ViewVC Help
View File | Revision Log | Show Annotations | Download File
/cvs/CBOR-XS/XS.pm
Revision: 1.93
Committed: Sun May 11 14:39:56 2025 UTC (16 months ago) by root
Branch: MAIN
CVS Tags: HEAD
Changes since 1.92: +5 -4 lines
Log Message:
*** empty log message ***

File Contents

# Content
1 =head1 NAME
2
3 CBOR::XS - Concise Binary Object Representation (CBOR, RFC7049)
4
5 =encoding utf-8
6
7 =head1 SYNOPSIS
8
9 use CBOR::XS;
10
11 $binary_cbor_data = encode_cbor $perl_value;
12 $perl_value = decode_cbor $binary_cbor_data;
13
14 # OO-interface
15
16 $coder = CBOR::XS->new;
17 $binary_cbor_data = $coder->encode ($perl_value);
18 $perl_value = $coder->decode ($binary_cbor_data);
19
20 # prefix decoding
21
22 my $many_cbor_strings = ...;
23 while (length $many_cbor_strings) {
24 my ($data, $length) = $cbor->decode_prefix ($many_cbor_strings);
25 # data was decoded
26 substr $many_cbor_strings, 0, $length, ""; # remove decoded cbor string
27 }
28
29 =head1 DESCRIPTION
30
31 This module converts Perl data structures to the Concise Binary Object
32 Representation (CBOR) and vice versa. CBOR is a fast binary serialisation
33 format that aims to use an (almost) superset of the JSON data model, i.e.
34 when you can represent something useful in JSON, you should be able to
35 represent it in CBOR.
36
37 In short, CBOR is a faster and quite compact binary alternative to JSON,
38 with the added ability of supporting serialisation of Perl objects. (JSON
39 often compresses better than CBOR though, so if you plan to compress the
40 data later and speed is less important you might want to compare both
41 formats first).
42
43 The primary goal of this module is to be I<correct> and the secondary goal
44 is to be I<fast>. To reach the latter goal it was written in C.
45
46 To give you a general idea about speed, with texts in the megabyte range,
47 C<CBOR::XS> usually encodes roughly twice as fast as L<Storable> or
48 L<JSON::XS> and decodes about 15%-30% faster than those. The shorter the
49 data, the worse L<Storable> performs in comparison.
50
51 Regarding compactness, C<CBOR::XS>-encoded data structures are usually
52 about 20% smaller than the same data encoded as (compact) JSON or
53 L<Storable>.
54
55 In addition to the core CBOR data format, this module implements a
56 number of extensions, to support cyclic and shared data structures
57 (see C<allow_sharing> and C<allow_cycles>), string deduplication (see
58 C<pack_strings>) and scalar references (always enabled).
59
60 See MAPPING, below, on how CBOR::XS maps perl values to CBOR values and
61 vice versa.
62
63 =cut
64
65 package CBOR::XS;
66
67 use common::sense;
68
69 our $VERSION = 1.87;
70 our @ISA = qw(Exporter);
71
72 our @EXPORT = qw(encode_cbor decode_cbor);
73
74 use Exporter;
75 use XSLoader;
76
77 use Types::Serialiser;
78
79 our $MAGIC = "\xd9\xd9\xf7";
80
81 =head1 FUNCTIONAL INTERFACE
82
83 The following convenience methods are provided by this module. They are
84 exported by default:
85
86 =over 4
87
88 =item $cbor_data = encode_cbor $perl_scalar
89
90 Converts the given Perl data structure to CBOR representation. Croaks on
91 error.
92
93 =item $perl_scalar = decode_cbor $cbor_data
94
95 The opposite of C<encode_cbor>: expects a valid CBOR string to parse,
96 returning the resulting perl scalar. Croaks on error.
97
98 =back
99
100
101 =head1 OBJECT-ORIENTED INTERFACE
102
103 The object oriented interface lets you configure your own encoding or
104 decoding style, within the limits of supported formats.
105
106 =over 4
107
108 =item $cbor = new CBOR::XS
109
110 Creates a new CBOR::XS object that can be used to de/encode CBOR
111 strings. All boolean flags described below are by default I<disabled>.
112
113 The mutators for flags all return the CBOR object again and thus calls can
114 be chained:
115
116 my $cbor = CBOR::XS->new->encode ({a => [1,2]});
117
118 =item $cbor = new_safe CBOR::XS
119
120 Create a new, safe/secure CBOR::XS object. This is similar to C<new>,
121 but configures the coder object to be safe to use with untrusted
122 data. Currently, this is equivalent to:
123
124 my $cbor = CBOR::XS
125 ->new
126 ->validate_utf8
127 ->forbid_objects
128 ->filter (\&CBOR::XS::safe_filter)
129 ->max_size (1e8);
130
131 But is more future proof (it is better to crash because of a change than
132 to be exploited in other ways).
133
134 =cut
135
136 sub new_safe {
137 CBOR::XS
138 ->new
139 ->validate_utf8
140 ->forbid_objects
141 ->filter (\&CBOR::XS::safe_filter)
142 ->max_size (1e8)
143 }
144
145 =item $cbor = $cbor->max_depth ([$maximum_nesting_depth])
146
147 =item $max_depth = $cbor->get_max_depth
148
149 Sets the maximum nesting level (default C<512>) accepted while encoding
150 or decoding. If a higher nesting level is detected in CBOR data or a Perl
151 data structure, then the encoder and decoder will stop and croak at that
152 point.
153
154 Nesting level is defined by number of hash- or arrayrefs that the encoder
155 needs to traverse to reach a given point or the number of C<{> or C<[>
156 characters without their matching closing parenthesis crossed to reach a
157 given character in a string.
158
159 Setting the maximum depth to one disallows any nesting, so that ensures
160 that the object is only a single hash/object or array.
161
162 If no argument is given, the highest possible setting will be used, which
163 is rarely useful.
164
165 Note that nesting is implemented by recursion in C. The default value has
166 been chosen to be as large as typical operating systems allow without
167 crashing.
168
169 See L<SECURITY CONSIDERATIONS>, below, for more info on why this is useful.
170
171 =item $cbor = $cbor->max_size ([$maximum_string_size])
172
173 =item $max_size = $cbor->get_max_size
174
175 Set the maximum length a CBOR string may have (in bytes) where decoding
176 is being attempted. The default is C<0>, meaning no limit. When C<decode>
177 is called on a string that is longer then this many bytes, it will not
178 attempt to decode the string but throw an exception. This setting has no
179 effect on C<encode> (yet).
180
181 If no argument is given, the limit check will be deactivated (same as when
182 C<0> is specified).
183
184 See L<SECURITY CONSIDERATIONS>, below, for more info on why this is useful.
185
186 =item $cbor = $cbor->allow_unknown ([$enable])
187
188 =item $enabled = $cbor->get_allow_unknown
189
190 If C<$enable> is true (or missing), then C<encode> will I<not> throw an
191 exception when it encounters values it cannot represent in CBOR (for
192 example, filehandles) but instead will encode a CBOR C<error> value.
193
194 If C<$enable> is false (the default), then C<encode> will throw an
195 exception when it encounters anything it cannot encode as CBOR.
196
197 This option does not affect C<decode> in any way, and it is recommended to
198 leave it off unless you know your communications partner.
199
200 =item $cbor = $cbor->allow_sharing ([$enable])
201
202 =item $enabled = $cbor->get_allow_sharing
203
204 If C<$enable> is true (or missing), then C<encode> will not double-encode
205 values that have been referenced before (e.g. when the same object, such
206 as an array, is referenced multiple times), but instead will emit a
207 reference to the earlier value.
208
209 This means that such values will only be encoded once, and will not result
210 in a deep cloning of the value on decode, in decoders supporting the value
211 sharing extension. This also makes it possible to encode cyclic data
212 structures (which need C<allow_cycles> to be enabled to be decoded by this
213 module).
214
215 It is recommended to leave it off unless you know your
216 communication partner supports the value sharing extensions to CBOR
217 (L<http://cbor.schmorp.de/value-sharing>), as without decoder support, the
218 resulting data structure might be unusable.
219
220 Detecting shared values incurs a runtime overhead when values are encoded
221 that have a reference counter larger than one, and might unnecessarily
222 increase the encoded size, as potentially shared values are encoded as
223 shareable whether or not they are actually shared.
224
225 At the moment, only targets of references can be shared (e.g. scalars,
226 arrays or hashes pointed to by a reference). Weirder constructs, such as
227 an array with multiple "copies" of the I<same> string, which are hard but
228 not impossible to create in Perl, are not supported (this is the same as
229 with L<Storable>).
230
231 If C<$enable> is false (the default), then C<encode> will encode shared
232 data structures repeatedly, unsharing them in the process. Cyclic data
233 structures cannot be encoded in this mode.
234
235 This option does not affect C<decode> in any way - shared values and
236 references will always be decoded properly if present.
237
238 =item $cbor = $cbor->allow_cycles ([$enable])
239
240 =item $enabled = $cbor->get_allow_cycles
241
242 If C<$enable> is true (or missing), then C<decode> will happily decode
243 self-referential (cyclic) data structures. By default these will not be
244 decoded, as they need manual cleanup to avoid memory leaks, so code that
245 isn't prepared for this will not leak memory.
246
247 If C<$enable> is false (the default), then C<decode> will throw an error
248 when it encounters a self-referential/cyclic data structure.
249
250 This option does not affect C<encode> in any way - shared values and
251 references will always be encoded properly if present.
252
253 =item $cbor = $cbor->allow_weak_cycles ([$enable])
254
255 =item $enabled = $cbor->get_allow_weak_cycles
256
257 This works like C<allow_cycles> in that it allows the resulting data
258 structures to contain cycles, but unlike C<allow_cycles>, those cyclic
259 rreferences will be weak. That means that code that recurrsively walks
260 the data structure must be prepared with cycles, but at least not special
261 precautions must be implemented to free these data structures.
262
263 Only those references leading to actual cycles will be weakened - other
264 references, e.g. when the same hash or arrray is referenced multiple times
265 in an arrray, will be normal references.
266
267 This option does not affect C<encode> in any way - shared values and
268 references will always be encoded properly if present.
269
270 =item $cbor = $cbor->forbid_objects ([$enable])
271
272 =item $enabled = $cbor->get_forbid_objects
273
274 Disables the use of the object serialiser protocol.
275
276 If C<$enable> is true (or missing), then C<encode> will will throw an
277 exception when it encounters perl objects that would be encoded using the
278 perl-object tag (26). When C<decode> encounters such tags, it will fall
279 back to the general filter/tagged logic as if this were an unknown tag (by
280 default resulting in a C<CBOR::XC::Tagged> object).
281
282 If C<$enable> is false (the default), then C<encode> will use the
283 L<Types::Serialiser> object serialisation protocol to serialise objects
284 into perl-object tags, and C<decode> will do the same to decode such tags.
285
286 See L<SECURITY CONSIDERATIONS>, below, for more info on why forbidding this
287 protocol can be useful.
288
289 =item $cbor = $cbor->pack_strings ([$enable])
290
291 =item $enabled = $cbor->get_pack_strings
292
293 If C<$enable> is true (or missing), then C<encode> will try not to encode
294 the same string twice, but will instead encode a reference to the string
295 instead. Depending on your data format, this can save a lot of space, but
296 also results in a very large runtime overhead (expect encoding times to be
297 2-4 times as high as without).
298
299 It is recommended to leave it off unless you know your
300 communications partner supports the stringref extension to CBOR
301 (L<http://cbor.schmorp.de/stringref>), as without decoder support, the
302 resulting data structure might not be usable.
303
304 If C<$enable> is false (the default), then C<encode> will encode strings
305 the standard CBOR way.
306
307 This option does not affect C<decode> in any way - string references will
308 always be decoded properly if present.
309
310 =item $cbor = $cbor->text_keys ([$enable])
311
312 =item $enabled = $cbor->get_text_keys
313
314 If C<$enabled> is true (or missing), then C<encode> will encode all
315 perl hash keys as CBOR text strings/UTF-8 string, upgrading them as needed.
316
317 If C<$enable> is false (the default), then C<encode> will encode hash keys
318 normally - upgraded perl strings (strings internally encoded as UTF-8) as
319 CBOR text strings, and downgraded perl strings as CBOR byte strings.
320
321 This option does not affect C<decode> in any way.
322
323 This option is useful for interoperability with CBOR decoders that don't
324 treat byte strings as a form of text. It is especially useful as Perl
325 gives very little control over hash keys.
326
327 Enabling this option can be slow, as all downgraded hash keys that are
328 encoded need to be scanned and converted to UTF-8.
329
330 =item $cbor = $cbor->text_strings ([$enable])
331
332 =item $enabled = $cbor->get_text_strings
333
334 This option works similar to C<text_keys>, above, but works on all strings
335 (including hash keys), so C<text_keys> has no further effect after
336 enabling C<text_strings>.
337
338 If C<$enabled> is true (or missing), then C<encode> will encode all perl
339 strings as CBOR text strings/UTF-8 strings, upgrading them as needed.
340
341 If C<$enable> is false (the default), then C<encode> will encode strings
342 normally (but see C<text_keys>) - upgraded perl strings (strings
343 internally encoded as UTF-8) as CBOR text strings, and downgraded perl
344 strings as CBOR byte strings.
345
346 This option does not affect C<decode> in any way.
347
348 This option has similar advantages and disadvantages as C<text_keys>. In
349 addition, this option effectively removes the ability to automatically
350 encode byte strings, which might break some C<FREEZE> and C<TO_CBOR>
351 methods that rely on this.
352
353 A workaround is to use explicit type casts, which are unaffected by this option.
354
355 =item $cbor = $cbor->validate_utf8 ([$enable])
356
357 =item $enabled = $cbor->get_validate_utf8
358
359 If C<$enable> is true (or missing), then C<decode> will validate that
360 elements (text strings) containing UTF-8 data in fact contain valid UTF-8
361 data (instead of blindly accepting it). This validation obviously takes
362 extra time during decoding.
363
364 The concept of "valid UTF-8" used is perl's concept, which is a superset
365 of the official UTF-8.
366
367 If C<$enable> is false (the default), then C<decode> will blindly accept
368 UTF-8 data, marking them as valid UTF-8 in the resulting data structure
369 regardless of whether that's true or not.
370
371 Perl isn't too happy about corrupted UTF-8 in strings, but should
372 generally not crash or do similarly evil things. Extensions might be not
373 so forgiving, so it's recommended to turn on this setting if you receive
374 untrusted CBOR.
375
376 This option does not affect C<encode> in any way - strings that are
377 supposedly valid UTF-8 will simply be dumped into the resulting CBOR
378 string without checking whether that is, in fact, true or not.
379
380 =item $cbor = $cbor->filter ([$cb->($tag, $value)])
381
382 =item $cb_or_undef = $cbor->get_filter
383
384 Sets or replaces the tagged value decoding filter (when C<$cb> is
385 specified) or clears the filter (if no argument or C<undef> is provided).
386
387 The filter callback is called only during decoding, when a non-enforced
388 tagged value has been decoded (see L<TAG HANDLING AND EXTENSIONS> for a
389 list of enforced tags). For specific tags, it's often better to provide a
390 default converter using the C<%CBOR::XS::FILTER> hash (see below).
391
392 The first argument is the numerical tag, the second is the (decoded) value
393 that has been tagged.
394
395 The filter function should return either exactly one value, which will
396 replace the tagged value in the decoded data structure, or no values,
397 which will result in default handling, which currently means the decoder
398 creates a C<CBOR::XS::Tagged> object to hold the tag and the value.
399
400 When the filter is cleared (the default state), the default filter
401 function, C<CBOR::XS::default_filter>, is used. This function simply
402 looks up the tag in the C<%CBOR::XS::FILTER> hash. If an entry exists
403 it must be a code reference that is called with tag and value, and is
404 responsible for decoding the value. If no entry exists, it returns no
405 values. C<CBOR::XS> provides a number of default filter functions already,
406 the the C<%CBOR::XS::FILTER> hash can be freely extended with more.
407
408 C<CBOR::XS> additionally provides an alternative filter function that is
409 supposed to be safe to use with untrusted data (which the default filter
410 might not), called C<CBOR::XS::safe_filter>, which works the same as
411 the C<default_filter> but uses the C<%CBOR::XS::SAFE_FILTER> variable
412 instead. It is prepopulated with the tag decoding functions that are
413 deemed safe (basically the same as C<%CBOR::XS::FILTER> without all
414 the bignum tags), and can be extended by user code as well, although,
415 obviously, one should be very careful about adding decoding functions
416 here, since the expectation is that they are safe to use on untrusted
417 data, after all.
418
419 Example: decode all tags not handled internally into C<CBOR::XS::Tagged>
420 objects, with no other special handling (useful when working with
421 potentially "unsafe" CBOR data).
422
423 CBOR::XS->new->filter (sub { })->decode ($cbor_data);
424
425 Example: provide a global filter for tag 1347375694, converting the value
426 into some string form.
427
428 $CBOR::XS::FILTER{1347375694} = sub {
429 my ($tag, $value) = @_;
430
431 "tag 1347375694 value $value"
432 };
433
434 Example: provide your own filter function that looks up tags in your own
435 hash:
436
437 my %my_filter = (
438 998347484 => sub {
439 my ($tag, $value) = @_;
440
441 "tag 998347484 value $value"
442 };
443 );
444
445 my $coder = CBOR::XS->new->filter (sub {
446 &{ $my_filter{$_[0]} or return }
447 });
448
449
450 Example: use the safe filter function (see L<SECURITY CONSIDERATIONS> for
451 more considerations regarding security).
452
453 CBOR::XS->new->filter (\&CBOR::XS::safe_filter)->decode ($cbor_data);
454
455 =item $cbor_data = $cbor->encode ($perl_scalar)
456
457 Converts the given Perl data structure (a scalar value) to its CBOR
458 representation.
459
460 =item $perl_scalar = $cbor->decode ($cbor_data)
461
462 The opposite of C<encode>: expects CBOR data and tries to parse it,
463 returning the resulting simple scalar or reference. Croaks on error.
464
465 =item ($perl_scalar, $octets) = $cbor->decode_prefix ($cbor_data)
466
467 This works like the C<decode> method, but instead of raising an exception
468 when there is trailing garbage after the CBOR string, it will silently
469 stop parsing there and return the number of characters consumed so far.
470
471 This is useful if your CBOR texts are not delimited by an outer protocol
472 and you need to know where the first CBOR string ends amd the next one
473 starts - CBOR strings are self-delimited, so it is possible to concatenate
474 CBOR strings without any delimiters or size fields and recover their data.
475
476 CBOR::XS->new->decode_prefix ("......")
477 => ("...", 3)
478
479 =back
480
481 =head2 INCREMENTAL PARSING
482
483 In some cases, there is the need for incremental parsing of CBOR
484 texts. While this module always has to keep both CBOR text and resulting
485 Perl data structure in memory at one time, it does allow you to parse
486 a CBOR stream incrementally, using a technique similar to using
487 "decode_prefix" to see if a full CBOR object is available, but is much
488 more efficient.
489
490 It basically works by parsing as much of a CBOR string as possible - if
491 the CBOR data is not complete yet, the parser will remember where it was,
492 to be able to restart when more data has been accumulated. Once enough
493 data is available to either decode a complete CBOR value or raise an
494 error, a real decode will be attempted.
495
496 A typical use case would be a network protocol that consists of sending
497 and receiving CBOR-encoded messages. The solution that works with CBOR and
498 about anything else is by prepending a length to every CBOR value, so the
499 receiver knows how many octets to read. More compact (and slightly slower)
500 would be to just send CBOR values back-to-back, as C<CBOR::XS> knows where
501 a CBOR value ends, and doesn't need an explicit length.
502
503 The following methods help with this:
504
505 =over 4
506
507 =item @decoded = $cbor->incr_parse ($buffer)
508
509 This method attempts to decode exactly one CBOR value from the beginning
510 of the given C<$buffer>. The value is removed from the C<$buffer> on
511 success. When C<$buffer> doesn't contain a complete value yet, it returns
512 nothing. Finally, when the C<$buffer> doesn't start with something
513 that could ever be a valid CBOR value, it raises an exception, just as
514 C<decode> would. In the latter case the decoder state is undefined and
515 must be reset before being able to parse further.
516
517 This method modifies the C<$buffer> in place. When no CBOR value can be
518 decoded, the decoder stores the current string offset. On the next call,
519 continues decoding at the place where it stopped before. For this to make
520 sense, the C<$buffer> must begin with the same octets as on previous
521 unsuccessful calls.
522
523 You can call this method in scalar context, in which case it either
524 returns a decoded value or C<undef>. This makes it impossible to
525 distinguish between CBOR null values (which decode to C<undef>) and an
526 unsuccessful decode, which is often acceptable.
527
528 =item @decoded = $cbor->incr_parse_multiple ($buffer)
529
530 Same as C<incr_parse>, but attempts to decode as many CBOR values as
531 possible in one go, instead of at most one. Calls to C<incr_parse> and
532 C<incr_parse_multiple> can be interleaved.
533
534 =item $cbor->incr_reset
535
536 Resets the incremental decoder. This throws away any saved state, so that
537 subsequent calls to C<incr_parse> or C<incr_parse_multiple> start to parse
538 a new CBOR value from the beginning of the C<$buffer> again.
539
540 This method can be called at any time, but it I<must> be called if you want
541 to change your C<$buffer> or there was a decoding error and you want to
542 reuse the C<$cbor> object for future incremental parsings.
543
544 =back
545
546
547 =head1 MAPPING
548
549 This section describes how CBOR::XS maps Perl values to CBOR values and
550 vice versa. These mappings are designed to "do the right thing" in most
551 circumstances automatically, preserving round-tripping characteristics
552 (what you put in comes out as something equivalent).
553
554 For the more enlightened: note that in the following descriptions,
555 lowercase I<perl> refers to the Perl interpreter, while uppercase I<Perl>
556 refers to the abstract Perl language itself.
557
558
559 =head2 CBOR -> PERL
560
561 =over 4
562
563 =item integers
564
565 CBOR integers become (numeric) perl scalars. On perls without 64 bit
566 support, 64 bit integers will be truncated or otherwise corrupted.
567
568 =item byte strings
569
570 Byte strings will become octet strings in Perl (the Byte values 0..255
571 will simply become characters of the same value in Perl).
572
573 =item UTF-8 strings
574
575 UTF-8 strings in CBOR will be decoded, i.e. the UTF-8 octets will be
576 decoded into proper Unicode code points. At the moment, the validity of
577 the UTF-8 octets will not be validated - corrupt input will result in
578 corrupted Perl strings.
579
580 =item arrays, maps
581
582 CBOR arrays and CBOR maps will be converted into references to a Perl
583 array or hash, respectively. The keys of the map will be stringified
584 during this process.
585
586 =item null
587
588 CBOR null becomes C<undef> in Perl.
589
590 =item true, false, undefined
591
592 These CBOR values become C<Types:Serialiser::true>,
593 C<Types:Serialiser::false> and C<Types::Serialiser::error>,
594 respectively. They are overloaded to act almost exactly like the numbers
595 C<1> and C<0> (for true and false) or to throw an exception on access (for
596 error). See the L<Types::Serialiser> manpage for details.
597
598 =item tagged values
599
600 Tagged items consists of a numeric tag and another CBOR value.
601
602 See L<TAG HANDLING AND EXTENSIONS> and the description of C<< ->filter >>
603 for details on which tags are handled how.
604
605 =item anything else
606
607 Anything else (e.g. unsupported simple values) will raise a decoding
608 error.
609
610 =back
611
612
613 =head2 PERL -> CBOR
614
615 The mapping from Perl to CBOR is slightly more difficult, as Perl is a
616 typeless language. That means this module can only guess which CBOR type
617 is meant by a perl value.
618
619 =over 4
620
621 =item hash references
622
623 Perl hash references become CBOR maps. As there is no inherent ordering in
624 hash keys (or CBOR maps), they will usually be encoded in a pseudo-random
625 order. This order can be different each time a hash is encoded.
626
627 Currently, tied hashes will use the indefinite-length format, while normal
628 hashes will use the fixed-length format.
629
630 =item array references
631
632 Perl array references become fixed-length CBOR arrays.
633
634 =item other references
635
636 Other unblessed references will be represented using
637 the indirection tag extension (tag value C<22098>,
638 L<http://cbor.schmorp.de/indirection>). CBOR decoders are guaranteed
639 to be able to decode these values somehow, by either "doing the right
640 thing", decoding into a generic tagged object, simply ignoring the tag, or
641 something else.
642
643 =item CBOR::XS::Tagged objects
644
645 Objects of this type must be arrays consisting of a single C<[tag, value]>
646 pair. The (numerical) tag will be encoded as a CBOR tag, the value will
647 be encoded as appropriate for the value. You must use C<CBOR::XS::tag> to
648 create such objects.
649
650 =item Types::Serialiser::true, Types::Serialiser::false, Types::Serialiser::error
651
652 These special values become CBOR true, CBOR false and CBOR undefined
653 values, respectively.
654
655 =item other blessed objects
656
657 Other blessed objects are serialised via C<TO_CBOR> or C<FREEZE>. See
658 L<TAG HANDLING AND EXTENSIONS> for specific classes handled by this
659 module, and L<OBJECT SERIALISATION> for generic object serialisation.
660
661 =item simple scalars
662
663 Simple Perl scalars (any scalar that is not a reference) are the most
664 difficult objects to encode: CBOR::XS will encode undefined scalars as
665 CBOR null values, scalars that have last been used in a string context
666 before encoding as CBOR strings, and anything else as number value:
667
668 # dump as number
669 encode_cbor [2] # yields [2]
670 encode_cbor [-3.0e17] # yields [-3e+17]
671 my $value = 5; encode_cbor [$value] # yields [5]
672
673 # used as string, so dump as string (either byte or text)
674 print $value;
675 encode_cbor [$value] # yields ["5"]
676
677 # undef becomes null
678 encode_cbor [undef] # yields [null]
679
680 You can force the type to be a CBOR string by stringifying it:
681
682 my $x = 3.1; # some variable containing a number
683 "$x"; # stringified
684 $x .= ""; # another, more awkward way to stringify
685 print $x; # perl does it for you, too, quite often
686
687 You can force whether a string is encoded as byte or text string by using
688 C<utf8::upgrade> and C<utf8::downgrade> (if C<text_strings> is disabled).
689
690 utf8::upgrade $x; # encode $x as text string
691 utf8::downgrade $x; # encode $x as byte string
692
693 More options are available, see L<TYPE CASTS>, below, and the C<text_keys>
694 and C<text_strings> options.
695
696 Perl doesn't define what operations up- and downgrade strings, so if the
697 difference between byte and text is important, you should up- or downgrade
698 your string as late as possible before encoding. You can also force the
699 use of CBOR text strings by using C<text_keys> or C<text_strings>.
700
701 You can force the type to be a CBOR number by numifying it:
702
703 my $x = "3"; # some variable containing a string
704 $x += 0; # numify it, ensuring it will be dumped as a number
705 $x *= 1; # same thing, the choice is yours.
706
707 You can not currently force the type in other, less obscure, ways. Tell me
708 if you need this capability (but don't forget to explain why it's needed
709 :).
710
711 Perl values that seem to be integers generally use the shortest possible
712 representation. Floating-point values will use either the IEEE single
713 format if possible without loss of precision, otherwise the IEEE double
714 format will be used. Perls that use formats other than IEEE double to
715 represent numerical values are supported, but might suffer loss of
716 precision.
717
718 =back
719
720 =head2 TYPE CASTS
721
722 B<EXPERIMENTAL>: As an experimental extension, C<CBOR::XS> allows you to
723 force specific CBOR types to be used when encoding. That allows you to
724 encode types not normally accessible (e.g. half floats) as well as force
725 string types even when C<text_strings> is in effect.
726
727 Type forcing is done by calling a special "cast" function which keeps a
728 copy of the value and returns a new value that can be handed over to any
729 CBOR encoder function.
730
731 The following casts are currently available (all of which are unary
732 operators, that is, have a prototype of C<$>):
733
734 =over
735
736 =item CBOR::XS::as_int $value
737
738 Forces the value to be encoded as some form of (basic, not bignum) integer
739 type.
740
741 =item CBOR::XS::as_text $value
742
743 Forces the value to be encoded as (UTF-8) text values.
744
745 =item CBOR::XS::as_bytes $value
746
747 Forces the value to be encoded as a (binary) string value.
748
749 Example: encode a perl string as binary even though C<text_strings> is in
750 effect.
751
752 CBOR::XS->new->text_strings->encode ([4, "text", CBOR::XS::bytes "bytevalue"]);
753
754 =item CBOR::XS::as_bool $value
755
756 Converts a Perl boolean (which can be any kind of scalar) into a CBOR
757 boolean. Strictly the same, but shorter to write, than:
758
759 $value ? Types::Serialiser::true : Types::Serialiser::false
760
761 =item CBOR::XS::as_float16 $value
762
763 Forces half-float (IEEE 754 binary16) encoding of the given value.
764
765 =item CBOR::XS::as_float32 $value
766
767 Forces single-float (IEEE 754 binary32) encoding of the given value.
768
769 =item CBOR::XS::as_float64 $value
770
771 Forces double-float (IEEE 754 binary64) encoding of the given value.
772
773 =item CBOR::XS::as_cbor $cbor_text
774
775 Not a type cast per-se, this type cast forces the argument to be encoded
776 as-is. This can be used to embed pre-encoded CBOR data.
777
778 Note that no checking on the validity of the C<$cbor_text> is done - it's
779 the callers responsibility to correctly encode values.
780
781 =item CBOR::XS::as_map [key => value...]
782
783 Treat the array reference as key value pairs and output a CBOR map. This
784 allows you to generate CBOR maps with arbitrary key types (or, if you
785 don't care about semantics, duplicate keys or pairs in a custom order),
786 which is otherwise hard to do with Perl.
787
788 The single argument must be an array reference with an even number of
789 elements.
790
791 Note that only the reference to the array is copied, the array itself is
792 not. Modifications done to the array before calling an encoding function
793 will be reflected in the encoded output.
794
795 Example: encode a CBOR map with a string and an integer as keys.
796
797 encode_cbor CBOR::XS::as_map [string => "value", 5 => "value"]
798
799 =back
800
801 =cut
802
803 sub CBOR::XS::as_cbor ($) { bless [$_[0], 0, undef], CBOR::XS::Tagged:: }
804 sub CBOR::XS::as_int ($) { bless [$_[0], 1, undef], CBOR::XS::Tagged:: }
805 sub CBOR::XS::as_bytes ($) { bless [$_[0], 2, undef], CBOR::XS::Tagged:: }
806 sub CBOR::XS::as_text ($) { bless [$_[0], 3, undef], CBOR::XS::Tagged:: }
807 sub CBOR::XS::as_float16 ($) { bless [$_[0], 4, undef], CBOR::XS::Tagged:: }
808 sub CBOR::XS::as_float32 ($) { bless [$_[0], 5, undef], CBOR::XS::Tagged:: }
809 sub CBOR::XS::as_float64 ($) { bless [$_[0], 6, undef], CBOR::XS::Tagged:: }
810
811 sub CBOR::XS::as_bool ($) { $_[0] ? $Types::Serialiser::true : $Types::Serialiser::false }
812
813 sub CBOR::XS::as_map ($) {
814 ARRAY:: eq ref $_[0]
815 and $#{ $_[0] } & 1
816 or do { require Carp; Carp::croak ("CBOR::XS::as_map only acepts array references with an even number of elements, caught") };
817
818 bless [$_[0], 7, undef], CBOR::XS::Tagged::
819 }
820
821 =head2 OBJECT SERIALISATION
822
823 This module implements both a CBOR-specific and the generic
824 L<Types::Serialier> object serialisation protocol. The following
825 subsections explain both methods.
826
827 =head3 ENCODING
828
829 This module knows two way to serialise a Perl object: The CBOR-specific
830 way, and the generic way.
831
832 Whenever the encoder encounters a Perl object that it cannot serialise
833 directly (most of them), it will first look up the C<TO_CBOR> method on
834 it.
835
836 If it has a C<TO_CBOR> method, it will call it with the object as only
837 argument, and expects exactly one return value, which it will then
838 substitute and encode it in the place of the object.
839
840 Otherwise, it will look up the C<FREEZE> method. If it exists, it will
841 call it with the object as first argument, and the constant string C<CBOR>
842 as the second argument, to distinguish it from other serialisers.
843
844 The C<FREEZE> method can return any number of values (i.e. zero or
845 more). These will be encoded as CBOR perl object, together with the
846 classname.
847
848 These methods I<MUST NOT> change the data structure that is being
849 serialised. Failure to comply to this can result in memory corruption -
850 and worse.
851
852 If an object supports neither C<TO_CBOR> nor C<FREEZE>, encoding will fail
853 with an error.
854
855 =head3 DECODING
856
857 Objects encoded via C<TO_CBOR> cannot (normally) be automatically decoded,
858 but objects encoded via C<FREEZE> can be decoded using the following
859 protocol:
860
861 When an encoded CBOR perl object is encountered by the decoder, it will
862 look up the C<THAW> method, by using the stored classname, and will fail
863 if the method cannot be found.
864
865 After the lookup it will call the C<THAW> method with the stored classname
866 as first argument, the constant string C<CBOR> as second argument, and all
867 values returned by C<FREEZE> as remaining arguments.
868
869 =head3 EXAMPLES
870
871 Here is an example C<TO_CBOR> method:
872
873 sub My::Object::TO_CBOR {
874 my ($obj) = @_;
875
876 ["this is a serialised My::Object object", $obj->{id}]
877 }
878
879 When a C<My::Object> is encoded to CBOR, it will instead encode a simple
880 array with two members: a string, and the "object id". Decoding this CBOR
881 string will yield a normal perl array reference in place of the object.
882
883 A more useful and practical example would be a serialisation method for
884 the URI module. CBOR has a custom tag value for URIs, namely 32:
885
886 sub URI::TO_CBOR {
887 my ($self) = @_;
888 my $uri = "$self"; # stringify uri
889 utf8::upgrade $uri; # make sure it will be encoded as UTF-8 string
890 CBOR::XS::tag 32, "$_[0]"
891 }
892
893 This will encode URIs as a UTF-8 string with tag 32, which indicates an
894 URI.
895
896 Decoding such an URI will not (currently) give you an URI object, but
897 instead a CBOR::XS::Tagged object with tag number 32 and the string -
898 exactly what was returned by C<TO_CBOR>.
899
900 To serialise an object so it can automatically be deserialised, you need
901 to use C<FREEZE> and C<THAW>. To take the URI module as example, this
902 would be a possible implementation:
903
904 sub URI::FREEZE {
905 my ($self, $serialiser) = @_;
906 "$self" # encode url string
907 }
908
909 sub URI::THAW {
910 my ($class, $serialiser, $uri) = @_;
911 $class->new ($uri)
912 }
913
914 Unlike C<TO_CBOR>, multiple values can be returned by C<FREEZE>. For
915 example, a C<FREEZE> method that returns "type", "id" and "variant" values
916 would cause an invocation of C<THAW> with 5 arguments:
917
918 sub My::Object::FREEZE {
919 my ($self, $serialiser) = @_;
920
921 ($self->{type}, $self->{id}, $self->{variant})
922 }
923
924 sub My::Object::THAW {
925 my ($class, $serialiser, $type, $id, $variant) = @_;
926
927 $class-<new (type => $type, id => $id, variant => $variant)
928 }
929
930
931 =head1 MAGIC HEADER
932
933 There is no way to distinguish CBOR from other formats
934 programmatically. To make it easier to distinguish CBOR from other
935 formats, the CBOR specification has a special "magic string" that can be
936 prepended to any CBOR string without changing its meaning.
937
938 This string is available as C<$CBOR::XS::MAGIC>. This module does not
939 prepend this string to the CBOR data it generates, but it will ignore it
940 if present, so users can prepend this string as a "file type" indicator as
941 required.
942
943
944 =head1 THE CBOR::XS::Tagged CLASS
945
946 CBOR has the concept of tagged values - any CBOR value can be tagged with
947 a numeric 64 bit number, which are centrally administered.
948
949 C<CBOR::XS> handles a few tags internally when en- or decoding. You can
950 also create tags yourself by encoding C<CBOR::XS::Tagged> objects, and the
951 decoder will create C<CBOR::XS::Tagged> objects itself when it hits an
952 unknown tag.
953
954 These objects are simply blessed array references - the first member of
955 the array being the numerical tag, the second being the value.
956
957 You can interact with C<CBOR::XS::Tagged> objects in the following ways:
958
959 =over 4
960
961 =item $tagged = CBOR::XS::tag $tag, $value
962
963 This function(!) creates a new C<CBOR::XS::Tagged> object using the given
964 C<$tag> (0..2**64-1) to tag the given C<$value> (which can be any Perl
965 value that can be encoded in CBOR, including serialisable Perl objects and
966 C<CBOR::XS::Tagged> objects).
967
968 =item $tagged->[0]
969
970 =item $tagged->[0] = $new_tag
971
972 =item $tag = $tagged->tag
973
974 =item $new_tag = $tagged->tag ($new_tag)
975
976 Access/mutate the tag.
977
978 =item $tagged->[1]
979
980 =item $tagged->[1] = $new_value
981
982 =item $value = $tagged->value
983
984 =item $new_value = $tagged->value ($new_value)
985
986 Access/mutate the tagged value.
987
988 =back
989
990 =cut
991
992 sub tag($$) {
993 bless [@_], CBOR::XS::Tagged::;
994 }
995
996 sub CBOR::XS::Tagged::tag {
997 $_[0][0] = $_[1] if $#_;
998 $_[0][0]
999 }
1000
1001 sub CBOR::XS::Tagged::value {
1002 $_[0][1] = $_[1] if $#_;
1003 $_[0][1]
1004 }
1005
1006 =head2 EXAMPLES
1007
1008 Here are some examples of C<CBOR::XS::Tagged> uses to tag objects.
1009
1010 You can look up CBOR tag value and emanings in the IANA registry at
1011 L<http://www.iana.org/assignments/cbor-tags/cbor-tags.xhtml>.
1012
1013 Prepend a magic header (C<$CBOR::XS::MAGIC>):
1014
1015 my $cbor = encode_cbor CBOR::XS::tag 55799, $value;
1016 # same as:
1017 my $cbor = $CBOR::XS::MAGIC . encode_cbor $value;
1018
1019 Serialise some URIs and a regex in an array:
1020
1021 my $cbor = encode_cbor [
1022 (CBOR::XS::tag 32, "http://www.nethype.de/"),
1023 (CBOR::XS::tag 32, "http://software.schmorp.de/"),
1024 (CBOR::XS::tag 35, "^[Pp][Ee][Rr][lL]\$"),
1025 ];
1026
1027 Wrap CBOR data in CBOR:
1028
1029 my $cbor_cbor = encode_cbor
1030 CBOR::XS::tag 24,
1031 encode_cbor [1, 2, 3];
1032
1033 =head1 TAG HANDLING AND EXTENSIONS
1034
1035 This section describes how this module handles specific tagged values
1036 and extensions. If a tag is not mentioned here and no additional filters
1037 are provided for it, then the default handling applies (creating a
1038 CBOR::XS::Tagged object on decoding, and only encoding the tag when
1039 explicitly requested).
1040
1041 Tags not handled specifically are currently converted into a
1042 L<CBOR::XS::Tagged> object, which is simply a blessed array reference
1043 consisting of the numeric tag value followed by the (decoded) CBOR value.
1044
1045 Future versions of this module reserve the right to special case
1046 additional tags (such as base64url).
1047
1048 =head2 ENFORCED TAGS
1049
1050 These tags are always handled when decoding, and their handling cannot be
1051 overridden by the user.
1052
1053 =over 4
1054
1055 =item 26 (perl-object, L<http://cbor.schmorp.de/perl-object>)
1056
1057 These tags are automatically created (and decoded) for serialisable
1058 objects using the C<FREEZE/THAW> methods (the L<Types::Serialier> object
1059 serialisation protocol). See L<OBJECT SERIALISATION> for details.
1060
1061 =item 28, 29 (shareable, sharedref, L<http://cbor.schmorp.de/value-sharing>)
1062
1063 These tags are automatically decoded when encountered (and they do not
1064 result in a cyclic data structure, see C<allow_cycles>), resulting in
1065 shared values in the decoded object. They are only encoded, however, when
1066 C<allow_sharing> is enabled.
1067
1068 Not all shared values can be successfully decoded: values that reference
1069 themselves will I<currently> decode as C<undef> (this is not the same
1070 as a reference pointing to itself, which will be represented as a value
1071 that contains an indirect reference to itself - these will be decoded
1072 properly).
1073
1074 Note that considerably more shared value data structures can be decoded
1075 than will be encoded - currently, only values pointed to by references
1076 will be shared, others will not. While non-reference shared values can be
1077 generated in Perl with some effort, they were considered too unimportant
1078 to be supported in the encoder. The decoder, however, will decode these
1079 values as shared values.
1080
1081 =item 256, 25 (stringref-namespace, stringref, L<http://cbor.schmorp.de/stringref>)
1082
1083 These tags are automatically decoded when encountered. They are only
1084 encoded, however, when C<pack_strings> is enabled.
1085
1086 =item 22098 (indirection, L<http://cbor.schmorp.de/indirection>)
1087
1088 This tag is automatically generated when a reference are encountered (with
1089 the exception of hash and array references). It is converted to a reference
1090 when decoding.
1091
1092 =item 55799 (self-describe CBOR, RFC 7049)
1093
1094 This value is not generated on encoding (unless explicitly requested by
1095 the user), and is simply ignored when decoding.
1096
1097 =back
1098
1099 =head2 NON-ENFORCED TAGS
1100
1101 These tags have default filters provided when decoding. Their handling can
1102 be overridden by changing the C<%CBOR::XS::FILTER> entry for the tag, or by
1103 providing a custom C<filter> callback when decoding.
1104
1105 When they result in decoding into a specific Perl class, the module
1106 usually provides a corresponding C<TO_CBOR> method as well.
1107
1108 When any of these need to load additional modules that are not part of the
1109 perl core distribution (e.g. L<URI>), it is (currently) up to the user to
1110 provide these modules. The decoding usually fails with an exception if the
1111 required module cannot be loaded.
1112
1113 =over 4
1114
1115 =item 0, 1 (date/time string, seconds since the epoch)
1116
1117 These tags are decoded into L<Time::Piece> objects. The corresponding
1118 C<Time::Piece::TO_CBOR> method always encodes into tag 1 values currently.
1119
1120 The L<Time::Piece> API is generally surprisingly bad, and fractional
1121 seconds are only accidentally kept intact, so watch out. On the plus side,
1122 the module comes with perl since 5.10, which has to count for something.
1123
1124 =item 2, 3 (positive/negative bignum)
1125
1126 These tags are decoded into L<Math::BigInt> objects. The corresponding
1127 C<Math::BigInt::TO_CBOR> method encodes "small" bigints into normal CBOR
1128 integers, and others into positive/negative CBOR bignums.
1129
1130 =item 4, 5, 264, 265 (decimal fraction/bigfloat)
1131
1132 Both decimal fractions and bigfloats are decoded into L<Math::BigFloat>
1133 objects. The corresponding C<Math::BigFloat::TO_CBOR> method I<always>
1134 encodes into a decimal fraction (either tag 4 or 264).
1135
1136 NaN and infinities are not encoded properly, as they cannot be represented
1137 in CBOR.
1138
1139 See L<BIGNUM SECURITY CONSIDERATIONS> for more info.
1140
1141 =item 30 (rational numbers)
1142
1143 These tags are decoded into L<Math::BigRat> objects. The corresponding
1144 C<Math::BigRat::TO_CBOR> method encodes rational numbers with denominator
1145 C<1> via their numerator only, i.e., they become normal integers or
1146 C<bignums>.
1147
1148 See L<BIGNUM SECURITY CONSIDERATIONS> for more info.
1149
1150 =item 21, 22, 23 (expected later JSON conversion)
1151
1152 CBOR::XS is not a CBOR-to-JSON converter, and will simply ignore these
1153 tags.
1154
1155 =item 32 (URI)
1156
1157 These objects decode into L<URI> objects. The corresponding
1158 C<URI::TO_CBOR> method again results in a CBOR URI value.
1159
1160 =back
1161
1162 =cut
1163
1164 =head1 CBOR and JSON
1165
1166 CBOR is supposed to implement a superset of the JSON data model, and is,
1167 with some coercion, able to represent all JSON texts (something that other
1168 "binary JSON" formats such as BSON generally do not support).
1169
1170 CBOR implements some extra hints and support for JSON interoperability,
1171 and the spec offers further guidance for conversion between CBOR and
1172 JSON. None of this is currently implemented in CBOR, and the guidelines
1173 in the spec do not result in correct round-tripping of data. If JSON
1174 interoperability is improved in the future, then the goal will be to
1175 ensure that decoded JSON data will round-trip encoding and decoding to
1176 CBOR intact.
1177
1178
1179 =head1 SECURITY CONSIDERATIONS
1180
1181 Tl;dr... if you want to decode or encode CBOR from untrusted sources, you
1182 should start with a coder object created via C<new_safe> (which implements
1183 the mitigations explained below):
1184
1185 my $coder = CBOR::XS->new_safe;
1186
1187 my $data = $coder->decode ($cbor_text);
1188 my $cbor = $coder->encode ($data);
1189
1190 Longer version: When you are using CBOR in a protocol, talking to
1191 untrusted potentially hostile creatures requires some thought:
1192
1193 =over 4
1194
1195 =item Security of the CBOR decoder itself
1196
1197 First and foremost, your CBOR decoder should be secure, that is, should
1198 not have any buffer overflows or similar bugs that could potentially be
1199 exploited. Obviously, this module should ensure that and I am trying hard
1200 on making that true, but you never know.
1201
1202 =item CBOR::XS can invoke almost arbitrary callbacks during decoding
1203
1204 CBOR::XS supports object serialisation - decoding CBOR can cause calls
1205 to I<any> C<THAW> method in I<any> package that exists in your process
1206 (that is, CBOR::XS will not try to load modules, but any existing C<THAW>
1207 method or function can be called, so they all have to be secure).
1208
1209 Less obviously, it will also invoke C<TO_CBOR> and C<FREEZE> methods -
1210 even if all your C<THAW> methods are secure, encoding data structures from
1211 untrusted sources can invoke those and trigger bugs in those.
1212
1213 So, if you are not sure about the security of all the modules you
1214 have loaded (you shouldn't), you should disable this part using
1215 C<forbid_objects> or using C<new_safe>.
1216
1217 =item CBOR can be extended with tags that call library code
1218
1219 CBOR can be extended with tags, and C<CBOR::XS> has a registry of
1220 conversion functions for many existing tags that can be extended via
1221 third-party modules (see the C<filter> method).
1222
1223 If you don't trust these, you should configure the "safe" filter function,
1224 C<CBOR::XS::safe_filter> (C<new_safe> does this), which by default only
1225 includes conversion functions that are considered "safe" by the author
1226 (but again, they can be extended by third party modules).
1227
1228 Depending on your level of paranoia, you can use the "safe" filter:
1229
1230 $cbor->filter (\&CBOR::XS::safe_filter);
1231
1232 ... your own filter...
1233
1234 $cbor->filter (sub { ... do your stuffs here ... });
1235
1236 ... or even no filter at all, disabling all tag decoding:
1237
1238 $cbor->filter (sub { });
1239
1240 This is never a problem for encoding, as the tag mechanism only exists in
1241 CBOR texts.
1242
1243 =item Resource-starving attacks: object memory usage
1244
1245 You need to avoid resource-starving attacks. That means you should limit
1246 the size of CBOR data you accept, or make sure then when your resources
1247 run out, that's just fine (e.g. by using a separate process that can
1248 crash safely). The size of a CBOR string in octets is usually a good
1249 indication of the size of the resources required to decode it into a Perl
1250 structure. While CBOR::XS can check the size of the CBOR text (using
1251 C<max_size> - done by C<new_safe>), it might be too late when you already
1252 have it in memory, so you might want to check the size before you accept
1253 the string.
1254
1255 As for encoding, it is possible to construct data structures that are
1256 relatively small but result in large CBOR texts (for example by having an
1257 array full of references to the same big data structure, which will all be
1258 deep-cloned during encoding by default). This is rarely an actual issue
1259 (and the worst case is still just running out of memory), but you can
1260 reduce this risk by using C<allow_sharing>.
1261
1262 =item Resource-starving attacks: stack overflows
1263
1264 CBOR::XS recurses using the C stack when decoding objects and arrays. The
1265 C stack is a limited resource: for instance, on my amd64 machine with 8MB
1266 of stack size I can decode around 180k nested arrays but only 14k nested
1267 CBOR objects (due to perl itself recursing deeply on croak to free the
1268 temporary). If that is exceeded, the program crashes. To be conservative,
1269 the default nesting limit is set to 512. If your process has a smaller
1270 stack, you should adjust this setting accordingly with the C<max_depth>
1271 method.
1272
1273 =item Resource-starving attacks: CPU en-/decoding complexity
1274
1275 CBOR::XS will use the L<Math::BigInt>, L<Math::BigFloat> and
1276 L<Math::BigRat> libraries to represent encode/decode bignums. These can be
1277 very slow (as in, centuries of CPU time) and can even crash your program
1278 (and are generally not very trustworthy). See the next section on bignum
1279 security for details.
1280
1281 =item Data breaches: leaking information in error messages
1282
1283 CBOR::XS might leak contents of your Perl data structures in its error
1284 messages, so when you serialise sensitive information you might want to
1285 make sure that exceptions thrown by CBOR::XS will not end up in front of
1286 untrusted eyes.
1287
1288 =item Something else...
1289
1290 Something else could bomb you, too, that I forgot to think of. In that
1291 case, you get to keep the pieces. I am always open for hints, though...
1292
1293 =back
1294
1295
1296 =head1 BIGNUM SECURITY CONSIDERATIONS
1297
1298 CBOR::XS provides a C<TO_CBOR> method for both L<Math::BigInt> and
1299 L<Math::BigFloat> that tries to encode the number in the simplest possible
1300 way, that is, either a CBOR integer, a CBOR bigint/decimal fraction (tag
1301 4) or an arbitrary-exponent decimal fraction (tag 264). Rational numbers
1302 (L<Math::BigRat>, tag 30) can also contain bignums as members.
1303
1304 CBOR::XS will also understand base-2 bigfloat or arbitrary-exponent
1305 bigfloats (tags 5 and 265), but it will never generate these on its own.
1306
1307 Using the built-in L<Math::BigInt::Calc> support, encoding and decoding
1308 decimal fractions is generally fast. Decoding bigints can be slow for very
1309 big numbers (tens of thousands of digits, something that could potentially
1310 be caught by limiting the size of CBOR texts), and decoding bigfloats or
1311 arbitrary-exponent bigfloats can be I<extremely> slow (minutes, decades)
1312 for large exponents (roughly 40 bit and longer).
1313
1314 Additionally, L<Math::BigInt> can take advantage of other bignum
1315 libraries, such as L<Math::GMP>, which cannot handle big floats with large
1316 exponents, and might simply abort or crash your program, due to their code
1317 quality.
1318
1319 This can be a concern if you want to parse untrusted CBOR. If it is, you
1320 might want to disable decoding of tag 2 (bigint) and 3 (negative bigint)
1321 types. You should also disable types 5 and 265, as these can be slow even
1322 without bigints.
1323
1324 Disabling bigints will also partially or fully disable types that rely on
1325 them, e.g. rational numbers that use bignums.
1326
1327
1328 =head1 CBOR IMPLEMENTATION NOTES
1329
1330 This section contains some random implementation notes. They do not
1331 describe guaranteed behaviour, but merely behaviour as-is implemented
1332 right now.
1333
1334 64 bit integers are only properly decoded when Perl was built with 64 bit
1335 support.
1336
1337 Strings and arrays are encoded with a definite length. Hashes as well,
1338 unless they are tied (or otherwise magical).
1339
1340 Only the double data type is supported for NV data types - when Perl uses
1341 long double to represent floating point values, they might not be encoded
1342 properly. Half precision types are accepted, but not encoded.
1343
1344 Strict mode and canonical mode are not implemented.
1345
1346
1347 =head1 LIMITATIONS ON PERLS WITHOUT 64-BIT INTEGER SUPPORT
1348
1349 On perls that were built without 64 bit integer support (these are rare
1350 nowadays, even on 32 bit architectures, as all major Perl distributions
1351 are built with 64 bit integer support), support for any kind of 64 bit
1352 value in CBOR is very limited - most likely, these 64 bit values will
1353 be truncated, corrupted, or otherwise not decoded correctly. This also
1354 includes string, float, array and map sizes that are stored as 64 bit
1355 integers.
1356
1357
1358 =head1 THREADS
1359
1360 This module is I<not> guaranteed to be thread safe and there are no
1361 plans to change this until Perl gets thread support (as opposed to the
1362 horribly slow so-called "threads" which are simply slow and bloated
1363 process simulations - use fork, it's I<much> faster, cheaper, better).
1364
1365 (It might actually work, but you have been warned).
1366
1367
1368 =head1 BUGS
1369
1370 While the goal of this module is to be correct, that unfortunately does
1371 not mean it's bug-free, only that I think its design is bug-free. If you
1372 keep reporting bugs they will be fixed swiftly, though.
1373
1374 Please refrain from using rt.cpan.org or any other bug reporting
1375 service. I put the contact address into my modules for a reason.
1376
1377 =cut
1378
1379 # clumsy and slow hv_store-in-hash helper function
1380 sub _hv_store {
1381 $_[0]{$_[1]} = $_[2];
1382 }
1383
1384 our %FILTER = (
1385 0 => sub { # rfc4287 datetime, utf-8
1386 require Time::Piece;
1387 # Time::Piece::Strptime uses the "incredibly flexible date parsing routine"
1388 # from FreeBSD, which can't parse ISO 8601, RFC3339, RFC4287 or much of anything
1389 # else either. Whats incredibe over standard strptime totally escapes me.
1390 # doesn't do fractional times, either. sigh.
1391 # In fact, it's all a lie, it uses whatever strptime it wants, and of course,
1392 # they are all incompatible. The openbsd one simply ignores %z (but according to the
1393 # docs, it would be much more incredibly flexible indeed. If it worked, that is.).
1394 scalar eval {
1395 my $s = $_[1];
1396
1397 $s =~ s/Z$/+00:00/;
1398 $s =~ s/(\.[0-9]+)?([+-][0-9][0-9]):([0-9][0-9])$//
1399 or die;
1400
1401 my $b = $1 - ($2 * 60 + $3) * 60; # fractional part + offset. hopefully
1402 my $d = Time::Piece->strptime ($s, "%Y-%m-%dT%H:%M:%S");
1403
1404 Time::Piece::gmtime ($d->epoch + $b)
1405 } || die "corrupted CBOR date/time string ($_[0])";
1406 },
1407
1408 1 => sub { # seconds since the epoch, possibly fractional
1409 require Time::Piece;
1410 scalar Time::Piece::gmtime (pop)
1411 },
1412
1413 2 => sub { # pos bigint
1414 require Math::BigInt;
1415 Math::BigInt->new ("0x" . unpack "H*", pop)
1416 },
1417
1418 3 => sub { # neg bigint
1419 require Math::BigInt;
1420 -Math::BigInt->new ("0x" . unpack "H*", pop)
1421 },
1422
1423 4 => sub { # decimal fraction, array
1424 require Math::BigFloat;
1425 Math::BigFloat->new ($_[1][1] . "E" . $_[1][0])
1426 },
1427
1428 264 => sub { # decimal fraction with arbitrary exponent
1429 require Math::BigFloat;
1430 Math::BigFloat->new ($_[1][1] . "E" . $_[1][0])
1431 },
1432
1433 5 => sub { # bigfloat, array
1434 require Math::BigFloat;
1435 scalar Math::BigFloat->new ($_[1][1]) * Math::BigFloat->new (2)->bpow ($_[1][0])
1436 },
1437
1438 265 => sub { # bigfloat with arbitrary exponent
1439 require Math::BigFloat;
1440 scalar Math::BigFloat->new ($_[1][1]) * Math::BigFloat->new (2)->bpow ($_[1][0])
1441 },
1442
1443 30 => sub { # rational number
1444 require Math::BigRat;
1445 Math::BigRat->new ("$_[1][0]/$_[1][1]") # separate parameters only work in recent versons
1446 },
1447
1448 21 => sub { pop }, # expected conversion to base64url encoding
1449 22 => sub { pop }, # expected conversion to base64 encoding
1450 23 => sub { pop }, # expected conversion to base16 encoding
1451
1452 # 24 # embedded cbor, byte string
1453
1454 32 => sub {
1455 require URI;
1456 URI->new (pop)
1457 },
1458
1459 # 33 # base64url rfc4648, utf-8
1460 # 34 # base64 rfc46484, utf-8
1461 # 35 # regex pcre/ecma262, utf-8
1462 # 36 # mime message rfc2045, utf-8
1463 );
1464
1465 sub default_filter {
1466 &{ $FILTER{$_[0]} or return }
1467 }
1468
1469 our %SAFE_FILTER = map { $_ => $FILTER{$_} } 0, 1, 21, 22, 23, 32;
1470
1471 sub safe_filter {
1472 &{ $SAFE_FILTER{$_[0]} or return }
1473 }
1474
1475 sub URI::TO_CBOR {
1476 my $uri = $_[0]->as_string;
1477 utf8::upgrade $uri;
1478 tag 32, $uri
1479 }
1480
1481 sub Math::BigInt::TO_CBOR {
1482 if (-2147483648 <= $_[0] && $_[0] <= 2147483647) {
1483 $_[0]->numify
1484 } else {
1485 my $hex = substr $_[0]->as_hex, 2;
1486 $hex = "0$hex" if 1 & length $hex; # sigh
1487 tag $_[0] >= 0 ? 2 : 3, pack "H*", $hex
1488 }
1489 }
1490
1491 sub Math::BigFloat::TO_CBOR {
1492 my ($m, $e) = $_[0]->parts;
1493
1494 -9223372036854775808 <= $e && $e <= 18446744073709551615
1495 ? tag 4, [$e->numify, $m]
1496 : tag 264, [$e, $m]
1497 }
1498
1499 sub Math::BigRat::TO_CBOR {
1500 my ($n, $d) = $_[0]->parts;
1501
1502 # older versions of BigRat need *1, as they not always return numbers
1503
1504 $d*1 == 1
1505 ? $n*1
1506 : tag 30, [$n*1, $d*1]
1507 }
1508
1509 sub Time::Piece::TO_CBOR {
1510 tag 1, 0 + $_[0]->epoch
1511 }
1512
1513 XSLoader::load "CBOR::XS", $VERSION;
1514
1515 =head1 SEE ALSO
1516
1517 The L<JSON> and L<JSON::XS> modules that do similar, but human-readable,
1518 serialisation.
1519
1520 The L<Types::Serialiser> module provides the data model for true, false
1521 and error values.
1522
1523 =head1 AUTHOR
1524
1525 Marc Lehmann <schmorp@schmorp.de>
1526 http://home.schmorp.de/
1527
1528 =cut
1529
1530 1
1531