971 uschar *save_address_data = deliver_address_data;
8e669ac1 1972
059ec3d9 1973 sender_vaddr = deliver_make_addr(verify_sender_address, TRUE);
8c5d388a 1974#ifdef SUPPORT_I18N
3c8b3577
JH
1975 if ((sender_vaddr->prop.utf8_msg = message_smtputf8))
1976 {
1977 sender_vaddr->prop.utf8_downcvt = message_utf8_downconvert == 1;
1978 sender_vaddr->prop.utf8_downcvt_maybe = message_utf8_downconvert == -1;
1979 }
f358d5e0 1980#endif
059ec3d9
PH
1981 if (no_details) setflag(sender_vaddr, af_sverify_told);
1982 if (verify_sender_address[0] != 0)
1983 {
1984 /* If this is the real sender address, save the unrewritten version
1985 for use later in receive. Otherwise, set a flag so that rewriting the
1986 sender in verify_address() does not update sender_address. */
1987
1988 if (verify_sender_address == sender_address)
1989 sender_address_unrewritten = sender_address;
1990 else
1991 verify_options |= vopt_fake_sender;
1992
eafd343b
TK
1993 if (success_on_redirect)
1994 verify_options |= vopt_success_on_redirect;
1995
059ec3d9
PH
1996 /* The recipient, qualify, and expn options are never set in
1997 verify_options. */
1998
1999 rc = verify_address(sender_vaddr, NULL, verify_options, callout,
4deaf07d 2000 callout_overall, callout_connect, se_mailfrom, pm_mailfrom, &routed);
059ec3d9 2001
e1d04f48 2002 HDEBUG(D_acl) debug_printf_indent("----------- end verify ------------\n");
059ec3d9 2003
2f682e45
JH
2004 if (rc != OK)
2005 *basic_errno = sender_vaddr->basic_errno;
2006 else
2007 DEBUG(D_acl)
2008 {
2009 if (Ustrcmp(sender_vaddr->address, verify_sender_address) != 0)
e1d04f48 2010 debug_printf_indent("sender %s verified ok as %s\n",
2f682e45
JH
2011 verify_sender_address, sender_vaddr->address);
2012 else
e1d04f48 2013 debug_printf_indent("sender %s verified ok\n",
2f682e45
JH
2014 verify_sender_address);
2015 }
059ec3d9 2016 }
2f682e45
JH
2017 else
2018 rc = OK; /* Null sender */
059ec3d9
PH
2019
2020 /* Cache the result code */
2021
2022 if (routed) setflag(sender_vaddr, af_verify_routed);
2023 if (callout > 0) setflag(sender_vaddr, af_verify_callout);
2024 sender_vaddr->special_action = rc;
2025 sender_vaddr->next = sender_verified_list;
2026 sender_verified_list = sender_vaddr;
8e669ac1
PH
2027
2028 /* Restore the recipient address data, which might have been clobbered by
2a3eea10 2029 the sender verification. */
8e669ac1 2030
2a3eea10 2031 deliver_address_data = save_address_data;
059ec3d9 2032 }
8e669ac1 2033
2a3eea10
PH
2034 /* Put the sender address_data value into $sender_address_data */
2035
d43cbe25 2036 sender_address_data = sender_vaddr->prop.address_data;
059ec3d9
PH
2037 }
2038
2039/* A recipient address just gets a straightforward verify; again we must handle
2040the DEFER overrides. */
2041
2042else
2043 {
2044 address_item addr2;
2045
eafd343b
TK
2046 if (success_on_redirect)
2047 verify_options |= vopt_success_on_redirect;
2048
059ec3d9
PH
2049 /* We must use a copy of the address for verification, because it might
2050 get rewritten. */
2051
2052 addr2 = *addr;
2053 rc = verify_address(&addr2, NULL, verify_options|vopt_is_recipient, callout,
4deaf07d 2054 callout_overall, callout_connect, se_mailfrom, pm_mailfrom, NULL);
e1d04f48 2055 HDEBUG(D_acl) debug_printf_indent("----------- end verify ------------\n");
8e669ac1 2056
42855d71 2057 *basic_errno = addr2.basic_errno;
059ec3d9 2058 *log_msgptr = addr2.message;
8e669ac1 2059 *user_msgptr = (addr2.user_message != NULL)?
6729cf78 2060 addr2.user_message : addr2.message;
42855d71
PH
2061
2062 /* Allow details for temporary error if the address is so flagged. */
8768d548 2063 if (testflag((&addr2), af_pass_message)) f.acl_temp_details = TRUE;
059ec3d9
PH
2064
2065 /* Make $address_data visible */
d43cbe25 2066 deliver_address_data = addr2.prop.address_data;
059ec3d9
PH
2067 }
2068
2069/* We have a result from the relevant test. Handle defer overrides first. */
2070
2071if (rc == DEFER && (defer_ok ||
2072 (callout_defer_ok && *basic_errno == ERRNO_CALLOUTDEFER)))
2073 {
e1d04f48 2074 HDEBUG(D_acl) debug_printf_indent("verify defer overridden by %s\n",
059ec3d9
PH
2075 defer_ok? "defer_ok" : "callout_defer_ok");
2076 rc = OK;
2077 }
2078
2079/* If we've failed a sender, set up a recipient message, and point
2080sender_verified_failed to the address item that actually failed. */
2081
2082if (rc != OK && verify_sender_address != NULL)
2083 {
2084 if (rc != DEFER)
059ec3d9 2085 *log_msgptr = *user_msgptr = US"Sender verify failed";
059ec3d9 2086 else if (*basic_errno != ERRNO_CALLOUTDEFER)
059ec3d9 2087 *log_msgptr = *user_msgptr = US"Could not complete sender verify";
059ec3d9
PH
2088 else
2089 {
2090 *log_msgptr = US"Could not complete sender verify callout";
2091 *user_msgptr = smtp_return_error_details? sender_vaddr->user_message :
2092 *log_msgptr;
2093 }
2094
2095 sender_verified_failed = sender_vaddr;
2096 }
2097
2098/* Verifying an address messes up the values of $domain and $local_part,
2099so reset them before returning if this is a RCPT ACL. */
2100
2101if (addr != NULL)
2102 {
2103 deliver_domain = addr->domain;
2104 deliver_localpart = addr->local_part;
2105 }
2106return rc;
2107
2108/* Syntax errors in the verify argument come here. */
2109
2110BAD_VERIFY:
2111*log_msgptr = string_sprintf("expected \"sender[=address]\", \"recipient\", "
770747fd
MFM
2112 "\"helo\", \"header_syntax\", \"header_sender\", \"header_names_ascii\" "
2113 "or \"reverse_host_lookup\" at start of ACL condition "
059ec3d9
PH
2114 "\"verify %s\"", arg);
2115return ERROR;
2116}
2117
2118
2119
2120
2121/*************************************************
2122* Check argument for control= modifier *
2123*************************************************/
2124
2125/* Called from acl_check_condition() below
2126
2127Arguments:
2128 arg the argument string for control=
2129 pptr set to point to the terminating character
2130 where which ACL we are in
2131 log_msgptr for error messages
2132
2133Returns: CONTROL_xxx value
2134*/
2135
2136static int
55414b25 2137decode_control(const uschar *arg, const uschar **pptr, int where, uschar **log_msgptr)
059ec3d9 2138{
d7bed771
JH
2139int idx, len;
2140control_def * d;
059ec3d9 2141
d7bed771
JH
2142if ( (idx = find_control(arg, controls_list, nelem(controls_list))) < 0
2143 || ( arg[len = Ustrlen((d = controls_list+idx)->name)] != 0
2144 && (!d->has_option || arg[len] != '/')
2145 ) )
059ec3d9
PH
2146 {
2147 *log_msgptr = string_sprintf("syntax error in \"control=%s\"", arg);
2148 return CONTROL_ERROR;
2149 }
2150
059ec3d9 2151*pptr = arg + len;
d7bed771 2152return idx;
059ec3d9
PH
2153}
2154
2155
2156
c99ce5c9
TF
2157
2158/*************************************************
2159* Return a ratelimit error *
2160*************************************************/
2161
2162/* Called from acl_ratelimit() below
2163
2164Arguments:
2165 log_msgptr for error messages
2166 format format string
2167 ... supplementary arguments
2168 ss ratelimit option name
2169 where ACL_WHERE_xxxx indicating which ACL this is
2170
2171Returns: ERROR
2172*/
2173
2174static int
2175ratelimit_error(uschar **log_msgptr, const char *format, ...)
2176{
2177va_list ap;
2178uschar buffer[STRING_SPRINTF_BUFFER_SIZE];
2179va_start(ap, format);
2180if (!string_vformat(buffer, sizeof(buffer), format, ap))
2181 log_write(0, LOG_MAIN|LOG_PANIC_DIE,
ef840681 2182 "string_sprintf expansion was longer than " SIZE_T_FMT, sizeof(buffer));
c99ce5c9
TF
2183va_end(ap);
2184*log_msgptr = string_sprintf(
2185 "error in arguments to \"ratelimit\" condition: %s", buffer);
2186return ERROR;
2187}
2188
2189
2190
2191
870f6ba8
TF
2192/*************************************************
2193* Handle rate limiting *
2194*************************************************/
2195
2196/* Called by acl_check_condition() below to calculate the result
2197of the ACL ratelimit condition.
2198
2199Note that the return value might be slightly unexpected: if the
2200sender's rate is above the limit then the result is OK. This is
2201similar to the dnslists condition, and is so that you can write
2202ACL clauses like: defer ratelimit = 15 / 1h
2203
2204Arguments:
2205 arg the option string for ratelimit=
90fc3069 2206 where ACL_WHERE_xxxx indicating which ACL this is
870f6ba8
TF
2207 log_msgptr for error messages
2208
2209Returns: OK - Sender's rate is above limit
2210 FAIL - Sender's rate is below limit
2211 DEFER - Problem opening ratelimit database
2212 ERROR - Syntax error in options.
2213*/
2214
2215static int
55414b25 2216acl_ratelimit(const uschar *arg, int where, uschar **log_msgptr)
870f6ba8 2217{
c99ce5c9 2218double limit, period, count;
8f240103
PH
2219uschar *ss;
2220uschar *key = NULL;
c99ce5c9 2221uschar *unique = NULL;
870f6ba8 2222int sep = '/';
c99ce5c9
TF
2223BOOL leaky = FALSE, strict = FALSE, readonly = FALSE;
2224BOOL noupdate = FALSE, badacl = FALSE;
2225int mode = RATE_PER_WHAT;
870f6ba8
TF
2226int old_pool, rc;
2227tree_node **anchor, *t;
2228open_db dbblock, *dbm;
c99ce5c9 2229int dbdb_size;
870f6ba8 2230dbdata_ratelimit *dbd;
c99ce5c9 2231dbdata_ratelimit_unique *dbdb;
870f6ba8
TF
2232struct timeval tv;
2233
2234/* Parse the first two options and record their values in expansion
2235variables. These variables allow the configuration to have informative
2236error messages based on rate limits obtained from a table lookup. */
2237
c99ce5c9 2238/* First is the maximum number of messages per period / maximum burst
870f6ba8
TF
2239size, which must be greater than or equal to zero. Zero is useful for
2240rate measurement as opposed to rate limiting. */
2241
65a32f85 2242if (!(sender_rate_limit = string_nextinlist(&arg, &sep, NULL, 0)))
96f5fe4c
JH
2243 return ratelimit_error(log_msgptr, "sender rate limit not set");
2244
2245limit = Ustrtod(sender_rate_limit, &ss);
2246if (tolower(*ss) == 'k') { limit *= 1024.0; ss++; }
2247else if (tolower(*ss) == 'm') { limit *= 1024.0*1024.0; ss++; }
2248else if (tolower(*ss) == 'g') { limit *= 1024.0*1024.0*1024.0; ss++; }
2249
c99ce5c9
TF
2250if (limit < 0.0 || *ss != '\0')
2251 return ratelimit_error(log_msgptr,
2252 "\"%s\" is not a positive number", sender_rate_limit);
870f6ba8 2253
c99ce5c9 2254/* Second is the rate measurement period / exponential smoothing time
870f6ba8
TF
2255constant. This must be strictly greater than zero, because zero leads to
2256run-time division errors. */
2257
65a32f85
JH
2258period = !(sender_rate_period = string_nextinlist(&arg, &sep, NULL, 0))
2259 ? -1.0 : readconf_readtime(sender_rate_period, 0, FALSE);
870f6ba8 2260if (period <= 0.0)
c99ce5c9
TF
2261 return ratelimit_error(log_msgptr,
2262 "\"%s\" is not a time value", sender_rate_period);
2263
2264/* By default we are counting one of something, but the per_rcpt,
2265per_byte, and count options can change this. */
2266
2267count = 1.0;
870f6ba8 2268
c99ce5c9 2269/* Parse the other options. */
870f6ba8 2270
65a32f85 2271while ((ss = string_nextinlist(&arg, &sep, big_buffer, big_buffer_size)))
870f6ba8
TF
2272 {
2273 if (strcmpic(ss, US"leaky") == 0) leaky = TRUE;
2274 else if (strcmpic(ss, US"strict") == 0) strict = TRUE;
8f240103 2275 else if (strcmpic(ss, US"noupdate") == 0) noupdate = TRUE;
c99ce5c9
TF
2276 else if (strcmpic(ss, US"readonly") == 0) readonly = TRUE;
2277 else if (strcmpic(ss, US"per_cmd") == 0) RATE_SET(mode, PER_CMD);
2278 else if (strcmpic(ss, US"per_conn") == 0)
2279 {
2280 RATE_SET(mode, PER_CONN);
2281 if (where == ACL_WHERE_NOTSMTP || where == ACL_WHERE_NOTSMTP_START)
2282 badacl = TRUE;
2283 }
2284 else if (strcmpic(ss, US"per_mail") == 0)
2285 {
2286 RATE_SET(mode, PER_MAIL);
2287 if (where > ACL_WHERE_NOTSMTP) badacl = TRUE;
2288 }
2289 else if (strcmpic(ss, US"per_rcpt") == 0)
2290 {
2291 /* If we are running in the RCPT ACL, then we'll count the recipients
2292 one by one, but if we are running when we have accumulated the whole
2293 list then we'll add them all in one batch. */
2294 if (where == ACL_WHERE_RCPT)
2295 RATE_SET(mode, PER_RCPT);
2296 else if (where >= ACL_WHERE_PREDATA && where <= ACL_WHERE_NOTSMTP)
2297 RATE_SET(mode, PER_ALLRCPTS), count = (double)recipients_count;
2298 else if (where == ACL_WHERE_MAIL || where > ACL_WHERE_NOTSMTP)
2299 RATE_SET(mode, PER_RCPT), badacl = TRUE;
2300 }
2301 else if (strcmpic(ss, US"per_byte") == 0)
2302 {
2303 /* If we have not yet received the message data and there was no SIZE
4c04137d 2304 declaration on the MAIL command, then it's safe to just use a value of
c99ce5c9
TF
2305 zero and let the recorded rate decay as if nothing happened. */
2306 RATE_SET(mode, PER_MAIL);
2307 if (where > ACL_WHERE_NOTSMTP) badacl = TRUE;
65a32f85 2308 else count = message_size < 0 ? 0.0 : (double)message_size;
c99ce5c9
TF
2309 }
2310 else if (strcmpic(ss, US"per_addr") == 0)
2311 {
2312 RATE_SET(mode, PER_RCPT);
438257ba 2313 if (where != ACL_WHERE_RCPT) badacl = TRUE, unique = US"*";
65a32f85 2314 else unique = string_sprintf("%s@%s", deliver_localpart, deliver_domain);
c99ce5c9
TF
2315 }
2316 else if (strncmpic(ss, US"count=", 6) == 0)
2317 {
2318 uschar *e;
2319 count = Ustrtod(ss+6, &e);
2320 if (count < 0.0 || *e != '\0')
65a32f85 2321 return ratelimit_error(log_msgptr, "\"%s\" is not a positive number", ss);
c99ce5c9
TF
2322 }
2323 else if (strncmpic(ss, US"unique=", 7) == 0)
2324 unique = string_copy(ss + 7);
65a32f85 2325 else if (!key)
c99ce5c9
TF
2326 key = string_copy(ss);
2327 else
2328 key = string_sprintf("%s/%s", key, ss);
870f6ba8
TF
2329 }
2330
c99ce5c9
TF
2331/* Sanity check. When the badacl flag is set the update mode must either
2332be readonly (which is the default if it is omitted) or, for backwards
2333compatibility, a combination of noupdate and strict or leaky. */
2334
2335if (mode == RATE_PER_CLASH)
2336 return ratelimit_error(log_msgptr, "conflicting per_* options");
2337if (leaky + strict + readonly > 1)
2338 return ratelimit_error(log_msgptr, "conflicting update modes");
2339if (badacl && (leaky || strict) && !noupdate)
2340 return ratelimit_error(log_msgptr,
bfe6da19 2341 "\"%s\" must not have /leaky or /strict option, or cannot be used in %s ACL",
c99ce5c9
TF
2342 ratelimit_option_string[mode], acl_wherenames[where]);
2343
2344/* Set the default values of any unset options. In readonly mode we
2345perform the rate computation without any increment so that its value
2346decays to eventually allow over-limit senders through. */
2347
2348if (noupdate) readonly = TRUE, leaky = strict = FALSE;
2349if (badacl) readonly = TRUE;
2350if (readonly) count = 0.0;
2351if (!strict && !readonly) leaky = TRUE;
2352if (mode == RATE_PER_WHAT) mode = RATE_PER_MAIL;
870f6ba8 2353
8f240103
PH
2354/* Create the lookup key. If there is no explicit key, use sender_host_address.
2355If there is no sender_host_address (e.g. -bs or acl_not_smtp) then we simply
2356omit it. The smoothing constant (sender_rate_period) and the per_xxx options
2357are added to the key because they alter the meaning of the stored data. */
2358
65a32f85
JH
2359if (!key)
2360 key = !sender_host_address ? US"" : sender_host_address;
870f6ba8 2361
c99ce5c9 2362key = string_sprintf("%s/%s/%s%s",
8f240103 2363 sender_rate_period,
c99ce5c9
TF
2364 ratelimit_option_string[mode],
2365 unique == NULL ? "" : "unique/",
8f240103 2366 key);
870f6ba8 2367
c99ce5c9 2368HDEBUG(D_acl)
e1d04f48 2369 debug_printf_indent("ratelimit condition count=%.0f %.1f/%s\n", count, limit, key);
870f6ba8 2370
8f240103
PH
2371/* See if we have already computed the rate by looking in the relevant tree.
2372For per-connection rate limiting, store tree nodes and dbdata in the permanent
c99ce5c9
TF
2373pool so that they survive across resets. In readonly mode we only remember the
2374result for the rest of this command in case a later command changes it. After
2375this bit of logic the code is independent of the per_* mode. */
870f6ba8 2376
870f6ba8
TF
2377old_pool = store_pool;
2378
c99ce5c9
TF
2379if (readonly)
2380 anchor = &ratelimiters_cmd;
65a32f85
JH
2381else switch(mode)
2382 {
2383 case RATE_PER_CONN:
2384 anchor = &ratelimiters_conn;
2385 store_pool = POOL_PERM;
2386 break;
2387 case RATE_PER_BYTE:
2388 case RATE_PER_MAIL:
2389 case RATE_PER_ALLRCPTS:
2390 anchor = &ratelimiters_mail;
2391 break;
2392 case RATE_PER_ADDR:
2393 case RATE_PER_CMD:
2394 case RATE_PER_RCPT:
2395 anchor = &ratelimiters_cmd;
2396 break;
2397 default:
2398 anchor = NULL; /* silence an "unused" complaint */
2399 log_write(0, LOG_MAIN|LOG_PANIC_DIE,
2400 "internal ACL error: unknown ratelimit mode %d", mode);
2401 break;
2402 }
870f6ba8 2403
65a32f85 2404if ((t = tree_search(*anchor, key)))
870f6ba8
TF
2405 {
2406 dbd = t->data.ptr;
2407 /* The following few lines duplicate some of the code below. */
8f240103 2408 rc = (dbd->rate < limit)? FAIL : OK;
870f6ba8
TF
2409 store_pool = old_pool;
2410 sender_rate = string_sprintf("%.1f", dbd->rate);
2411 HDEBUG(D_acl)
e1d04f48 2412 debug_printf_indent("ratelimit found pre-computed rate %s\n", sender_rate);
870f6ba8
TF
2413 return rc;
2414 }
2415
c99ce5c9
TF
2416/* We aren't using a pre-computed rate, so get a previously recorded rate
2417from the database, which will be updated and written back if required. */
870f6ba8 2418
0a6c178c 2419if (!(dbm = dbfn_open(US"ratelimit", O_RDWR, &dbblock, TRUE)))
870f6ba8
TF
2420 {
2421 store_pool = old_pool;
2422 sender_rate = NULL;
e1d04f48 2423 HDEBUG(D_acl) debug_printf_indent("ratelimit database not available\n");
870f6ba8
TF
2424 *log_msgptr = US"ratelimit database not available";
2425 return DEFER;
2426 }
c99ce5c9
TF
2427dbdb = dbfn_read_with_length(dbm, key, &dbdb_size);
2428dbd = NULL;
870f6ba8
TF
2429
2430gettimeofday(&tv, NULL);
2431
65a32f85 2432if (dbdb)
c99ce5c9
TF
2433 {
2434 /* Locate the basic ratelimit block inside the DB data. */
e1d04f48 2435 HDEBUG(D_acl) debug_printf_indent("ratelimit found key in database\n");
c99ce5c9
TF
2436 dbd = &dbdb->dbd;
2437
2438 /* Forget the old Bloom filter if it is too old, so that we count each
2439 repeating event once per period. We don't simply clear and re-use the old
2440 filter because we want its size to change if the limit changes. Note that
2441 we keep the dbd pointer for copying the rate into the new data block. */
2442
65a32f85 2443 if(unique && tv.tv_sec > dbdb->bloom_epoch + period)
c99ce5c9 2444 {
e1d04f48 2445 HDEBUG(D_acl) debug_printf_indent("ratelimit discarding old Bloom filter\n");
c99ce5c9
TF
2446 dbdb = NULL;
2447 }
2448
2449 /* Sanity check. */
2450
65a32f85 2451 if(unique && dbdb_size < sizeof(*dbdb))
c99ce5c9 2452 {
e1d04f48 2453 HDEBUG(D_acl) debug_printf_indent("ratelimit discarding undersize Bloom filter\n");
c99ce5c9
TF
2454 dbdb = NULL;
2455 }
2456 }
2457
2458/* Allocate a new data block if the database lookup failed
2459or the Bloom filter passed its age limit. */
2460
65a32f85 2461if (!dbdb)
c99ce5c9 2462 {
65a32f85 2463 if (!unique)
c99ce5c9
TF
2464 {
2465 /* No Bloom filter. This basic ratelimit block is initialized below. */
e1d04f48 2466 HDEBUG(D_acl) debug_printf_indent("ratelimit creating new rate data block\n");
c99ce5c9
TF
2467 dbdb_size = sizeof(*dbd);
2468 dbdb = store_get(dbdb_size);
2469 }
2470 else
2471 {
2472 int extra;
e1d04f48 2473 HDEBUG(D_acl) debug_printf_indent("ratelimit creating new Bloom filter\n");
c99ce5c9
TF
2474
2475 /* See the long comment below for an explanation of the magic number 2.
2476 The filter has a minimum size in case the rate limit is very small;
2477 this is determined by the definition of dbdata_ratelimit_unique. */
2478
2479 extra = (int)limit * 2 - sizeof(dbdb->bloom);
2480 if (extra < 0) extra = 0;
2481 dbdb_size = sizeof(*dbdb) + extra;
2482 dbdb = store_get(dbdb_size);
2483 dbdb->bloom_epoch = tv.tv_sec;
2484 dbdb->bloom_size = sizeof(dbdb->bloom) + extra;
2485 memset(dbdb->bloom, 0, dbdb->bloom_size);
2486
2487 /* Preserve any basic ratelimit data (which is our longer-term memory)
2488 by copying it from the discarded block. */
2489
65a32f85 2490 if (dbd)
c99ce5c9
TF
2491 {
2492 dbdb->dbd = *dbd;
2493 dbd = &dbdb->dbd;
2494 }
2495 }
2496 }
2497
2498/* If we are counting unique events, find out if this event is new or not.
2499If the client repeats the event during the current period then it should be
2500counted. We skip this code in readonly mode for efficiency, because any
2501changes to the filter will be discarded and because count is already set to
2502zero. */
2503
65a32f85 2504if (unique && !readonly)
c99ce5c9
TF
2505 {
2506 /* We identify unique events using a Bloom filter. (You can find my
2507 notes on Bloom filters at http://fanf.livejournal.com/81696.html)
2508 With the per_addr option, an "event" is a recipient address, though the
2509 user can use the unique option to define their own events. We only count
2510 an event if we have not seen it before.
2511
2512 We size the filter according to the rate limit, which (in leaky mode)
2513 is the limit on the population of the filter. We allow 16 bits of space
2514 per entry (see the construction code above) and we set (up to) 8 of them
2515 when inserting an element (see the loop below). The probability of a false
2516 positive (an event we have not seen before but which we fail to count) is
2517
2518 size = limit * 16
2519 numhash = 8
2520 allzero = exp(-numhash * pop / size)
2521 = exp(-0.5 * pop / limit)
2522 fpr = pow(1 - allzero, numhash)
2523
2524 For senders at the limit the fpr is 0.06% or 1 in 1700
2525 and for senders at half the limit it is 0.0006% or 1 in 170000
2526
2527 In strict mode the Bloom filter can fill up beyond the normal limit, in
2528 which case the false positive rate will rise. This means that the
2529 measured rate for very fast senders can bogusly drop off after a while.
2530
2531 At twice the limit, the fpr is 2.5% or 1 in 40
2532 At four times the limit, it is 31% or 1 in 3.2
2533
2534 It takes ln(pop/limit) periods for an over-limit burst of pop events to
2535 decay below the limit, and if this is more than one then the Bloom filter
2536 will be discarded before the decay gets that far. The false positive rate
2537 at this threshold is 9.3% or 1 in 10.7. */
2538
2539 BOOL seen;
2540 unsigned n, hash, hinc;
2541 uschar md5sum[16];
2542 md5 md5info;
2543
2544 /* Instead of using eight independent hash values, we combine two values
2545 using the formula h1 + n * h2. This does not harm the Bloom filter's
2546 performance, and means the amount of hash we need is independent of the
2547 number of bits we set in the filter. */
2548
2549 md5_start(&md5info);
2550 md5_end(&md5info, unique, Ustrlen(unique), md5sum);
2551 hash = md5sum[0] | md5sum[1] << 8 | md5sum[2] << 16 | md5sum[3] << 24;
2552 hinc = md5sum[4] | md5sum[5] << 8 | md5sum[6] << 16 | md5sum[7] << 24;
2553
2554 /* Scan the bits corresponding to this event. A zero bit means we have
2555 not seen it before. Ensure all bits are set to record this event. */
2556
e1d04f48 2557 HDEBUG(D_acl) debug_printf_indent("ratelimit checking uniqueness of %s\n", unique);
c99ce5c9
TF
2558
2559 seen = TRUE;
2560 for (n = 0; n < 8; n++, hash += hinc)
2561 {
2562 int bit = 1 << (hash % 8);
2563 int byte = (hash / 8) % dbdb->bloom_size;
2564 if ((dbdb->bloom[byte] & bit) == 0)
2565 {
2566 dbdb->bloom[byte] |= bit;
2567 seen = FALSE;
2568 }
2569 }
2570
2571 /* If this event has occurred before, do not count it. */
2572
2573 if (seen)
2574 {
e1d04f48 2575 HDEBUG(D_acl) debug_printf_indent("ratelimit event found in Bloom filter\n");
c99ce5c9
TF
2576 count = 0.0;
2577 }
2578 else
e1d04f48 2579 HDEBUG(D_acl) debug_printf_indent("ratelimit event added to Bloom filter\n");
c99ce5c9
TF
2580 }
2581
2582/* If there was no previous ratelimit data block for this key, initialize
2583the new one, otherwise update the block from the database. The initial rate
2584is what would be computed by the code below for an infinite interval. */
2585
65a32f85 2586if (!dbd)
870f6ba8 2587 {
e1d04f48 2588 HDEBUG(D_acl) debug_printf_indent("ratelimit initializing new key's rate data\n");
c99ce5c9 2589 dbd = &dbdb->dbd;
870f6ba8
TF
2590 dbd->time_stamp = tv.tv_sec;
2591 dbd->time_usec = tv.tv_usec;
c99ce5c9 2592 dbd->rate = count;
870f6ba8
TF
2593 }
2594else
2595 {
2596 /* The smoothed rate is computed using an exponentially weighted moving
2597 average adjusted for variable sampling intervals. The standard EWMA for
2598 a fixed sampling interval is: f'(t) = (1 - a) * f(t) + a * f'(t - 1)
2599 where f() is the measured value and f'() is the smoothed value.
2600
2601 Old data decays out of the smoothed value exponentially, such that data n
2602 samples old is multiplied by a^n. The exponential decay time constant p
2603 is defined such that data p samples old is multiplied by 1/e, which means
2604 that a = exp(-1/p). We can maintain the same time constant for a variable
2605 sampling interval i by using a = exp(-i/p).
2606
2607 The rate we are measuring is messages per period, suitable for directly
2608 comparing with the limit. The average rate between now and the previous
2609 message is period / interval, which we feed into the EWMA as the sample.
2610
2611 It turns out that the number of messages required for the smoothed rate
2612 to reach the limit when they are sent in a burst is equal to the limit.
2613 This can be seen by analysing the value of the smoothed rate after N
2614 messages sent at even intervals. Let k = (1 - a) * p/i
2615
2616 rate_1 = (1 - a) * p/i + a * rate_0
2617 = k + a * rate_0
2618 rate_2 = k + a * rate_1
2619 = k + a * k + a^2 * rate_0
2620 rate_3 = k + a * k + a^2 * k + a^3 * rate_0
2621 rate_N = rate_0 * a^N + k * SUM(x=0..N-1)(a^x)
2622 = rate_0 * a^N + k * (1 - a^N) / (1 - a)
2623 = rate_0 * a^N + p/i * (1 - a^N)
2624
2625 When N is large, a^N -> 0 so rate_N -> p/i as desired.
2626
2627 rate_N = p/i + (rate_0 - p/i) * a^N
2628 a^N = (rate_N - p/i) / (rate_0 - p/i)
2629 N * -i/p = log((rate_N - p/i) / (rate_0 - p/i))
2630 N = p/i * log((rate_0 - p/i) / (rate_N - p/i))
2631
2632 Numerical analysis of the above equation, setting the computed rate to
2633 increase from rate_0 = 0 to rate_N = limit, shows that for large sending
2634 rates, p/i, the number of messages N = limit. So limit serves as both the
2635 maximum rate measured in messages per period, and the maximum number of
2636 messages that can be sent in a fast burst. */
2637
2638 double this_time = (double)tv.tv_sec
2639 + (double)tv.tv_usec / 1000000.0;
2640 double prev_time = (double)dbd->time_stamp
2641 + (double)dbd->time_usec / 1000000.0;
870f6ba8
TF
2642
2643 /* We must avoid division by zero, and deal gracefully with the clock going
2644 backwards. If we blunder ahead when time is in reverse then the computed
e5d5a95f 2645 rate will be bogus. To be safe we clamp interval to a very small number. */
870f6ba8 2646
e5d5a95f
TF
2647 double interval = this_time - prev_time <= 0.0 ? 1e-9
2648 : this_time - prev_time;
2649
2650 double i_over_p = interval / period;
2651 double a = exp(-i_over_p);
870f6ba8 2652
c99ce5c9
TF
2653 /* Combine the instantaneous rate (period / interval) with the previous rate
2654 using the smoothing factor a. In order to measure sized events, multiply the
2655 instantaneous rate by the count of bytes or recipients etc. */
2656
870f6ba8
TF
2657 dbd->time_stamp = tv.tv_sec;
2658 dbd->time_usec = tv.tv_usec;
c99ce5c9
TF
2659 dbd->rate = (1 - a) * count / i_over_p + a * dbd->rate;
2660
2661 /* When events are very widely spaced the computed rate tends towards zero.
2662 Although this is accurate it turns out not to be useful for our purposes,
2663 especially when the first event after a long silence is the start of a spam
2664 run. A more useful model is that the rate for an isolated event should be the
2665 size of the event per the period size, ignoring the lack of events outside
2666 the current period and regardless of where the event falls in the period. So,
2667 if the interval was so long that the calculated rate is unhelpfully small, we
4c04137d 2668 re-initialize the rate. In the absence of higher-rate bursts, the condition
c99ce5c9
TF
2669 below is true if the interval is greater than the period. */
2670
2671 if (dbd->rate < count) dbd->rate = count;
870f6ba8
TF
2672 }
2673
c99ce5c9
TF
2674/* Clients sending at the limit are considered to be over the limit.
2675This matters for edge cases such as a limit of zero, when the client
2676should be completely blocked. */
3348576f 2677
65a32f85 2678rc = dbd->rate < limit ? FAIL : OK;
870f6ba8
TF
2679
2680/* Update the state if the rate is low or if we are being strict. If we
2681are in leaky mode and the sender's rate is too high, we do not update
2682the recorded rate in order to avoid an over-aggressive sender's retry
c99ce5c9
TF
2683rate preventing them from getting any email through. If readonly is set,
2684neither leaky nor strict are set, so we do not do any updates. */
870f6ba8 2685
c99ce5c9 2686if ((rc == FAIL && leaky) || strict)
8f240103 2687 {
c99ce5c9 2688 dbfn_write(dbm, key, dbdb, dbdb_size);
e1d04f48 2689 HDEBUG(D_acl) debug_printf_indent("ratelimit db updated\n");
8f240103
PH
2690 }
2691else
2692 {
e1d04f48 2693 HDEBUG(D_acl) debug_printf_indent("ratelimit db not updated: %s\n",
c99ce5c9 2694 readonly? "readonly mode" : "over the limit, but leaky");
8f240103
PH
2695 }
2696
870f6ba8
TF
2697dbfn_close(dbm);
2698
c99ce5c9 2699/* Store the result in the tree for future reference. */
870f6ba8 2700
c99ce5c9
TF
2701t = store_get(sizeof(tree_node) + Ustrlen(key));
2702t->data.ptr = dbd;
2703Ustrcpy(t->name, key);
2704(void)tree_insertnode(anchor, t);
870f6ba8
TF
2705
2706/* We create the formatted version of the sender's rate very late in
2707order to ensure that it is done using the correct storage pool. */
2708
2709store_pool = old_pool;
2710sender_rate = string_sprintf("%.1f", dbd->rate);
2711
2712HDEBUG(D_acl)
e1d04f48 2713 debug_printf_indent("ratelimit computed rate %s\n", sender_rate);
870f6ba8
TF
2714
2715return rc;
2716}
2717
2718
2719
b0019c78
TF
2720/*************************************************
2721* The udpsend ACL modifier *
2722*************************************************/
2723
2724/* Called by acl_check_condition() below.
2725
2726Arguments:
2727 arg the option string for udpsend=
2728 log_msgptr for error messages
2729
2730Returns: OK - Completed.
2731 DEFER - Problem with DNS lookup.
2732 ERROR - Syntax error in options.
2733*/
2734
2735static int
55414b25 2736acl_udpsend(const uschar *arg, uschar **log_msgptr)
b0019c78
TF
2737{
2738int sep = 0;
2739uschar *hostname;
2740uschar *portstr;
2741uschar *portend;
2742host_item *h;
2743int portnum;
b0019c78
TF
2744int len;
2745int r, s;
b1f8e4f8 2746uschar * errstr;
b0019c78
TF
2747
2748hostname = string_nextinlist(&arg, &sep, NULL, 0);
2749portstr = string_nextinlist(&arg, &sep, NULL, 0);
2750
f5d25c2b 2751if (!hostname)
b0019c78 2752 {
217b0e56 2753 *log_msgptr = US"missing destination host in \"udpsend\" modifier";
b0019c78
TF
2754 return ERROR;
2755 }
f5d25c2b 2756if (!portstr)
b0019c78 2757 {
217b0e56 2758 *log_msgptr = US"missing destination port in \"udpsend\" modifier";
b0019c78
TF
2759 return ERROR;
2760 }
f5d25c2b 2761if (!arg)
b0019c78 2762 {
217b0e56 2763 *log_msgptr = US"missing datagram payload in \"udpsend\" modifier";
b0019c78
TF
2764 return ERROR;
2765 }
2766portnum = Ustrtol(portstr, &portend, 10);
2767if (*portend != '\0')
2768 {
217b0e56 2769 *log_msgptr = US"bad destination port in \"udpsend\" modifier";
b0019c78
TF
2770 return ERROR;
2771 }
2772
2773/* Make a single-item host list. */
2774h = store_get(sizeof(host_item));
2775memset(h, 0, sizeof(host_item));
2776h->name = hostname;
2777h->port = portnum;
2778h->mx = MX_NONE;
2779
2780if (string_is_ip_address(hostname, NULL))
2781 h->address = hostname, r = HOST_FOUND;
2782else
2783 r = host_find_byname(h, NULL, 0, NULL, FALSE);
2784if (r == HOST_FIND_FAILED || r == HOST_FIND_AGAIN)
2785 {
217b0e56 2786 *log_msgptr = US"DNS lookup failed in \"udpsend\" modifier";
b0019c78
TF
2787 return DEFER;
2788 }
2789
2790HDEBUG(D_acl)
e1d04f48 2791 debug_printf_indent("udpsend [%s]:%d %s\n", h->address, portnum, arg);
b0019c78 2792
4a5cbaff 2793/*XXX this could better use sendto */
b1f8e4f8 2794r = s = ip_connectedsocket(SOCK_DGRAM, h->address, portnum, portnum,
4a5cbaff 2795 1, NULL, &errstr, NULL);
b0019c78 2796if (r < 0) goto defer;
27f9999e 2797len = Ustrlen(arg);
9cb1785a 2798r = send(s, arg, len, 0);
b1f8e4f8
JH
2799if (r < 0)
2800 {
2801 errstr = US strerror(errno);
2802 close(s);
2803 goto defer;
2804 }
2805close(s);
b0019c78
TF
2806if (r < len)
2807 {
2808 *log_msgptr =
2809 string_sprintf("\"udpsend\" truncated from %d to %d octets", len, r);
2810 return DEFER;
2811 }
2812
2813HDEBUG(D_acl)
e1d04f48 2814 debug_printf_indent("udpsend %d bytes\n", r);
b0019c78
TF
2815
2816return OK;
2817
2818defer:
b1f8e4f8 2819*log_msgptr = string_sprintf("\"udpsend\" failed: %s", errstr);
b0019c78
TF
2820return DEFER;
2821}
2822
2823
2824
059ec3d9
PH
2825/*************************************************
2826* Handle conditions/modifiers on an ACL item *
2827*************************************************/
2828
2829/* Called from acl_check() below.
2830
2831Arguments:
2832 verb ACL verb
2833 cb ACL condition block - if NULL, result is OK
2834 where where called from
2835 addr the address being checked for RCPT, or NULL
2836 level the nesting level
2837 epp pointer to pass back TRUE if "endpass" encountered
2838 (applies only to "accept" and "discard")
2839 user_msgptr user message pointer
2840 log_msgptr log message pointer
2841 basic_errno pointer to where to put verify error
2842
2843Returns: OK - all conditions are met
2844 DISCARD - an "acl" condition returned DISCARD - only allowed
2845 for "accept" or "discard" verbs
2846 FAIL - at least one condition fails
2847 FAIL_DROP - an "acl" condition returned FAIL_DROP
2848 DEFER - can't tell at the moment (typically, lookup defer,
2849 but can be temporary callout problem)
2850 ERROR - ERROR from nested ACL or expansion failure or other
2851 error
2852*/
2853
2854static int
2855acl_check_condition(int verb, acl_condition_block *cb, int where,
2856 address_item *addr, int level, BOOL *epp, uschar **user_msgptr,
2857 uschar **log_msgptr, int *basic_errno)
2858{
2859uschar *user_message = NULL;
2860uschar *log_message = NULL;
059ec3d9 2861int rc = OK;
8523533c 2862#ifdef WITH_CONTENT_SCAN
0f0c8159 2863int sep = -'/';
8523533c 2864#endif
059ec3d9 2865
bce15b62 2866for (; cb; cb = cb->next)
059ec3d9 2867 {
55414b25 2868 const uschar *arg;
8e669ac1 2869 int control_type;
059ec3d9
PH
2870
2871 /* The message and log_message items set up messages to be used in
2872 case of rejection. They are expanded later. */
2873
2874 if (cb->type == ACLC_MESSAGE)
2875 {
e1d04f48 2876 HDEBUG(D_acl) debug_printf_indent(" message: %s\n", cb->arg);
059ec3d9
PH
2877 user_message = cb->arg;
2878 continue;
2879 }
2880
2881 if (cb->type == ACLC_LOG_MESSAGE)
2882 {
e1d04f48 2883 HDEBUG(D_acl) debug_printf_indent("l_message: %s\n", cb->arg);
059ec3d9
PH
2884 log_message = cb->arg;
2885 continue;
2886 }
2887
2888 /* The endpass "condition" just sets a flag to show it occurred. This is
2889 checked at compile time to be on an "accept" or "discard" item. */
2890
2891 if (cb->type == ACLC_ENDPASS)
2892 {
2893 *epp = TRUE;
2894 continue;
2895 }
2896
2897 /* For other conditions and modifiers, the argument is expanded now for some
2898 of them, but not for all, because expansion happens down in some lower level
2899 checking functions in some cases. */
2900
560e71cc
JH
2901 if (!conditions[cb->type].expand_at_top)
2902 arg = cb->arg;
2903 else if (!(arg = expand_string(cb->arg)))
059ec3d9 2904 {
8768d548 2905 if (f.expand_string_forcedfail) continue;
560e71cc
JH
2906 *log_msgptr = string_sprintf("failed to expand ACL string \"%s\": %s",
2907 cb->arg, expand_string_message);
8768d548 2908 return f.search_find_defer ? DEFER : ERROR;
059ec3d9 2909 }
059ec3d9
PH
2910
2911 /* Show condition, and expanded condition if it's different */
2912
2913 HDEBUG(D_acl)
2914 {
2915 int lhswidth = 0;
e1d04f48 2916 debug_printf_indent("check %s%s %n",
2d009132
JH
2917 (!conditions[cb->type].is_modifier && cb->u.negated)? "!":"",
2918 conditions[cb->type].name, &lhswidth);
059ec3d9
PH
2919
2920 if (cb->type == ACLC_SET)
2921 {
a79d8834
JH
2922#ifndef DISABLE_DKIM
2923 if ( Ustrcmp(cb->u.varname, "dkim_verify_status") == 0
2924 || Ustrcmp(cb->u.varname, "dkim_verify_reason") == 0)
2925 {
2926 debug_printf("%s ", cb->u.varname);
2927 lhswidth += 19;
2928 }
2929 else
2930#endif
2931 {
2932 debug_printf("acl_%s ", cb->u.varname);
2933 lhswidth += 5 + Ustrlen(cb->u.varname);
2934 }
059ec3d9
PH
2935 }
2936
2937 debug_printf("= %s\n", cb->arg);
2938
2939 if (arg != cb->arg)
2940 debug_printf("%.*s= %s\n", lhswidth,
2941 US" ", CS arg);
2942 }
2943
2944 /* Check that this condition makes sense at this time */
2945
2d009132 2946 if ((conditions[cb->type].forbids & (1 << where)) != 0)
059ec3d9
PH
2947 {
2948 *log_msgptr = string_sprintf("cannot %s %s condition in %s ACL",
2d009132
JH
2949 conditions[cb->type].is_modifier ? "use" : "test",
2950 conditions[cb->type].name, acl_wherenames[where]);
059ec3d9
PH
2951 return ERROR;
2952 }
2953
2954 /* Run the appropriate test for each condition, or take the appropriate
2955 action for the remaining modifiers. */
2956
2957 switch(cb->type)
2958 {
71fafd95
PH
2959 case ACLC_ADD_HEADER:
2960 setup_header(arg);
2961 break;
2962
059ec3d9
PH
2963 /* A nested ACL that returns "discard" makes sense only for an "accept" or
2964 "discard" verb. */
71fafd95 2965
059ec3d9 2966 case ACLC_ACL:
e1d04f48 2967 rc = acl_check_wargs(where, addr, arg, user_msgptr, log_msgptr);
7421ecab
JH
2968 if (rc == DISCARD && verb != ACL_ACCEPT && verb != ACL_DISCARD)
2969 {
2970 *log_msgptr = string_sprintf("nested ACL returned \"discard\" for "
2971 "\"%s\" command (only allowed with \"accept\" or \"discard\")",
2972 verbs[verb]);
2973 return ERROR;
2974 }
059ec3d9
PH
2975 break;
2976
2977 case ACLC_AUTHENTICATED:
c44ff8be
JH
2978 rc = sender_host_authenticated ? match_isinlist(sender_host_authenticated,
2979 &arg, 0, NULL, NULL, MCL_STRING, TRUE, NULL) : FAIL;
059ec3d9
PH
2980 break;
2981
71fafd95 2982 #ifdef EXPERIMENTAL_BRIGHTMAIL
8523533c
TK
2983 case ACLC_BMI_OPTIN:
2984 {
2985 int old_pool = store_pool;
2986 store_pool = POOL_PERM;
2987 bmi_current_optin = string_copy(arg);
2988 store_pool = old_pool;
2989 }
2990 break;
71fafd95 2991 #endif
8523533c 2992
059ec3d9 2993 case ACLC_CONDITION:
f3766eb5
NM
2994 /* The true/false parsing here should be kept in sync with that used in
2995 expand.c when dealing with ECOND_BOOL so that we don't have too many
2996 different definitions of what can be a boolean. */
51c7471d
JH
2997 if (*arg == '-'
2998 ? Ustrspn(arg+1, "0123456789") == Ustrlen(arg+1) /* Negative number */
2999 : Ustrspn(arg, "0123456789") == Ustrlen(arg)) /* Digits, or empty */
059ec3d9
PH
3000 rc = (Uatoi(arg) == 0)? FAIL : OK;
3001 else
3002 rc = (strcmpic(arg, US"no") == 0 ||
3003 strcmpic(arg, US"false") == 0)? FAIL :
3004 (strcmpic(arg, US"yes") == 0 ||
3005 strcmpic(arg, US"true") == 0)? OK : DEFER;
3006 if (rc == DEFER)
3007 *log_msgptr = string_sprintf("invalid \"condition\" value \"%s\"", arg);
3008 break;
3009
c3611384
PH
3010 case ACLC_CONTINUE: /* Always succeeds */
3011 break;
3012
059ec3d9 3013 case ACLC_CONTROL:
c5fcb476 3014 {
55414b25
JH
3015 const uschar *p = NULL;
3016 control_type = decode_control(arg, &p, where, log_msgptr);
4840604e 3017
55414b25 3018 /* Check if this control makes sense at this time */
f7572e5a 3019
d7bed771 3020 if (controls_list[control_type].forbids & (1 << where))
55414b25
JH
3021 {
3022 *log_msgptr = string_sprintf("cannot use \"control=%s\" in %s ACL",
d7bed771 3023 controls_list[control_type].name, acl_wherenames[where]);
55414b25
JH
3024 return ERROR;
3025 }
8800895a 3026
55414b25
JH
3027 switch(control_type)
3028 {
3029 case CONTROL_AUTH_UNADVERTISED:
8768d548 3030 f.allow_auth_unadvertised = TRUE;
55414b25
JH
3031 break;
3032
3033 #ifdef EXPERIMENTAL_BRIGHTMAIL
3034 case CONTROL_BMI_RUN:
3035 bmi_run = 1;
3036 break;
3037 #endif
3038
3039 #ifndef DISABLE_DKIM
3040 case CONTROL_DKIM_VERIFY:
8768d548 3041 f.dkim_disable_verify = TRUE;
55414b25
JH
3042 #ifdef EXPERIMENTAL_DMARC
3043 /* Since DKIM was blocked, skip DMARC too */
8768d548
JH
3044 f.dmarc_disable_verify = TRUE;
3045 f.dmarc_enable_forensic = FALSE;
55414b25
JH
3046 #endif
3047 break;
3048 #endif
3049
3050 #ifdef EXPERIMENTAL_DMARC
3051 case CONTROL_DMARC_VERIFY:
8768d548 3052 f.dmarc_disable_verify = TRUE;
55414b25
JH
3053 break;
3054
3055 case CONTROL_DMARC_FORENSIC:
8768d548 3056 f.dmarc_enable_forensic = TRUE;
55414b25
JH
3057 break;
3058 #endif
3059
3060 case CONTROL_DSCP:
3061 if (*p == '/')
3062 {
3063 int fd, af, level, optname, value;
3064 /* If we are acting on stdin, the setsockopt may fail if stdin is not
3065 a socket; we can accept that, we'll just debug-log failures anyway. */
3066 fd = fileno(smtp_in);
3067 af = ip_get_address_family(fd);
3068 if (af < 0)
3069 {
3070 HDEBUG(D_acl)
e1d04f48 3071 debug_printf_indent("smtp input is probably not a socket [%s], not setting DSCP\n",
55414b25
JH
3072 strerror(errno));
3073 break;
3074 }
3075 if (dscp_lookup(p+1, af, &level, &optname, &value))
3076 {
3077 if (setsockopt(fd, level, optname, &value, sizeof(value)) < 0)
3078 {
e1d04f48 3079 HDEBUG(D_acl) debug_printf_indent("failed to set input DSCP[%s]: %s\n",
55414b25
JH
3080 p+1, strerror(errno));
3081 }
3082 else
3083 {
e1d04f48 3084 HDEBUG(D_acl) debug_printf_indent("set input DSCP to \"%s\"\n", p+1);
55414b25
JH
3085 }
3086 }
3087 else
3088 {
3089 *log_msgptr = string_sprintf("unrecognised DSCP value in \"control=%s\"", arg);
3090 return ERROR;
3091 }
3092 }
3093 else
3094 {
3095 *log_msgptr = string_sprintf("syntax error in \"control=%s\"", arg);
3096 return ERROR;
3097 }
3098 break;
3099
3100 case CONTROL_ERROR:
3101 return ERROR;
3102
3103 case CONTROL_CASEFUL_LOCAL_PART:
3104 deliver_localpart = addr->cc_local_part;
3105 break;
3106
3107 case CONTROL_CASELOWER_LOCAL_PART:
3108 deliver_localpart = addr->lc_local_part;
3109 break;
3110
3111 case CONTROL_ENFORCE_SYNC:
3112 smtp_enforce_sync = TRUE;
3113 break;
3114
3115 case CONTROL_NO_ENFORCE_SYNC:
3116 smtp_enforce_sync = FALSE;
3117 break;
3118
3119 #ifdef WITH_CONTENT_SCAN
3120 case CONTROL_NO_MBOX_UNSPOOL:
8768d548 3121 f.no_mbox_unspool = TRUE;
55414b25
JH
3122 break;
3123 #endif
3124
3125 case CONTROL_NO_MULTILINE:
8768d548 3126 f.no_multiline_responses = TRUE;
55414b25
JH
3127 break;
3128
3129 case CONTROL_NO_PIPELINING:
8768d548 3130 f.pipelining_enable = FALSE;
55414b25
JH
3131 break;
3132
3133 case CONTROL_NO_DELAY_FLUSH:
8768d548 3134 f.disable_delay_flush = TRUE;
55414b25
JH
3135 break;
3136
3137 case CONTROL_NO_CALLOUT_FLUSH:
8768d548 3138 f.disable_callout_flush = TRUE;
55414b25
JH
3139 break;
3140
3141 case CONTROL_FAKEREJECT:
57cc2785 3142 cancel_cutthrough_connection(TRUE, US"fakereject");
55414b25
JH
3143 case CONTROL_FAKEDEFER:
3144 fake_response = (control_type == CONTROL_FAKEDEFER) ? DEFER : FAIL;
3145 if (*p == '/')
3146 {
3147 const uschar *pp = p + 1;
3148 while (*pp != 0) pp++;
3149 fake_response_text = expand_string(string_copyn(p+1, pp-p-1));
3150 p = pp;
3151 }
3152 else
3153 {
3154 /* Explicitly reset to default string */
3155 fake_response_text = US"Your message has been rejected but is being kept for evaluation.\nIf it was a legitimate message, it may still be delivered to the target recipient(s).";
3156 }
3157 break;
ed7f7860 3158
55414b25 3159 case CONTROL_FREEZE:
8768d548 3160 f.deliver_freeze = TRUE;
55414b25
JH
3161 deliver_frozen_at = time(NULL);
3162 freeze_tell = freeze_tell_config; /* Reset to configured value */
3163 if (Ustrncmp(p, "/no_tell", 8) == 0)
3164 {
3165 p += 8;
3166 freeze_tell = NULL;
3167 }
3168 if (*p != 0)
3169 {
3170 *log_msgptr = string_sprintf("syntax error in \"control=%s\"", arg);
3171 return ERROR;
3172 }
57cc2785 3173 cancel_cutthrough_connection(TRUE, US"item frozen");
55414b25
JH
3174 break;
3175
3176 case CONTROL_QUEUE_ONLY:
8768d548 3177 f.queue_only_policy = TRUE;
57cc2785 3178 cancel_cutthrough_connection(TRUE, US"queueing forced");
55414b25
JH
3179 break;
3180
8ac90765
JH
3181#if defined(SUPPORT_TLS) && defined(EXPERIMENTAL_REQUIRETLS)
3182 case CONTROL_REQUIRETLS:
3183 tls_requiretls |= REQUIRETLS_MSG;
3184 break;
3185#endif
55414b25
JH
3186 case CONTROL_SUBMISSION:
3187 originator_name = US"";
8768d548 3188 f.submission_mode = TRUE;
55414b25
JH
3189 while (*p == '/')
3190 {
3191 if (Ustrncmp(p, "/sender_retain", 14) == 0)
3192 {
3193 p += 14;
8768d548
JH
3194 f.active_local_sender_retain = TRUE;
3195 f.active_local_from_check = FALSE;
55414b25
JH
3196 }
3197 else if (Ustrncmp(p, "/domain=", 8) == 0)
3198 {
3199 const uschar *pp = p + 8;
3200 while (*pp != 0 && *pp != '/') pp++;
3201 submission_domain = string_copyn(p+8, pp-p-8);
3202 p = pp;
3203 }
3204 /* The name= option must be last, because it swallows the rest of
3205 the string. */
3206 else if (Ustrncmp(p, "/name=", 6) == 0)
3207 {
3208 const uschar *pp = p + 6;
3209 while (*pp != 0) pp++;
3210 submission_name = string_copy(parse_fix_phrase(p+6, pp-p-6,
3211 big_buffer, big_buffer_size));
3212 p = pp;
3213 }
3214 else break;
3215 }
3216 if (*p != 0)
3217 {
3218 *log_msgptr = string_sprintf("syntax error in \"control=%s\"", arg);
3219 return ERROR;
3220 }
3221 break;
e4bdf652 3222
55414b25 3223 case CONTROL_DEBUG:
55414b25 3224 {
b0d68adc
JH
3225 uschar * debug_tag = NULL;
3226 uschar * debug_opts = NULL;
3227 BOOL kill = FALSE;
3228
3229 while (*p == '/')
55414b25 3230 {
b0d68adc
JH
3231 const uschar * pp = p+1;
3232 if (Ustrncmp(pp, "tag=", 4) == 0)
3233 {
3234 for (pp += 4; *pp && *pp != '/';) pp++;
3235 debug_tag = string_copyn(p+5, pp-p-5);
3236 }
3237 else if (Ustrncmp(pp, "opts=", 5) == 0)
3238 {
3239 for (pp += 5; *pp && *pp != '/';) pp++;
3240 debug_opts = string_copyn(p+6, pp-p-6);
3241 }
3242 else if (Ustrncmp(pp, "kill", 4) == 0)
3243 {
3244 for (pp += 4; *pp && *pp != '/';) pp++;
3245 kill = TRUE;
3246 }
3247 else
3248 while (*pp && *pp != '/') pp++;
55414b25
JH
3249 p = pp;
3250 }
b0d68adc
JH
3251
3252 if (kill)
3253 debug_logging_stop();
3254 else
3255 debug_logging_activate(debug_tag, debug_opts);
55414b25 3256 }
55414b25
JH
3257 break;
3258
3259 case CONTROL_SUPPRESS_LOCAL_FIXUPS:
8768d548 3260 f.suppress_local_fixups = TRUE;
55414b25
JH
3261 break;
3262
3263 case CONTROL_CUTTHROUGH_DELIVERY:
051d5efa
JH
3264 {
3265 uschar * ignored = NULL;
a2b89db1 3266#ifndef DISABLE_PRDR
55414b25 3267 if (prdr_requested)
a2b89db1
PP
3268#else
3269 if (0)
3270#endif
55414b25
JH
3271 /* Too hard to think about for now. We might in future cutthrough
3272 the case where both sides handle prdr and this-node prdr acl
3273 is "accept" */
051d5efa 3274 ignored = US"PRDR active";
5032d1cf
JH
3275 else
3276 {
8768d548 3277 if (f.deliver_freeze)
051d5efa 3278 ignored = US"frozen";
8768d548 3279 else if (f.queue_only_policy)
051d5efa 3280 ignored = US"queue-only";
55414b25 3281 else if (fake_response == FAIL)
051d5efa 3282 ignored = US"fakereject";
55414b25
JH
3283 else
3284 {
ff5929e3
JH
3285 if (rcpt_count == 1)
3286 {
051d5efa 3287 cutthrough.delivery = TRUE; /* control accepted */
ff5929e3
JH
3288 while (*p == '/')
3289 {
3290 const uschar * pp = p+1;
3291 if (Ustrncmp(pp, "defer=", 6) == 0)
3292 {
3293 pp += 6;
3294 if (Ustrncmp(pp, "pass", 4) == 0) cutthrough.defer_pass = TRUE;
3295 /* else if (Ustrncmp(pp, "spool") == 0) ; default */
3296 }
3297 else
3298 while (*pp && *pp != '/') pp++;
3299 p = pp;
3300 }
3301 }
06fdb9f7 3302 else
051d5efa 3303 ignored = US"nonfirst rcpt";
55414b25 3304 }
5032d1cf 3305 }
051d5efa
JH
3306 DEBUG(D_acl) if (ignored)
3307 debug_printf(" cutthrough request ignored on %s item\n", ignored);
3308 }
3309 break;
3c8b3577 3310
8c5d388a 3311#ifdef SUPPORT_I18N
3c8b3577
JH
3312 case CONTROL_UTF8_DOWNCONVERT:
3313 if (*p == '/')
3314 {
921dfc11
JH
3315 if (p[1] == '1')
3316 {
3317 message_utf8_downconvert = 1;
3318 addr->prop.utf8_downcvt = TRUE;
3319 addr->prop.utf8_downcvt_maybe = FALSE;
3320 p += 2;
3321 break;
3322 }
3323 if (p[1] == '0')
3324 {
3325 message_utf8_downconvert = 0;
3326 addr->prop.utf8_downcvt = FALSE;
3327 addr->prop.utf8_downcvt_maybe = FALSE;
3328 p += 2;
3329 break;
3330 }
3c8b3577 3331 if (p[1] == '-' && p[2] == '1')
921dfc11
JH
3332 {
3333 message_utf8_downconvert = -1;
3334 addr->prop.utf8_downcvt = FALSE;
3335 addr->prop.utf8_downcvt_maybe = TRUE;
3336 p += 3;
3337 break;
3338 }
3c8b3577
JH
3339 *log_msgptr = US"bad option value for control=utf8_downconvert";
3340 }
3341 else
3342 {
921dfc11
JH
3343 message_utf8_downconvert = 1;
3344 addr->prop.utf8_downcvt = TRUE;
3345 addr->prop.utf8_downcvt_maybe = FALSE;
3346 break;
3c8b3577
JH
3347 }
3348 return ERROR;
8c5d388a 3349#endif
3c8b3577 3350
9171d434 3351 }
55414b25 3352 break;
059ec3d9 3353 }
059ec3d9 3354
6a8f9482
TK
3355 #ifdef EXPERIMENTAL_DCC
3356 case ACLC_DCC:
3357 {
4c04137d 3358 /* Separate the regular expression and any optional parameters. */
55414b25
JH
3359 const uschar * list = arg;
3360 uschar *ss = string_nextinlist(&list, &sep, big_buffer, big_buffer_size);
6a8f9482
TK
3361 /* Run the dcc backend. */
3362 rc = dcc_process(&ss);
4c04137d 3363 /* Modify return code based upon the existence of options. */
3c8b3577 3364 while ((ss = string_nextinlist(&list, &sep, big_buffer, big_buffer_size)))
6a8f9482 3365 if (strcmpic(ss, US"defer_ok") == 0 && rc == DEFER)
3c8b3577 3366 rc = FAIL; /* FAIL so that the message is passed to the next ACL */
6a8f9482
TK
3367 }
3368 break;
3369 #endif
3370
71fafd95 3371 #ifdef WITH_CONTENT_SCAN
8523533c
TK
3372 case ACLC_DECODE:
3373 rc = mime_decode(&arg);
3374 break;
71fafd95 3375 #endif
8523533c 3376
059ec3d9
PH
3377 case ACLC_DELAY:
3378 {
3379 int delay = readconf_readtime(arg, 0, FALSE);
3380 if (delay < 0)
3381 {
3382 *log_msgptr = string_sprintf("syntax error in argument for \"delay\" "
3383 "modifier: \"%s\" is not a time value", arg);
3384 return ERROR;
3385 }
3386 else
3387 {
e1d04f48 3388 HDEBUG(D_acl) debug_printf_indent("delay modifier requests %d-second delay\n",
059ec3d9
PH
3389 delay);
3390 if (host_checking)
3391 {
3392 HDEBUG(D_acl)
e1d04f48 3393 debug_printf_indent("delay skipped in -bh checking mode\n");
059ec3d9 3394 }
010c2d14 3395
ae9d18bc
JH
3396 /* NOTE 1: Remember that we may be
3397 dealing with stdin/stdout here, in addition to TCP/IP connections.
3398 Also, delays may be specified for non-SMTP input, where smtp_out and
3399 smtp_in will be NULL. Whatever is done must work in all cases.
3400
3401 NOTE 2: The added feature of flushing the output before a delay must
3402 apply only to SMTP input. Hence the test for smtp_out being non-NULL.
3403 */
3404
3405 else
3406 {
8768d548 3407 if (smtp_out != NULL && !f.disable_delay_flush)
ae9d18bc
JH
3408 mac_smtp_fflush();
3409
861a7c51 3410#if !defined(NO_POLL_H) && defined (POLLRDHUP)
ae9d18bc
JH
3411 {
3412 struct pollfd p;
3413 nfds_t n = 0;
3414 if (smtp_out)
3415 {
3416 p.fd = fileno(smtp_out);
3417 p.events = POLLRDHUP;
3418 n = 1;
3419 }
3420 if (poll(&p, n, delay*1000) > 0)
e1d04f48 3421 HDEBUG(D_acl) debug_printf_indent("delay cancelled by peer close\n");
ae9d18bc
JH
3422 }
3423#else
010c2d14
PH
3424 /* It appears to be impossible to detect that a TCP/IP connection has
3425 gone away without reading from it. This means that we cannot shorten
3426 the delay below if the client goes away, because we cannot discover
3427 that the client has closed its end of the connection. (The connection
3428 is actually in a half-closed state, waiting for the server to close its
3429 end.) It would be nice to be able to detect this state, so that the
3430 Exim process is not held up unnecessarily. However, it seems that we
3431 can't. The poll() function does not do the right thing, and in any case
3432 it is not always available.
047bdd8c 3433 */
010c2d14 3434
86b8287f 3435 while (delay > 0) delay = sleep(delay);
ae9d18bc 3436#endif
8e669ac1 3437 }
059ec3d9
PH
3438 }
3439 }
3440 break;
3441
80a47a2c
TK
3442 #ifndef DISABLE_DKIM
3443 case ACLC_DKIM_SIGNER:
a79d8834 3444 if (dkim_cur_signer)
9e5d6b55 3445 rc = match_isinlist(dkim_cur_signer,
80a47a2c 3446 &arg,0,NULL,NULL,MCL_STRING,TRUE,NULL);
80a47a2c 3447 else
b0b9dbb1 3448 rc = FAIL;
71fafd95
PH
3449 break;
3450
80a47a2c 3451 case ACLC_DKIM_STATUS:
a79d8834 3452 rc = match_isinlist(dkim_verify_status,
80a47a2c 3453 &arg,0,NULL,NULL,MCL_STRING,TRUE,NULL);
71fafd95
PH
3454 break;
3455 #endif
fb2274d4 3456
4840604e
TL
3457 #ifdef EXPERIMENTAL_DMARC
3458 case ACLC_DMARC_STATUS:
8768d548 3459 if (!f.dmarc_has_been_checked)
4840604e 3460 dmarc_process();
8768d548 3461 f.dmarc_has_been_checked = TRUE;
4840604e
TL
3462 /* used long way of dmarc_exim_expand_query() in case we need more
3463 * view into the process in the future. */
3464 rc = match_isinlist(dmarc_exim_expand_query(DMARC_VERIFY_STATUS),
3465 &arg,0,NULL,NULL,MCL_STRING,TRUE,NULL);
3466 break;
3467 #endif
3468
059ec3d9 3469 case ACLC_DNSLISTS:
379ba7d0 3470 rc = verify_check_dnsbl(where, &arg, log_msgptr);
059ec3d9
PH
3471 break;
3472
3473 case ACLC_DOMAINS:
3474 rc = match_isinlist(addr->domain, &arg, 0, &domainlist_anchor,
55414b25 3475 addr->domain_cache, MCL_DOMAIN, TRUE, CUSS &deliver_domain_data);
059ec3d9
PH
3476 break;
3477
3478 /* The value in tls_cipher is the full cipher name, for example,
3479 TLSv1:DES-CBC3-SHA:168, whereas the values to test for are just the
3480 cipher names such as DES-CBC3-SHA. But program defensively. We don't know
3481 what may in practice come out of the SSL library - which at the time of
3482 writing is poorly documented. */
3483
3484 case ACLC_ENCRYPTED:
817d9f57 3485 if (tls_in.cipher == NULL) rc = FAIL; else
059ec3d9
PH
3486 {
3487 uschar *endcipher = NULL;
817d9f57
JH
3488 uschar *cipher = Ustrchr(tls_in.cipher, ':');
3489 if (cipher == NULL) cipher = tls_in.cipher; else
059ec3d9
PH
3490 {
3491 endcipher = Ustrchr(++cipher, ':');
3492 if (endcipher != NULL) *endcipher = 0;
3493 }
3494 rc = match_isinlist(cipher, &arg, 0, NULL, NULL, MCL_STRING, TRUE, NULL);
3495 if (endcipher != NULL) *endcipher = ':';
3496 }
3497 break;
3498
3499 /* Use verify_check_this_host() instead of verify_check_host() so that
3500 we can pass over &host_data to catch any looked up data. Once it has been
3501 set, it retains its value so that it's still there if another ACL verb
3502 comes through here and uses the cache. However, we must put it into
3503 permanent store in case it is also expected to be used in a subsequent
3504 message in the same SMTP connection. */
3505
3506 case ACLC_HOSTS:
3507 rc = verify_check_this_host(&arg, sender_host_cache, NULL,
55414b25
JH
3508 (sender_host_address == NULL)? US"" : sender_host_address,
3509 CUSS &host_data);
4a452c43
JH
3510 if (rc == DEFER) *log_msgptr = search_error_message;
3511 if (host_data) host_data = string_copy_malloc(host_data);
059ec3d9
PH
3512 break;
3513
3514 case ACLC_LOCAL_PARTS:
3515 rc = match_isinlist(addr->cc_local_part, &arg, 0,
3516 &localpartlist_anchor, addr->localpart_cache, MCL_LOCALPART, TRUE,
55414b25 3517 CUSS &deliver_localpart_data);
059ec3d9
PH
3518 break;
3519
6ea85e9a
PH
3520 case ACLC_LOG_REJECT_TARGET:
3521 {
3522 int logbits = 0;
3523 int sep = 0;
55414b25 3524 const uschar *s = arg;
6ea85e9a 3525 uschar *ss;
4a452c43 3526 while ((ss = string_nextinlist(&s, &sep, big_buffer, big_buffer_size)))
6ea85e9a
PH
3527 {
3528 if (Ustrcmp(ss, "main") == 0) logbits |= LOG_MAIN;
3529 else if (Ustrcmp(ss, "panic") == 0) logbits |= LOG_PANIC;
3530 else if (Ustrcmp(ss, "reject") == 0) logbits |= LOG_REJECT;
3531 else
3532 {
3533 logbits |= LOG_MAIN|LOG_REJECT;
3534 log_write(0, LOG_MAIN|LOG_PANIC, "unknown log name \"%s\" in "
3535 "\"log_reject_target\" in %s ACL", ss, acl_wherenames[where]);
3536 }
3537 }
3538 log_reject_target = logbits;
3539 }
3540 break;
3541
059ec3d9
PH
3542 case ACLC_LOGWRITE:
3543 {
3544 int logbits = 0;
55414b25 3545 const uschar *s = arg;
059ec3d9
PH
3546 if (*s == ':')
3547 {
3548 s++;
3549 while (*s != ':')
3550 {
3551 if (Ustrncmp(s, "main", 4) == 0)
3552 { logbits |= LOG_MAIN; s += 4; }
3553 else if (Ustrncmp(s, "panic", 5) == 0)
3554 { logbits |= LOG_PANIC; s += 5; }
3555 else if (Ustrncmp(s, "reject", 6) == 0)
3556 { logbits |= LOG_REJECT; s += 6; }
3557 else
3558 {
3559 logbits = LOG_MAIN|LOG_PANIC;
3560 s = string_sprintf(":unknown log name in \"%s\" in "
3561 "\"logwrite\" in %s ACL", arg, acl_wherenames[where]);
3562 }
3563 if (*s == ',') s++;
3564 }
3565 s++;
3566 }
3567 while (isspace(*s)) s++;
6ea85e9a
PH
3568
3569
059ec3d9
PH
3570 if (logbits == 0) logbits = LOG_MAIN;
3571 log_write(0, logbits, "%s", string_printing(s));
3572 }
3573 break;
8e669ac1 3574
71fafd95 3575 #ifdef WITH_CONTENT_SCAN
0f0c8159 3576 case ACLC_MALWARE: /* Run the malware backend. */
8523533c 3577 {
6ea85e9a 3578 /* Separate the regular expression and any optional parameters. */
55414b25
JH
3579 const uschar * list = arg;
3580 uschar *ss = string_nextinlist(&list, &sep, big_buffer, big_buffer_size);
0f0c8159
JH
3581 uschar *opt;
3582 BOOL defer_ok = FALSE;
3583 int timeout = 0;
3584
55414b25 3585 while ((opt = string_nextinlist(&list, &sep, NULL, 0)))
0f0c8159
JH
3586 if (strcmpic(opt, US"defer_ok") == 0)
3587 defer_ok = TRUE;
3588 else if ( strncmpic(opt, US"tmo=", 4) == 0
3589 && (timeout = readconf_readtime(opt+4, '\0', FALSE)) < 0
3590 )
3591 {
3592 *log_msgptr = string_sprintf("bad timeout value in '%s'", opt);
3593 return ERROR;
3594 }
3595
3596 rc = malware(ss, timeout);
3597 if (rc == DEFER && defer_ok)
3598 rc = FAIL; /* FAIL so that the message is passed to the next ACL */
8523533c
TK
3599 }
3600 break;
3601
3602 case ACLC_MIME_REGEX:
71fafd95 3603 rc = mime_regex(&arg);
8523533c 3604 break;
71fafd95 3605 #endif
059ec3d9 3606
b0b9dbb1 3607 case ACLC_QUEUE:
944e8b37
JH
3608 if (Ustrchr(arg, '/'))
3609 {
3610 *log_msgptr = string_sprintf(
3611 "Directory separator not permitted in queue name: '%s'", arg);
3612 return ERROR;
3613 }
b0b9dbb1
JH
3614 queue_name = string_copy_malloc(arg);
3615 break;
3616
870f6ba8 3617 case ACLC_RATELIMIT:
90fc3069 3618 rc = acl_ratelimit(arg, where, log_msgptr);
870f6ba8
TF
3619 break;
3620
059ec3d9 3621 case ACLC_RECIPIENTS:
36d295f1 3622 rc = match_address_list(CUS addr->address, TRUE, TRUE, &arg, NULL, -1, 0,
55414b25 3623 CUSS &recipient_data);
059ec3d9
PH
3624 break;
3625
71fafd95
PH
3626 #ifdef WITH_CONTENT_SCAN
3627 case ACLC_REGEX:
3628 rc = regex(&arg);
8523533c 3629 break;
71fafd95 3630 #endif
8523533c 3631
e7568d51
TL
3632 case ACLC_REMOVE_HEADER:
3633 setup_remove_header(arg);
3634 break;
3635
059ec3d9
PH
3636 case ACLC_SENDER_DOMAINS:
3637 {
3638 uschar *sdomain;
3639 sdomain = Ustrrchr(sender_address, '@');
f7ae7462 3640 sdomain = sdomain ? sdomain + 1 : US"";
059ec3d9
PH
3641 rc = match_isinlist(sdomain, &arg, 0, &domainlist_anchor,
3642 sender_domain_cache, MCL_DOMAIN, TRUE, NULL);
3643 }
3644 break;
3645
3646 case ACLC_SENDERS:
36d295f1 3647 rc = match_address_list(CUS sender_address, TRUE, TRUE, &arg,
55414b25 3648 sender_address_cache, -1, 0, CUSS &sender_data);
059ec3d9
PH
3649 break;
3650
3651 /* Connection variables must persist forever */
3652
3653 case ACLC_SET:
3654 {
3655 int old_pool = store_pool;
5ef5dd52 3656 if ( cb->u.varname[0] == 'c'
a79d8834
JH
3657#ifndef DISABLE_DKIM
3658 || cb->u.varname[0] == 'd'
3659#endif
0cbf2b82 3660#ifndef DISABLE_EVENT
5ef5dd52
JB
3661 || event_name /* An event is being delivered */
3662#endif
3663 )
3664 store_pool = POOL_PERM;
a79d8834
JH
3665#ifndef DISABLE_DKIM /* Overwriteable dkim result variables */
3666 if (Ustrcmp(cb->u.varname, "dkim_verify_status") == 0)
3667 dkim_verify_status = string_copy(arg);
3668 else if (Ustrcmp(cb->u.varname, "dkim_verify_reason") == 0)
3669 dkim_verify_reason = string_copy(arg);
3670 else
3671#endif
3672 acl_var_create(cb->u.varname)->data.ptr = string_copy(arg);
059ec3d9
PH
3673 store_pool = old_pool;
3674 }
3675 break;
3676
eb52e2cb 3677#ifdef WITH_CONTENT_SCAN
8523533c
TK
3678 case ACLC_SPAM:
3679 {
4c04137d 3680 /* Separate the regular expression and any optional parameters. */
55414b25
JH
3681 const uschar * list = arg;
3682 uschar *ss = string_nextinlist(&list, &sep, big_buffer, big_buffer_size);
eb52e2cb 3683
55414b25 3684 rc = spam(CUSS &ss);
4c04137d 3685 /* Modify return code based upon the existence of options. */
eb52e2cb 3686 while ((ss = string_nextinlist(&list, &sep, big_buffer, big_buffer_size)))
8523533c 3687 if (strcmpic(ss, US"defer_ok") == 0 && rc == DEFER)
eb52e2cb 3688 rc = FAIL; /* FAIL so that the message is passed to the next ACL */
8523533c
TK
3689 }
3690 break;
eb52e2cb 3691#endif
8523533c 3692
7952eef9 3693#ifdef SUPPORT_SPF
8523533c 3694 case ACLC_SPF:
65a7d8c3
NM
3695 rc = spf_process(&arg, sender_address, SPF_PROCESS_NORMAL);
3696 break;
3697 case ACLC_SPF_GUESS:
3698 rc = spf_process(&arg, sender_address, SPF_PROCESS_GUESS);
8523533c 3699 break;
eb52e2cb 3700#endif
8523533c 3701
b0019c78
TF
3702 case ACLC_UDPSEND:
3703 rc = acl_udpsend(arg, log_msgptr);
3704 break;
3705
059ec3d9
PH
3706 /* If the verb is WARN, discard any user message from verification, because
3707 such messages are SMTP responses, not header additions. The latter come
475fe28a
PH
3708 only from explicit "message" modifiers. However, put the user message into
3709 $acl_verify_message so it can be used in subsequent conditions or modifiers
3710 (until something changes it). */
059ec3d9
PH
3711
3712 case ACLC_VERIFY:
3713 rc = acl_verify(where, addr, arg, user_msgptr, log_msgptr, basic_errno);
3703d818
JH
3714 if (*user_msgptr)
3715 acl_verify_message = *user_msgptr;
059ec3d9
PH
3716 if (verb == ACL_WARN) *user_msgptr = NULL;
3717 break;
3718
3719 default:
3720 log_write(0, LOG_MAIN|LOG_PANIC_DIE, "internal ACL error: unknown "
3721 "condition %d", cb->type);
3722 break;
3723 }
3724
3725 /* If a condition was negated, invert OK/FAIL. */
3726
2d009132 3727 if (!conditions[cb->type].is_modifier && cb->u.negated)
059ec3d9 3728 if (rc == OK) rc = FAIL;
2d009132 3729 else if (rc == FAIL || rc == FAIL_DROP) rc = OK;
059ec3d9
PH
3730
3731 if (rc != OK) break; /* Conditions loop */
3732 }
3733
3734
3735/* If the result is the one for which "message" and/or "log_message" are used,
4e88a19f
PH
3736handle the values of these modifiers. If there isn't a log message set, we make
3737it the same as the user message.
059ec3d9
PH
3738
3739"message" is a user message that will be included in an SMTP response. Unless
3740it is empty, it overrides any previously set user message.
3741
3742"log_message" is a non-user message, and it adds to any existing non-user
3743message that is already set.
3744
4e88a19f
PH
3745Most verbs have but a single return for which the messages are relevant, but
3746for "discard", it's useful to have the log message both when it succeeds and
3747when it fails. For "accept", the message is used in the OK case if there is no
3748"endpass", but (for backwards compatibility) in the FAIL case if "endpass" is
3749present. */
059ec3d9 3750
4e88a19f
PH
3751if (*epp && rc == OK) user_message = NULL;
3752
e3a69b62 3753if ((BIT(rc) & msgcond[verb]) != 0)
059ec3d9
PH
3754 {
3755 uschar *expmessage;
4e88a19f
PH
3756 uschar *old_user_msgptr = *user_msgptr;
3757 uschar *old_log_msgptr = (*log_msgptr != NULL)? *log_msgptr : old_user_msgptr;
059ec3d9
PH
3758
3759 /* If the verb is "warn", messages generated by conditions (verification or
4e88a19f
PH
3760 nested ACLs) are always discarded. This also happens for acceptance verbs
3761 when they actually do accept. Only messages specified at this level are used.
059ec3d9
PH
3762 However, the value of an existing message is available in $acl_verify_message
3763 during expansions. */
3764
4e88a19f
PH
3765 if (verb == ACL_WARN ||
3766 (rc == OK && (verb == ACL_ACCEPT || verb == ACL_DISCARD)))
3767 *log_msgptr = *user_msgptr = NULL;
059ec3d9 3768
e3a69b62 3769 if (user_message)
059ec3d9
PH
3770 {
3771 acl_verify_message = old_user_msgptr;
3772 expmessage = expand_string(user_message);
e3a69b62 3773 if (!expmessage)
059ec3d9 3774 {
8768d548 3775 if (!f.expand_string_forcedfail)
059ec3d9
PH
3776 log_write(0, LOG_MAIN|LOG_PANIC, "failed to expand ACL message \"%s\": %s",
3777 user_message, expand_string_message);
3778 }
3779 else if (expmessage[0] != 0) *user_msgptr = expmessage;
3780 }
3781
e3a69b62 3782 if (log_message)
059ec3d9
PH
3783 {
3784 acl_verify_message = old_log_msgptr;
3785 expmessage = expand_string(log_message);
e3a69b62 3786 if (!expmessage)
059ec3d9 3787 {
8768d548 3788 if (!f.expand_string_forcedfail)
059ec3d9
PH
3789 log_write(0, LOG_MAIN|LOG_PANIC, "failed to expand ACL message \"%s\": %s",
3790 log_message, expand_string_message);
3791 }
3792 else if (expmessage[0] != 0)
3793 {
3794 *log_msgptr = (*log_msgptr == NULL)? expmessage :
3795 string_sprintf("%s: %s", expmessage, *log_msgptr);
3796 }
3797 }
3798
3799 /* If no log message, default it to the user message */
3800
e3a69b62 3801 if (!*log_msgptr) *log_msgptr = *user_msgptr;
059ec3d9
PH
3802 }
3803
3804acl_verify_message = NULL;
3805return rc;
3806}
3807
3808
3809
3810
3811
3812/*************************************************
3813* Get line from a literal ACL *
3814*************************************************/
3815
3816/* This function is passed to acl_read() in order to extract individual lines
3817of a literal ACL, which we access via static pointers. We can destroy the
3818contents because this is called only once (the compiled ACL is remembered).
3819
3820This code is intended to treat the data in the same way as lines in the main
3821Exim configuration file. That is:
3822
3823 . Leading spaces are ignored.
3824
3825 . A \ at the end of a line is a continuation - trailing spaces after the \
3826 are permitted (this is because I don't believe in making invisible things
3827 significant). Leading spaces on the continued part of a line are ignored.
3828
3829 . Physical lines starting (significantly) with # are totally ignored, and
3830 may appear within a sequence of backslash-continued lines.
3831
3832 . Blank lines are ignored, but will end a sequence of continuations.
3833
3834Arguments: none
3835Returns: a pointer to the next line
3836*/
3837
3838
3839static uschar *acl_text; /* Current pointer in the text */
3840static uschar *acl_text_end; /* Points one past the terminating '0' */
3841
3842
3843static uschar *
3844acl_getline(void)
3845{
3846uschar *yield;
3847
3848/* This loop handles leading blank lines and comments. */
3849
3850for(;;)
3851 {
3852 while (isspace(*acl_text)) acl_text++; /* Leading spaces/empty lines */
3853 if (*acl_text == 0) return NULL; /* No more data */
3854 yield = acl_text; /* Potential data line */
3855
3856 while (*acl_text != 0 && *acl_text != '\n') acl_text++;
3857
3858 /* If we hit the end before a newline, we have the whole logical line. If
3859 it's a comment, there's no more data to be given. Otherwise, yield it. */
3860
3861 if (*acl_text == 0) return (*yield == '#')? NULL : yield;
3862
3863 /* After reaching a newline, end this loop if the physical line does not
3864 start with '#'. If it does, it's a comment, and the loop continues. */
3865
3866 if (*yield != '#') break;
3867 }
3868
3869/* This loop handles continuations. We know we have some real data, ending in
3870newline. See if there is a continuation marker at the end (ignoring trailing
3871white space). We know that *yield is not white space, so no need to test for
3872cont > yield in the backwards scanning loop. */
3873
3874for(;;)
3875 {
3876 uschar *cont;
3877 for (cont = acl_text - 1; isspace(*cont); cont--);
3878
3879 /* If no continuation follows, we are done. Mark the end of the line and
3880 return it. */
3881
3882 if (*cont != '\\')
3883 {
3884 *acl_text++ = 0;
3885 return yield;
3886 }
3887
3888 /* We have encountered a continuation. Skip over whitespace at the start of
3889 the next line, and indeed the whole of the next line or lines if they are
3890 comment lines. */
3891
3892 for (;;)
3893 {
3894 while (*(++acl_text) == ' ' || *acl_text == '\t');
3895 if (*acl_text != '#') break;
3896 while (*(++acl_text) != 0 && *acl_text != '\n');
3897 }
3898
3899 /* We have the start of a continuation line. Move all the rest of the data
3900 to join onto the previous line, and then find its end. If the end is not a
3901 newline, we are done. Otherwise loop to look for another continuation. */
3902
3903 memmove(cont, acl_text, acl_text_end - acl_text);
3904 acl_text_end -= acl_text - cont;
3905 acl_text = cont;
3906 while (*acl_text != 0 && *acl_text != '\n') acl_text++;
3907 if (*acl_text == 0) return yield;
3908 }
3909
3910/* Control does not reach here */
3911}
3912
3913
3914
3915
3916
3917/*************************************************
3918* Check access using an ACL *
3919*************************************************/
3920
3921/* This function is called from address_check. It may recurse via
3922acl_check_condition() - hence the use of a level to stop looping. The ACL is
3923passed as a string which is expanded. A forced failure implies no access check
3924is required. If the result is a single word, it is taken as the name of an ACL
3925which is sought in the global ACL tree. Otherwise, it is taken as literal ACL
3926text, complete with newlines, and parsed as such. In both cases, the ACL check
3927is then run. This function uses an auxiliary function for acl_read() to call
3928for reading individual lines of a literal ACL. This is acl_getline(), which
3929appears immediately above.
3930
3931Arguments:
3932 where where called from
3933 addr address item when called from RCPT; otherwise NULL
3934 s the input string; NULL is the same as an empty ACL => DENY
059ec3d9
PH
3935 user_msgptr where to put a user error (for SMTP response)
3936 log_msgptr where to put a logging message (not for SMTP response)
3937
3938Returns: OK access is granted
3939 DISCARD access is apparently granted...
3940 FAIL access is denied
3941 FAIL_DROP access is denied; drop the connection
3942 DEFER can't tell at the moment
3943 ERROR disaster
3944*/
3945
3946static int
e1d04f48 3947acl_check_internal(int where, address_item *addr, uschar *s,
059ec3d9
PH
3948 uschar **user_msgptr, uschar **log_msgptr)
3949{
3950int fd = -1;
3951acl_block *acl = NULL;
3952uschar *acl_name = US"inline ACL";
3953uschar *ss;
3954
3955/* Catch configuration loops */
3956
e1d04f48 3957if (acl_level > 20)
059ec3d9
PH
3958 {
3959 *log_msgptr = US"ACL nested too deep: possible loop";
3960 return ERROR;
3961 }
3962
e1d04f48 3963if (!s)
059ec3d9 3964 {
e1d04f48 3965 HDEBUG(D_acl) debug_printf_indent("ACL is NULL: implicit DENY\n");
059ec3d9
PH
3966 return FAIL;
3967 }
3968
3969/* At top level, we expand the incoming string. At lower levels, it has already
3970been expanded as part of condition processing. */
3971
e1d04f48 3972if (acl_level == 0)
059ec3d9 3973 {
e1d04f48 3974 if (!(ss = expand_string(s)))
059ec3d9 3975 {
8768d548 3976 if (f.expand_string_forcedfail) return OK;
059ec3d9
PH
3977 *log_msgptr = string_sprintf("failed to expand ACL string \"%s\": %s", s,
3978 expand_string_message);
3979 return ERROR;
3980 }
3981 }
3982else ss = s;
3983
bb07bcd3 3984while (isspace(*ss)) ss++;
059ec3d9
PH
3985
3986/* If we can't find a named ACL, the default is to parse it as an inline one.
3987(Unless it begins with a slash; non-existent files give rise to an error.) */
3988
3989acl_text = ss;
3990
3991/* Handle the case of a string that does not contain any spaces. Look for a
3992named ACL among those read from the configuration, or a previously read file.
3993It is possible that the pointer to the ACL is NULL if the configuration
3994contains a name with no data. If not found, and the text begins with '/',
3995read an ACL from a file, and save it so it can be re-used. */
3996
3997if (Ustrchr(ss, ' ') == NULL)
3998 {
3999 tree_node *t = tree_search(acl_anchor, ss);
4000 if (t != NULL)
4001 {
4002 acl = (acl_block *)(t->data.ptr);
4003 if (acl == NULL)
4004 {
e1d04f48 4005 HDEBUG(D_acl) debug_printf_indent("ACL \"%s\" is empty: implicit DENY\n", ss);
059ec3d9
PH
4006 return FAIL;
4007 }
4008 acl_name = string_sprintf("ACL \"%s\"", ss);
e1d04f48 4009 HDEBUG(D_acl) debug_printf_indent("using ACL \"%s\"\n", ss);
059ec3d9
PH
4010 }
4011
4012 else if (*ss == '/')
4013 {
4014 struct stat statbuf;
4015 fd = Uopen(ss, O_RDONLY, 0);
4016 if (fd < 0)
4017 {
4018 *log_msgptr = string_sprintf("failed to open ACL file \"%s\": %s", ss,
4019 strerror(errno));
4020 return ERROR;
4021 }
4022
4023 if (fstat(fd, &statbuf) != 0)
4024 {
4025 *log_msgptr = string_sprintf("failed to fstat ACL file \"%s\": %s", ss,
4026 strerror(errno));
4027 return ERROR;
4028 }
4029
4030 acl_text = store_get(statbuf.st_size + 1);
4031 acl_text_end = acl_text + statbuf.st_size + 1;
4032
4033 if (read(fd, acl_text, statbuf.st_size) != statbuf.st_size)
4034 {
4035 *log_msgptr = string_sprintf("failed to read ACL file \"%s\": %s",
4036 ss, strerror(errno));
4037 return ERROR;
4038 }
4039 acl_text[statbuf.st_size] = 0;
f1e894f3 4040 (void)close(fd);
059ec3d9
PH
4041
4042 acl_name = string_sprintf("ACL \"%s\"", ss);
e1d04f48 4043 HDEBUG(D_acl) debug_printf_indent("read ACL from file %s\n", ss);
059ec3d9
PH
4044 }
4045 }
4046
4047/* Parse an ACL that is still in text form. If it came from a file, remember it
4048in the ACL tree, having read it into the POOL_PERM store pool so that it
4049persists between multiple messages. */
4050
4051if (acl == NULL)
4052 {
4053 int old_pool = store_pool;
4054 if (fd >= 0) store_pool = POOL_PERM;
4055 acl = acl_read(acl_getline, log_msgptr);
4056 store_pool = old_pool;
4057 if (acl == NULL && *log_msgptr != NULL) return ERROR;
4058 if (fd >= 0)
4059 {
4060 tree_node *t = store_get_perm(sizeof(tree_node) + Ustrlen(ss));
4061 Ustrcpy(t->name, ss);
4062 t->data.ptr = acl;
4063 (void)tree_insertnode(&acl_anchor, t);
4064 }
4065 }
4066
4067/* Now we have an ACL to use. It's possible it may be NULL. */
4068
4069while (acl != NULL)
4070 {
4071 int cond;
4072 int basic_errno = 0;
4073 BOOL endpass_seen = FALSE;
e1d04f48 4074 BOOL acl_quit_check = acl_level == 0
82c0c8ea 4075 && (where == ACL_WHERE_QUIT || where == ACL_WHERE_NOTQUIT);
059ec3d9
PH
4076
4077 *log_msgptr = *user_msgptr = NULL;
8768d548 4078 f.acl_temp_details = FALSE;
059ec3d9 4079
e1d04f48 4080 HDEBUG(D_acl) debug_printf_indent("processing \"%s\"\n", verbs[acl->verb]);
059ec3d9
PH
4081
4082 /* Clear out any search error message from a previous check before testing
4083 this condition. */
4084
4085 search_error_message = NULL;
e1d04f48 4086 cond = acl_check_condition(acl->verb, acl->condition, where, addr, acl_level,
059ec3d9
PH
4087 &endpass_seen, user_msgptr, log_msgptr, &basic_errno);
4088
4089 /* Handle special returns: DEFER causes a return except on a WARN verb;
4090 ERROR always causes a return. */
4091
4092 switch (cond)
4093 {
4094 case DEFER:
e1d04f48 4095 HDEBUG(D_acl) debug_printf_indent("%s: condition test deferred in %s\n", verbs[acl->verb], acl_name);
059ec3d9
PH
4096 if (basic_errno != ERRNO_CALLOUTDEFER)
4097 {
4098 if (search_error_message != NULL && *search_error_message != 0)
4099 *log_msgptr = search_error_message;
8768d548 4100 if (smtp_return_error_details) f.acl_temp_details = TRUE;
059ec3d9
PH
4101 }
4102 else
8768d548 4103 f.acl_temp_details = TRUE;
059ec3d9
PH
4104 if (acl->verb != ACL_WARN) return DEFER;
4105 break;
4106
4107 default: /* Paranoia */
4108 case ERROR:
e1d04f48 4109 HDEBUG(D_acl) debug_printf_indent("%s: condition test error in %s\n", verbs[acl->verb], acl_name);
059ec3d9
PH
4110 return ERROR;
4111
4112 case OK:
e1d04f48 4113 HDEBUG(D_acl) debug_printf_indent("%s: condition test succeeded in %s\n",
6968512f 4114 verbs[acl->verb], acl_name);
059ec3d9
PH
4115 break;
4116
4117 case FAIL:
e1d04f48 4118 HDEBUG(D_acl) debug_printf_indent("%s: condition test failed in %s\n", verbs[acl->verb], acl_name);
059ec3d9
PH
4119 break;
4120
4121 /* DISCARD and DROP can happen only from a nested ACL condition, and
4122 DISCARD can happen only for an "accept" or "discard" verb. */
4123
4124 case DISCARD:
e1d04f48 4125 HDEBUG(D_acl) debug_printf_indent("%s: condition test yielded \"discard\" in %s\n",
6968512f 4126 verbs[acl->verb], acl_name);
059ec3d9
PH
4127 break;
4128
4129 case FAIL_DROP:
e1d04f48 4130 HDEBUG(D_acl) debug_printf_indent("%s: condition test yielded \"drop\" in %s\n",
6968512f 4131 verbs[acl->verb], acl_name);
059ec3d9
PH
4132 break;
4133 }
4134
4135 /* At this point, cond for most verbs is either OK or FAIL or (as a result of
4136 a nested ACL condition) FAIL_DROP. However, for WARN, cond may be DEFER, and
4137 for ACCEPT and DISCARD, it may be DISCARD after a nested ACL call. */
4138
4139 switch(acl->verb)
4140 {
4141 case ACL_ACCEPT:
a7538db1
JH
4142 if (cond == OK || cond == DISCARD)
4143 {
e1d04f48 4144 HDEBUG(D_acl) debug_printf_indent("end of %s: ACCEPT\n", acl_name);
a7538db1
JH
4145 return cond;
4146 }
059ec3d9
PH
4147 if (endpass_seen)
4148 {
e1d04f48 4149 HDEBUG(D_acl) debug_printf_indent("accept: endpass encountered - denying access\n");
059ec3d9
PH
4150 return cond;
4151 }
4152 break;
4153
4154 case ACL_DEFER:
4155 if (cond == OK)
4156 {
e1d04f48 4157 HDEBUG(D_acl) debug_printf_indent("end of %s: DEFER\n", acl_name);
82c0c8ea 4158 if (acl_quit_check) goto badquit;
8768d548 4159 f.acl_temp_details = TRUE;
059ec3d9
PH
4160 return DEFER;
4161 }
4162 break;
4163
4164 case ACL_DENY:
a7538db1
JH
4165 if (cond == OK)
4166 {
e1d04f48 4167 HDEBUG(D_acl) debug_printf_indent("end of %s: DENY\n", acl_name);
82c0c8ea 4168 if (acl_quit_check) goto badquit;
a7538db1
JH
4169 return FAIL;
4170 }
059ec3d9
PH
4171 break;
4172
4173 case ACL_DISCARD:
a7538db1
JH
4174 if (cond == OK || cond == DISCARD)
4175 {
e1d04f48 4176 HDEBUG(D_acl) debug_printf_indent("end of %s: DISCARD\n", acl_name);
82c0c8ea 4177 if (acl_quit_check) goto badquit;
a7538db1
JH
4178 return DISCARD;
4179 }
059ec3d9
PH
4180 if (endpass_seen)
4181 {
e1d04f48 4182 HDEBUG(D_acl) debug_printf_indent("discard: endpass encountered - denying access\n");
059ec3d9
PH
4183 return cond;
4184 }
4185 break;
4186
4187 case ACL_DROP:
a7538db1
JH
4188 if (cond == OK)
4189 {
e1d04f48 4190 HDEBUG(D_acl) debug_printf_indent("end of %s: DROP\n", acl_name);
82c0c8ea 4191 if (acl_quit_check) goto badquit;
a7538db1
JH
4192 return FAIL_DROP;
4193 }
059ec3d9
PH
4194 break;
4195
4196 case ACL_REQUIRE:
a7538db1
JH
4197 if (cond != OK)
4198 {
e1d04f48 4199 HDEBUG(D_acl) debug_printf_indent("end of %s: not OK\n", acl_name);
82c0c8ea 4200 if (acl_quit_check) goto badquit;
a7538db1
JH
4201 return cond;
4202 }
059ec3d9
PH
4203 break;
4204
4205 case ACL_WARN:
4206 if (cond == OK)
4207 acl_warn(where, *user_msgptr, *log_msgptr);
6c6d6e48 4208 else if (cond == DEFER && LOGGING(acl_warn_skipped))
9c7a242c
PH
4209 log_write(0, LOG_MAIN, "%s Warning: ACL \"warn\" statement skipped: "
4210 "condition test deferred%s%s", host_and_ident(TRUE),
4211 (*log_msgptr == NULL)? US"" : US": ",
4212 (*log_msgptr == NULL)? US"" : *log_msgptr);
059ec3d9
PH
4213 *log_msgptr = *user_msgptr = NULL; /* In case implicit DENY follows */
4214 break;
4215
4216 default:
4217 log_write(0, LOG_MAIN|LOG_PANIC_DIE, "internal ACL error: unknown verb %d",
4218 acl->verb);
4219 break;
4220 }
4221
4222 /* Pass to the next ACL item */
4223
4224 acl = acl->next;
4225 }
4226
4227/* We have reached the end of the ACL. This is an implicit DENY. */
4228
e1d04f48 4229HDEBUG(D_acl) debug_printf_indent("end of %s: implicit DENY\n", acl_name);
059ec3d9 4230return FAIL;
82c0c8ea
JH
4231
4232badquit:
4c04137d 4233 *log_msgptr = string_sprintf("QUIT or not-QUIT toplevel ACL may not fail "
82c0c8ea
JH
4234 "('%s' verb used incorrectly)", verbs[acl->verb]);
4235 return ERROR;
059ec3d9
PH
4236}
4237
4238
333eea9c
JH
4239
4240
4241/* Same args as acl_check_internal() above, but the string s is
4242the name of an ACL followed optionally by up to 9 space-separated arguments.
4243The name and args are separately expanded. Args go into $acl_arg globals. */
f60d98e8 4244static int
e1d04f48 4245acl_check_wargs(int where, address_item *addr, const uschar *s,
333eea9c
JH
4246 uschar **user_msgptr, uschar **log_msgptr)
4247{
4248uschar * tmp;
bef3ea7f 4249uschar * tmp_arg[9]; /* must match acl_arg[] */
ef21c07d
JH
4250uschar * sav_arg[9]; /* must match acl_arg[] */
4251int sav_narg;
333eea9c 4252uschar * name;
bef3ea7f 4253int i;
ef21c07d 4254int ret;
333eea9c
JH
4255
4256if (!(tmp = string_dequote(&s)) || !(name = expand_string(tmp)))
4257 goto bad;
4258
bef3ea7f 4259for (i = 0; i < 9; i++)
333eea9c
JH
4260 {
4261 while (*s && isspace(*s)) s++;
4262 if (!*s) break;
bef3ea7f 4263 if (!(tmp = string_dequote(&s)) || !(tmp_arg[i] = expand_string(tmp)))
333eea9c
JH
4264 {
4265 tmp = name;
4266 goto bad;
4267 }
4268 }
ef21c07d
JH
4269
4270sav_narg = acl_narg;
bef3ea7f 4271acl_narg = i;
ef21c07d
JH
4272for (i = 0; i < acl_narg; i++)
4273 {
4274 sav_arg[i] = acl_arg[i];
4275 acl_arg[i] = tmp_arg[i];
4276 }
4277while (i < 9)
4278 {
4279 sav_arg[i] = acl_arg[i];
4280 acl_arg[i++] = NULL;
4281 }
4282
e1d04f48
JH
4283acl_level++;
4284ret = acl_check_internal(where, addr, name, user_msgptr, log_msgptr);
4285acl_level--;
333eea9c 4286
ef21c07d
JH
4287acl_narg = sav_narg;
4288for (i = 0; i < 9; i++) acl_arg[i] = sav_arg[i];
4289return ret;
333eea9c
JH
4290
4291bad:
8768d548 4292if (f.expand_string_forcedfail) return ERROR;
333eea9c
JH
4293*log_msgptr = string_sprintf("failed to expand ACL string \"%s\": %s",
4294 tmp, expand_string_message);
8768d548 4295return f.search_find_defer ? DEFER : ERROR;
333eea9c
JH
4296}
4297
4298
4299
059ec3d9
PH
4300/*************************************************
4301* Check access using an ACL *
4302*************************************************/
4303
faa05a93
JH
4304/* Alternate interface for ACL, used by expansions */
4305int
05caaeaa 4306acl_eval(int where, uschar *s, uschar **user_msgptr, uschar **log_msgptr)
faa05a93 4307{
faa05a93
JH
4308address_item adb;
4309address_item *addr = NULL;
e1d04f48 4310int rc;
faa05a93
JH
4311
4312*user_msgptr = *log_msgptr = NULL;
4313sender_verified_failed = NULL;
4314ratelimiters_cmd = NULL;
4315log_reject_target = LOG_MAIN|LOG_REJECT;
4316
4317if (where == ACL_WHERE_RCPT)
4318 {
4319 adb = address_defaults;
4320 addr = &adb;
05caaeaa
JH
4321 addr->address = expand_string(US"$local_part@$domain");
4322 addr->domain = deliver_domain;
4323 addr->local_part = deliver_localpart;
4324 addr->cc_local_part = deliver_localpart;
4325 addr->lc_local_part = deliver_localpart;
faa05a93
JH
4326 }
4327
e1d04f48
JH
4328acl_level++;
4329rc = acl_check_internal(where, addr, s, user_msgptr, log_msgptr);
4330acl_level--;
4331return rc;
faa05a93
JH
4332}
4333
4334
4335
059ec3d9
PH
4336/* This is the external interface for ACL checks. It sets up an address and the
4337expansions for $domain and $local_part when called after RCPT, then calls
4338acl_check_internal() to do the actual work.
4339
4340Arguments:
4341 where ACL_WHERE_xxxx indicating where called from
64ffc24f 4342 recipient RCPT address for RCPT check, else NULL
059ec3d9
PH
4343 s the input string; NULL is the same as an empty ACL => DENY
4344 user_msgptr where to put a user error (for SMTP response)
4345 log_msgptr where to put a logging message (not for SMTP response)
4346
4347Returns: OK access is granted by an ACCEPT verb
4348 DISCARD access is granted by a DISCARD verb
4349 FAIL access is denied
4350 FAIL_DROP access is denied; drop the connection
4351 DEFER can't tell at the moment
4352 ERROR disaster
4353*/
faa05a93 4354int acl_where = ACL_WHERE_UNKNOWN;
059ec3d9
PH
4355
4356int
64ffc24f 4357acl_check(int where, uschar *recipient, uschar *s, uschar **user_msgptr,
059ec3d9
PH
4358 uschar **log_msgptr)
4359{
4360int rc;
4361address_item adb;
64ffc24f 4362address_item *addr = NULL;
059ec3d9
PH
4363
4364*user_msgptr = *log_msgptr = NULL;
4365sender_verified_failed = NULL;
fe0dab11 4366ratelimiters_cmd = NULL;
6ea85e9a 4367log_reject_target = LOG_MAIN|LOG_REJECT;
059ec3d9 4368
8ccd00b1 4369#ifndef DISABLE_PRDR
4f6ae5c3 4370if (where==ACL_WHERE_RCPT || where==ACL_WHERE_VRFY || where==ACL_WHERE_PRDR)
fd98a5c6 4371#else
4f6ae5c3 4372if (where==ACL_WHERE_RCPT || where==ACL_WHERE_VRFY)
fd98a5c6 4373#endif
059ec3d9
PH
4374 {
4375 adb = address_defaults;
4376 addr = &adb;
64ffc24f 4377 addr->address = recipient;
059ec3d9
PH
4378 if (deliver_split_address(addr) == DEFER)
4379 {
4380 *log_msgptr = US"defer in percent_hack_domains check";
4381 return DEFER;
4382 }
8c5d388a 4383#ifdef SUPPORT_I18N
3c8b3577
JH
4384 if ((addr->prop.utf8_msg = message_smtputf8))
4385 {
4386 addr->prop.utf8_downcvt = message_utf8_downconvert == 1;
4387 addr->prop.utf8_downcvt_maybe = message_utf8_downconvert == -1;
4388 }
9bfc60eb 4389#endif
059ec3d9
PH
4390 deliver_domain = addr->domain;
4391 deliver_localpart = addr->local_part;
4392 }
059ec3d9 4393
faa05a93 4394acl_where = where;
e1d04f48
JH
4395acl_level = 0;
4396rc = acl_check_internal(where, addr, s, user_msgptr, log_msgptr);
4397acl_level = 0;
faa05a93 4398acl_where = ACL_WHERE_UNKNOWN;
059ec3d9 4399
817d9f57
JH
4400/* Cutthrough - if requested,
4401and WHERE_RCPT and not yet opened conn as result of recipient-verify,
4402and rcpt acl returned accept,
4403and first recipient (cancel on any subsequents)
e4bdf652 4404open one now and run it up to RCPT acceptance.
f9334a28
JH
4405A failed verify should cancel cutthrough request,
4406and will pass the fail to the originator.
817d9f57 4407Initial implementation: dual-write to spool.
e4bdf652
JH
4408Assume the rxd datastream is now being copied byte-for-byte to an open cutthrough connection.
4409
4410Cease cutthrough copy on rxd final dot; do not send one.
4411
4412On a data acl, if not accept and a cutthrough conn is open, hard-close it (no SMTP niceness).
4413
4414On data acl accept, terminate the dataphase on an open cutthrough conn. If accepted or
4415perm-rejected, reflect that to the original sender - and dump the spooled copy.
4416If temp-reject, close the conn (and keep the spooled copy).
4417If conn-failure, no action (and keep the spooled copy).
e4bdf652
JH
4418*/
4419switch (where)
ff5929e3
JH
4420 {
4421 case ACL_WHERE_RCPT:
8ccd00b1 4422#ifndef DISABLE_PRDR
ff5929e3 4423 case ACL_WHERE_PRDR:
fd98a5c6 4424#endif
57cc2785 4425
8768d548 4426 if (f.host_checking_callout) /* -bhc mode */
57cc2785 4427 cancel_cutthrough_connection(TRUE, US"host-checking mode");
ff5929e3
JH
4428
4429 else if ( rc == OK
4430 && cutthrough.delivery
4431 && rcpt_count > cutthrough.nrcpt
ff5929e3 4432 )
06fdb9f7
JH
4433 {
4434 if ((rc = open_cutthrough_connection(addr)) == DEFER)
4435 if (cutthrough.defer_pass)
4436 {
4437 uschar * s = addr->message;
4438 /* Horrid kludge to recover target's SMTP message */
4439 while (*s) s++;
4440 do --s; while (!isdigit(*s));
4441 if (*--s && isdigit(*s) && *--s && isdigit(*s)) *user_msgptr = s;
8768d548 4442 f.acl_temp_details = TRUE;
06fdb9f7
JH
4443 }
4444 else
4445 {
4446 HDEBUG(D_acl) debug_printf_indent("cutthrough defer; will spool\n");
4447 rc = OK;
4448 }
4449 }
4450 else HDEBUG(D_acl) if (cutthrough.delivery)
4451 if (rcpt_count <= cutthrough.nrcpt)
4452 debug_printf_indent("ignore cutthrough request; nonfirst message\n");
4453 else if (rc != OK)
4454 debug_printf_indent("ignore cutthrough request; ACL did not accept\n");
ff5929e3 4455 break;
e4bdf652 4456
ff5929e3
JH
4457 case ACL_WHERE_PREDATA:
4458 if (rc == OK)
4459 cutthrough_predata();
4460 else
57cc2785 4461 cancel_cutthrough_connection(TRUE, US"predata acl not ok");
ff5929e3 4462 break;
e4bdf652 4463
ff5929e3
JH
4464 case ACL_WHERE_QUIT:
4465 case ACL_WHERE_NOTQUIT:
57cc2785
JH
4466 /* Drop cutthrough conns, and drop heldopen verify conns if
4467 the previous was not DATA */
4468 {
4469 uschar prev = smtp_connection_had[smtp_ch_index-2];
4470 BOOL dropverify = !(prev == SCH_DATA || prev == SCH_BDAT);
4471
4472 cancel_cutthrough_connection(dropverify, US"quit or conndrop");
ff5929e3 4473 break;
57cc2785 4474 }
e4bdf652 4475
ff5929e3
JH
4476 default:
4477 break;
4478 }
e4bdf652 4479
64ffc24f 4480deliver_domain = deliver_localpart = deliver_address_data =
c679ee08 4481 deliver_domain_data = sender_address_data = NULL;
059ec3d9
PH
4482
4483/* A DISCARD response is permitted only for message ACLs, excluding the PREDATA
4484ACL, which is really in the middle of an SMTP command. */
4485
4486if (rc == DISCARD)
4487 {
4488 if (where > ACL_WHERE_NOTSMTP || where == ACL_WHERE_PREDATA)
4489 {
4490 log_write(0, LOG_MAIN|LOG_PANIC, "\"discard\" verb not allowed in %s "
4491 "ACL", acl_wherenames[where]);
4492 return ERROR;
4493 }
4494 return DISCARD;
4495 }
4496
4497/* A DROP response is not permitted from MAILAUTH */
4498
4499if (rc == FAIL_DROP && where == ACL_WHERE_MAILAUTH)
4500 {
4501 log_write(0, LOG_MAIN|LOG_PANIC, "\"drop\" verb not allowed in %s "
4502 "ACL", acl_wherenames[where]);
4503 return ERROR;
4504 }
4505
4e88a19f
PH
4506/* Before giving a response, take a look at the length of any user message, and
4507split it up into multiple lines if possible. */
059ec3d9 4508
e28326d8
PH
4509*user_msgptr = string_split_message(*user_msgptr);
4510if (fake_response != OK)
4511 fake_response_text = string_split_message(fake_response_text);
059ec3d9
PH
4512
4513return rc;
4514}
4515
38a0a95f 4516
38a0a95f
PH
4517/*************************************************
4518* Create ACL variable *
4519*************************************************/
4520
4521/* Create an ACL variable or reuse an existing one. ACL variables are in a
4522binary tree (see tree.c) with acl_var_c and acl_var_m as root nodes.
4523
4524Argument:
4525 name pointer to the variable's name, starting with c or m
4526
4527Returns the pointer to variable's tree node
4528*/
4529
4530tree_node *
2c0f3ea1 4531acl_var_create(uschar * name)
38a0a95f 4532{
2c0f3ea1
JH
4533tree_node * node, ** root = name[0] == 'c' ? &acl_var_c : &acl_var_m;
4534if (!(node = tree_search(*root, name)))
38a0a95f
PH
4535 {
4536 node = store_get(sizeof(tree_node) + Ustrlen(name));
4537 Ustrcpy(node->name, name);
4538 (void)tree_insertnode(root, node);
4539 }
4540node->data.ptr = NULL;
4541return node;
4542}
4543
4544
4545
4546/*************************************************
4547* Write an ACL variable in spool format *
4548*************************************************/
4549
4550/* This function is used as a callback for tree_walk when writing variables to
4551the spool file. To retain spool file compatibility, what is written is -aclc or
4552-aclm followed by the rest of the name and the data length, space separated,
4553then the value itself, starting on a new line, and terminated by an additional
4554newline. When we had only numbered ACL variables, the first line might look
4555like this: "-aclc 5 20". Now it might be "-aclc foo 20" for the variable called
4556acl_cfoo.
4557
4558Arguments:
4559 name of the variable
4560 value of the variable
4561 ctx FILE pointer (as a void pointer)
4562
4563Returns: nothing
4564*/
4565
4566void
4567acl_var_write(uschar *name, uschar *value, void *ctx)
4568{
4569FILE *f = (FILE *)ctx;
4570fprintf(f, "-acl%c %s %d\n%s\n", name[0], name+1, Ustrlen(value), value);
4571}
4572
9171d434
JH
4573/* vi: aw ai sw=2
4574*/
059ec3d9 4575/* End of acl.c */