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1.92 |
=head1 NAME |
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1.102 |
JSON::XS - JSON serialising/deserialising, done correctly and fast |
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1.84 |
=encoding utf-8 |
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1.62 |
JSON::XS - 正しくて高速な JSON シリアライザ/デシリアライザ |
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(http://fleur.hio.jp/perldoc/mix/lib/JSON/XS.html) |
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1.1 |
=head1 SYNOPSIS |
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use JSON::XS; |
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1.22 |
# exported functions, they croak on error |
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# and expect/generate UTF-8 |
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|
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$utf8_encoded_json_text = encode_json $perl_hash_or_arrayref; |
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$perl_hash_or_arrayref = decode_json $utf8_encoded_json_text; |
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1.12 |
|
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1.22 |
# OO-interface |
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1.12 |
|
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$coder = JSON::XS->new->ascii->pretty->allow_nonref; |
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$pretty_printed_unencoded = $coder->encode ($perl_scalar); |
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$perl_scalar = $coder->decode ($unicode_json_text); |
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1.77 |
# Note that JSON version 2.0 and above will automatically use JSON::XS |
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# if available, at virtually no speed overhead either, so you should |
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# be able to just: |
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use JSON; |
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# and do the same things, except that you have a pure-perl fallback now. |
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1.1 |
=head1 DESCRIPTION |
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This module converts Perl data structures to JSON and vice versa. Its |
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primary goal is to be I<correct> and its secondary goal is to be |
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I<fast>. To reach the latter goal it was written in C. |
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1.77 |
Beginning with version 2.0 of the JSON module, when both JSON and |
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JSON::XS are installed, then JSON will fall back on JSON::XS (this can be |
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1.105 |
overridden) with no overhead due to emulation (by inheriting constructor |
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1.77 |
and methods). If JSON::XS is not available, it will fall back to the |
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compatible JSON::PP module as backend, so using JSON instead of JSON::XS |
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gives you a portable JSON API that can be fast when you need and doesn't |
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require a C compiler when that is a problem. |
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1.2 |
As this is the n-th-something JSON module on CPAN, what was the reason |
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to write yet another JSON module? While it seems there are many JSON |
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modules, none of them correctly handle all corner cases, and in most cases |
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their maintainers are unresponsive, gone missing, or not listening to bug |
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reports for other reasons. |
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1.10 |
See MAPPING, below, on how JSON::XS maps perl values to JSON values and |
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vice versa. |
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1.2 |
=head2 FEATURES |
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1.1 |
=over 4 |
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=item * correct Unicode handling |
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1.2 |
|
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1.84 |
This module knows how to handle Unicode, documents how and when it does |
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so, and even documents what "correct" means. |
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1.2 |
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=item * round-trip integrity |
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1.105 |
When you serialise a perl data structure using only data types supported |
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by JSON and Perl, the deserialised data structure is identical on the Perl |
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level. (e.g. the string "2.0" doesn't suddenly become "2" just because |
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it looks like a number). There I<are> minor exceptions to this, read the |
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MAPPING section below to learn about those. |
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1.2 |
|
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=item * strict checking of JSON correctness |
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1.16 |
There is no guessing, no generating of illegal JSON texts by default, |
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1.10 |
and only JSON is accepted as input by default (the latter is a security |
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feature). |
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|
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=item * fast |
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1.84 |
Compared to other JSON modules and other serialisers such as Storable, |
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this module usually compares favourably in terms of speed, too. |
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1.2 |
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=item * simple to use |
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This module has both a simple functional interface as well as an object |
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1.140 |
oriented interface. |
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1.2 |
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=item * reasonably versatile output formats |
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1.84 |
You can choose between the most compact guaranteed-single-line format |
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1.105 |
possible (nice for simple line-based protocols), a pure-ASCII format |
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1.21 |
(for when your transport is not 8-bit clean, still supports the whole |
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1.68 |
Unicode range), or a pretty-printed format (for when you want to read that |
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1.21 |
stuff). Or you can combine those features in whatever way you like. |
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1.2 |
|
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=back |
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1.1 |
=cut |
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package JSON::XS; |
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1.121 |
use common::sense; |
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1.20 |
|
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our $VERSION = 3.01; |
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1.43 |
our @ISA = qw(Exporter); |
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1.1 |
|
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our @EXPORT = qw(encode_json decode_json); |
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1.1 |
|
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1.43 |
use Exporter; |
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use XSLoader; |
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1.1 |
|
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1.144 |
use Types::Serialiser (); |
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1.2 |
=head1 FUNCTIONAL INTERFACE |
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1.68 |
The following convenience methods are provided by this module. They are |
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1.2 |
exported by default: |
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=over 4 |
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1.78 |
=item $json_text = encode_json $perl_scalar |
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1.2 |
|
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1.63 |
Converts the given Perl data structure to a UTF-8 encoded, binary string |
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(that is, the string contains octets only). Croaks on error. |
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1.2 |
|
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1.16 |
This function call is functionally identical to: |
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1.2 |
|
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1.16 |
$json_text = JSON::XS->new->utf8->encode ($perl_scalar) |
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1.105 |
Except being faster. |
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1.16 |
|
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=item $perl_scalar = decode_json $json_text |
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1.2 |
|
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The opposite of C<encode_json>: expects an UTF-8 (binary) string and tries |
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1.63 |
to parse that as an UTF-8 encoded JSON text, returning the resulting |
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reference. Croaks on error. |
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1.2 |
|
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1.16 |
This function call is functionally identical to: |
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$perl_scalar = JSON::XS->new->utf8->decode ($json_text) |
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1.105 |
Except being faster. |
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1.2 |
|
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=back |
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1.23 |
|
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1.63 |
=head1 A FEW NOTES ON UNICODE AND PERL |
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Since this often leads to confusion, here are a few very clear words on |
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how Unicode works in Perl, modulo bugs. |
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=over 4 |
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=item 1. Perl strings can store characters with ordinal values > 255. |
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1.68 |
This enables you to store Unicode characters as single characters in a |
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1.63 |
Perl string - very natural. |
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=item 2. Perl does I<not> associate an encoding with your strings. |
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1.84 |
... until you force it to, e.g. when matching it against a regex, or |
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printing the scalar to a file, in which case Perl either interprets your |
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string as locale-encoded text, octets/binary, or as Unicode, depending |
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on various settings. In no case is an encoding stored together with your |
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data, it is I<use> that decides encoding, not any magical meta data. |
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1.63 |
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=item 3. The internal utf-8 flag has no meaning with regards to the |
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encoding of your string. |
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Just ignore that flag unless you debug a Perl bug, a module written in |
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XS or want to dive into the internals of perl. Otherwise it will only |
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confuse you, as, despite the name, it says nothing about how your string |
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1.68 |
is encoded. You can have Unicode strings with that flag set, with that |
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1.63 |
flag clear, and you can have binary data with that flag set and that flag |
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clear. Other possibilities exist, too. |
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If you didn't know about that flag, just the better, pretend it doesn't |
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exist. |
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=item 4. A "Unicode String" is simply a string where each character can be |
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1.105 |
validly interpreted as a Unicode code point. |
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1.63 |
|
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If you have UTF-8 encoded data, it is no longer a Unicode string, but a |
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Unicode string encoded in UTF-8, giving you a binary string. |
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=item 5. A string containing "high" (> 255) character values is I<not> a UTF-8 string. |
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1.68 |
It's a fact. Learn to live with it. |
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1.63 |
|
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=back |
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I hope this helps :) |
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1.2 |
=head1 OBJECT-ORIENTED INTERFACE |
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The object oriented interface lets you configure your own encoding or |
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decoding style, within the limits of supported formats. |
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=over 4 |
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=item $json = new JSON::XS |
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Creates a new JSON::XS object that can be used to de/encode JSON |
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strings. All boolean flags described below are by default I<disabled>. |
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1.1 |
|
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1.2 |
The mutators for flags all return the JSON object again and thus calls can |
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be chained: |
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1.16 |
my $json = JSON::XS->new->utf8->space_after->encode ({a => [1,2]}) |
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1.3 |
=> {"a": [1, 2]} |
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1.2 |
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1.7 |
=item $json = $json->ascii ([$enable]) |
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1.2 |
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1.72 |
=item $enabled = $json->get_ascii |
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1.16 |
If C<$enable> is true (or missing), then the C<encode> method will not |
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generate characters outside the code range C<0..127> (which is ASCII). Any |
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1.68 |
Unicode characters outside that range will be escaped using either a |
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1.16 |
single \uXXXX (BMP characters) or a double \uHHHH\uLLLLL escape sequence, |
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1.32 |
as per RFC4627. The resulting encoded JSON text can be treated as a native |
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1.68 |
Unicode string, an ascii-encoded, latin1-encoded or UTF-8 encoded string, |
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1.32 |
or any other superset of ASCII. |
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1.2 |
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If C<$enable> is false, then the C<encode> method will not escape Unicode |
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1.33 |
characters unless required by the JSON syntax or other flags. This results |
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in a faster and more compact format. |
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1.90 |
See also the section I<ENCODING/CODESET FLAG NOTES> later in this |
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document. |
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1.33 |
The main use for this flag is to produce JSON texts that can be |
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transmitted over a 7-bit channel, as the encoded JSON texts will not |
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contain any 8 bit characters. |
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1.2 |
|
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1.16 |
JSON::XS->new->ascii (1)->encode ([chr 0x10401]) |
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=> ["\ud801\udc01"] |
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1.3 |
|
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1.33 |
=item $json = $json->latin1 ([$enable]) |
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1.72 |
=item $enabled = $json->get_latin1 |
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1.33 |
If C<$enable> is true (or missing), then the C<encode> method will encode |
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the resulting JSON text as latin1 (or iso-8859-1), escaping any characters |
| 247 |
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outside the code range C<0..255>. The resulting string can be treated as a |
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1.68 |
latin1-encoded JSON text or a native Unicode string. The C<decode> method |
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1.33 |
will not be affected in any way by this flag, as C<decode> by default |
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1.68 |
expects Unicode, which is a strict superset of latin1. |
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1.33 |
|
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If C<$enable> is false, then the C<encode> method will not escape Unicode |
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characters unless required by the JSON syntax or other flags. |
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1.90 |
See also the section I<ENCODING/CODESET FLAG NOTES> later in this |
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document. |
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1.33 |
The main use for this flag is efficiently encoding binary data as JSON |
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text, as most octets will not be escaped, resulting in a smaller encoded |
| 260 |
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size. The disadvantage is that the resulting JSON text is encoded |
| 261 |
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in latin1 (and must correctly be treated as such when storing and |
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1.68 |
transferring), a rare encoding for JSON. It is therefore most useful when |
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1.33 |
you want to store data structures known to contain binary data efficiently |
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in files or databases, not when talking to other JSON encoders/decoders. |
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| 266 |
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JSON::XS->new->latin1->encode (["\x{89}\x{abc}"] |
| 267 |
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=> ["\x{89}\\u0abc"] # (perl syntax, U+abc escaped, U+89 not) |
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1.7 |
=item $json = $json->utf8 ([$enable]) |
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1.2 |
|
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1.72 |
=item $enabled = $json->get_utf8 |
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1.7 |
If C<$enable> is true (or missing), then the C<encode> method will encode |
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1.16 |
the JSON result into UTF-8, as required by many protocols, while the |
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1.7 |
C<decode> method expects to be handled an UTF-8-encoded string. Please |
| 276 |
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note that UTF-8-encoded strings do not contain any characters outside the |
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1.16 |
range C<0..255>, they are thus useful for bytewise/binary I/O. In future |
| 278 |
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versions, enabling this option might enable autodetection of the UTF-16 |
| 279 |
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and UTF-32 encoding families, as described in RFC4627. |
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1.2 |
|
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If C<$enable> is false, then the C<encode> method will return the JSON |
| 282 |
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1.68 |
string as a (non-encoded) Unicode string, while C<decode> expects thus a |
| 283 |
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Unicode string. Any decoding or encoding (e.g. to UTF-8 or UTF-16) needs |
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1.2 |
to be done yourself, e.g. using the Encode module. |
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|
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1.90 |
See also the section I<ENCODING/CODESET FLAG NOTES> later in this |
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document. |
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1.16 |
Example, output UTF-16BE-encoded JSON: |
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| 291 |
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use Encode; |
| 292 |
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$jsontext = encode "UTF-16BE", JSON::XS->new->encode ($object); |
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| 294 |
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Example, decode UTF-32LE-encoded JSON: |
| 295 |
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| 296 |
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use Encode; |
| 297 |
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$object = JSON::XS->new->decode (decode "UTF-32LE", $jsontext); |
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1.12 |
|
| 299 |
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1.7 |
=item $json = $json->pretty ([$enable]) |
| 300 |
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1.2 |
|
| 301 |
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This enables (or disables) all of the C<indent>, C<space_before> and |
| 302 |
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1.3 |
C<space_after> (and in the future possibly more) flags in one call to |
| 303 |
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1.2 |
generate the most readable (or most compact) form possible. |
| 304 |
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| 305 |
root |
1.12 |
Example, pretty-print some simple structure: |
| 306 |
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| 307 |
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1.3 |
my $json = JSON::XS->new->pretty(1)->encode ({a => [1,2]}) |
| 308 |
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=> |
| 309 |
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{ |
| 310 |
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"a" : [ |
| 311 |
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1, |
| 312 |
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2 |
| 313 |
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] |
| 314 |
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} |
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1.7 |
=item $json = $json->indent ([$enable]) |
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1.2 |
|
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1.72 |
=item $enabled = $json->get_indent |
| 319 |
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| 320 |
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1.7 |
If C<$enable> is true (or missing), then the C<encode> method will use a multiline |
| 321 |
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1.2 |
format as output, putting every array member or object/hash key-value pair |
| 322 |
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1.68 |
into its own line, indenting them properly. |
| 323 |
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1.2 |
|
| 324 |
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If C<$enable> is false, no newlines or indenting will be produced, and the |
| 325 |
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1.68 |
resulting JSON text is guaranteed not to contain any C<newlines>. |
| 326 |
root |
1.2 |
|
| 327 |
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1.16 |
This setting has no effect when decoding JSON texts. |
| 328 |
root |
1.2 |
|
| 329 |
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1.7 |
=item $json = $json->space_before ([$enable]) |
| 330 |
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1.2 |
|
| 331 |
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1.72 |
=item $enabled = $json->get_space_before |
| 332 |
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| 333 |
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1.7 |
If C<$enable> is true (or missing), then the C<encode> method will add an extra |
| 334 |
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1.2 |
optional space before the C<:> separating keys from values in JSON objects. |
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|
|
If C<$enable> is false, then the C<encode> method will not add any extra |
| 337 |
|
|
space at those places. |
| 338 |
|
|
|
| 339 |
root |
1.16 |
This setting has no effect when decoding JSON texts. You will also |
| 340 |
|
|
most likely combine this setting with C<space_after>. |
| 341 |
root |
1.2 |
|
| 342 |
root |
1.12 |
Example, space_before enabled, space_after and indent disabled: |
| 343 |
|
|
|
| 344 |
|
|
{"key" :"value"} |
| 345 |
|
|
|
| 346 |
root |
1.7 |
=item $json = $json->space_after ([$enable]) |
| 347 |
root |
1.2 |
|
| 348 |
root |
1.72 |
=item $enabled = $json->get_space_after |
| 349 |
|
|
|
| 350 |
root |
1.7 |
If C<$enable> is true (or missing), then the C<encode> method will add an extra |
| 351 |
root |
1.2 |
optional space after the C<:> separating keys from values in JSON objects |
| 352 |
|
|
and extra whitespace after the C<,> separating key-value pairs and array |
| 353 |
|
|
members. |
| 354 |
|
|
|
| 355 |
|
|
If C<$enable> is false, then the C<encode> method will not add any extra |
| 356 |
|
|
space at those places. |
| 357 |
|
|
|
| 358 |
root |
1.16 |
This setting has no effect when decoding JSON texts. |
| 359 |
root |
1.2 |
|
| 360 |
root |
1.12 |
Example, space_before and indent disabled, space_after enabled: |
| 361 |
|
|
|
| 362 |
|
|
{"key": "value"} |
| 363 |
|
|
|
| 364 |
root |
1.59 |
=item $json = $json->relaxed ([$enable]) |
| 365 |
|
|
|
| 366 |
root |
1.72 |
=item $enabled = $json->get_relaxed |
| 367 |
|
|
|
| 368 |
root |
1.59 |
If C<$enable> is true (or missing), then C<decode> will accept some |
| 369 |
|
|
extensions to normal JSON syntax (see below). C<encode> will not be |
| 370 |
|
|
affected in anyway. I<Be aware that this option makes you accept invalid |
| 371 |
|
|
JSON texts as if they were valid!>. I suggest only to use this option to |
| 372 |
|
|
parse application-specific files written by humans (configuration files, |
| 373 |
|
|
resource files etc.) |
| 374 |
|
|
|
| 375 |
|
|
If C<$enable> is false (the default), then C<decode> will only accept |
| 376 |
|
|
valid JSON texts. |
| 377 |
|
|
|
| 378 |
|
|
Currently accepted extensions are: |
| 379 |
|
|
|
| 380 |
|
|
=over 4 |
| 381 |
|
|
|
| 382 |
|
|
=item * list items can have an end-comma |
| 383 |
|
|
|
| 384 |
|
|
JSON I<separates> array elements and key-value pairs with commas. This |
| 385 |
|
|
can be annoying if you write JSON texts manually and want to be able to |
| 386 |
|
|
quickly append elements, so this extension accepts comma at the end of |
| 387 |
|
|
such items not just between them: |
| 388 |
|
|
|
| 389 |
|
|
[ |
| 390 |
|
|
1, |
| 391 |
|
|
2, <- this comma not normally allowed |
| 392 |
|
|
] |
| 393 |
|
|
{ |
| 394 |
|
|
"k1": "v1", |
| 395 |
|
|
"k2": "v2", <- this comma not normally allowed |
| 396 |
|
|
} |
| 397 |
|
|
|
| 398 |
root |
1.60 |
=item * shell-style '#'-comments |
| 399 |
|
|
|
| 400 |
|
|
Whenever JSON allows whitespace, shell-style comments are additionally |
| 401 |
|
|
allowed. They are terminated by the first carriage-return or line-feed |
| 402 |
|
|
character, after which more white-space and comments are allowed. |
| 403 |
|
|
|
| 404 |
|
|
[ |
| 405 |
|
|
1, # this comment not allowed in JSON |
| 406 |
|
|
# neither this one... |
| 407 |
|
|
] |
| 408 |
|
|
|
| 409 |
root |
1.59 |
=back |
| 410 |
|
|
|
| 411 |
root |
1.7 |
=item $json = $json->canonical ([$enable]) |
| 412 |
root |
1.2 |
|
| 413 |
root |
1.72 |
=item $enabled = $json->get_canonical |
| 414 |
|
|
|
| 415 |
root |
1.7 |
If C<$enable> is true (or missing), then the C<encode> method will output JSON objects |
| 416 |
root |
1.2 |
by sorting their keys. This is adding a comparatively high overhead. |
| 417 |
|
|
|
| 418 |
|
|
If C<$enable> is false, then the C<encode> method will output key-value |
| 419 |
|
|
pairs in the order Perl stores them (which will likely change between runs |
| 420 |
root |
1.139 |
of the same script, and can change even within the same run from 5.18 |
| 421 |
|
|
onwards). |
| 422 |
root |
1.2 |
|
| 423 |
|
|
This option is useful if you want the same data structure to be encoded as |
| 424 |
root |
1.16 |
the same JSON text (given the same overall settings). If it is disabled, |
| 425 |
root |
1.68 |
the same hash might be encoded differently even if contains the same data, |
| 426 |
root |
1.2 |
as key-value pairs have no inherent ordering in Perl. |
| 427 |
|
|
|
| 428 |
root |
1.16 |
This setting has no effect when decoding JSON texts. |
| 429 |
root |
1.2 |
|
| 430 |
root |
1.122 |
This setting has currently no effect on tied hashes. |
| 431 |
|
|
|
| 432 |
root |
1.7 |
=item $json = $json->allow_nonref ([$enable]) |
| 433 |
root |
1.3 |
|
| 434 |
root |
1.72 |
=item $enabled = $json->get_allow_nonref |
| 435 |
|
|
|
| 436 |
root |
1.7 |
If C<$enable> is true (or missing), then the C<encode> method can convert a |
| 437 |
root |
1.3 |
non-reference into its corresponding string, number or null JSON value, |
| 438 |
|
|
which is an extension to RFC4627. Likewise, C<decode> will accept those JSON |
| 439 |
|
|
values instead of croaking. |
| 440 |
|
|
|
| 441 |
|
|
If C<$enable> is false, then the C<encode> method will croak if it isn't |
| 442 |
root |
1.16 |
passed an arrayref or hashref, as JSON texts must either be an object |
| 443 |
root |
1.3 |
or array. Likewise, C<decode> will croak if given something that is not a |
| 444 |
|
|
JSON object or array. |
| 445 |
|
|
|
| 446 |
root |
1.12 |
Example, encode a Perl scalar as JSON value with enabled C<allow_nonref>, |
| 447 |
|
|
resulting in an invalid JSON text: |
| 448 |
|
|
|
| 449 |
|
|
JSON::XS->new->allow_nonref->encode ("Hello, World!") |
| 450 |
|
|
=> "Hello, World!" |
| 451 |
|
|
|
| 452 |
root |
1.99 |
=item $json = $json->allow_unknown ([$enable]) |
| 453 |
|
|
|
| 454 |
|
|
=item $enabled = $json->get_allow_unknown |
| 455 |
|
|
|
| 456 |
|
|
If C<$enable> is true (or missing), then C<encode> will I<not> throw an |
| 457 |
|
|
exception when it encounters values it cannot represent in JSON (for |
| 458 |
|
|
example, filehandles) but instead will encode a JSON C<null> value. Note |
| 459 |
|
|
that blessed objects are not included here and are handled separately by |
| 460 |
|
|
c<allow_nonref>. |
| 461 |
|
|
|
| 462 |
|
|
If C<$enable> is false (the default), then C<encode> will throw an |
| 463 |
|
|
exception when it encounters anything it cannot encode as JSON. |
| 464 |
|
|
|
| 465 |
|
|
This option does not affect C<decode> in any way, and it is recommended to |
| 466 |
|
|
leave it off unless you know your communications partner. |
| 467 |
|
|
|
| 468 |
root |
1.44 |
=item $json = $json->allow_blessed ([$enable]) |
| 469 |
|
|
|
| 470 |
root |
1.75 |
=item $enabled = $json->get_allow_blessed |
| 471 |
root |
1.72 |
|
| 472 |
root |
1.147 |
See L<OBJECT SERIALISATION> for details. |
| 473 |
root |
1.146 |
|
| 474 |
root |
1.44 |
If C<$enable> is true (or missing), then the C<encode> method will not |
| 475 |
root |
1.146 |
barf when it encounters a blessed reference that it cannot convert |
| 476 |
|
|
otherwise. Instead, a JSON C<null> value is encoded instead of the object. |
| 477 |
root |
1.44 |
|
| 478 |
|
|
If C<$enable> is false (the default), then C<encode> will throw an |
| 479 |
root |
1.146 |
exception when it encounters a blessed object that it cannot convert |
| 480 |
|
|
otherwise. |
| 481 |
|
|
|
| 482 |
|
|
This setting has no effect on C<decode>. |
| 483 |
root |
1.44 |
|
| 484 |
|
|
=item $json = $json->convert_blessed ([$enable]) |
| 485 |
|
|
|
| 486 |
root |
1.72 |
=item $enabled = $json->get_convert_blessed |
| 487 |
|
|
|
| 488 |
root |
1.148 |
See L<OBJECT SERIALISATION> for details. |
| 489 |
root |
1.146 |
|
| 490 |
root |
1.44 |
If C<$enable> is true (or missing), then C<encode>, upon encountering a |
| 491 |
|
|
blessed object, will check for the availability of the C<TO_JSON> method |
| 492 |
root |
1.146 |
on the object's class. If found, it will be called in scalar context and |
| 493 |
|
|
the resulting scalar will be encoded instead of the object. |
| 494 |
root |
1.44 |
|
| 495 |
|
|
The C<TO_JSON> method may safely call die if it wants. If C<TO_JSON> |
| 496 |
|
|
returns other blessed objects, those will be handled in the same |
| 497 |
|
|
way. C<TO_JSON> must take care of not causing an endless recursion cycle |
| 498 |
|
|
(== crash) in this case. The name of C<TO_JSON> was chosen because other |
| 499 |
root |
1.46 |
methods called by the Perl core (== not by the user of the object) are |
| 500 |
root |
1.78 |
usually in upper case letters and to avoid collisions with any C<to_json> |
| 501 |
|
|
function or method. |
| 502 |
root |
1.44 |
|
| 503 |
root |
1.146 |
If C<$enable> is false (the default), then C<encode> will not consider |
| 504 |
|
|
this type of conversion. |
| 505 |
|
|
|
| 506 |
|
|
This setting has no effect on C<decode>. |
| 507 |
root |
1.45 |
|
| 508 |
root |
1.146 |
=item $json = $json->allow_tags ([$enable]) |
| 509 |
|
|
|
| 510 |
|
|
=item $enabled = $json->allow_tags |
| 511 |
|
|
|
| 512 |
root |
1.148 |
See L<OBJECT SERIALISATION> for details. |
| 513 |
root |
1.146 |
|
| 514 |
|
|
If C<$enable> is true (or missing), then C<encode>, upon encountering a |
| 515 |
|
|
blessed object, will check for the availability of the C<FREEZE> method on |
| 516 |
|
|
the object's class. If found, it will be used to serialise the object into |
| 517 |
|
|
a nonstandard tagged JSON value (that JSON decoders cannot decode). |
| 518 |
|
|
|
| 519 |
|
|
It also causes C<decode> to parse such tagged JSON values and deserialise |
| 520 |
|
|
them via a call to the C<THAW> method. |
| 521 |
|
|
|
| 522 |
|
|
If C<$enable> is false (the default), then C<encode> will not consider |
| 523 |
|
|
this type of conversion, and tagged JSON values will cause a parse error |
| 524 |
|
|
in C<decode>, as if tags were not part of the grammar. |
| 525 |
root |
1.44 |
|
| 526 |
root |
1.52 |
=item $json = $json->filter_json_object ([$coderef->($hashref)]) |
| 527 |
root |
1.51 |
|
| 528 |
|
|
When C<$coderef> is specified, it will be called from C<decode> each |
| 529 |
|
|
time it decodes a JSON object. The only argument is a reference to the |
| 530 |
|
|
newly-created hash. If the code references returns a single scalar (which |
| 531 |
|
|
need not be a reference), this value (i.e. a copy of that scalar to avoid |
| 532 |
|
|
aliasing) is inserted into the deserialised data structure. If it returns |
| 533 |
|
|
an empty list (NOTE: I<not> C<undef>, which is a valid scalar), the |
| 534 |
|
|
original deserialised hash will be inserted. This setting can slow down |
| 535 |
|
|
decoding considerably. |
| 536 |
|
|
|
| 537 |
root |
1.52 |
When C<$coderef> is omitted or undefined, any existing callback will |
| 538 |
|
|
be removed and C<decode> will not change the deserialised hash in any |
| 539 |
|
|
way. |
| 540 |
root |
1.51 |
|
| 541 |
|
|
Example, convert all JSON objects into the integer 5: |
| 542 |
|
|
|
| 543 |
|
|
my $js = JSON::XS->new->filter_json_object (sub { 5 }); |
| 544 |
|
|
# returns [5] |
| 545 |
|
|
$js->decode ('[{}]') |
| 546 |
root |
1.52 |
# throw an exception because allow_nonref is not enabled |
| 547 |
|
|
# so a lone 5 is not allowed. |
| 548 |
root |
1.51 |
$js->decode ('{"a":1, "b":2}'); |
| 549 |
|
|
|
| 550 |
root |
1.52 |
=item $json = $json->filter_json_single_key_object ($key [=> $coderef->($value)]) |
| 551 |
root |
1.51 |
|
| 552 |
root |
1.52 |
Works remotely similar to C<filter_json_object>, but is only called for |
| 553 |
|
|
JSON objects having a single key named C<$key>. |
| 554 |
root |
1.51 |
|
| 555 |
|
|
This C<$coderef> is called before the one specified via |
| 556 |
root |
1.52 |
C<filter_json_object>, if any. It gets passed the single value in the JSON |
| 557 |
|
|
object. If it returns a single value, it will be inserted into the data |
| 558 |
|
|
structure. If it returns nothing (not even C<undef> but the empty list), |
| 559 |
|
|
the callback from C<filter_json_object> will be called next, as if no |
| 560 |
|
|
single-key callback were specified. |
| 561 |
|
|
|
| 562 |
|
|
If C<$coderef> is omitted or undefined, the corresponding callback will be |
| 563 |
|
|
disabled. There can only ever be one callback for a given key. |
| 564 |
root |
1.51 |
|
| 565 |
|
|
As this callback gets called less often then the C<filter_json_object> |
| 566 |
|
|
one, decoding speed will not usually suffer as much. Therefore, single-key |
| 567 |
|
|
objects make excellent targets to serialise Perl objects into, especially |
| 568 |
|
|
as single-key JSON objects are as close to the type-tagged value concept |
| 569 |
root |
1.68 |
as JSON gets (it's basically an ID/VALUE tuple). Of course, JSON does not |
| 570 |
root |
1.51 |
support this in any way, so you need to make sure your data never looks |
| 571 |
|
|
like a serialised Perl hash. |
| 572 |
|
|
|
| 573 |
|
|
Typical names for the single object key are C<__class_whatever__>, or |
| 574 |
|
|
C<$__dollars_are_rarely_used__$> or C<}ugly_brace_placement>, or even |
| 575 |
|
|
things like C<__class_md5sum(classname)__>, to reduce the risk of clashing |
| 576 |
|
|
with real hashes. |
| 577 |
|
|
|
| 578 |
|
|
Example, decode JSON objects of the form C<< { "__widget__" => <id> } >> |
| 579 |
|
|
into the corresponding C<< $WIDGET{<id>} >> object: |
| 580 |
|
|
|
| 581 |
|
|
# return whatever is in $WIDGET{5}: |
| 582 |
|
|
JSON::XS |
| 583 |
|
|
->new |
| 584 |
root |
1.52 |
->filter_json_single_key_object (__widget__ => sub { |
| 585 |
|
|
$WIDGET{ $_[0] } |
| 586 |
root |
1.51 |
}) |
| 587 |
|
|
->decode ('{"__widget__": 5') |
| 588 |
|
|
|
| 589 |
|
|
# this can be used with a TO_JSON method in some "widget" class |
| 590 |
|
|
# for serialisation to json: |
| 591 |
|
|
sub WidgetBase::TO_JSON { |
| 592 |
|
|
my ($self) = @_; |
| 593 |
|
|
|
| 594 |
|
|
unless ($self->{id}) { |
| 595 |
|
|
$self->{id} = ..get..some..id..; |
| 596 |
|
|
$WIDGET{$self->{id}} = $self; |
| 597 |
|
|
} |
| 598 |
|
|
|
| 599 |
|
|
{ __widget__ => $self->{id} } |
| 600 |
|
|
} |
| 601 |
|
|
|
| 602 |
root |
1.7 |
=item $json = $json->shrink ([$enable]) |
| 603 |
|
|
|
| 604 |
root |
1.72 |
=item $enabled = $json->get_shrink |
| 605 |
|
|
|
| 606 |
root |
1.7 |
Perl usually over-allocates memory a bit when allocating space for |
| 607 |
root |
1.24 |
strings. This flag optionally resizes strings generated by either |
| 608 |
root |
1.7 |
C<encode> or C<decode> to their minimum size possible. This can save |
| 609 |
root |
1.16 |
memory when your JSON texts are either very very long or you have many |
| 610 |
root |
1.8 |
short strings. It will also try to downgrade any strings to octet-form |
| 611 |
|
|
if possible: perl stores strings internally either in an encoding called |
| 612 |
|
|
UTF-X or in octet-form. The latter cannot store everything but uses less |
| 613 |
root |
1.24 |
space in general (and some buggy Perl or C code might even rely on that |
| 614 |
|
|
internal representation being used). |
| 615 |
root |
1.7 |
|
| 616 |
root |
1.24 |
The actual definition of what shrink does might change in future versions, |
| 617 |
|
|
but it will always try to save space at the expense of time. |
| 618 |
|
|
|
| 619 |
|
|
If C<$enable> is true (or missing), the string returned by C<encode> will |
| 620 |
|
|
be shrunk-to-fit, while all strings generated by C<decode> will also be |
| 621 |
|
|
shrunk-to-fit. |
| 622 |
root |
1.7 |
|
| 623 |
|
|
If C<$enable> is false, then the normal perl allocation algorithms are used. |
| 624 |
|
|
If you work with your data, then this is likely to be faster. |
| 625 |
|
|
|
| 626 |
|
|
In the future, this setting might control other things, such as converting |
| 627 |
|
|
strings that look like integers or floats into integers or floats |
| 628 |
|
|
internally (there is no difference on the Perl level), saving space. |
| 629 |
|
|
|
| 630 |
root |
1.23 |
=item $json = $json->max_depth ([$maximum_nesting_depth]) |
| 631 |
|
|
|
| 632 |
root |
1.72 |
=item $max_depth = $json->get_max_depth |
| 633 |
|
|
|
| 634 |
root |
1.28 |
Sets the maximum nesting level (default C<512>) accepted while encoding |
| 635 |
root |
1.101 |
or decoding. If a higher nesting level is detected in JSON text or a Perl |
| 636 |
|
|
data structure, then the encoder and decoder will stop and croak at that |
| 637 |
|
|
point. |
| 638 |
root |
1.23 |
|
| 639 |
|
|
Nesting level is defined by number of hash- or arrayrefs that the encoder |
| 640 |
|
|
needs to traverse to reach a given point or the number of C<{> or C<[> |
| 641 |
|
|
characters without their matching closing parenthesis crossed to reach a |
| 642 |
|
|
given character in a string. |
| 643 |
|
|
|
| 644 |
|
|
Setting the maximum depth to one disallows any nesting, so that ensures |
| 645 |
|
|
that the object is only a single hash/object or array. |
| 646 |
|
|
|
| 647 |
root |
1.101 |
If no argument is given, the highest possible setting will be used, which |
| 648 |
|
|
is rarely useful. |
| 649 |
|
|
|
| 650 |
|
|
Note that nesting is implemented by recursion in C. The default value has |
| 651 |
|
|
been chosen to be as large as typical operating systems allow without |
| 652 |
|
|
crashing. |
| 653 |
root |
1.47 |
|
| 654 |
|
|
See SECURITY CONSIDERATIONS, below, for more info on why this is useful. |
| 655 |
|
|
|
| 656 |
|
|
=item $json = $json->max_size ([$maximum_string_size]) |
| 657 |
|
|
|
| 658 |
root |
1.72 |
=item $max_size = $json->get_max_size |
| 659 |
|
|
|
| 660 |
root |
1.47 |
Set the maximum length a JSON text may have (in bytes) where decoding is |
| 661 |
|
|
being attempted. The default is C<0>, meaning no limit. When C<decode> |
| 662 |
root |
1.101 |
is called on a string that is longer then this many bytes, it will not |
| 663 |
root |
1.47 |
attempt to decode the string but throw an exception. This setting has no |
| 664 |
|
|
effect on C<encode> (yet). |
| 665 |
|
|
|
| 666 |
root |
1.101 |
If no argument is given, the limit check will be deactivated (same as when |
| 667 |
|
|
C<0> is specified). |
| 668 |
root |
1.23 |
|
| 669 |
|
|
See SECURITY CONSIDERATIONS, below, for more info on why this is useful. |
| 670 |
|
|
|
| 671 |
root |
1.16 |
=item $json_text = $json->encode ($perl_scalar) |
| 672 |
root |
1.2 |
|
| 673 |
root |
1.141 |
Converts the given Perl value or data structure to its JSON |
| 674 |
|
|
representation. Croaks on error. |
| 675 |
root |
1.1 |
|
| 676 |
root |
1.16 |
=item $perl_scalar = $json->decode ($json_text) |
| 677 |
root |
1.1 |
|
| 678 |
root |
1.16 |
The opposite of C<encode>: expects a JSON text and tries to parse it, |
| 679 |
root |
1.2 |
returning the resulting simple scalar or reference. Croaks on error. |
| 680 |
root |
1.1 |
|
| 681 |
root |
1.34 |
=item ($perl_scalar, $characters) = $json->decode_prefix ($json_text) |
| 682 |
|
|
|
| 683 |
|
|
This works like the C<decode> method, but instead of raising an exception |
| 684 |
|
|
when there is trailing garbage after the first JSON object, it will |
| 685 |
|
|
silently stop parsing there and return the number of characters consumed |
| 686 |
|
|
so far. |
| 687 |
|
|
|
| 688 |
|
|
This is useful if your JSON texts are not delimited by an outer protocol |
| 689 |
root |
1.143 |
and you need to know where the JSON text ends. |
| 690 |
root |
1.34 |
|
| 691 |
|
|
JSON::XS->new->decode_prefix ("[1] the tail") |
| 692 |
|
|
=> ([], 3) |
| 693 |
|
|
|
| 694 |
root |
1.1 |
=back |
| 695 |
|
|
|
| 696 |
root |
1.23 |
|
| 697 |
root |
1.94 |
=head1 INCREMENTAL PARSING |
| 698 |
|
|
|
| 699 |
|
|
In some cases, there is the need for incremental parsing of JSON |
| 700 |
|
|
texts. While this module always has to keep both JSON text and resulting |
| 701 |
|
|
Perl data structure in memory at one time, it does allow you to parse a |
| 702 |
|
|
JSON stream incrementally. It does so by accumulating text until it has |
| 703 |
|
|
a full JSON object, which it then can decode. This process is similar to |
| 704 |
root |
1.108 |
using C<decode_prefix> to see if a full JSON object is available, but |
| 705 |
|
|
is much more efficient (and can be implemented with a minimum of method |
| 706 |
|
|
calls). |
| 707 |
|
|
|
| 708 |
|
|
JSON::XS will only attempt to parse the JSON text once it is sure it |
| 709 |
|
|
has enough text to get a decisive result, using a very simple but |
| 710 |
|
|
truly incremental parser. This means that it sometimes won't stop as |
| 711 |
root |
1.134 |
early as the full parser, for example, it doesn't detect mismatched |
| 712 |
|
|
parentheses. The only thing it guarantees is that it starts decoding as |
| 713 |
root |
1.108 |
soon as a syntactically valid JSON text has been seen. This means you need |
| 714 |
|
|
to set resource limits (e.g. C<max_size>) to ensure the parser will stop |
| 715 |
|
|
parsing in the presence if syntax errors. |
| 716 |
root |
1.94 |
|
| 717 |
root |
1.108 |
The following methods implement this incremental parser. |
| 718 |
root |
1.94 |
|
| 719 |
|
|
=over 4 |
| 720 |
|
|
|
| 721 |
|
|
=item [void, scalar or list context] = $json->incr_parse ([$string]) |
| 722 |
|
|
|
| 723 |
|
|
This is the central parsing function. It can both append new text and |
| 724 |
|
|
extract objects from the stream accumulated so far (both of these |
| 725 |
|
|
functions are optional). |
| 726 |
|
|
|
| 727 |
|
|
If C<$string> is given, then this string is appended to the already |
| 728 |
|
|
existing JSON fragment stored in the C<$json> object. |
| 729 |
|
|
|
| 730 |
|
|
After that, if the function is called in void context, it will simply |
| 731 |
|
|
return without doing anything further. This can be used to add more text |
| 732 |
|
|
in as many chunks as you want. |
| 733 |
|
|
|
| 734 |
|
|
If the method is called in scalar context, then it will try to extract |
| 735 |
|
|
exactly I<one> JSON object. If that is successful, it will return this |
| 736 |
root |
1.96 |
object, otherwise it will return C<undef>. If there is a parse error, |
| 737 |
|
|
this method will croak just as C<decode> would do (one can then use |
| 738 |
root |
1.140 |
C<incr_skip> to skip the erroneous part). This is the most common way of |
| 739 |
root |
1.94 |
using the method. |
| 740 |
|
|
|
| 741 |
|
|
And finally, in list context, it will try to extract as many objects |
| 742 |
|
|
from the stream as it can find and return them, or the empty list |
| 743 |
|
|
otherwise. For this to work, there must be no separators between the JSON |
| 744 |
root |
1.96 |
objects or arrays, instead they must be concatenated back-to-back. If |
| 745 |
|
|
an error occurs, an exception will be raised as in the scalar context |
| 746 |
|
|
case. Note that in this case, any previously-parsed JSON texts will be |
| 747 |
|
|
lost. |
| 748 |
|
|
|
| 749 |
root |
1.130 |
Example: Parse some JSON arrays/objects in a given string and return |
| 750 |
|
|
them. |
| 751 |
|
|
|
| 752 |
|
|
my @objs = JSON::XS->new->incr_parse ("[5][7][1,2]"); |
| 753 |
|
|
|
| 754 |
root |
1.94 |
=item $lvalue_string = $json->incr_text |
| 755 |
|
|
|
| 756 |
|
|
This method returns the currently stored JSON fragment as an lvalue, that |
| 757 |
|
|
is, you can manipulate it. This I<only> works when a preceding call to |
| 758 |
|
|
C<incr_parse> in I<scalar context> successfully returned an object. Under |
| 759 |
|
|
all other circumstances you must not call this function (I mean it. |
| 760 |
|
|
although in simple tests it might actually work, it I<will> fail under |
| 761 |
|
|
real world conditions). As a special exception, you can also call this |
| 762 |
|
|
method before having parsed anything. |
| 763 |
|
|
|
| 764 |
|
|
This function is useful in two cases: a) finding the trailing text after a |
| 765 |
|
|
JSON object or b) parsing multiple JSON objects separated by non-JSON text |
| 766 |
|
|
(such as commas). |
| 767 |
|
|
|
| 768 |
root |
1.97 |
=item $json->incr_skip |
| 769 |
|
|
|
| 770 |
root |
1.114 |
This will reset the state of the incremental parser and will remove |
| 771 |
|
|
the parsed text from the input buffer so far. This is useful after |
| 772 |
|
|
C<incr_parse> died, in which case the input buffer and incremental parser |
| 773 |
|
|
state is left unchanged, to skip the text parsed so far and to reset the |
| 774 |
|
|
parse state. |
| 775 |
|
|
|
| 776 |
|
|
The difference to C<incr_reset> is that only text until the parse error |
| 777 |
root |
1.140 |
occurred is removed. |
| 778 |
root |
1.97 |
|
| 779 |
root |
1.106 |
=item $json->incr_reset |
| 780 |
|
|
|
| 781 |
|
|
This completely resets the incremental parser, that is, after this call, |
| 782 |
|
|
it will be as if the parser had never parsed anything. |
| 783 |
|
|
|
| 784 |
root |
1.114 |
This is useful if you want to repeatedly parse JSON objects and want to |
| 785 |
root |
1.106 |
ignore any trailing data, which means you have to reset the parser after |
| 786 |
|
|
each successful decode. |
| 787 |
|
|
|
| 788 |
root |
1.94 |
=back |
| 789 |
|
|
|
| 790 |
|
|
=head2 LIMITATIONS |
| 791 |
|
|
|
| 792 |
|
|
All options that affect decoding are supported, except |
| 793 |
root |
1.143 |
C<allow_nonref>. The reason for this is that it cannot be made to work |
| 794 |
|
|
sensibly: JSON objects and arrays are self-delimited, i.e. you can |
| 795 |
|
|
concatenate them back to back and still decode them perfectly. This does |
| 796 |
|
|
not hold true for JSON numbers, however. |
| 797 |
root |
1.94 |
|
| 798 |
|
|
For example, is the string C<1> a single JSON number, or is it simply the |
| 799 |
|
|
start of C<12>? Or is C<12> a single JSON number, or the concatenation |
| 800 |
|
|
of C<1> and C<2>? In neither case you can tell, and this is why JSON::XS |
| 801 |
|
|
takes the conservative route and disallows this case. |
| 802 |
|
|
|
| 803 |
|
|
=head2 EXAMPLES |
| 804 |
|
|
|
| 805 |
|
|
Some examples will make all this clearer. First, a simple example that |
| 806 |
|
|
works similarly to C<decode_prefix>: We want to decode the JSON object at |
| 807 |
|
|
the start of a string and identify the portion after the JSON object: |
| 808 |
|
|
|
| 809 |
|
|
my $text = "[1,2,3] hello"; |
| 810 |
|
|
|
| 811 |
|
|
my $json = new JSON::XS; |
| 812 |
|
|
|
| 813 |
|
|
my $obj = $json->incr_parse ($text) |
| 814 |
|
|
or die "expected JSON object or array at beginning of string"; |
| 815 |
|
|
|
| 816 |
|
|
my $tail = $json->incr_text; |
| 817 |
|
|
# $tail now contains " hello" |
| 818 |
|
|
|
| 819 |
|
|
Easy, isn't it? |
| 820 |
|
|
|
| 821 |
|
|
Now for a more complicated example: Imagine a hypothetical protocol where |
| 822 |
|
|
you read some requests from a TCP stream, and each request is a JSON |
| 823 |
|
|
array, without any separation between them (in fact, it is often useful to |
| 824 |
|
|
use newlines as "separators", as these get interpreted as whitespace at |
| 825 |
|
|
the start of the JSON text, which makes it possible to test said protocol |
| 826 |
|
|
with C<telnet>...). |
| 827 |
|
|
|
| 828 |
|
|
Here is how you'd do it (it is trivial to write this in an event-based |
| 829 |
|
|
manner): |
| 830 |
|
|
|
| 831 |
|
|
my $json = new JSON::XS; |
| 832 |
|
|
|
| 833 |
|
|
# read some data from the socket |
| 834 |
|
|
while (sysread $socket, my $buf, 4096) { |
| 835 |
|
|
|
| 836 |
|
|
# split and decode as many requests as possible |
| 837 |
|
|
for my $request ($json->incr_parse ($buf)) { |
| 838 |
|
|
# act on the $request |
| 839 |
|
|
} |
| 840 |
|
|
} |
| 841 |
|
|
|
| 842 |
|
|
Another complicated example: Assume you have a string with JSON objects |
| 843 |
|
|
or arrays, all separated by (optional) comma characters (e.g. C<[1],[2], |
| 844 |
|
|
[3]>). To parse them, we have to skip the commas between the JSON texts, |
| 845 |
|
|
and here is where the lvalue-ness of C<incr_text> comes in useful: |
| 846 |
|
|
|
| 847 |
|
|
my $text = "[1],[2], [3]"; |
| 848 |
|
|
my $json = new JSON::XS; |
| 849 |
|
|
|
| 850 |
|
|
# void context, so no parsing done |
| 851 |
|
|
$json->incr_parse ($text); |
| 852 |
|
|
|
| 853 |
|
|
# now extract as many objects as possible. note the |
| 854 |
|
|
# use of scalar context so incr_text can be called. |
| 855 |
|
|
while (my $obj = $json->incr_parse) { |
| 856 |
|
|
# do something with $obj |
| 857 |
|
|
|
| 858 |
|
|
# now skip the optional comma |
| 859 |
|
|
$json->incr_text =~ s/^ \s* , //x; |
| 860 |
|
|
} |
| 861 |
|
|
|
| 862 |
|
|
Now lets go for a very complex example: Assume that you have a gigantic |
| 863 |
|
|
JSON array-of-objects, many gigabytes in size, and you want to parse it, |
| 864 |
|
|
but you cannot load it into memory fully (this has actually happened in |
| 865 |
|
|
the real world :). |
| 866 |
|
|
|
| 867 |
|
|
Well, you lost, you have to implement your own JSON parser. But JSON::XS |
| 868 |
|
|
can still help you: You implement a (very simple) array parser and let |
| 869 |
|
|
JSON decode the array elements, which are all full JSON objects on their |
| 870 |
|
|
own (this wouldn't work if the array elements could be JSON numbers, for |
| 871 |
|
|
example): |
| 872 |
|
|
|
| 873 |
|
|
my $json = new JSON::XS; |
| 874 |
|
|
|
| 875 |
|
|
# open the monster |
| 876 |
|
|
open my $fh, "<bigfile.json" |
| 877 |
|
|
or die "bigfile: $!"; |
| 878 |
|
|
|
| 879 |
|
|
# first parse the initial "[" |
| 880 |
|
|
for (;;) { |
| 881 |
|
|
sysread $fh, my $buf, 65536 |
| 882 |
|
|
or die "read error: $!"; |
| 883 |
|
|
$json->incr_parse ($buf); # void context, so no parsing |
| 884 |
|
|
|
| 885 |
|
|
# Exit the loop once we found and removed(!) the initial "[". |
| 886 |
|
|
# In essence, we are (ab-)using the $json object as a simple scalar |
| 887 |
|
|
# we append data to. |
| 888 |
|
|
last if $json->incr_text =~ s/^ \s* \[ //x; |
| 889 |
|
|
} |
| 890 |
|
|
|
| 891 |
|
|
# now we have the skipped the initial "[", so continue |
| 892 |
|
|
# parsing all the elements. |
| 893 |
|
|
for (;;) { |
| 894 |
|
|
# in this loop we read data until we got a single JSON object |
| 895 |
|
|
for (;;) { |
| 896 |
|
|
if (my $obj = $json->incr_parse) { |
| 897 |
|
|
# do something with $obj |
| 898 |
|
|
last; |
| 899 |
|
|
} |
| 900 |
|
|
|
| 901 |
|
|
# add more data |
| 902 |
|
|
sysread $fh, my $buf, 65536 |
| 903 |
|
|
or die "read error: $!"; |
| 904 |
|
|
$json->incr_parse ($buf); # void context, so no parsing |
| 905 |
|
|
} |
| 906 |
|
|
|
| 907 |
|
|
# in this loop we read data until we either found and parsed the |
| 908 |
|
|
# separating "," between elements, or the final "]" |
| 909 |
|
|
for (;;) { |
| 910 |
|
|
# first skip whitespace |
| 911 |
|
|
$json->incr_text =~ s/^\s*//; |
| 912 |
|
|
|
| 913 |
|
|
# if we find "]", we are done |
| 914 |
|
|
if ($json->incr_text =~ s/^\]//) { |
| 915 |
|
|
print "finished.\n"; |
| 916 |
|
|
exit; |
| 917 |
|
|
} |
| 918 |
|
|
|
| 919 |
|
|
# if we find ",", we can continue with the next element |
| 920 |
|
|
if ($json->incr_text =~ s/^,//) { |
| 921 |
|
|
last; |
| 922 |
|
|
} |
| 923 |
|
|
|
| 924 |
|
|
# if we find anything else, we have a parse error! |
| 925 |
|
|
if (length $json->incr_text) { |
| 926 |
|
|
die "parse error near ", $json->incr_text; |
| 927 |
|
|
} |
| 928 |
|
|
|
| 929 |
|
|
# else add more data |
| 930 |
|
|
sysread $fh, my $buf, 65536 |
| 931 |
|
|
or die "read error: $!"; |
| 932 |
|
|
$json->incr_parse ($buf); # void context, so no parsing |
| 933 |
|
|
} |
| 934 |
|
|
|
| 935 |
|
|
This is a complex example, but most of the complexity comes from the fact |
| 936 |
|
|
that we are trying to be correct (bear with me if I am wrong, I never ran |
| 937 |
|
|
the above example :). |
| 938 |
|
|
|
| 939 |
|
|
|
| 940 |
|
|
|
| 941 |
root |
1.10 |
=head1 MAPPING |
| 942 |
|
|
|
| 943 |
|
|
This section describes how JSON::XS maps Perl values to JSON values and |
| 944 |
|
|
vice versa. These mappings are designed to "do the right thing" in most |
| 945 |
|
|
circumstances automatically, preserving round-tripping characteristics |
| 946 |
|
|
(what you put in comes out as something equivalent). |
| 947 |
|
|
|
| 948 |
|
|
For the more enlightened: note that in the following descriptions, |
| 949 |
root |
1.68 |
lowercase I<perl> refers to the Perl interpreter, while uppercase I<Perl> |
| 950 |
root |
1.10 |
refers to the abstract Perl language itself. |
| 951 |
|
|
|
| 952 |
root |
1.39 |
|
| 953 |
root |
1.10 |
=head2 JSON -> PERL |
| 954 |
|
|
|
| 955 |
|
|
=over 4 |
| 956 |
|
|
|
| 957 |
|
|
=item object |
| 958 |
|
|
|
| 959 |
|
|
A JSON object becomes a reference to a hash in Perl. No ordering of object |
| 960 |
root |
1.68 |
keys is preserved (JSON does not preserve object key ordering itself). |
| 961 |
root |
1.10 |
|
| 962 |
|
|
=item array |
| 963 |
|
|
|
| 964 |
|
|
A JSON array becomes a reference to an array in Perl. |
| 965 |
|
|
|
| 966 |
|
|
=item string |
| 967 |
|
|
|
| 968 |
|
|
A JSON string becomes a string scalar in Perl - Unicode codepoints in JSON |
| 969 |
|
|
are represented by the same codepoints in the Perl string, so no manual |
| 970 |
|
|
decoding is necessary. |
| 971 |
|
|
|
| 972 |
|
|
=item number |
| 973 |
|
|
|
| 974 |
root |
1.56 |
A JSON number becomes either an integer, numeric (floating point) or |
| 975 |
|
|
string scalar in perl, depending on its range and any fractional parts. On |
| 976 |
|
|
the Perl level, there is no difference between those as Perl handles all |
| 977 |
|
|
the conversion details, but an integer may take slightly less memory and |
| 978 |
root |
1.84 |
might represent more values exactly than floating point numbers. |
| 979 |
root |
1.56 |
|
| 980 |
|
|
If the number consists of digits only, JSON::XS will try to represent |
| 981 |
|
|
it as an integer value. If that fails, it will try to represent it as |
| 982 |
|
|
a numeric (floating point) value if that is possible without loss of |
| 983 |
root |
1.84 |
precision. Otherwise it will preserve the number as a string value (in |
| 984 |
|
|
which case you lose roundtripping ability, as the JSON number will be |
| 985 |
root |
1.140 |
re-encoded to a JSON string). |
| 986 |
root |
1.56 |
|
| 987 |
|
|
Numbers containing a fractional or exponential part will always be |
| 988 |
|
|
represented as numeric (floating point) values, possibly at a loss of |
| 989 |
root |
1.84 |
precision (in which case you might lose perfect roundtripping ability, but |
| 990 |
|
|
the JSON number will still be re-encoded as a JSON number). |
| 991 |
root |
1.10 |
|
| 992 |
root |
1.131 |
Note that precision is not accuracy - binary floating point values cannot |
| 993 |
|
|
represent most decimal fractions exactly, and when converting from and to |
| 994 |
|
|
floating point, JSON::XS only guarantees precision up to but not including |
| 995 |
root |
1.140 |
the least significant bit. |
| 996 |
root |
1.131 |
|
| 997 |
root |
1.10 |
=item true, false |
| 998 |
|
|
|
| 999 |
root |
1.144 |
These JSON atoms become C<Types::Serialiser::true> and |
| 1000 |
|
|
C<Types::Serialiser::false>, respectively. They are overloaded to act |
| 1001 |
|
|
almost exactly like the numbers C<1> and C<0>. You can check whether |
| 1002 |
|
|
a scalar is a JSON boolean by using the C<Types::Serialiser::is_bool> |
| 1003 |
|
|
function (after C<use Types::Serialier>, of course). |
| 1004 |
root |
1.10 |
|
| 1005 |
|
|
=item null |
| 1006 |
|
|
|
| 1007 |
|
|
A JSON null atom becomes C<undef> in Perl. |
| 1008 |
|
|
|
| 1009 |
root |
1.145 |
=item shell-style comments (C<< # I<text> >>) |
| 1010 |
|
|
|
| 1011 |
|
|
As a nonstandard extension to the JSON syntax that is enabled by the |
| 1012 |
|
|
C<relaxed> setting, shell-style comments are allowed. They can start |
| 1013 |
|
|
anywhere outside strings and go till the end of the line. |
| 1014 |
|
|
|
| 1015 |
|
|
=item tagged values (C<< (I<tag>)I<value> >>). |
| 1016 |
|
|
|
| 1017 |
|
|
Another nonstandard extension to the JSON syntax, enabled with the |
| 1018 |
|
|
C<allow_tags> setting, are tagged values. In this implementation, the |
| 1019 |
|
|
I<tag> must be a perl package/class name encoded as a JSON string, and the |
| 1020 |
|
|
I<value> must be a JSON array encoding optional constructor arguments. |
| 1021 |
|
|
|
| 1022 |
root |
1.148 |
See L<OBJECT SERIALISATION>, below, for details. |
| 1023 |
root |
1.145 |
|
| 1024 |
root |
1.10 |
=back |
| 1025 |
|
|
|
| 1026 |
root |
1.39 |
|
| 1027 |
root |
1.10 |
=head2 PERL -> JSON |
| 1028 |
|
|
|
| 1029 |
|
|
The mapping from Perl to JSON is slightly more difficult, as Perl is a |
| 1030 |
|
|
truly typeless language, so we can only guess which JSON type is meant by |
| 1031 |
|
|
a Perl value. |
| 1032 |
|
|
|
| 1033 |
|
|
=over 4 |
| 1034 |
|
|
|
| 1035 |
|
|
=item hash references |
| 1036 |
|
|
|
| 1037 |
root |
1.142 |
Perl hash references become JSON objects. As there is no inherent |
| 1038 |
|
|
ordering in hash keys (or JSON objects), they will usually be encoded |
| 1039 |
|
|
in a pseudo-random order. JSON::XS can optionally sort the hash keys |
| 1040 |
|
|
(determined by the I<canonical> flag), so the same datastructure will |
| 1041 |
|
|
serialise to the same JSON text (given same settings and version of |
| 1042 |
|
|
JSON::XS), but this incurs a runtime overhead and is only rarely useful, |
| 1043 |
|
|
e.g. when you want to compare some JSON text against another for equality. |
| 1044 |
root |
1.10 |
|
| 1045 |
|
|
=item array references |
| 1046 |
|
|
|
| 1047 |
|
|
Perl array references become JSON arrays. |
| 1048 |
|
|
|
| 1049 |
root |
1.25 |
=item other references |
| 1050 |
|
|
|
| 1051 |
|
|
Other unblessed references are generally not allowed and will cause an |
| 1052 |
|
|
exception to be thrown, except for references to the integers C<0> and |
| 1053 |
root |
1.144 |
C<1>, which get turned into C<false> and C<true> atoms in JSON. |
| 1054 |
root |
1.25 |
|
| 1055 |
root |
1.144 |
Since C<JSON::XS> uses the boolean model from L<Types::Serialiser>, you |
| 1056 |
|
|
can also C<use Types::Serialiser> and then use C<Types::Serialiser::false> |
| 1057 |
|
|
and C<Types::Serialiser::true> to improve readability. |
| 1058 |
root |
1.25 |
|
| 1059 |
root |
1.144 |
use Types::Serialiser; |
| 1060 |
|
|
encode_json [\0, Types::Serialiser::true] # yields [false,true] |
| 1061 |
root |
1.43 |
|
| 1062 |
root |
1.144 |
=item Types::Serialiser::true, Types::Serialiser::false |
| 1063 |
|
|
|
| 1064 |
|
|
These special values from the L<Types::Serialiser> module become JSON true |
| 1065 |
|
|
and JSON false values, respectively. You can also use C<\1> and C<\0> |
| 1066 |
|
|
directly if you want. |
| 1067 |
root |
1.43 |
|
| 1068 |
root |
1.10 |
=item blessed objects |
| 1069 |
|
|
|
| 1070 |
root |
1.145 |
Blessed objects are not directly representable in JSON, but C<JSON::XS> |
| 1071 |
root |
1.148 |
allows various ways of handling objects. See L<OBJECT SERIALISATION>, |
| 1072 |
root |
1.145 |
below, for details. |
| 1073 |
root |
1.10 |
|
| 1074 |
|
|
=item simple scalars |
| 1075 |
|
|
|
| 1076 |
|
|
Simple Perl scalars (any scalar that is not a reference) are the most |
| 1077 |
|
|
difficult objects to encode: JSON::XS will encode undefined scalars as |
| 1078 |
root |
1.83 |
JSON C<null> values, scalars that have last been used in a string context |
| 1079 |
|
|
before encoding as JSON strings, and anything else as number value: |
| 1080 |
root |
1.10 |
|
| 1081 |
|
|
# dump as number |
| 1082 |
root |
1.78 |
encode_json [2] # yields [2] |
| 1083 |
|
|
encode_json [-3.0e17] # yields [-3e+17] |
| 1084 |
|
|
my $value = 5; encode_json [$value] # yields [5] |
| 1085 |
root |
1.10 |
|
| 1086 |
|
|
# used as string, so dump as string |
| 1087 |
|
|
print $value; |
| 1088 |
root |
1.78 |
encode_json [$value] # yields ["5"] |
| 1089 |
root |
1.10 |
|
| 1090 |
|
|
# undef becomes null |
| 1091 |
root |
1.78 |
encode_json [undef] # yields [null] |
| 1092 |
root |
1.10 |
|
| 1093 |
root |
1.68 |
You can force the type to be a JSON string by stringifying it: |
| 1094 |
root |
1.10 |
|
| 1095 |
|
|
my $x = 3.1; # some variable containing a number |
| 1096 |
|
|
"$x"; # stringified |
| 1097 |
|
|
$x .= ""; # another, more awkward way to stringify |
| 1098 |
|
|
print $x; # perl does it for you, too, quite often |
| 1099 |
|
|
|
| 1100 |
root |
1.68 |
You can force the type to be a JSON number by numifying it: |
| 1101 |
root |
1.10 |
|
| 1102 |
|
|
my $x = "3"; # some variable containing a string |
| 1103 |
|
|
$x += 0; # numify it, ensuring it will be dumped as a number |
| 1104 |
root |
1.68 |
$x *= 1; # same thing, the choice is yours. |
| 1105 |
root |
1.10 |
|
| 1106 |
root |
1.68 |
You can not currently force the type in other, less obscure, ways. Tell me |
| 1107 |
root |
1.91 |
if you need this capability (but don't forget to explain why it's needed |
| 1108 |
root |
1.83 |
:). |
| 1109 |
root |
1.10 |
|
| 1110 |
root |
1.131 |
Note that numerical precision has the same meaning as under Perl (so |
| 1111 |
|
|
binary to decimal conversion follows the same rules as in Perl, which |
| 1112 |
|
|
can differ to other languages). Also, your perl interpreter might expose |
| 1113 |
|
|
extensions to the floating point numbers of your platform, such as |
| 1114 |
|
|
infinities or NaN's - these cannot be represented in JSON, and it is an |
| 1115 |
|
|
error to pass those in. |
| 1116 |
|
|
|
| 1117 |
root |
1.10 |
=back |
| 1118 |
|
|
|
| 1119 |
root |
1.145 |
=head2 OBJECT SERIALISATION |
| 1120 |
|
|
|
| 1121 |
|
|
As JSON cannot directly represent Perl objects, you have to choose between |
| 1122 |
|
|
a pure JSON representation (without the ability to deserialise the object |
| 1123 |
|
|
automatically again), and a nonstandard extension to the JSON syntax, |
| 1124 |
|
|
tagged values. |
| 1125 |
|
|
|
| 1126 |
|
|
=head3 SERIALISATION |
| 1127 |
|
|
|
| 1128 |
|
|
What happens when C<JSON::XS> encounters a Perl object depends on the |
| 1129 |
|
|
C<allow_blessed>, C<convert_blessed> and C<allow_tags> settings, which are |
| 1130 |
|
|
used in this order: |
| 1131 |
|
|
|
| 1132 |
|
|
=over 4 |
| 1133 |
|
|
|
| 1134 |
root |
1.149 |
=item 1. C<allow_tags> is enabled and the object has a C<FREEZE> method. |
| 1135 |
root |
1.145 |
|
| 1136 |
|
|
In this case, C<JSON::XS> uses the L<Types::Serialiser> object |
| 1137 |
|
|
serialisation protocol to create a tagged JSON value, using a nonstandard |
| 1138 |
|
|
extension to the JSON syntax. |
| 1139 |
|
|
|
| 1140 |
|
|
This works by invoking the C<FREEZE> method on the object, with the first |
| 1141 |
|
|
argument being the object to serialise, and the second argument being the |
| 1142 |
|
|
constant string C<JSON> to distinguish it from other serialisers. |
| 1143 |
|
|
|
| 1144 |
|
|
The C<FREEZE> method can return any number of values (i.e. zero or |
| 1145 |
|
|
more). These values and the paclkage/classname of the object will then be |
| 1146 |
|
|
encoded as a tagged JSON value in the following format: |
| 1147 |
|
|
|
| 1148 |
|
|
("classname")[FREEZE return values...] |
| 1149 |
|
|
|
| 1150 |
root |
1.150 |
e.g.: |
| 1151 |
|
|
|
| 1152 |
|
|
("URI")["http://www.google.com/"] |
| 1153 |
|
|
("MyDate")[2013,10,29] |
| 1154 |
|
|
("ImageData::JPEG")["Z3...VlCg=="] |
| 1155 |
|
|
|
| 1156 |
root |
1.145 |
For example, the hypothetical C<My::Object> C<FREEZE> method might use the |
| 1157 |
|
|
objects C<type> and C<id> members to encode the object: |
| 1158 |
|
|
|
| 1159 |
|
|
sub My::Object::FREEZE { |
| 1160 |
|
|
my ($self, $serialiser) = @_; |
| 1161 |
|
|
|
| 1162 |
|
|
($self->{type}, $self->{id}) |
| 1163 |
|
|
} |
| 1164 |
|
|
|
| 1165 |
root |
1.149 |
=item 2. C<convert_blessed> is enabled and the object has a C<TO_JSON> method. |
| 1166 |
root |
1.145 |
|
| 1167 |
|
|
In this case, the C<TO_JSON> method of the object is invoked in scalar |
| 1168 |
|
|
context. It must return a single scalar that can be directly encoded into |
| 1169 |
|
|
JSON. This scalar replaces the object in the JSON text. |
| 1170 |
|
|
|
| 1171 |
|
|
For example, the following C<TO_JSON> method will convert all L<URI> |
| 1172 |
|
|
objects to JSON strings when serialised. The fatc that these values |
| 1173 |
|
|
originally were L<URI> objects is lost. |
| 1174 |
|
|
|
| 1175 |
|
|
sub URI::TO_JSON { |
| 1176 |
|
|
my ($uri) = @_; |
| 1177 |
|
|
$uri->as_string |
| 1178 |
|
|
} |
| 1179 |
|
|
|
| 1180 |
|
|
=item 3. C<allow_blessed> is enabled. |
| 1181 |
|
|
|
| 1182 |
|
|
The object will be serialised as a JSON null value. |
| 1183 |
|
|
|
| 1184 |
|
|
=item 4. none of the above |
| 1185 |
|
|
|
| 1186 |
|
|
If none of the settings are enabled or the respective methods are missing, |
| 1187 |
|
|
C<JSON::XS> throws an exception. |
| 1188 |
|
|
|
| 1189 |
|
|
=back |
| 1190 |
|
|
|
| 1191 |
|
|
=head3 DESERIALISATION |
| 1192 |
|
|
|
| 1193 |
|
|
For deserialisation there are only two cases to consider: either |
| 1194 |
|
|
nonstandard tagging was used, in which case C<allow_tags> decides, |
| 1195 |
|
|
or objects cannot be automatically be deserialised, in which |
| 1196 |
|
|
case you can use postprocessing or the C<filter_json_object> or |
| 1197 |
|
|
C<filter_json_single_key_object> callbacks to get some real objects our of |
| 1198 |
|
|
your JSON. |
| 1199 |
|
|
|
| 1200 |
|
|
This section only considers the tagged value case: I a tagged JSON object |
| 1201 |
|
|
is encountered during decoding and C<allow_tags> is disabled, a parse |
| 1202 |
|
|
error will result (as if tagged values were not part of the grammar). |
| 1203 |
|
|
|
| 1204 |
|
|
If C<allow_tags> is enabled, C<JSON::XS> will look up the C<THAW> method |
| 1205 |
root |
1.146 |
of the package/classname used during serialisation (it will not attempt |
| 1206 |
|
|
to load the package as a Perl module). If there is no such method, the |
| 1207 |
|
|
decoding will fail with an error. |
| 1208 |
root |
1.145 |
|
| 1209 |
|
|
Otherwise, the C<THAW> method is invoked with the classname as first |
| 1210 |
|
|
argument, the constant string C<JSON> as second argument, and all the |
| 1211 |
|
|
values from the JSON array (the values originally returned by the |
| 1212 |
|
|
C<FREEZE> method) as remaining arguments. |
| 1213 |
|
|
|
| 1214 |
|
|
The method must then return the object. While technically you can return |
| 1215 |
|
|
any Perl scalar, you might have to enable the C<enable_nonref> setting to |
| 1216 |
|
|
make that work in all cases, so better return an actual blessed reference. |
| 1217 |
|
|
|
| 1218 |
|
|
As an example, let's implement a C<THAW> function that regenerates the |
| 1219 |
|
|
C<My::Object> from the C<FREEZE> example earlier: |
| 1220 |
|
|
|
| 1221 |
|
|
sub My::Object::THAW { |
| 1222 |
|
|
my ($class, $serialiser, $type, $id) = @_; |
| 1223 |
|
|
|
| 1224 |
|
|
$class->new (type => $type, id => $id) |
| 1225 |
|
|
} |
| 1226 |
|
|
|
| 1227 |
root |
1.23 |
|
| 1228 |
root |
1.84 |
=head1 ENCODING/CODESET FLAG NOTES |
| 1229 |
|
|
|
| 1230 |
|
|
The interested reader might have seen a number of flags that signify |
| 1231 |
|
|
encodings or codesets - C<utf8>, C<latin1> and C<ascii>. There seems to be |
| 1232 |
|
|
some confusion on what these do, so here is a short comparison: |
| 1233 |
|
|
|
| 1234 |
root |
1.91 |
C<utf8> controls whether the JSON text created by C<encode> (and expected |
| 1235 |
root |
1.84 |
by C<decode>) is UTF-8 encoded or not, while C<latin1> and C<ascii> only |
| 1236 |
root |
1.91 |
control whether C<encode> escapes character values outside their respective |
| 1237 |
root |
1.84 |
codeset range. Neither of these flags conflict with each other, although |
| 1238 |
|
|
some combinations make less sense than others. |
| 1239 |
|
|
|
| 1240 |
|
|
Care has been taken to make all flags symmetrical with respect to |
| 1241 |
|
|
C<encode> and C<decode>, that is, texts encoded with any combination of |
| 1242 |
|
|
these flag values will be correctly decoded when the same flags are used |
| 1243 |
|
|
- in general, if you use different flag settings while encoding vs. when |
| 1244 |
|
|
decoding you likely have a bug somewhere. |
| 1245 |
|
|
|
| 1246 |
|
|
Below comes a verbose discussion of these flags. Note that a "codeset" is |
| 1247 |
|
|
simply an abstract set of character-codepoint pairs, while an encoding |
| 1248 |
|
|
takes those codepoint numbers and I<encodes> them, in our case into |
| 1249 |
|
|
octets. Unicode is (among other things) a codeset, UTF-8 is an encoding, |
| 1250 |
|
|
and ISO-8859-1 (= latin 1) and ASCII are both codesets I<and> encodings at |
| 1251 |
|
|
the same time, which can be confusing. |
| 1252 |
|
|
|
| 1253 |
|
|
=over 4 |
| 1254 |
|
|
|
| 1255 |
|
|
=item C<utf8> flag disabled |
| 1256 |
|
|
|
| 1257 |
|
|
When C<utf8> is disabled (the default), then C<encode>/C<decode> generate |
| 1258 |
|
|
and expect Unicode strings, that is, characters with high ordinal Unicode |
| 1259 |
|
|
values (> 255) will be encoded as such characters, and likewise such |
| 1260 |
root |
1.140 |
characters are decoded as-is, no changes to them will be done, except |
| 1261 |
root |
1.84 |
"(re-)interpreting" them as Unicode codepoints or Unicode characters, |
| 1262 |
|
|
respectively (to Perl, these are the same thing in strings unless you do |
| 1263 |
|
|
funny/weird/dumb stuff). |
| 1264 |
|
|
|
| 1265 |
|
|
This is useful when you want to do the encoding yourself (e.g. when you |
| 1266 |
|
|
want to have UTF-16 encoded JSON texts) or when some other layer does |
| 1267 |
|
|
the encoding for you (for example, when printing to a terminal using a |
| 1268 |
|
|
filehandle that transparently encodes to UTF-8 you certainly do NOT want |
| 1269 |
|
|
to UTF-8 encode your data first and have Perl encode it another time). |
| 1270 |
|
|
|
| 1271 |
|
|
=item C<utf8> flag enabled |
| 1272 |
|
|
|
| 1273 |
|
|
If the C<utf8>-flag is enabled, C<encode>/C<decode> will encode all |
| 1274 |
|
|
characters using the corresponding UTF-8 multi-byte sequence, and will |
| 1275 |
|
|
expect your input strings to be encoded as UTF-8, that is, no "character" |
| 1276 |
|
|
of the input string must have any value > 255, as UTF-8 does not allow |
| 1277 |
|
|
that. |
| 1278 |
|
|
|
| 1279 |
|
|
The C<utf8> flag therefore switches between two modes: disabled means you |
| 1280 |
|
|
will get a Unicode string in Perl, enabled means you get an UTF-8 encoded |
| 1281 |
|
|
octet/binary string in Perl. |
| 1282 |
|
|
|
| 1283 |
|
|
=item C<latin1> or C<ascii> flags enabled |
| 1284 |
|
|
|
| 1285 |
|
|
With C<latin1> (or C<ascii>) enabled, C<encode> will escape characters |
| 1286 |
|
|
with ordinal values > 255 (> 127 with C<ascii>) and encode the remaining |
| 1287 |
|
|
characters as specified by the C<utf8> flag. |
| 1288 |
|
|
|
| 1289 |
|
|
If C<utf8> is disabled, then the result is also correctly encoded in those |
| 1290 |
|
|
character sets (as both are proper subsets of Unicode, meaning that a |
| 1291 |
|
|
Unicode string with all character values < 256 is the same thing as a |
| 1292 |
|
|
ISO-8859-1 string, and a Unicode string with all character values < 128 is |
| 1293 |
|
|
the same thing as an ASCII string in Perl). |
| 1294 |
|
|
|
| 1295 |
|
|
If C<utf8> is enabled, you still get a correct UTF-8-encoded string, |
| 1296 |
|
|
regardless of these flags, just some more characters will be escaped using |
| 1297 |
|
|
C<\uXXXX> then before. |
| 1298 |
|
|
|
| 1299 |
|
|
Note that ISO-8859-1-I<encoded> strings are not compatible with UTF-8 |
| 1300 |
|
|
encoding, while ASCII-encoded strings are. That is because the ISO-8859-1 |
| 1301 |
|
|
encoding is NOT a subset of UTF-8 (despite the ISO-8859-1 I<codeset> being |
| 1302 |
|
|
a subset of Unicode), while ASCII is. |
| 1303 |
|
|
|
| 1304 |
|
|
Surprisingly, C<decode> will ignore these flags and so treat all input |
| 1305 |
|
|
values as governed by the C<utf8> flag. If it is disabled, this allows you |
| 1306 |
|
|
to decode ISO-8859-1- and ASCII-encoded strings, as both strict subsets of |
| 1307 |
|
|
Unicode. If it is enabled, you can correctly decode UTF-8 encoded strings. |
| 1308 |
|
|
|
| 1309 |
|
|
So neither C<latin1> nor C<ascii> are incompatible with the C<utf8> flag - |
| 1310 |
|
|
they only govern when the JSON output engine escapes a character or not. |
| 1311 |
|
|
|
| 1312 |
|
|
The main use for C<latin1> is to relatively efficiently store binary data |
| 1313 |
|
|
as JSON, at the expense of breaking compatibility with most JSON decoders. |
| 1314 |
|
|
|
| 1315 |
|
|
The main use for C<ascii> is to force the output to not contain characters |
| 1316 |
|
|
with values > 127, which means you can interpret the resulting string |
| 1317 |
|
|
as UTF-8, ISO-8859-1, ASCII, KOI8-R or most about any character set and |
| 1318 |
|
|
8-bit-encoding, and still get the same data structure back. This is useful |
| 1319 |
|
|
when your channel for JSON transfer is not 8-bit clean or the encoding |
| 1320 |
|
|
might be mangled in between (e.g. in mail), and works because ASCII is a |
| 1321 |
|
|
proper subset of most 8-bit and multibyte encodings in use in the world. |
| 1322 |
|
|
|
| 1323 |
|
|
=back |
| 1324 |
|
|
|
| 1325 |
|
|
|
| 1326 |
root |
1.115 |
=head2 JSON and ECMAscript |
| 1327 |
|
|
|
| 1328 |
|
|
JSON syntax is based on how literals are represented in javascript (the |
| 1329 |
|
|
not-standardised predecessor of ECMAscript) which is presumably why it is |
| 1330 |
|
|
called "JavaScript Object Notation". |
| 1331 |
|
|
|
| 1332 |
|
|
However, JSON is not a subset (and also not a superset of course) of |
| 1333 |
|
|
ECMAscript (the standard) or javascript (whatever browsers actually |
| 1334 |
|
|
implement). |
| 1335 |
|
|
|
| 1336 |
|
|
If you want to use javascript's C<eval> function to "parse" JSON, you |
| 1337 |
|
|
might run into parse errors for valid JSON texts, or the resulting data |
| 1338 |
|
|
structure might not be queryable: |
| 1339 |
|
|
|
| 1340 |
|
|
One of the problems is that U+2028 and U+2029 are valid characters inside |
| 1341 |
|
|
JSON strings, but are not allowed in ECMAscript string literals, so the |
| 1342 |
|
|
following Perl fragment will not output something that can be guaranteed |
| 1343 |
|
|
to be parsable by javascript's C<eval>: |
| 1344 |
|
|
|
| 1345 |
|
|
use JSON::XS; |
| 1346 |
|
|
|
| 1347 |
|
|
print encode_json [chr 0x2028]; |
| 1348 |
|
|
|
| 1349 |
|
|
The right fix for this is to use a proper JSON parser in your javascript |
| 1350 |
root |
1.117 |
programs, and not rely on C<eval> (see for example Douglas Crockford's |
| 1351 |
|
|
F<json2.js> parser). |
| 1352 |
root |
1.115 |
|
| 1353 |
|
|
If this is not an option, you can, as a stop-gap measure, simply encode to |
| 1354 |
|
|
ASCII-only JSON: |
| 1355 |
|
|
|
| 1356 |
|
|
use JSON::XS; |
| 1357 |
|
|
|
| 1358 |
|
|
print JSON::XS->new->ascii->encode ([chr 0x2028]); |
| 1359 |
|
|
|
| 1360 |
root |
1.117 |
Note that this will enlarge the resulting JSON text quite a bit if you |
| 1361 |
|
|
have many non-ASCII characters. You might be tempted to run some regexes |
| 1362 |
|
|
to only escape U+2028 and U+2029, e.g.: |
| 1363 |
root |
1.115 |
|
| 1364 |
root |
1.117 |
# DO NOT USE THIS! |
| 1365 |
root |
1.115 |
my $json = JSON::XS->new->utf8->encode ([chr 0x2028]); |
| 1366 |
|
|
$json =~ s/\xe2\x80\xa8/\\u2028/g; # escape U+2028 |
| 1367 |
|
|
$json =~ s/\xe2\x80\xa9/\\u2029/g; # escape U+2029 |
| 1368 |
|
|
print $json; |
| 1369 |
|
|
|
| 1370 |
root |
1.117 |
Note that I<this is a bad idea>: the above only works for U+2028 and |
| 1371 |
|
|
U+2029 and thus only for fully ECMAscript-compliant parsers. Many existing |
| 1372 |
|
|
javascript implementations, however, have issues with other characters as |
| 1373 |
|
|
well - using C<eval> naively simply I<will> cause problems. |
| 1374 |
root |
1.116 |
|
| 1375 |
root |
1.115 |
Another problem is that some javascript implementations reserve |
| 1376 |
|
|
some property names for their own purposes (which probably makes |
| 1377 |
|
|
them non-ECMAscript-compliant). For example, Iceweasel reserves the |
| 1378 |
root |
1.134 |
C<__proto__> property name for its own purposes. |
| 1379 |
root |
1.115 |
|
| 1380 |
|
|
If that is a problem, you could parse try to filter the resulting JSON |
| 1381 |
|
|
output for these property strings, e.g.: |
| 1382 |
|
|
|
| 1383 |
|
|
$json =~ s/"__proto__"\s*:/"__proto__renamed":/g; |
| 1384 |
|
|
|
| 1385 |
|
|
This works because C<__proto__> is not valid outside of strings, so every |
| 1386 |
root |
1.140 |
occurrence of C<"__proto__"\s*:> must be a string used as property name. |
| 1387 |
root |
1.115 |
|
| 1388 |
|
|
If you know of other incompatibilities, please let me know. |
| 1389 |
|
|
|
| 1390 |
|
|
|
| 1391 |
root |
1.39 |
=head2 JSON and YAML |
| 1392 |
|
|
|
| 1393 |
root |
1.80 |
You often hear that JSON is a subset of YAML. This is, however, a mass |
| 1394 |
root |
1.90 |
hysteria(*) and very far from the truth (as of the time of this writing), |
| 1395 |
|
|
so let me state it clearly: I<in general, there is no way to configure |
| 1396 |
|
|
JSON::XS to output a data structure as valid YAML> that works in all |
| 1397 |
|
|
cases. |
| 1398 |
root |
1.39 |
|
| 1399 |
root |
1.41 |
If you really must use JSON::XS to generate YAML, you should use this |
| 1400 |
root |
1.39 |
algorithm (subject to change in future versions): |
| 1401 |
|
|
|
| 1402 |
|
|
my $to_yaml = JSON::XS->new->utf8->space_after (1); |
| 1403 |
|
|
my $yaml = $to_yaml->encode ($ref) . "\n"; |
| 1404 |
|
|
|
| 1405 |
root |
1.83 |
This will I<usually> generate JSON texts that also parse as valid |
| 1406 |
root |
1.41 |
YAML. Please note that YAML has hardcoded limits on (simple) object key |
| 1407 |
root |
1.80 |
lengths that JSON doesn't have and also has different and incompatible |
| 1408 |
root |
1.124 |
unicode character escape syntax, so you should make sure that your hash |
| 1409 |
|
|
keys are noticeably shorter than the 1024 "stream characters" YAML allows |
| 1410 |
|
|
and that you do not have characters with codepoint values outside the |
| 1411 |
|
|
Unicode BMP (basic multilingual page). YAML also does not allow C<\/> |
| 1412 |
|
|
sequences in strings (which JSON::XS does not I<currently> generate, but |
| 1413 |
|
|
other JSON generators might). |
| 1414 |
root |
1.39 |
|
| 1415 |
root |
1.83 |
There might be other incompatibilities that I am not aware of (or the YAML |
| 1416 |
|
|
specification has been changed yet again - it does so quite often). In |
| 1417 |
|
|
general you should not try to generate YAML with a JSON generator or vice |
| 1418 |
|
|
versa, or try to parse JSON with a YAML parser or vice versa: chances are |
| 1419 |
|
|
high that you will run into severe interoperability problems when you |
| 1420 |
|
|
least expect it. |
| 1421 |
root |
1.39 |
|
| 1422 |
root |
1.82 |
=over 4 |
| 1423 |
|
|
|
| 1424 |
|
|
=item (*) |
| 1425 |
|
|
|
| 1426 |
root |
1.90 |
I have been pressured multiple times by Brian Ingerson (one of the |
| 1427 |
|
|
authors of the YAML specification) to remove this paragraph, despite him |
| 1428 |
|
|
acknowledging that the actual incompatibilities exist. As I was personally |
| 1429 |
|
|
bitten by this "JSON is YAML" lie, I refused and said I will continue to |
| 1430 |
|
|
educate people about these issues, so others do not run into the same |
| 1431 |
|
|
problem again and again. After this, Brian called me a (quote)I<complete |
| 1432 |
|
|
and worthless idiot>(unquote). |
| 1433 |
|
|
|
| 1434 |
|
|
In my opinion, instead of pressuring and insulting people who actually |
| 1435 |
|
|
clarify issues with YAML and the wrong statements of some of its |
| 1436 |
|
|
proponents, I would kindly suggest reading the JSON spec (which is not |
| 1437 |
|
|
that difficult or long) and finally make YAML compatible to it, and |
| 1438 |
|
|
educating users about the changes, instead of spreading lies about the |
| 1439 |
|
|
real compatibility for many I<years> and trying to silence people who |
| 1440 |
|
|
point out that it isn't true. |
| 1441 |
root |
1.82 |
|
| 1442 |
root |
1.135 |
Addendum/2009: the YAML 1.2 spec is still incompatible with JSON, even |
| 1443 |
|
|
though the incompatibilities have been documented (and are known to Brian) |
| 1444 |
|
|
for many years and the spec makes explicit claims that YAML is a superset |
| 1445 |
|
|
of JSON. It would be so easy to fix, but apparently, bullying people and |
| 1446 |
root |
1.124 |
corrupting userdata is so much easier. |
| 1447 |
|
|
|
| 1448 |
root |
1.82 |
=back |
| 1449 |
|
|
|
| 1450 |
root |
1.39 |
|
| 1451 |
root |
1.3 |
=head2 SPEED |
| 1452 |
|
|
|
| 1453 |
root |
1.4 |
It seems that JSON::XS is surprisingly fast, as shown in the following |
| 1454 |
|
|
tables. They have been generated with the help of the C<eg/bench> program |
| 1455 |
|
|
in the JSON::XS distribution, to make it easy to compare on your own |
| 1456 |
|
|
system. |
| 1457 |
|
|
|
| 1458 |
root |
1.88 |
First comes a comparison between various modules using |
| 1459 |
|
|
a very short single-line JSON string (also available at |
| 1460 |
root |
1.89 |
L<http://dist.schmorp.de/misc/json/short.json>). |
| 1461 |
root |
1.18 |
|
| 1462 |
root |
1.100 |
{"method": "handleMessage", "params": ["user1", |
| 1463 |
|
|
"we were just talking"], "id": null, "array":[1,11,234,-5,1e5,1e7, |
| 1464 |
root |
1.129 |
1, 0]} |
| 1465 |
root |
1.18 |
|
| 1466 |
root |
1.39 |
It shows the number of encodes/decodes per second (JSON::XS uses |
| 1467 |
|
|
the functional interface, while JSON::XS/2 uses the OO interface |
| 1468 |
|
|
with pretty-printing and hashkey sorting enabled, JSON::XS/3 enables |
| 1469 |
root |
1.129 |
shrink. JSON::DWIW/DS uses the deserialise function, while JSON::DWIW::FJ |
| 1470 |
|
|
uses the from_json method). Higher is better: |
| 1471 |
root |
1.4 |
|
| 1472 |
root |
1.129 |
module | encode | decode | |
| 1473 |
|
|
--------------|------------|------------| |
| 1474 |
|
|
JSON::DWIW/DS | 86302.551 | 102300.098 | |
| 1475 |
|
|
JSON::DWIW/FJ | 86302.551 | 75983.768 | |
| 1476 |
|
|
JSON::PP | 15827.562 | 6638.658 | |
| 1477 |
|
|
JSON::Syck | 63358.066 | 47662.545 | |
| 1478 |
|
|
JSON::XS | 511500.488 | 511500.488 | |
| 1479 |
|
|
JSON::XS/2 | 291271.111 | 388361.481 | |
| 1480 |
|
|
JSON::XS/3 | 361577.931 | 361577.931 | |
| 1481 |
|
|
Storable | 66788.280 | 265462.278 | |
| 1482 |
|
|
--------------+------------+------------+ |
| 1483 |
|
|
|
| 1484 |
|
|
That is, JSON::XS is almost six times faster than JSON::DWIW on encoding, |
| 1485 |
|
|
about five times faster on decoding, and over thirty to seventy times |
| 1486 |
|
|
faster than JSON's pure perl implementation. It also compares favourably |
| 1487 |
|
|
to Storable for small amounts of data. |
| 1488 |
root |
1.4 |
|
| 1489 |
root |
1.13 |
Using a longer test string (roughly 18KB, generated from Yahoo! Locals |
| 1490 |
root |
1.89 |
search API (L<http://dist.schmorp.de/misc/json/long.json>). |
| 1491 |
root |
1.4 |
|
| 1492 |
root |
1.129 |
module | encode | decode | |
| 1493 |
|
|
--------------|------------|------------| |
| 1494 |
|
|
JSON::DWIW/DS | 1647.927 | 2673.916 | |
| 1495 |
|
|
JSON::DWIW/FJ | 1630.249 | 2596.128 | |
| 1496 |
|
|
JSON::PP | 400.640 | 62.311 | |
| 1497 |
|
|
JSON::Syck | 1481.040 | 1524.869 | |
| 1498 |
|
|
JSON::XS | 20661.596 | 9541.183 | |
| 1499 |
|
|
JSON::XS/2 | 10683.403 | 9416.938 | |
| 1500 |
|
|
JSON::XS/3 | 20661.596 | 9400.054 | |
| 1501 |
|
|
Storable | 19765.806 | 10000.725 | |
| 1502 |
|
|
--------------+------------+------------+ |
| 1503 |
root |
1.4 |
|
| 1504 |
root |
1.40 |
Again, JSON::XS leads by far (except for Storable which non-surprisingly |
| 1505 |
root |
1.129 |
decodes a bit faster). |
| 1506 |
root |
1.4 |
|
| 1507 |
root |
1.68 |
On large strings containing lots of high Unicode characters, some modules |
| 1508 |
root |
1.18 |
(such as JSON::PC) seem to decode faster than JSON::XS, but the result |
| 1509 |
root |
1.68 |
will be broken due to missing (or wrong) Unicode handling. Others refuse |
| 1510 |
root |
1.18 |
to decode or encode properly, so it was impossible to prepare a fair |
| 1511 |
|
|
comparison table for that case. |
| 1512 |
root |
1.13 |
|
| 1513 |
root |
1.11 |
|
| 1514 |
root |
1.23 |
=head1 SECURITY CONSIDERATIONS |
| 1515 |
|
|
|
| 1516 |
|
|
When you are using JSON in a protocol, talking to untrusted potentially |
| 1517 |
|
|
hostile creatures requires relatively few measures. |
| 1518 |
|
|
|
| 1519 |
|
|
First of all, your JSON decoder should be secure, that is, should not have |
| 1520 |
|
|
any buffer overflows. Obviously, this module should ensure that and I am |
| 1521 |
|
|
trying hard on making that true, but you never know. |
| 1522 |
|
|
|
| 1523 |
|
|
Second, you need to avoid resource-starving attacks. That means you should |
| 1524 |
|
|
limit the size of JSON texts you accept, or make sure then when your |
| 1525 |
root |
1.68 |
resources run out, that's just fine (e.g. by using a separate process that |
| 1526 |
root |
1.23 |
can crash safely). The size of a JSON text in octets or characters is |
| 1527 |
|
|
usually a good indication of the size of the resources required to decode |
| 1528 |
root |
1.47 |
it into a Perl structure. While JSON::XS can check the size of the JSON |
| 1529 |
|
|
text, it might be too late when you already have it in memory, so you |
| 1530 |
|
|
might want to check the size before you accept the string. |
| 1531 |
root |
1.23 |
|
| 1532 |
|
|
Third, JSON::XS recurses using the C stack when decoding objects and |
| 1533 |
|
|
arrays. The C stack is a limited resource: for instance, on my amd64 |
| 1534 |
root |
1.28 |
machine with 8MB of stack size I can decode around 180k nested arrays but |
| 1535 |
|
|
only 14k nested JSON objects (due to perl itself recursing deeply on croak |
| 1536 |
root |
1.79 |
to free the temporary). If that is exceeded, the program crashes. To be |
| 1537 |
root |
1.28 |
conservative, the default nesting limit is set to 512. If your process |
| 1538 |
|
|
has a smaller stack, you should adjust this setting accordingly with the |
| 1539 |
|
|
C<max_depth> method. |
| 1540 |
root |
1.23 |
|
| 1541 |
root |
1.86 |
Something else could bomb you, too, that I forgot to think of. In that |
| 1542 |
|
|
case, you get to keep the pieces. I am always open for hints, though... |
| 1543 |
|
|
|
| 1544 |
|
|
Also keep in mind that JSON::XS might leak contents of your Perl data |
| 1545 |
|
|
structures in its error messages, so when you serialise sensitive |
| 1546 |
|
|
information you might want to make sure that exceptions thrown by JSON::XS |
| 1547 |
|
|
will not end up in front of untrusted eyes. |
| 1548 |
root |
1.23 |
|
| 1549 |
root |
1.42 |
If you are using JSON::XS to return packets to consumption |
| 1550 |
root |
1.68 |
by JavaScript scripts in a browser you should have a look at |
| 1551 |
root |
1.127 |
L<http://blog.archive.jpsykes.com/47/practical-csrf-and-json-security/> to |
| 1552 |
|
|
see whether you are vulnerable to some common attack vectors (which really |
| 1553 |
|
|
are browser design bugs, but it is still you who will have to deal with |
| 1554 |
|
|
it, as major browser developers care only for features, not about getting |
| 1555 |
|
|
security right). |
| 1556 |
root |
1.42 |
|
| 1557 |
root |
1.11 |
|
| 1558 |
root |
1.144 |
=head1 INTEROPERABILITY WITH OTHER MODULES |
| 1559 |
|
|
|
| 1560 |
|
|
C<JSON::XS> uses the L<Types::Serialiser> module to provide boolean |
| 1561 |
|
|
constants. That means that the JSON true and false values will be |
| 1562 |
|
|
comaptible to true and false values of iother modules that do the same, |
| 1563 |
|
|
such as L<JSON::PP> and L<CBOR::XS>. |
| 1564 |
|
|
|
| 1565 |
|
|
|
| 1566 |
root |
1.64 |
=head1 THREADS |
| 1567 |
|
|
|
| 1568 |
root |
1.68 |
This module is I<not> guaranteed to be thread safe and there are no |
| 1569 |
root |
1.64 |
plans to change this until Perl gets thread support (as opposed to the |
| 1570 |
|
|
horribly slow so-called "threads" which are simply slow and bloated |
| 1571 |
root |
1.91 |
process simulations - use fork, it's I<much> faster, cheaper, better). |
| 1572 |
root |
1.64 |
|
| 1573 |
root |
1.68 |
(It might actually work, but you have been warned). |
| 1574 |
root |
1.64 |
|
| 1575 |
|
|
|
| 1576 |
root |
1.139 |
=head1 THE PERILS OF SETLOCALE |
| 1577 |
|
|
|
| 1578 |
|
|
Sometimes people avoid the Perl locale support and directly call the |
| 1579 |
|
|
system's setlocale function with C<LC_ALL>. |
| 1580 |
|
|
|
| 1581 |
|
|
This breaks both perl and modules such as JSON::XS, as stringification of |
| 1582 |
root |
1.140 |
numbers no longer works correctly (e.g. C<$x = 0.1; print "$x"+1> might |
| 1583 |
root |
1.139 |
print C<1>, and JSON::XS might output illegal JSON as JSON::XS relies on |
| 1584 |
|
|
perl to stringify numbers). |
| 1585 |
|
|
|
| 1586 |
|
|
The solution is simple: don't call C<setlocale>, or use it for only those |
| 1587 |
|
|
categories you need, such as C<LC_MESSAGES> or C<LC_CTYPE>. |
| 1588 |
|
|
|
| 1589 |
|
|
If you need C<LC_NUMERIC>, you should enable it only around the code that |
| 1590 |
|
|
actually needs it (avoiding stringification of numbers), and restore it |
| 1591 |
|
|
afterwards. |
| 1592 |
|
|
|
| 1593 |
|
|
|
| 1594 |
root |
1.4 |
=head1 BUGS |
| 1595 |
|
|
|
| 1596 |
|
|
While the goal of this module is to be correct, that unfortunately does |
| 1597 |
root |
1.103 |
not mean it's bug-free, only that I think its design is bug-free. If you |
| 1598 |
|
|
keep reporting bugs they will be fixed swiftly, though. |
| 1599 |
root |
1.4 |
|
| 1600 |
root |
1.64 |
Please refrain from using rt.cpan.org or any other bug reporting |
| 1601 |
|
|
service. I put the contact address into my modules for a reason. |
| 1602 |
|
|
|
| 1603 |
root |
1.2 |
=cut |
| 1604 |
|
|
|
| 1605 |
root |
1.144 |
BEGIN { |
| 1606 |
|
|
*true = \$Types::Serialiser::true; |
| 1607 |
|
|
*true = \&Types::Serialiser::true; |
| 1608 |
|
|
*false = \$Types::Serialiser::false; |
| 1609 |
|
|
*false = \&Types::Serialiser::false; |
| 1610 |
|
|
*is_bool = \&Types::Serialiser::is_bool; |
| 1611 |
root |
1.43 |
|
| 1612 |
root |
1.144 |
*JSON::XS::Boolean:: = *Types::Serialiser::Boolean::; |
| 1613 |
root |
1.43 |
} |
| 1614 |
|
|
|
| 1615 |
|
|
XSLoader::load "JSON::XS", $VERSION; |
| 1616 |
|
|
|
| 1617 |
root |
1.93 |
=head1 SEE ALSO |
| 1618 |
|
|
|
| 1619 |
|
|
The F<json_xs> command line utility for quick experiments. |
| 1620 |
|
|
|
| 1621 |
root |
1.1 |
=head1 AUTHOR |
| 1622 |
|
|
|
| 1623 |
|
|
Marc Lehmann <schmorp@schmorp.de> |
| 1624 |
|
|
http://home.schmorp.de/ |
| 1625 |
|
|
|
| 1626 |
|
|
=cut |
| 1627 |
|
|
|
| 1628 |
root |
1.144 |
1 |
| 1629 |
|
|
|