ViewVC Help
View File | Revision Log | Show Annotations | Download File
/cvs/Convert-BER-XS/XS.xs
(Generate patch)

Comparing Convert-BER-XS/XS.xs (file contents):
Revision 1.1 by root, Fri Apr 19 16:19:36 2019 UTC vs.
Revision 1.18 by root, Sat Apr 20 16:12:53 2019 UTC

1#include "EXTERN.h" 1#include "EXTERN.h"
2#include "perl.h" 2#include "perl.h"
3#include "XSUB.h" 3#include "XSUB.h"
4 4
5// C99 required 5// C99 required!
6// this is not just for comments, but also for
7// integer constant semantics,
8// sscanf format modifiers and more.
6 9
7enum { 10enum {
8 // ASN_TAG 11 // ASN_TAG
9 ASN_BOOLEAN = 0x01, 12 ASN_BOOLEAN = 0x01,
10 ASN_INTEGER32 = 0x02, 13 ASN_INTEGER = 0x02,
11 ASN_BIT_STRING = 0x03, 14 ASN_BIT_STRING = 0x03,
12 ASN_OCTET_STRING = 0x04, 15 ASN_OCTET_STRING = 0x04,
13 ASN_NULL = 0x05, 16 ASN_NULL = 0x05,
14 ASN_OBJECT_IDENTIFIER = 0x06, 17 ASN_OBJECT_IDENTIFIER = 0x06,
18 ASN_OID = 0x06,
19 ASN_OBJECT_DESCRIPTOR = 0x07,
20 ASN_EXTERNAL = 0x08,
21 ASN_REAL = 0x09,
22 ASN_ENUMERATED = 0x0a,
23 ASN_EMBEDDED_PDV = 0x0b,
24 ASN_UTF8_STRING = 0x0c,
25 ASN_RELATIVE_OID = 0x0d,
15 ASN_SEQUENCE = 0x10, 26 ASN_SEQUENCE = 0x10,
27 ASN_SET = 0x11,
28 ASN_NUMERIC_STRING = 0x12,
29 ASN_PRINTABLE_STRING = 0x13,
30 ASN_TELETEX_STRING = 0x14,
31 ASN_T61_STRING = 0x14,
32 ASN_VIDEOTEX_STRING = 0x15,
33 ASN_IA5_STRING = 0x16,
34 ASN_ASCII_STRING = 0x16,
35 ASN_UTC_TIME = 0x17,
36 ASN_GENERALIZED_TIME = 0x18,
37 ASN_GRAPHIC_STRING = 0x19,
38 ASN_VISIBLE_STRING = 0x1a,
39 ASN_ISO646_STRING = 0x1a,
40 ASN_GENERAL_STRING = 0x1b,
41 ASN_UNIVERSAL_STRING = 0x1c,
42 ASN_CHARACTER_STRING = 0x1d,
43 ASN_BMP_STRING = 0x1e,
16 44
17 ASN_TAG_BER = 0x1f, 45 ASN_TAG_BER = 0x1f,
18 ASN_TAG_MASK = 0x1f, 46 ASN_TAG_MASK = 0x1f,
19 47
20 // primitive/constructed 48 // primitive/constructed
21 ASN_CONSTRUCTED = 0x20, 49 ASN_CONSTRUCTED = 0x20,
22 50
23 // ASN_CLASS 51 // ASN_CLASS
24 ASN_UNIVERSAL = 0x00, 52 ASN_UNIVERSAL = 0x00,
25 ASN_APPLICATION = 0x40, 53 ASN_APPLICATION = 0x01,
26 ASN_CONTEXT = 0x80, 54 ASN_CONTEXT = 0x02,
27 ASN_PRIVATE = 0xc0, 55 ASN_PRIVATE = 0x03,
28 56
29 ASN_CLASS_MASK = 0xc0, 57 ASN_CLASS_MASK = 0xc0,
30 ASN_CLASS_SHIFT = 6, 58 ASN_CLASS_SHIFT = 6,
31 59
32 // ASN_APPLICATION 60 // ASN_APPLICATION SNMP
33 ASN_IPADDRESS = 0x00, 61 SNMP_IPADDRESS = 0x00,
34 ASN_COUNTER32 = 0x01, 62 SNMP_COUNTER32 = 0x01,
35 ASN_UNSIGNED32 = 0x02, 63 SNMP_UNSIGNED32 = 0x02,
36 ASN_TIMETICKS = 0x03, 64 SNMP_TIMETICKS = 0x03,
37 ASN_OPAQUE = 0x04, 65 SNMP_OPAQUE = 0x04,
38 ASN_COUNTER64 = 0x06, 66 SNMP_COUNTER64 = 0x06,
39}; 67};
40 68
41enum { 69enum {
70 BER_TYPE_BYTES,
71 BER_TYPE_UTF8,
72 BER_TYPE_UCS2,
73 BER_TYPE_UCS4,
74 BER_TYPE_INT,
75 BER_TYPE_OID,
76 BER_TYPE_RELOID,
77 BER_TYPE_NULL,
78 BER_TYPE_BOOL,
79 BER_TYPE_REAL,
80 BER_TYPE_IPADDRESS,
81 BER_TYPE_CROAK,
82};
83
84enum {
42 BER_CLASS = 0, 85 BER_CLASS = 0,
43 BER_TAG = 1, 86 BER_TAG = 1,
44 BER_CONSTRUCTED = 2, 87 BER_FLAGS = 2,
45 BER_DATA = 3, 88 BER_DATA = 3,
46 BER_ARRAYSIZE 89 BER_ARRAYSIZE
47}; 90};
48 91
49#define MAX_OID_STRLEN 4096 92#define MAX_OID_STRLEN 4096
50 93
51static U8 *buf, *cur; 94typedef void profile_type;
52static STRLEN len, rem; 95
96static profile_type *cur_profile, *default_profile;
97static SV *buf_sv; // encoding buffer
98static U8 *buf, *cur, *end; // buffer start, current, end
99
100#if PERL_VERSION < 18
101# define utf8_to_uvchr_buf(s,e,l) utf8_to_uvchr (s, l)
102#endif
103
104#if __GNUC__ >= 3
105# define expect(expr,value) __builtin_expect ((expr), (value))
106# define INLINE static inline
107#else
108# define expect(expr,value) (expr)
109# define INLINE static
110#endif
111
112#define expect_false(expr) expect ((expr) != 0, 0)
113#define expect_true(expr) expect ((expr) != 0, 1)
114
115/////////////////////////////////////////////////////////////////////////////
116
117static SV *sviv_cache[32];
53 118
54// for "small" integers, return a readonly sv, otherwise create a new one 119// for "small" integers, return a readonly sv, otherwise create a new one
55static SV *newSVcacheint (int val) 120static SV *newSVcacheint (int val)
56{ 121{
57 static SV *cache[32];
58
59 if (val < 0 || val >= sizeof (cache)) 122 if (expect_false (val < 0 || val >= sizeof (sviv_cache)))
60 return newSViv (val); 123 return newSViv (val);
61 124
62 if (!cache [val]) 125 if (expect_false (!sviv_cache [val]))
63 { 126 {
64 cache [val] = newSVuv (val); 127 sviv_cache [val] = newSVuv (val);
65 SvREADONLY_on (cache [val]); 128 SvREADONLY_on (sviv_cache [val]);
66 } 129 }
67 130
68 return SvREFCNT_inc_NN (cache [val]); 131 return SvREFCNT_inc_NN (sviv_cache [val]);
69} 132}
70 133
71///////////////////////////////////////////////////////////////////////////// 134/////////////////////////////////////////////////////////////////////////////
72 135
136static HV *profile_stash;
137
138static profile_type *
139SvPROFILE (SV *profile)
140{
141 if (!SvOK (profile))
142 return default_profile;
143
144 if (!SvROK (profile))
145 croak ("invalid profile");
146
147 profile = SvRV (profile);
148
149 if (SvSTASH (profile) != profile_stash)
150 croak ("invalid profile object");
151
152 return (void *)profile;
153}
154
155static int
156profile_lookup (profile_type *profile, int klass, int tag)
157{
158 SV *sv = (SV *)profile;
159 U32 idx = (tag << 2) + klass;
160
161 if (expect_false (idx >= SvCUR (sv)))
162 return BER_TYPE_BYTES;
163
164 return SvPVX (sv)[idx];
165}
166
167static void
168profile_set (profile_type *profile, int klass, int tag, int type)
169{
170 SV *sv = (SV *)profile;
171 U32 idx = (tag << 2) + klass;
172 STRLEN oldlen = SvCUR (sv);
173 STRLEN newlen = idx + 2;
174
175 if (idx >= oldlen)
176 {
177 sv_grow (sv, newlen);
178 memset (SvPVX (sv) + oldlen, BER_TYPE_BYTES, newlen - oldlen);
179 SvCUR_set (sv, newlen);
180 }
181
182 SvPVX (sv)[idx] = type;
183}
184
185static SV *
186profile_new (void)
187{
188 SV *sv = newSVpvn ("", 0);
189
190 static const struct {
191 int klass;
192 int tag;
193 int type;
194 } *celem, default_map[] = {
195 { ASN_UNIVERSAL, ASN_BOOLEAN , BER_TYPE_BOOL },
196 { ASN_UNIVERSAL, ASN_INTEGER , BER_TYPE_INT },
197 { ASN_UNIVERSAL, ASN_NULL , BER_TYPE_NULL },
198 { ASN_UNIVERSAL, ASN_OBJECT_IDENTIFIER, BER_TYPE_OID },
199 { ASN_UNIVERSAL, ASN_RELATIVE_OID , BER_TYPE_RELOID },
200 { ASN_UNIVERSAL, ASN_REAL , BER_TYPE_REAL },
201 { ASN_UNIVERSAL, ASN_ENUMERATED , BER_TYPE_INT },
202 { ASN_UNIVERSAL, ASN_UTF8_STRING , BER_TYPE_UTF8 },
203 { ASN_UNIVERSAL, ASN_BMP_STRING , BER_TYPE_UCS2 },
204 { ASN_UNIVERSAL, ASN_UNIVERSAL_STRING , BER_TYPE_UCS4 },
205 };
206
207 for (celem = default_map + sizeof (default_map) / sizeof (default_map [0]); celem-- > default_map; )
208 profile_set ((profile_type *)sv, celem->klass, celem->tag, celem->type);
209
210 return sv_bless (newRV_noinc (sv), profile_stash);
211}
212
213/////////////////////////////////////////////////////////////////////////////
214// decoder
215
73static void 216static void
74error (const char *errmsg) 217error (const char *errmsg)
75{ 218{
76 croak ("%s at offset 0x%04x", errmsg, cur - buf); 219 croak ("%s at offset 0x%04x", errmsg, cur - buf);
77} 220}
78 221
79static int 222static void
80need (int count) 223want (UV count)
81{ 224{
82 if (count < 0 || (int)rem < count) 225 if (expect_false ((uintptr_t)(end - cur) < count))
83 {
84 error ("unexpected end of message buffer"); 226 error ("unexpected end of message buffer");
85 return 0;
86 }
87
88 return 1;
89} 227}
90 228
229// get_* functions fetch something from the buffer
230// decode_* functions use get_* fun ctions to decode ber values
231
232// get n octets
91static U8 * 233static U8 *
92getn (int count, const U8 *errres) 234get_n (UV count)
93{ 235{
94 if (!need (count)) 236 want (count);
95 return (U8 *)errres;
96
97 U8 *res = cur; 237 U8 *res = cur;
98
99 cur += count; 238 cur += count;
100 rem -= count;
101
102 return res; 239 return res;
103} 240}
104 241
242// get single octet
105static U8 243static U8
106get8 (void) 244get_u8 (void)
107{ 245{
108 if (rem <= 0) 246 if (cur == end)
109 {
110 error ("unexpected end of message buffer"); 247 error ("unexpected end of message buffer");
111 return 0;
112 }
113 248
114 rem--;
115 return *cur++; 249 return *cur++;
116} 250}
117 251
252// get ber-encoded integer (i.e. pack "w")
118static U32 253static UV
119getb (void) 254get_w (void)
120{ 255{
121 U32 res = 0; 256 UV res = 0;
122 257
123 for (;;) 258 for (;;)
124 { 259 {
125 U8 c = get8 (); 260 U8 c = get_u8 ();
126 res = (res << 7) | (c & 0x7f); 261 res = (res << 7) | (c & 0x7f);
127 262
128 if (!(c & 0x80)) 263 if (!(c & 0x80))
129 return res; 264 return res;
130 } 265 }
131} 266}
132 267
133static U32 268static UV
134process_length (void) 269get_length (void)
135{ 270{
136 U32 res = get8 (); 271 UV res = get_u8 ();
137 272
138 if (res & 0x80) 273 if (res & 0x80)
139 { 274 {
140 int cnt = res & 0x7f; 275 int cnt = res & 0x7f;
141 res = 0; 276 res = 0;
144 { 279 {
145 case 0: 280 case 0:
146 error ("indefinite ASN.1 lengths not supported"); 281 error ("indefinite ASN.1 lengths not supported");
147 return 0; 282 return 0;
148 283
284 //case 0x80: // indefinite length
285
286 //case 0xff: reserved
149 default: 287 default:
150 error ("ASN.1 length too long"); 288 error ("ASN.1 length too long");
151 return 0; 289 return 0;
152 290
291 case 8: res = (res << 8) | get_u8 ();
292 case 7: res = (res << 8) | get_u8 ();
293 case 6: res = (res << 8) | get_u8 ();
294 case 5: res = (res << 8) | get_u8 ();
153 case 4: res = (res << 8) | get8 (); 295 case 4: res = (res << 8) | get_u8 ();
154 case 3: res = (res << 8) | get8 (); 296 case 3: res = (res << 8) | get_u8 ();
155 case 2: res = (res << 8) | get8 (); 297 case 2: res = (res << 8) | get_u8 ();
156 case 1: res = (res << 8) | get8 (); 298 case 1: res = (res << 8) | get_u8 ();
157 } 299 }
158 } 300 }
159 301
160 return res; 302 return res;
161} 303}
162 304
163static U32 305static SV *
164process_integer32 (void) 306decode_int (void)
165{ 307{
166 U32 length = process_length (); 308 UV len = get_length ();
167 309
168 if (length <= 0) 310 if (!len)
169 { 311 {
170 error ("INTEGER32 length equal to zero"); 312 error ("invalid integer length equal to zero");
171 return 0; 313 return 0;
172 } 314 }
173 315
174 U8 *data = getn (length, 0); 316 U8 *data = get_n (len);
175 317
176 if (!data) 318 int negative = data [0] & 0x80;
177 return 0;
178 319
179 if (length > 5 || (length > 4 && data [0])) 320 UV val = negative ? -1 : 0; // copy signbit to all bits
180 {
181 error ("INTEGER32 length too long");
182 return 0;
183 }
184 321
185 U32 res = data [0] & 0x80 ? 0xffffffff : 0; 322 do
186
187 while (length--)
188 res = (res << 8) | *data++; 323 val = (val << 8) | *data++;
324 while (--len);
189 325
190 return res; 326 // the cast to IV relies on implementation-defined behaviour (two's complement cast)
327 // but that's ok, as perl relies on it as well.
328 return negative ? newSViv ((IV)val) : newSVuv (val);
191} 329}
192 330
193static SV * 331static SV *
194process_integer32_sv (void) 332decode_data (void)
195{ 333{
196 return newSViv ((I32)process_integer32 ()); 334 UV len = get_length ();
335 return newSVpvn ((char *)get_n (len), len);
197} 336}
198 337
199static SV * 338// helper for decode_object_identifier
200process_unsigned32_sv (void)
201{
202 return newSVuv ((U32)process_integer32 ());
203}
204
205#if IVSIZE >= 8
206
207static U64TYPE
208process_integer64 (void)
209{
210 U32 length = process_length ();
211
212 if (length <= 0)
213 {
214 error ("INTEGER64 length equal to zero");
215 return 0;
216 }
217
218 U8 *data = getn (length, 0);
219
220 if (!data)
221 return 0;
222
223 if (length > 9 || (length > 8 && data [0]))
224 {
225 error ("INTEGER64 length too long");
226 return 0;
227 }
228
229 U64TYPE res = data [0] & 0x80 ? 0xffffffffffffffff : 0;
230
231 while (length--)
232 res = (res << 8) | *data++;
233
234 return res;
235}
236
237static SV *
238process_integer64_sv (void)
239{
240 return newSViv ((I64TYPE)process_integer64 ());
241}
242
243static SV *
244process_unsigned64_sv (void)
245{
246 return newSVuv ((U64TYPE)process_integer64 ());
247}
248
249#endif
250
251static SV *
252process_octet_string_sv (void)
253{
254 U32 length = process_length ();
255
256 U8 *data = getn (length, 0);
257 if (!data)
258 {
259 error ("OCTET STRING too long");
260 return &PL_sv_undef;
261 }
262
263 return newSVpvn (data, length);
264}
265
266static char * 339static char *
267write_uv (char *buf, U32 u) 340write_uv (char *buf, UV u)
268{ 341{
269 // the one-digit case is absolutely predominant, so this pays off (hopefully) 342 // the one-digit case is absolutely predominant, so this pays off (hopefully)
270 if (u < 10) 343 if (expect_true (u < 10))
271 *buf++ = u + '0'; 344 *buf++ = u + '0';
272 else 345 else
273 { 346 {
347 // this *could* be done much faster using branchless fixed-point arithmetics
274 char *beg = buf; 348 char *beg = buf;
275 349
276 do 350 do
277 { 351 {
278 *buf++ = u % 10 + '0'; 352 *buf++ = u % 10 + '0';
279 u /= 10; 353 u /= 10;
280 } 354 }
281 while (u); 355 while (u);
282 356
283 // reverse digits 357 // reverse digits
284 for (char *ptr = buf; --ptr != beg; ++beg) 358 char *ptr = buf;
359 while (--ptr > beg)
285 { 360 {
286 char c = *ptr; 361 char c = *ptr;
287 *ptr = *beg; 362 *ptr = *beg;
288 *beg = c; 363 *beg = c;
364 ++beg;
289 } 365 }
290 } 366 }
291 367
292 return buf; 368 return buf;
293} 369}
294 370
295static SV * 371static SV *
296process_object_identifier_sv (void) 372decode_oid (int relative)
297{ 373{
298 U32 length = process_length (); 374 UV len = get_length ();
299 375
300 if (length <= 0) 376 if (len <= 0)
301 { 377 {
302 error ("OBJECT IDENTIFIER length equal to zero"); 378 error ("OBJECT IDENTIFIER length equal to zero");
303 return &PL_sv_undef; 379 return &PL_sv_undef;
304 } 380 }
305 381
306 U8 *end = cur + length; 382 U8 *end = cur + len;
307 U32 w = getb (); 383 UV w = get_w ();
308 384
309 static char oid[MAX_OID_STRLEN]; // must be static 385 static char oid[MAX_OID_STRLEN]; // static, becaueds too large for stack
310 char *app = oid; 386 char *app = oid;
311 387
388 if (relative)
389 app = write_uv (app, w);
390 else if (w < 2 * 40)
391 {
312 app = write_uv (app, (U8)w / 40); 392 app = write_uv (app, (U8)w / 40);
313 *app++ = '.'; 393 *app++ = '.';
314 app = write_uv (app, (U8)w % 40); 394 app = write_uv (app, (U8)w % 40);
395 }
396 else
397 {
398 app = write_uv (app, 2);
399 *app++ = '.';
400 app = write_uv (app, w - 2 * 40);
401 }
315 402
403 while (cur < end)
404 {
316 // we assume an oid component is never > 64 bytes 405 // we assume an oid component is never > 64 digits
317 while (cur < end && oid + sizeof (oid) - app > 64) 406 if (oid + sizeof (oid) - app < 64)
318 { 407 croak ("BER_TYPE_OID to long to decode");
408
319 w = getb (); 409 w = get_w ();
320 *app++ = '.'; 410 *app++ = '.';
321 app = write_uv (app, w); 411 app = write_uv (app, w);
322 } 412 }
323 413
324 return newSVpvn (oid, app - oid); 414 return newSVpvn (oid, app - oid);
325} 415}
326 416
417// TODO: this is unacceptably slow
327static SV * 418static SV *
328ber_decode () 419decode_ucs (int chrsize)
329{ 420{
421 SV *res = NEWSV (0, 0);
422
423 UV len = get_length ();
424
425 if (len & (chrsize - 1))
426 croak ("BER_TYPE_UCS has an invalid number of octets (%d)", len);
427
428 while (len)
429 {
430 U8 b1 = get_u8 ();
431 U8 b2 = get_u8 ();
432 U32 chr = (b1 << 8) | b2;
433
434 if (chrsize == 4)
435 {
436 U8 b3 = get_u8 ();
437 U8 b4 = get_u8 ();
438 chr = (chr << 16) | (b3 << 8) | b4;
439 }
440
441 U8 uchr [UTF8_MAXBYTES];
442 int uclen = uvuni_to_utf8 (uchr, chr) - uchr;
443
444 sv_catpvn (res, (const char *)uchr, uclen);
445 len -= chrsize;
446 }
447
448 SvUTF8_on (res);
449
450 return res;
451}
452
453static SV *
454decode_ber (void)
455{
330 int identifier = get8 (); 456 int identifier = get_u8 ();
331 457
332 SV *res; 458 SV *res;
333 459
334 int constructed = identifier & ASN_CONSTRUCTED; 460 int constructed = identifier & ASN_CONSTRUCTED;
335 int klass = identifier & ASN_CLASS_MASK; 461 int klass = (identifier & ASN_CLASS_MASK) >> ASN_CLASS_SHIFT;
336 int tag = identifier & ASN_TAG_MASK; 462 int tag = identifier & ASN_TAG_MASK;
337 463
338 if (tag == ASN_TAG_BER) 464 if (tag == ASN_TAG_BER)
339 tag = getb (); 465 tag = get_w ();
340 466
341 if (tag == ASN_TAG_BER) 467 if (tag == ASN_TAG_BER)
342 tag = getb (); 468 tag = get_w ();
343 469
344 if (constructed) 470 if (constructed)
345 { 471 {
346 U32 len = process_length (); 472 UV len = get_length ();
347 U32 seqend = (cur - buf) + len; 473 UV seqend = (cur - buf) + len;
348 AV *av = (AV *)sv_2mortal ((SV *)newAV ()); 474 AV *av = (AV *)sv_2mortal ((SV *)newAV ());
349 475
350 while (cur < buf + seqend) 476 while (cur < buf + seqend)
351 av_push (av, ber_decode ()); 477 av_push (av, decode_ber ());
352 478
353 if (cur > buf + seqend) 479 if (cur > buf + seqend)
354 croak ("constructed type %02x overflow (%x %x)\n", identifier, cur - buf, seqend); 480 croak ("constructed type %02x overflow (%x %x)\n", identifier, cur - buf, seqend);
355 481
356 res = newRV_inc ((SV *)av); 482 res = newRV_inc ((SV *)av);
357 } 483 }
358 else 484 else
359 switch (identifier) 485 switch (profile_lookup (cur_profile, klass, tag))
360 { 486 {
361 case ASN_NULL: 487 case BER_TYPE_NULL:
488 {
489 UV len = get_length ();
490
491 if (len)
492 croak ("BER_TYPE_NULL value with non-zero length %d encountered", len);
493
362 res = &PL_sv_undef; 494 res = &PL_sv_undef;
495 }
363 break; 496 break;
364 497
365 case ASN_OBJECT_IDENTIFIER: 498 case BER_TYPE_BOOL:
366 res = process_object_identifier_sv (); 499 {
367 break; 500 UV len = get_length ();
368 501
369 case ASN_INTEGER32: 502 if (len != 1)
370 res = process_integer32_sv (); 503 croak ("BER_TYPE_BOOLEAN value with invalid length %d encountered", len);
371 break;
372 504
373 case ASN_APPLICATION | ASN_UNSIGNED32: 505 res = newSVcacheint (!!get_u8 ());
374 case ASN_APPLICATION | ASN_COUNTER32: 506 }
375 case ASN_APPLICATION | ASN_TIMETICKS:
376 res = process_unsigned32_sv ();
377 break; 507 break;
378 508
379#if 0 // handled by default case 509 case BER_TYPE_OID:
380 case ASN_OCTET_STRING: 510 res = decode_oid (0);
381 case ASN_APPLICATION | ASN_IPADDRESS:
382 case ASN_APPLICATION | ASN_OPAQUE:
383 res = process_octet_string_sv ();
384 break; 511 break;
385#endif
386 512
387 case ASN_APPLICATION | ASN_COUNTER64: 513 case BER_TYPE_RELOID:
388 res = process_integer64_sv (); 514 res = decode_oid (1);
389 break; 515 break;
390 516
517 case BER_TYPE_INT:
518 res = decode_int ();
519 break;
520
521 case BER_TYPE_UTF8:
522 res = decode_data ();
523 SvUTF8_on (res);
524 break;
525
526 case BER_TYPE_BYTES:
527 res = decode_data ();
528 break;
529
530 case BER_TYPE_IPADDRESS:
531 {
532 UV len = get_length ();
533
534 if (len != 4)
535 croak ("BER_TYPE_IPADDRESS type with invalid length %d encountered", len);
536
537 U8 c1 = get_u8 ();
538 U8 c2 = get_u8 ();
539 U8 c3 = get_u8 ();
540 U8 c4 = get_u8 ();
541
542 res = newSVpvf ("%d.%d.%d.%d", c1, c2, c3, c4);
543 }
544 break;
545
546 case BER_TYPE_UCS2:
547 res = decode_ucs (2);
548 break;
549
550 case BER_TYPE_UCS4:
551 res = decode_ucs (4);
552 break;
553
554 case BER_TYPE_REAL:
555 case BER_TYPE_CROAK:
391 default: 556 default:
392 res = process_octet_string_sv (); 557 croak ("unconfigured/unsupported class/tag %d/%d", klass, tag);
393 break;
394 } 558 }
395 559
396 AV *av = newAV (); 560 AV *av = newAV ();
397 av_fill (av, BER_ARRAYSIZE - 1); 561 av_fill (av, BER_ARRAYSIZE - 1);
398 AvARRAY (av)[BER_CLASS ] = newSVcacheint (klass >> ASN_CLASS_SHIFT); 562 AvARRAY (av)[BER_CLASS] = newSVcacheint (klass);
399 AvARRAY (av)[BER_TAG ] = newSVcacheint (tag); 563 AvARRAY (av)[BER_TAG ] = newSVcacheint (tag);
400 AvARRAY (av)[BER_CONSTRUCTED] = newSVcacheint (constructed ? 1 : 0); 564 AvARRAY (av)[BER_FLAGS] = newSVcacheint (constructed ? 1 : 0);
401 AvARRAY (av)[BER_DATA ] = res; 565 AvARRAY (av)[BER_DATA ] = res;
402 566
403 return newRV_noinc ((SV *)av); 567 return newRV_noinc ((SV *)av);
404} 568}
405 569
570/////////////////////////////////////////////////////////////////////////////
571// encoder
572
573/* adds two STRLENs together, slow, and with paranoia */
574static STRLEN
575strlen_sum (STRLEN l1, STRLEN l2)
576{
577 size_t sum = l1 + l2;
578
579 if (sum < (size_t)l2 || sum != (size_t)(STRLEN)sum)
580 croak ("JSON::XS: string size overflow");
581
582 return sum;
583}
584
585static void
586set_buf (SV *sv)
587{
588 STRLEN len;
589 buf_sv = sv;
590 buf = (U8 *)SvPVbyte (buf_sv, len);
591 cur = buf;
592 end = buf + len;
593}
594
595/* similar to SvGROW, but somewhat safer and guarantees exponential realloc strategy */
596static char *
597my_sv_grow (SV *sv, size_t len1, size_t len2)
598{
599 len1 = strlen_sum (len1, len2);
600 len1 = strlen_sum (len1, len1 >> 1);
601
602 if (len1 > 4096 - 24)
603 len1 = (len1 | 4095) - 24;
604
605 return SvGROW (sv, len1);
606}
607
608static void
609need (STRLEN len)
610{
611 if (expect_false ((uintptr_t)(end - cur) < len))
612 {
613 STRLEN pos = cur - buf;
614 buf = (U8 *)my_sv_grow (buf_sv, pos, len);
615 cur = buf + pos;
616 end = buf + SvLEN (buf_sv) - 1;
617 }
618}
619
620static void
621put_u8 (int val)
622{
623 need (1);
624 *cur++ = val;
625}
626
627static void
628put_w_nocheck (UV val)
629{
630#if UVSIZE > 4
631 *cur = (val >> 7 * 9) | 0x80; cur += val >= ((UV)1 << (7 * 9));
632 *cur = (val >> 7 * 8) | 0x80; cur += val >= ((UV)1 << (7 * 8));
633 *cur = (val >> 7 * 7) | 0x80; cur += val >= ((UV)1 << (7 * 7));
634 *cur = (val >> 7 * 6) | 0x80; cur += val >= ((UV)1 << (7 * 6));
635 *cur = (val >> 7 * 5) | 0x80; cur += val >= ((UV)1 << (7 * 5));
636#endif
637 *cur = (val >> 7 * 4) | 0x80; cur += val >= ((UV)1 << (7 * 4));
638 *cur = (val >> 7 * 3) | 0x80; cur += val >= ((UV)1 << (7 * 3));
639 *cur = (val >> 7 * 2) | 0x80; cur += val >= ((UV)1 << (7 * 2));
640 *cur = (val >> 7 * 1) | 0x80; cur += val >= ((UV)1 << (7 * 1));
641 *cur = val & 0x7f; cur += 1;
642}
643
644static void
645put_w (UV val)
646{
647 need (5); // we only handle up to 5 bytes
648
649 put_w_nocheck (val);
650}
651
652static U8 *
653put_length_at (UV val, U8 *cur)
654{
655 if (val < 0x7fU)
656 *cur++ = val;
657 else
658 {
659 U8 *lenb = cur++;
660
661#if UVSIZE > 4
662 *cur = val >> 56; cur += *cur > 0;
663 *cur = val >> 48; cur += *cur > 0;
664 *cur = val >> 40; cur += *cur > 0;
665 *cur = val >> 32; cur += *cur > 0;
666#endif
667 *cur = val >> 24; cur += *cur > 0;
668 *cur = val >> 16; cur += *cur > 0;
669 *cur = val >> 8; cur += *cur > 0;
670 *cur = val ; cur += 1;
671
672 *lenb = 0x80 + cur - lenb - 1;
673 }
674
675 return cur;
676}
677
678static void
679put_length (UV val)
680{
681 need (5 + val);
682 cur = put_length_at (val, cur);
683}
684
685// return how many bytes the encoded length requires
686static int length_length (UV val)
687{
688 return val < 0x7fU
689 ? 1
690 : 2
691 + (val > 0xffU)
692 + (val > 0xffffU)
693 + (val > 0xffffffU)
694#if UVSIZE > 4
695 + (val > 0xffffffffU)
696 + (val > 0xffffffffffU)
697 + (val > 0xffffffffffffU)
698 + (val > 0xffffffffffffffU)
699#endif
700 ;
701}
702
703static void
704encode_data (const char *ptr, STRLEN len)
705{
706 put_length (len);
707 memcpy (cur, ptr, len);
708 cur += len;
709}
710
711static void
712encode_uv (UV uv)
713{
714}
715
716static void
717encode_int (SV *sv)
718{
719 need (8 + 1 + 1); // 64 bit + length + extra 0
720
721 if (expect_false (!SvIOK (sv)))
722 sv_2iv_flags (sv, 0);
723
724 U8 *lenb = cur++;
725
726 if (SvIOK_notUV (sv))
727 {
728 IV iv = SvIVX (sv);
729
730 if (expect_false (iv < 0))
731 {
732 // get two's complement bit pattern - works even on hypothetical non-2c machines
733 UV uv = iv;
734
735#if UVSIZE > 4
736 *cur = uv >> 56; cur += !!(~uv & 0xff80000000000000U);
737 *cur = uv >> 48; cur += !!(~uv & 0xffff800000000000U);
738 *cur = uv >> 40; cur += !!(~uv & 0xffffff8000000000U);
739 *cur = uv >> 32; cur += !!(~uv & 0xffffffff80000000U);
740#endif
741 *cur = uv >> 24; cur += !!(~uv & 0xffffffffff800000U);
742 *cur = uv >> 16; cur += !!(~uv & 0xffffffffffff8000U);
743 *cur = uv >> 8; cur += !!(~uv & 0xffffffffffffff80U);
744 *cur = uv ; cur += 1;
745
746 *lenb = cur - lenb - 1;
747
748 return;
749 }
750 }
751
752 UV uv = SvUV (sv);
753
754 // prepend an extra 0 if the high bit is 1
755 *cur = 0; cur += !!(uv & ((UV)1 << (UVSIZE * 8 - 1)));
756
757#if UVSIZE > 4
758 *cur = uv >> 56; cur += !!(uv & 0xff80000000000000U);
759 *cur = uv >> 48; cur += !!(uv & 0xffff800000000000U);
760 *cur = uv >> 40; cur += !!(uv & 0xffffff8000000000U);
761 *cur = uv >> 32; cur += !!(uv & 0xffffffff80000000U);
762#endif
763 *cur = uv >> 24; cur += !!(uv & 0xffffffffff800000U);
764 *cur = uv >> 16; cur += !!(uv & 0xffffffffffff8000U);
765 *cur = uv >> 8; cur += !!(uv & 0xffffffffffffff80U);
766 *cur = uv ; cur += 1;
767
768 *lenb = cur - lenb - 1;
769}
770
771// we don't know the length yet, so we optimistically
772// assume the length will need one octet later. If that
773// turns out to be wrong, we memmove as needed.
774// mark the beginning
775static STRLEN
776len_fixup_mark (void)
777{
778 return cur++ - buf;
779}
780
781// patch up the length
782static void
783len_fixup (STRLEN mark)
784{
785 STRLEN reallen = (cur - buf) - mark - 1;
786 int lenlen = length_length (reallen);
787
788 if (expect_false (lenlen > 1))
789 {
790 // bad luck, we have to shift the bytes to make room for the length
791 need (5);
792 memmove (buf + mark + lenlen, buf + mark + 1, reallen);
793 cur += lenlen - 1;
794 }
795
796 put_length_at (reallen, buf + mark);
797}
798
799static char *
800read_uv (char *str, UV *uv)
801{
802 UV r = 0;
803
804 while (*str >= '0')
805 r = r * 10 + *str++ - '0';
806
807 *uv = r;
808
809 str += !!*str; // advance over any non-zero byte
810
811 return str;
812}
813
814static void
815encode_oid (SV *oid, int relative)
816{
817 STRLEN len;
818 char *ptr = SvPV (oid, len); // utf8 vs. bytes does not matter
819
820 // we need at most as many octets as the string form
821 need (len + 1);
822 STRLEN mark = len_fixup_mark ();
823
824 UV w1, w2;
825
826 if (!relative)
827 {
828 ptr = read_uv (ptr, &w1);
829 ptr = read_uv (ptr, &w2);
830
831 put_w_nocheck (w1 * 40 + w2);
832 }
833
834 while (*ptr)
835 {
836 ptr = read_uv (ptr, &w1);
837 put_w_nocheck (w1);
838 }
839
840 len_fixup (mark);
841}
842
843// check whether an SV is a BER tuple and returns its AV *
844static AV *
845ber_tuple (SV *tuple)
846{
847 SV *rv;
848
849 if (expect_false (!SvROK (tuple) || SvTYPE ((rv = SvRV (tuple))) != SVt_PVAV))
850 croak ("BER tuple must be array-reference");
851
852 if (expect_false (SvRMAGICAL (rv)))
853 croak ("BER tuple must not be tied");
854
855 if (expect_false (AvFILL ((AV *)rv) != BER_ARRAYSIZE - 1))
856 croak ("BER tuple must contain exactly %d elements, not %d", BER_ARRAYSIZE, AvFILL ((AV *)rv) + 1);
857
858 return (AV *)rv;
859}
860
861static void
862encode_ucs (SV *data, int chrsize)
863{
864 STRLEN uchars = sv_len_utf8 (data);
865 STRLEN len;;
866 char *ptr = SvPVutf8 (data, len);
867
868 put_length (uchars * chrsize);
869
870 while (uchars--)
871 {
872 STRLEN uclen;
873 UV uchr = utf8_to_uvchr_buf ((U8 *)ptr, (U8 *)ptr + len, &uclen);
874
875 ptr += uclen;
876 len -= uclen;
877
878 if (chrsize == 4)
879 {
880 *cur++ = uchr >> 24;
881 *cur++ = uchr >> 16;
882 }
883
884 *cur++ = uchr >> 8;
885 *cur++ = uchr;
886 }
887}
888static void
889encode_ber (SV *tuple)
890{
891 AV *av = ber_tuple (tuple);
892
893 int klass = SvIV (AvARRAY (av)[BER_CLASS]);
894 int tag = SvIV (AvARRAY (av)[BER_TAG]);
895 int constructed = SvIV (AvARRAY (av)[BER_FLAGS]) & 1 ? ASN_CONSTRUCTED : 0;
896 SV *data = AvARRAY (av)[BER_DATA];
897
898 int identifier = (klass << ASN_CLASS_SHIFT) | constructed;
899
900 if (expect_false (tag >= ASN_TAG_BER))
901 {
902 put_u8 (identifier | ASN_TAG_BER);
903 put_w (tag);
904 }
905 else
906 put_u8 (identifier | tag);
907
908 if (constructed)
909 {
910 // we optimistically assume that only one length byte is needed
911 // and adjust later
912 need (1);
913 STRLEN mark = len_fixup_mark ();
914
915 if (expect_false (!SvROK (data) || SvTYPE (SvRV (data)) != SVt_PVAV))
916 croak ("BER constructed data must be array-reference");
917
918 AV *av = (AV *)SvRV (data);
919 int fill = AvFILL (av);
920
921 if (expect_false (SvRMAGICAL (av)))
922 croak ("BER constructed data must not be tied");
923
924 int i;
925 for (i = 0; i <= fill; ++i)
926 encode_ber (AvARRAY (av)[i]);
927
928 len_fixup (mark);
929 }
930 else
931 switch (profile_lookup (cur_profile, klass, tag))
932 {
933 case BER_TYPE_NULL:
934 put_length (0);
935 break;
936
937 case BER_TYPE_BOOL:
938 put_length (1);
939 *cur++ = SvTRUE (data) ? 0xff : 0x00; // 0xff = DER/CER
940 break;
941
942 case BER_TYPE_OID:
943 encode_oid (data, 0);
944 break;
945
946 case BER_TYPE_RELOID:
947 encode_oid (data, 1);
948 break;
949
950 case BER_TYPE_INT:
951 encode_int (data);
952 break;
953
954 case BER_TYPE_BYTES:
955 {
956 STRLEN len;
957 const char *ptr = SvPVbyte (data, len);
958 encode_data (ptr, len);
959 }
960 break;
961
962 case BER_TYPE_UTF8:
963 {
964 STRLEN len;
965 const char *ptr = SvPVutf8 (data, len);
966 encode_data (ptr, len);
967 }
968 break;
969
970 case BER_TYPE_IPADDRESS:
971 {
972 U8 ip[4];
973 sscanf (SvPV_nolen (data), "%hhu.%hhu.%hhu.%hhu", ip + 0, ip + 1, ip + 2, ip + 3);
974 encode_data ((const char *)ip, sizeof (ip));
975 }
976 break;
977
978 case BER_TYPE_UCS2:
979 encode_ucs (data, 2);
980 break;
981
982 case BER_TYPE_UCS4:
983 encode_ucs (data, 4);
984 break;
985
986 case BER_TYPE_REAL:
987 case BER_TYPE_CROAK:
988 default:
989 croak ("unconfigured/unsupported class/tag %d/%d", klass, tag);
990 }
991
992}
993
994/////////////////////////////////////////////////////////////////////////////
995
406MODULE = Convert::BER::XS PACKAGE = Convert::BER::XS 996MODULE = Convert::BER::XS PACKAGE = Convert::BER::XS
407 997
408PROTOTYPES: ENABLE 998PROTOTYPES: ENABLE
409 999
410BOOT: 1000BOOT:
411{ 1001{
412 HV *stash = gv_stashpv ("Convert::BER::XS", 1); 1002 HV *stash = gv_stashpv ("Convert::BER::XS", 1);
1003
1004 profile_stash = gv_stashpv ("Convert::BER::XS::Profile", 1);
413 1005
414 static const struct { 1006 static const struct {
415 const char *name; 1007 const char *name;
416 IV iv; 1008 IV iv;
417 } *civ, const_iv[] = { 1009 } *civ, const_iv[] = {
418 { "ASN_BOOLEAN", ASN_BOOLEAN }, 1010#define const_iv(name) { # name, name },
419 { "ASN_INTEGER32", ASN_INTEGER32 }, 1011 const_iv (ASN_BOOLEAN)
420 { "ASN_BIT_STRING", ASN_BIT_STRING }, 1012 const_iv (ASN_INTEGER)
421 { "ASN_OCTET_STRING", ASN_OCTET_STRING }, 1013 const_iv (ASN_BIT_STRING)
422 { "ASN_NULL", ASN_NULL }, 1014 const_iv (ASN_OCTET_STRING)
423 { "ASN_OBJECT_IDENTIFIER", ASN_OBJECT_IDENTIFIER }, 1015 const_iv (ASN_NULL)
424 { "ASN_TAG_BER", ASN_TAG_BER }, 1016 const_iv (ASN_OBJECT_IDENTIFIER)
425 { "ASN_TAG_MASK", ASN_TAG_MASK }, 1017 const_iv (ASN_OBJECT_DESCRIPTOR)
426 { "ASN_CONSTRUCTED", ASN_CONSTRUCTED }, 1018 const_iv (ASN_OID)
427 { "ASN_UNIVERSAL", ASN_UNIVERSAL >> ASN_CLASS_SHIFT }, 1019 const_iv (ASN_EXTERNAL)
428 { "ASN_APPLICATION", ASN_APPLICATION >> ASN_CLASS_SHIFT }, 1020 const_iv (ASN_REAL)
429 { "ASN_CONTEXT", ASN_CONTEXT >> ASN_CLASS_SHIFT }, 1021 const_iv (ASN_SEQUENCE)
430 { "ASN_PRIVATE", ASN_PRIVATE >> ASN_CLASS_SHIFT }, 1022 const_iv (ASN_ENUMERATED)
431 { "ASN_CLASS_MASK", ASN_CLASS_MASK }, 1023 const_iv (ASN_EMBEDDED_PDV)
432 { "ASN_CLASS_SHIFT", ASN_CLASS_SHIFT }, 1024 const_iv (ASN_UTF8_STRING)
433 { "ASN_SEQUENCE", ASN_SEQUENCE }, 1025 const_iv (ASN_RELATIVE_OID)
434 { "ASN_IPADDRESS", ASN_IPADDRESS }, 1026 const_iv (ASN_SET)
435 { "ASN_COUNTER32", ASN_COUNTER32 }, 1027 const_iv (ASN_NUMERIC_STRING)
436 { "ASN_UNSIGNED32", ASN_UNSIGNED32 }, 1028 const_iv (ASN_PRINTABLE_STRING)
437 { "ASN_TIMETICKS", ASN_TIMETICKS }, 1029 const_iv (ASN_TELETEX_STRING)
438 { "ASN_OPAQUE", ASN_OPAQUE }, 1030 const_iv (ASN_T61_STRING)
439 { "ASN_COUNTER64", ASN_COUNTER64 }, 1031 const_iv (ASN_VIDEOTEX_STRING)
1032 const_iv (ASN_IA5_STRING)
1033 const_iv (ASN_ASCII_STRING)
1034 const_iv (ASN_UTC_TIME)
1035 const_iv (ASN_GENERALIZED_TIME)
1036 const_iv (ASN_GRAPHIC_STRING)
1037 const_iv (ASN_VISIBLE_STRING)
1038 const_iv (ASN_ISO646_STRING)
1039 const_iv (ASN_GENERAL_STRING)
1040 const_iv (ASN_UNIVERSAL_STRING)
1041 const_iv (ASN_CHARACTER_STRING)
1042 const_iv (ASN_BMP_STRING)
440 1043
441 { "BER_CLASS" , BER_CLASS }, 1044 const_iv (ASN_UNIVERSAL)
442 { "BER_TAG" , BER_TAG }, 1045 const_iv (ASN_APPLICATION)
443 { "BER_CONSTRUCTED", BER_CONSTRUCTED }, 1046 const_iv (ASN_CONTEXT)
444 { "BER_DATA" , BER_DATA }, 1047 const_iv (ASN_PRIVATE)
1048
1049 const_iv (BER_CLASS)
1050 const_iv (BER_TAG)
1051 const_iv (BER_FLAGS)
1052 const_iv (BER_DATA)
1053
1054 const_iv (BER_TYPE_BYTES)
1055 const_iv (BER_TYPE_UTF8)
1056 const_iv (BER_TYPE_UCS2)
1057 const_iv (BER_TYPE_UCS4)
1058 const_iv (BER_TYPE_INT)
1059 const_iv (BER_TYPE_OID)
1060 const_iv (BER_TYPE_RELOID)
1061 const_iv (BER_TYPE_NULL)
1062 const_iv (BER_TYPE_BOOL)
1063 const_iv (BER_TYPE_REAL)
1064 const_iv (BER_TYPE_IPADDRESS)
1065 const_iv (BER_TYPE_CROAK)
1066
1067 const_iv (SNMP_IPADDRESS)
1068 const_iv (SNMP_COUNTER32)
1069 const_iv (SNMP_UNSIGNED32)
1070 const_iv (SNMP_TIMETICKS)
1071 const_iv (SNMP_OPAQUE)
1072 const_iv (SNMP_COUNTER64)
445 }; 1073 };
446 1074
447 for (civ = const_iv + sizeof (const_iv) / sizeof (const_iv [0]); civ > const_iv; civ--) 1075 for (civ = const_iv + sizeof (const_iv) / sizeof (const_iv [0]); civ > const_iv; civ--)
448 newCONSTSUB (stash, (char *)civ[-1].name, newSViv (civ[-1].iv)); 1076 newCONSTSUB (stash, (char *)civ[-1].name, newSViv (civ[-1].iv));
449} 1077}
450 1078
451SV * 1079SV *
452ber_decode (SV *ber) 1080ber_decode (SV *ber, SV *profile = &PL_sv_undef)
453 CODE: 1081 CODE:
454{ 1082{
1083 cur_profile = SvPROFILE (profile);
1084 STRLEN len;
455 buf = SvPVbyte (ber, len); 1085 buf = (U8 *)SvPVbyte (ber, len);
456 cur = buf; 1086 cur = buf;
457 rem = len; 1087 end = buf + len;
458 1088
459 RETVAL = ber_decode (); 1089 RETVAL = decode_ber ();
460} 1090}
461 OUTPUT: RETVAL 1091 OUTPUT: RETVAL
462 1092
463void 1093void
464ber_is (SV *tuple, SV *klass = &PL_sv_undef, SV *tag = &PL_sv_undef, SV *constructed = &PL_sv_undef, SV *data = &PL_sv_undef) 1094ber_is (SV *tuple, SV *klass = &PL_sv_undef, SV *tag = &PL_sv_undef, SV *flags = &PL_sv_undef, SV *data = &PL_sv_undef)
465 PROTOTYPE: $;$$$
466 PPCODE: 1095 PPCODE:
467{ 1096{
468 if (!SvOK (tuple)) 1097 if (!SvOK (tuple))
469 XSRETURN_NO; 1098 XSRETURN_NO;
470 1099
471 if (!SvROK (tuple) || SvTYPE (SvRV (tuple)) != SVt_PVAV) 1100 if (!SvROK (tuple) || SvTYPE (SvRV (tuple)) != SVt_PVAV)
472 croak ("ber_seq: tuple must be ber tuple (array-ref)"); 1101 croak ("ber_is: tuple must be BER tuple (array-ref)");
473 1102
474 AV *av = (AV *)SvRV (tuple); 1103 AV *av = (AV *)SvRV (tuple);
475 1104
476 XPUSHs ( 1105 XPUSHs (
477 (!SvOK (klass) || SvIV (AvARRAY (av)[BER_CLASS ]) == SvIV (klass)) 1106 (!SvOK (klass) || SvIV (AvARRAY (av)[BER_CLASS]) == SvIV (klass))
478 && (!SvOK (tag) || SvIV (AvARRAY (av)[BER_TAG ]) == SvIV (tag)) 1107 && (!SvOK (tag) || SvIV (AvARRAY (av)[BER_TAG ]) == SvIV (tag))
479 && (!SvOK (constructed) || !SvIV (AvARRAY (av)[BER_CONSTRUCTED]) == !SvIV (constructed)) 1108 && (!SvOK (flags) || !SvIV (AvARRAY (av)[BER_FLAGS]) == !SvIV (flags))
480 && (!SvOK (data) || sv_eq (AvARRAY (av)[BER_DATA ], data)) 1109 && (!SvOK (data) || sv_eq (AvARRAY (av)[BER_DATA ], data))
481 ? &PL_sv_yes : &PL_sv_no); 1110 ? &PL_sv_yes : &PL_sv_undef);
482} 1111}
483 1112
484void 1113void
485ber_is_seq (SV *tuple) 1114ber_is_seq (SV *tuple)
486 PROTOTYPE: $
487 PPCODE: 1115 PPCODE:
488{ 1116{
489 if (!SvOK (tuple)) 1117 if (!SvOK (tuple))
490 XSRETURN_UNDEF; 1118 XSRETURN_UNDEF;
491 1119
492 if (!SvROK (tuple) || SvTYPE (SvRV (tuple)) != SVt_PVAV) 1120 AV *av = ber_tuple (tuple);
493 croak ("ber_seq: tuple must be ber tuple (array-ref)");
494
495 AV *av = (AV *)SvRV (tuple);
496 1121
497 XPUSHs ( 1122 XPUSHs (
498 SvIV (AvARRAY (av)[BER_CLASS ]) == ASN_UNIVERSAL 1123 SvIV (AvARRAY (av)[BER_CLASS]) == ASN_UNIVERSAL
499 && SvIV (AvARRAY (av)[BER_TAG ]) == ASN_SEQUENCE 1124 && SvIV (AvARRAY (av)[BER_TAG ]) == ASN_SEQUENCE
500 && SvIV (AvARRAY (av)[BER_CONSTRUCTED]) 1125 && SvIV (AvARRAY (av)[BER_FLAGS])
501 ? AvARRAY (av)[BER_DATA] : &PL_sv_undef); 1126 ? AvARRAY (av)[BER_DATA] : &PL_sv_undef);
502} 1127}
503 1128
504void 1129void
505ber_is_i32 (SV *tuple, IV value) 1130ber_is_int (SV *tuple, SV *value = &PL_sv_undef)
506 PROTOTYPE: $$
507 PPCODE: 1131 PPCODE:
508{ 1132{
509 if (!SvOK (tuple)) 1133 if (!SvOK (tuple))
510 XSRETURN_NO; 1134 XSRETURN_NO;
511 1135
512 if (!SvROK (tuple) || SvTYPE (SvRV (tuple)) != SVt_PVAV) 1136 AV *av = ber_tuple (tuple);
513 croak ("ber_seq: tuple must be ber tuple (array-ref)");
514 1137
515 AV *av = (AV *)SvRV (tuple); 1138 UV data = SvUV (AvARRAY (av)[BER_DATA]);
516 1139
517 XPUSHs ( 1140 XPUSHs (
518 SvIV (AvARRAY (av)[BER_CLASS ]) == ASN_UNIVERSAL 1141 SvIV (AvARRAY (av)[BER_CLASS]) == ASN_UNIVERSAL
519 && SvIV (AvARRAY (av)[BER_TAG ]) == ASN_INTEGER32 1142 && SvIV (AvARRAY (av)[BER_TAG ]) == ASN_INTEGER
520 && !SvIV (AvARRAY (av)[BER_CONSTRUCTED]) 1143 && !SvIV (AvARRAY (av)[BER_FLAGS])
521 && SvIV (AvARRAY (av)[BER_DATA ]) == value 1144 && (!SvOK (value) || data == SvUV (value))
522 ? &PL_sv_yes : &PL_sv_no); 1145 ? sv_2mortal (data ? newSVsv (AvARRAY (av)[BER_DATA]) : newSVpv ("0 but true", 0))
1146 : &PL_sv_undef);
523} 1147}
524 1148
525void 1149void
526ber_is_oid (SV *tuple, SV *oid) 1150ber_is_oid (SV *tuple, SV *oid = &PL_sv_undef)
527 PROTOTYPE: $$
528 PPCODE: 1151 PPCODE:
529{ 1152{
530 if (!SvOK (tuple)) 1153 if (!SvOK (tuple))
531 XSRETURN_NO; 1154 XSRETURN_NO;
532 1155
533 if (!SvROK (tuple) || SvTYPE (SvRV (tuple)) != SVt_PVAV) 1156 AV *av = ber_tuple (tuple);
534 croak ("ber_seq: tuple must be ber tuple (array-ref)");
535
536 AV *av = (AV *)SvRV (tuple);
537 1157
538 XPUSHs ( 1158 XPUSHs (
539 SvIV (AvARRAY (av)[BER_CLASS ]) == ASN_UNIVERSAL 1159 SvIV (AvARRAY (av)[BER_CLASS]) == ASN_UNIVERSAL
540 && SvIV (AvARRAY (av)[BER_TAG ]) == ASN_OBJECT_IDENTIFIER 1160 && SvIV (AvARRAY (av)[BER_TAG ]) == ASN_OBJECT_IDENTIFIER
541 && !SvIV (AvARRAY (av)[BER_CONSTRUCTED]) 1161 && !SvIV (AvARRAY (av)[BER_FLAGS])
542 && sv_eq (AvARRAY (av)[BER_DATA], oid) 1162 && (!SvOK (oid) || sv_eq (AvARRAY (av)[BER_DATA], oid))
543 ? &PL_sv_yes : &PL_sv_no); 1163 ? newSVsv (AvARRAY (av)[BER_DATA]) : &PL_sv_undef);
544} 1164}
545 1165
1166#############################################################################
1167
1168void
1169ber_encode (SV *tuple, SV *profile = &PL_sv_undef)
1170 PPCODE:
1171{
1172 cur_profile = SvPROFILE (profile);
1173 buf_sv = sv_2mortal (NEWSV (0, 256));
1174 SvPOK_only (buf_sv);
1175 set_buf (buf_sv);
1176
1177 encode_ber (tuple);
1178
1179 SvCUR_set (buf_sv, cur - buf);
1180 XPUSHs (buf_sv);
1181}
1182
1183SV *
1184ber_int (SV *sv)
1185 CODE:
1186{
1187 AV *av = newAV ();
1188 av_fill (av, BER_ARRAYSIZE - 1);
1189 AvARRAY (av)[BER_CLASS] = newSVcacheint (ASN_UNIVERSAL);
1190 AvARRAY (av)[BER_TAG ] = newSVcacheint (ASN_INTEGER);
1191 AvARRAY (av)[BER_FLAGS] = newSVcacheint (0);
1192 AvARRAY (av)[BER_DATA ] = newSVsv (sv);
1193 RETVAL = newRV_noinc ((SV *)av);
1194}
1195 OUTPUT: RETVAL
1196
1197# TODO: not arrayref, but elements?
1198SV *
1199ber_seq (SV *arrayref)
1200 CODE:
1201{
1202 AV *av = newAV ();
1203 av_fill (av, BER_ARRAYSIZE - 1);
1204 AvARRAY (av)[BER_CLASS] = newSVcacheint (ASN_UNIVERSAL);
1205 AvARRAY (av)[BER_TAG ] = newSVcacheint (ASN_SEQUENCE);
1206 AvARRAY (av)[BER_FLAGS] = newSVcacheint (1);
1207 AvARRAY (av)[BER_DATA ] = newSVsv (arrayref);
1208 RETVAL = newRV_noinc ((SV *)av);
1209}
1210 OUTPUT: RETVAL
1211
1212MODULE = Convert::BER::XS PACKAGE = Convert::BER::XS::Profile
1213
1214SV *
1215new (SV *klass)
1216 CODE:
1217 RETVAL = profile_new ();
1218 OUTPUT: RETVAL
1219
1220void
1221set (SV *profile, int klass, int tag, int type)
1222 CODE:
1223 profile_set (SvPROFILE (profile), klass, tag, type);
1224
1225IV
1226get (SV *profile, int klass, int tag)
1227 CODE:
1228 RETVAL = profile_lookup (SvPROFILE (profile), klass, tag);
1229 OUTPUT: RETVAL
1230
1231void
1232_set_default (SV *profile)
1233 CODE:
1234 default_profile = SvPROFILE (profile);
1235
1236

Diff Legend

Removed lines
+ Added lines
< Changed lines
> Changed lines