ViewVC Help
View File | Revision Log | Show Annotations | Download File
/cvs/AnyEvent/lib/AnyEvent/Handle.pm
(Generate patch)

Comparing AnyEvent/lib/AnyEvent/Handle.pm (file contents):
Revision 1.56 by root, Wed Jun 4 09:55:16 2008 UTC vs.
Revision 1.172 by root, Wed Aug 5 20:50:27 2009 UTC

1package AnyEvent::Handle; 1package AnyEvent::Handle;
2 2
3no warnings;
4use strict;
5
6use AnyEvent ();
7use AnyEvent::Util qw(WSAEWOULDBLOCK);
8use Scalar::Util (); 3use Scalar::Util ();
9use Carp (); 4use Carp ();
10use Fcntl ();
11use Errno qw(EAGAIN EINTR); 5use Errno qw(EAGAIN EINTR);
12 6
7use AnyEvent (); BEGIN { AnyEvent::common_sense }
8use AnyEvent::Util qw(WSAEWOULDBLOCK);
9
13=head1 NAME 10=head1 NAME
14 11
15AnyEvent::Handle - non-blocking I/O on file handles via AnyEvent 12AnyEvent::Handle - non-blocking I/O on file handles via AnyEvent
16 13
17=cut 14=cut
18 15
19our $VERSION = 4.12; 16our $VERSION = 4.901;
20 17
21=head1 SYNOPSIS 18=head1 SYNOPSIS
22 19
23 use AnyEvent; 20 use AnyEvent;
24 use AnyEvent::Handle; 21 use AnyEvent::Handle;
25 22
26 my $cv = AnyEvent->condvar; 23 my $cv = AnyEvent->condvar;
27 24
28 my $handle = 25 my $hdl; $hdl = new AnyEvent::Handle
29 AnyEvent::Handle->new (
30 fh => \*STDIN, 26 fh => \*STDIN,
31 on_eof => sub { 27 on_error => sub {
32 $cv->broadcast; 28 my ($hdl, $fatal, $msg) = @_;
33 }, 29 warn "got error $msg\n";
30 $hdl->destroy;
31 $cv->send;
34 ); 32 );
35 33
36 # send some request line 34 # send some request line
37 $handle->push_write ("getinfo\015\012"); 35 $hdl->push_write ("getinfo\015\012");
38 36
39 # read the response line 37 # read the response line
40 $handle->push_read (line => sub { 38 $hdl->push_read (line => sub {
41 my ($handle, $line) = @_; 39 my ($hdl, $line) = @_;
42 warn "read line <$line>\n"; 40 warn "got line <$line>\n";
43 $cv->send; 41 $cv->send;
44 }); 42 });
45 43
46 $cv->recv; 44 $cv->recv;
47 45
48=head1 DESCRIPTION 46=head1 DESCRIPTION
49 47
50This module is a helper module to make it easier to do event-based I/O on 48This module is a helper module to make it easier to do event-based I/O on
51filehandles. For utility functions for doing non-blocking connects and accepts 49filehandles.
52on sockets see L<AnyEvent::Util>. 50
51The L<AnyEvent::Intro> tutorial contains some well-documented
52AnyEvent::Handle examples.
53 53
54In the following, when the documentation refers to of "bytes" then this 54In the following, when the documentation refers to of "bytes" then this
55means characters. As sysread and syswrite are used for all I/O, their 55means characters. As sysread and syswrite are used for all I/O, their
56treatment of characters applies to this module as well. 56treatment of characters applies to this module as well.
57 57
58At the very minimum, you should specify C<fh> or C<connect>, and the
59C<on_error> callback.
60
58All callbacks will be invoked with the handle object as their first 61All callbacks will be invoked with the handle object as their first
59argument. 62argument.
60 63
61=head1 METHODS 64=head1 METHODS
62 65
63=over 4 66=over 4
64 67
65=item B<new (%args)> 68=item $handle = B<new> AnyEvent::TLS fh => $filehandle, key => value...
66 69
67The constructor supports these arguments (all as key => value pairs). 70The constructor supports these arguments (all as C<< key => value >> pairs).
68 71
69=over 4 72=over 4
70 73
71=item fh => $filehandle [MANDATORY] 74=item fh => $filehandle [C<fh> or C<connect> MANDATORY]
72 75
73The filehandle this L<AnyEvent::Handle> object will operate on. 76The filehandle this L<AnyEvent::Handle> object will operate on.
74
75NOTE: The filehandle will be set to non-blocking (using 77NOTE: The filehandle will be set to non-blocking mode (using
76AnyEvent::Util::fh_nonblocking). 78C<AnyEvent::Util::fh_nonblocking>) by the constructor and needs to stay in
79that mode.
77 80
81=item connect => [$host, $service] [C<fh> or C<connect> MANDATORY]
82
83Try to connect to the specified host and service (port), using
84C<AnyEvent::Socket::tcp_connect>. The C<$host> additionally becomes the
85default C<peername>.
86
87You have to specify either this parameter, or C<fh>, above.
88
89It is possible to push requests on the read and write queues, and modify
90properties of the stream, even while AnyEvent::Handle is connecting.
91
92When this parameter is specified, then the C<on_prepare>,
93C<on_connect_error> and C<on_connect> callbacks will be called under the
94appropriate circumstances:
95
96=over 4
97
78=item on_eof => $cb->($handle) 98=item on_prepare => $cb->($handle)
79 99
80Set the callback to be called when an end-of-file condition is detcted, 100This (rarely used) callback is called before a new connection is
81i.e. in the case of a socket, when the other side has closed the 101attempted, but after the file handle has been created. It could be used to
82connection cleanly. 102prepare the file handle with parameters required for the actual connect
103(as opposed to settings that can be changed when the connection is already
104established).
83 105
84While not mandatory, it is highly recommended to set an eof callback, 106The return value of this callback should be the connect timeout value in
85otherwise you might end up with a closed socket while you are still 107seconds (or C<0>, or C<undef>, or the empty list, to indicate the default
86waiting for data. 108timeout is to be used).
87 109
110=item on_connect => $cb->($handle, $host, $port, $retry->())
111
112This callback is called when a connection has been successfully established.
113
114The actual numeric host and port (the socket peername) are passed as
115parameters, together with a retry callback.
116
117When, for some reason, the handle is not acceptable, then calling
118C<$retry> will continue with the next conenction target (in case of
119multi-homed hosts or SRV records there can be multiple connection
120endpoints). When it is called then the read and write queues, eof status,
121tls status and similar properties of the handle are being reset.
122
123In most cases, ignoring the C<$retry> parameter is the way to go.
124
125=item on_connect_error => $cb->($handle, $message)
126
127This callback is called when the conenction could not be
128established. C<$!> will contain the relevant error code, and C<$message> a
129message describing it (usually the same as C<"$!">).
130
131If this callback isn't specified, then C<on_error> will be called with a
132fatal error instead.
133
134=back
135
88=item on_error => $cb->($handle, $fatal) 136=item on_error => $cb->($handle, $fatal, $message)
89 137
90This is the error callback, which is called when, well, some error 138This is the error callback, which is called when, well, some error
91occured, such as not being able to resolve the hostname, failure to 139occured, such as not being able to resolve the hostname, failure to
92connect or a read error. 140connect or a read error.
93 141
94Some errors are fatal (which is indicated by C<$fatal> being true). On 142Some errors are fatal (which is indicated by C<$fatal> being true). On
95fatal errors the handle object will be shut down and will not be 143fatal errors the handle object will be destroyed (by a call to C<< ->
144destroy >>) after invoking the error callback (which means you are free to
145examine the handle object). Examples of fatal errors are an EOF condition
146with active (but unsatisifable) read watchers (C<EPIPE>) or I/O errors. In
147cases where the other side can close the connection at their will it is
148often easiest to not report C<EPIPE> errors in this callback.
149
150AnyEvent::Handle tries to find an appropriate error code for you to check
151against, but in some cases (TLS errors), this does not work well. It is
152recommended to always output the C<$message> argument in human-readable
153error messages (it's usually the same as C<"$!">).
154
96usable. Non-fatal errors can be retried by simply returning, but it is 155Non-fatal errors can be retried by simply returning, but it is recommended
97recommended to simply ignore this parameter and instead abondon the handle 156to simply ignore this parameter and instead abondon the handle object
98object when this callback is invoked. 157when this callback is invoked. Examples of non-fatal errors are timeouts
158C<ETIMEDOUT>) or badly-formatted data (C<EBADMSG>).
99 159
100On callback entrance, the value of C<$!> contains the operating system 160On callback entrance, the value of C<$!> contains the operating system
101error (or C<ENOSPC>, C<EPIPE>, C<ETIMEDOUT> or C<EBADMSG>). 161error code (or C<ENOSPC>, C<EPIPE>, C<ETIMEDOUT>, C<EBADMSG> or
162C<EPROTO>).
102 163
103While not mandatory, it is I<highly> recommended to set this callback, as 164While not mandatory, it is I<highly> recommended to set this callback, as
104you will not be notified of errors otherwise. The default simply calls 165you will not be notified of errors otherwise. The default simply calls
105C<croak>. 166C<croak>.
106 167
107=item on_read => $cb->($handle) 168=item on_read => $cb->($handle)
108 169
109This sets the default read callback, which is called when data arrives 170This sets the default read callback, which is called when data arrives
110and no read request is in the queue. 171and no read request is in the queue (unlike read queue callbacks, this
172callback will only be called when at least one octet of data is in the
173read buffer).
111 174
112To access (and remove data from) the read buffer, use the C<< ->rbuf >> 175To access (and remove data from) the read buffer, use the C<< ->rbuf >>
113method or access the C<$handle->{rbuf}> member directly. 176method or access the C<< $handle->{rbuf} >> member directly. Note that you
177must not enlarge or modify the read buffer, you can only remove data at
178the beginning from it.
114 179
115When an EOF condition is detected then AnyEvent::Handle will first try to 180When an EOF condition is detected then AnyEvent::Handle will first try to
116feed all the remaining data to the queued callbacks and C<on_read> before 181feed all the remaining data to the queued callbacks and C<on_read> before
117calling the C<on_eof> callback. If no progress can be made, then a fatal 182calling the C<on_eof> callback. If no progress can be made, then a fatal
118error will be raised (with C<$!> set to C<EPIPE>). 183error will be raised (with C<$!> set to C<EPIPE>).
119 184
185Note that, unlike requests in the read queue, an C<on_read> callback
186doesn't mean you I<require> some data: if there is an EOF and there
187are outstanding read requests then an error will be flagged. With an
188C<on_read> callback, the C<on_eof> callback will be invoked.
189
190=item on_eof => $cb->($handle)
191
192Set the callback to be called when an end-of-file condition is detected,
193i.e. in the case of a socket, when the other side has closed the
194connection cleanly, and there are no outstanding read requests in the
195queue (if there are read requests, then an EOF counts as an unexpected
196connection close and will be flagged as an error).
197
198For sockets, this just means that the other side has stopped sending data,
199you can still try to write data, and, in fact, one can return from the EOF
200callback and continue writing data, as only the read part has been shut
201down.
202
203If an EOF condition has been detected but no C<on_eof> callback has been
204set, then a fatal error will be raised with C<$!> set to <0>.
205
120=item on_drain => $cb->($handle) 206=item on_drain => $cb->($handle)
121 207
122This sets the callback that is called when the write buffer becomes empty 208This sets the callback that is called when the write buffer becomes empty
123(or when the callback is set and the buffer is empty already). 209(or when the callback is set and the buffer is empty already).
124 210
125To append to the write buffer, use the C<< ->push_write >> method. 211To append to the write buffer, use the C<< ->push_write >> method.
212
213This callback is useful when you don't want to put all of your write data
214into the queue at once, for example, when you want to write the contents
215of some file to the socket you might not want to read the whole file into
216memory and push it into the queue, but instead only read more data from
217the file when the write queue becomes empty.
126 218
127=item timeout => $fractional_seconds 219=item timeout => $fractional_seconds
128 220
129If non-zero, then this enables an "inactivity" timeout: whenever this many 221If non-zero, then this enables an "inactivity" timeout: whenever this many
130seconds pass without a successful read or write on the underlying file 222seconds pass without a successful read or write on the underlying file
131handle, the C<on_timeout> callback will be invoked (and if that one is 223handle, the C<on_timeout> callback will be invoked (and if that one is
132missing, an C<ETIMEDOUT> error will be raised). 224missing, a non-fatal C<ETIMEDOUT> error will be raised).
133 225
134Note that timeout processing is also active when you currently do not have 226Note that timeout processing is also active when you currently do not have
135any outstanding read or write requests: If you plan to keep the connection 227any outstanding read or write requests: If you plan to keep the connection
136idle then you should disable the timout temporarily or ignore the timeout 228idle then you should disable the timout temporarily or ignore the timeout
137in the C<on_timeout> callback. 229in the C<on_timeout> callback, in which case AnyEvent::Handle will simply
230restart the timeout.
138 231
139Zero (the default) disables this timeout. 232Zero (the default) disables this timeout.
140 233
141=item on_timeout => $cb->($handle) 234=item on_timeout => $cb->($handle)
142 235
146 239
147=item rbuf_max => <bytes> 240=item rbuf_max => <bytes>
148 241
149If defined, then a fatal error will be raised (with C<$!> set to C<ENOSPC>) 242If defined, then a fatal error will be raised (with C<$!> set to C<ENOSPC>)
150when the read buffer ever (strictly) exceeds this size. This is useful to 243when the read buffer ever (strictly) exceeds this size. This is useful to
151avoid denial-of-service attacks. 244avoid some forms of denial-of-service attacks.
152 245
153For example, a server accepting connections from untrusted sources should 246For example, a server accepting connections from untrusted sources should
154be configured to accept only so-and-so much data that it cannot act on 247be configured to accept only so-and-so much data that it cannot act on
155(for example, when expecting a line, an attacker could send an unlimited 248(for example, when expecting a line, an attacker could send an unlimited
156amount of data without a callback ever being called as long as the line 249amount of data without a callback ever being called as long as the line
157isn't finished). 250isn't finished).
158 251
252=item autocork => <boolean>
253
254When disabled (the default), then C<push_write> will try to immediately
255write the data to the handle, if possible. This avoids having to register
256a write watcher and wait for the next event loop iteration, but can
257be inefficient if you write multiple small chunks (on the wire, this
258disadvantage is usually avoided by your kernel's nagle algorithm, see
259C<no_delay>, but this option can save costly syscalls).
260
261When enabled, then writes will always be queued till the next event loop
262iteration. This is efficient when you do many small writes per iteration,
263but less efficient when you do a single write only per iteration (or when
264the write buffer often is full). It also increases write latency.
265
266=item no_delay => <boolean>
267
268When doing small writes on sockets, your operating system kernel might
269wait a bit for more data before actually sending it out. This is called
270the Nagle algorithm, and usually it is beneficial.
271
272In some situations you want as low a delay as possible, which can be
273accomplishd by setting this option to a true value.
274
275The default is your opertaing system's default behaviour (most likely
276enabled), this option explicitly enables or disables it, if possible.
277
159=item read_size => <bytes> 278=item read_size => <bytes>
160 279
161The default read block size (the amount of bytes this module will try to read 280The default read block size (the amount of bytes this module will
162during each (loop iteration). Default: C<8192>. 281try to read during each loop iteration, which affects memory
282requirements). Default: C<8192>.
163 283
164=item low_water_mark => <bytes> 284=item low_water_mark => <bytes>
165 285
166Sets the amount of bytes (default: C<0>) that make up an "empty" write 286Sets the amount of bytes (default: C<0>) that make up an "empty" write
167buffer: If the write reaches this size or gets even samller it is 287buffer: If the write reaches this size or gets even samller it is
168considered empty. 288considered empty.
169 289
290Sometimes it can be beneficial (for performance reasons) to add data to
291the write buffer before it is fully drained, but this is a rare case, as
292the operating system kernel usually buffers data as well, so the default
293is good in almost all cases.
294
295=item linger => <seconds>
296
297If non-zero (default: C<3600>), then the destructor of the
298AnyEvent::Handle object will check whether there is still outstanding
299write data and will install a watcher that will write this data to the
300socket. No errors will be reported (this mostly matches how the operating
301system treats outstanding data at socket close time).
302
303This will not work for partial TLS data that could not be encoded
304yet. This data will be lost. Calling the C<stoptls> method in time might
305help.
306
307=item peername => $string
308
309A string used to identify the remote site - usually the DNS hostname
310(I<not> IDN!) used to create the connection, rarely the IP address.
311
312Apart from being useful in error messages, this string is also used in TLS
313peername verification (see C<verify_peername> in L<AnyEvent::TLS>). This
314verification will be skipped when C<peername> is not specified or
315C<undef>.
316
170=item tls => "accept" | "connect" | Net::SSLeay::SSL object 317=item tls => "accept" | "connect" | Net::SSLeay::SSL object
171 318
172When this parameter is given, it enables TLS (SSL) mode, that means it 319When this parameter is given, it enables TLS (SSL) mode, that means
173will start making tls handshake and will transparently encrypt/decrypt 320AnyEvent will start a TLS handshake as soon as the conenction has been
174data. 321established and will transparently encrypt/decrypt data afterwards.
322
323All TLS protocol errors will be signalled as C<EPROTO>, with an
324appropriate error message.
175 325
176TLS mode requires Net::SSLeay to be installed (it will be loaded 326TLS mode requires Net::SSLeay to be installed (it will be loaded
177automatically when you try to create a TLS handle). 327automatically when you try to create a TLS handle): this module doesn't
328have a dependency on that module, so if your module requires it, you have
329to add the dependency yourself.
178 330
179For the TLS server side, use C<accept>, and for the TLS client side of a 331Unlike TCP, TLS has a server and client side: for the TLS server side, use
180connection, use C<connect> mode. 332C<accept>, and for the TLS client side of a connection, use C<connect>
333mode.
181 334
182You can also provide your own TLS connection object, but you have 335You can also provide your own TLS connection object, but you have
183to make sure that you call either C<Net::SSLeay::set_connect_state> 336to make sure that you call either C<Net::SSLeay::set_connect_state>
184or C<Net::SSLeay::set_accept_state> on it before you pass it to 337or C<Net::SSLeay::set_accept_state> on it before you pass it to
185AnyEvent::Handle. 338AnyEvent::Handle. Also, this module will take ownership of this connection
339object.
186 340
341At some future point, AnyEvent::Handle might switch to another TLS
342implementation, then the option to use your own session object will go
343away.
344
345B<IMPORTANT:> since Net::SSLeay "objects" are really only integers,
346passing in the wrong integer will lead to certain crash. This most often
347happens when one uses a stylish C<< tls => 1 >> and is surprised about the
348segmentation fault.
349
187See the C<starttls> method if you need to start TLs negotiation later. 350See the C<< ->starttls >> method for when need to start TLS negotiation later.
188 351
189=item tls_ctx => $ssl_ctx 352=item tls_ctx => $anyevent_tls
190 353
191Use the given Net::SSLeay::CTX object to create the new TLS connection 354Use the given C<AnyEvent::TLS> object to create the new TLS connection
192(unless a connection object was specified directly). If this parameter is 355(unless a connection object was specified directly). If this parameter is
193missing, then AnyEvent::Handle will use C<AnyEvent::Handle::TLS_CTX>. 356missing, then AnyEvent::Handle will use C<AnyEvent::Handle::TLS_CTX>.
194 357
358Instead of an object, you can also specify a hash reference with C<< key
359=> value >> pairs. Those will be passed to L<AnyEvent::TLS> to create a
360new TLS context object.
361
362=item on_starttls => $cb->($handle, $success[, $error_message])
363
364This callback will be invoked when the TLS/SSL handshake has finished. If
365C<$success> is true, then the TLS handshake succeeded, otherwise it failed
366(C<on_stoptls> will not be called in this case).
367
368The session in C<< $handle->{tls} >> can still be examined in this
369callback, even when the handshake was not successful.
370
371TLS handshake failures will not cause C<on_error> to be invoked when this
372callback is in effect, instead, the error message will be passed to C<on_starttls>.
373
374Without this callback, handshake failures lead to C<on_error> being
375called, as normal.
376
377Note that you cannot call C<starttls> right again in this callback. If you
378need to do that, start an zero-second timer instead whose callback can
379then call C<< ->starttls >> again.
380
381=item on_stoptls => $cb->($handle)
382
383When a SSLv3/TLS shutdown/close notify/EOF is detected and this callback is
384set, then it will be invoked after freeing the TLS session. If it is not,
385then a TLS shutdown condition will be treated like a normal EOF condition
386on the handle.
387
388The session in C<< $handle->{tls} >> can still be examined in this
389callback.
390
391This callback will only be called on TLS shutdowns, not when the
392underlying handle signals EOF.
393
195=item json => JSON or JSON::XS object 394=item json => JSON or JSON::XS object
196 395
197This is the json coder object used by the C<json> read and write types. 396This is the json coder object used by the C<json> read and write types.
198 397
199If you don't supply it, then AnyEvent::Handle will create and use a 398If you don't supply it, then AnyEvent::Handle will create and use a
200suitable one, which will write and expect UTF-8 encoded JSON texts. 399suitable one (on demand), which will write and expect UTF-8 encoded JSON
400texts.
201 401
202Note that you are responsible to depend on the JSON module if you want to 402Note that you are responsible to depend on the JSON module if you want to
203use this functionality, as AnyEvent does not have a dependency itself. 403use this functionality, as AnyEvent does not have a dependency itself.
204 404
205=item filter_r => $cb
206
207=item filter_w => $cb
208
209These exist, but are undocumented at this time.
210
211=back 405=back
212 406
213=cut 407=cut
214 408
215sub new { 409sub new {
216 my $class = shift; 410 my $class = shift;
217
218 my $self = bless { @_ }, $class; 411 my $self = bless { @_ }, $class;
219 412
220 $self->{fh} or Carp::croak "mandatory argument fh is missing"; 413 if ($self->{fh}) {
414 $self->_start;
415 return unless $self->{fh}; # could be gone by now
416
417 } elsif ($self->{connect}) {
418 require AnyEvent::Socket;
419
420 $self->{peername} = $self->{connect}[0]
421 unless exists $self->{peername};
422
423 $self->{_skip_drain_rbuf} = 1;
424
425 {
426 Scalar::Util::weaken (my $self = $self);
427
428 $self->{_connect} =
429 AnyEvent::Socket::tcp_connect (
430 $self->{connect}[0],
431 $self->{connect}[1],
432 sub {
433 my ($fh, $host, $port, $retry) = @_;
434
435 if ($fh) {
436 $self->{fh} = $fh;
437
438 delete $self->{_skip_drain_rbuf};
439 $self->_start;
440
441 $self->{on_connect}
442 and $self->{on_connect}($self, $host, $port, sub {
443 delete @$self{qw(fh _tw _ww _rw _eof _queue rbuf _wbuf tls _tls_rbuf _tls_wbuf)};
444 $self->{_skip_drain_rbuf} = 1;
445 &$retry;
446 });
447
448 } else {
449 if ($self->{on_connect_error}) {
450 $self->{on_connect_error}($self, "$!");
451 $self->destroy;
452 } else {
453 $self->_error ($!, 1);
454 }
455 }
456 },
457 sub {
458 local $self->{fh} = $_[0];
459
460 $self->{on_prepare}
461 ? $self->{on_prepare}->($self)
462 : ()
463 }
464 );
465 }
466
467 } else {
468 Carp::croak "AnyEvent::Handle: either an existing fh or the connect parameter must be specified";
469 }
470
471 $self
472}
473
474sub _start {
475 my ($self) = @_;
221 476
222 AnyEvent::Util::fh_nonblocking $self->{fh}, 1; 477 AnyEvent::Util::fh_nonblocking $self->{fh}, 1;
223
224 if ($self->{tls}) {
225 require Net::SSLeay;
226 $self->starttls (delete $self->{tls}, delete $self->{tls_ctx});
227 }
228
229# $self->on_eof (delete $self->{on_eof} ) if $self->{on_eof}; # nop
230# $self->on_error (delete $self->{on_error}) if $self->{on_error}; # nop
231# $self->on_read (delete $self->{on_read} ) if $self->{on_read}; # nop
232 $self->on_drain (delete $self->{on_drain}) if $self->{on_drain};
233 478
234 $self->{_activity} = AnyEvent->now; 479 $self->{_activity} = AnyEvent->now;
235 $self->_timeout; 480 $self->_timeout;
236 481
482 $self->no_delay (delete $self->{no_delay}) if exists $self->{no_delay};
483
484 $self->starttls (delete $self->{tls}, delete $self->{tls_ctx})
485 if $self->{tls};
486
487 $self->on_drain (delete $self->{on_drain}) if $self->{on_drain};
488
237 $self->start_read; 489 $self->start_read
490 if $self->{on_read} || @{ $self->{_queue} };
238 491
239 $self 492 $self->_drain_wbuf;
240} 493}
241 494
242sub _shutdown { 495#sub _shutdown {
243 my ($self) = @_; 496# my ($self) = @_;
244 497#
245 delete $self->{_tw}; 498# delete @$self{qw(_tw _rw _ww fh wbuf on_read _queue)};
246 delete $self->{_rw}; 499# $self->{_eof} = 1; # tell starttls et. al to stop trying
247 delete $self->{_ww}; 500#
248 delete $self->{fh}; 501# &_freetls;
249 502#}
250 $self->stoptls;
251}
252 503
253sub _error { 504sub _error {
254 my ($self, $errno, $fatal) = @_; 505 my ($self, $errno, $fatal, $message) = @_;
255
256 $self->_shutdown
257 if $fatal;
258 506
259 $! = $errno; 507 $! = $errno;
508 $message ||= "$!";
260 509
261 if ($self->{on_error}) { 510 if ($self->{on_error}) {
262 $self->{on_error}($self, $fatal); 511 $self->{on_error}($self, $fatal, $message);
263 } else { 512 $self->destroy if $fatal;
513 } elsif ($self->{fh}) {
514 $self->destroy;
264 Carp::croak "AnyEvent::Handle uncaught error: $!"; 515 Carp::croak "AnyEvent::Handle uncaught error: $message";
265 } 516 }
266} 517}
267 518
268=item $fh = $handle->fh 519=item $fh = $handle->fh
269 520
270This method returns the file handle of the L<AnyEvent::Handle> object. 521This method returns the file handle used to create the L<AnyEvent::Handle> object.
271 522
272=cut 523=cut
273 524
274sub fh { $_[0]{fh} } 525sub fh { $_[0]{fh} }
275 526
293 $_[0]{on_eof} = $_[1]; 544 $_[0]{on_eof} = $_[1];
294} 545}
295 546
296=item $handle->on_timeout ($cb) 547=item $handle->on_timeout ($cb)
297 548
298Replace the current C<on_timeout> callback, or disables the callback 549Replace the current C<on_timeout> callback, or disables the callback (but
299(but not the timeout) if C<$cb> = C<undef>. See C<timeout> constructor 550not the timeout) if C<$cb> = C<undef>. See the C<timeout> constructor
300argument. 551argument and method.
301 552
302=cut 553=cut
303 554
304sub on_timeout { 555sub on_timeout {
305 $_[0]{on_timeout} = $_[1]; 556 $_[0]{on_timeout} = $_[1];
557}
558
559=item $handle->autocork ($boolean)
560
561Enables or disables the current autocork behaviour (see C<autocork>
562constructor argument). Changes will only take effect on the next write.
563
564=cut
565
566sub autocork {
567 $_[0]{autocork} = $_[1];
568}
569
570=item $handle->no_delay ($boolean)
571
572Enables or disables the C<no_delay> setting (see constructor argument of
573the same name for details).
574
575=cut
576
577sub no_delay {
578 $_[0]{no_delay} = $_[1];
579
580 eval {
581 local $SIG{__DIE__};
582 setsockopt $_[0]{fh}, &Socket::IPPROTO_TCP, &Socket::TCP_NODELAY, int $_[1]
583 if $_[0]{fh};
584 };
585}
586
587=item $handle->on_starttls ($cb)
588
589Replace the current C<on_starttls> callback (see the C<on_starttls> constructor argument).
590
591=cut
592
593sub on_starttls {
594 $_[0]{on_starttls} = $_[1];
595}
596
597=item $handle->on_stoptls ($cb)
598
599Replace the current C<on_stoptls> callback (see the C<on_stoptls> constructor argument).
600
601=cut
602
603sub on_starttls {
604 $_[0]{on_stoptls} = $_[1];
605}
606
607=item $handle->rbuf_max ($max_octets)
608
609Configures the C<rbuf_max> setting (C<undef> disables it).
610
611=cut
612
613sub rbuf_max {
614 $_[0]{rbuf_max} = $_[1];
306} 615}
307 616
308############################################################################# 617#############################################################################
309 618
310=item $handle->timeout ($seconds) 619=item $handle->timeout ($seconds)
323# reset the timeout watcher, as neccessary 632# reset the timeout watcher, as neccessary
324# also check for time-outs 633# also check for time-outs
325sub _timeout { 634sub _timeout {
326 my ($self) = @_; 635 my ($self) = @_;
327 636
328 if ($self->{timeout}) { 637 if ($self->{timeout} && $self->{fh}) {
329 my $NOW = AnyEvent->now; 638 my $NOW = AnyEvent->now;
330 639
331 # when would the timeout trigger? 640 # when would the timeout trigger?
332 my $after = $self->{_activity} + $self->{timeout} - $NOW; 641 my $after = $self->{_activity} + $self->{timeout} - $NOW;
333 642
336 $self->{_activity} = $NOW; 645 $self->{_activity} = $NOW;
337 646
338 if ($self->{on_timeout}) { 647 if ($self->{on_timeout}) {
339 $self->{on_timeout}($self); 648 $self->{on_timeout}($self);
340 } else { 649 } else {
341 $self->_error (&Errno::ETIMEDOUT); 650 $self->_error (Errno::ETIMEDOUT);
342 } 651 }
343 652
344 # callback could have changed timeout value, optimise 653 # callback could have changed timeout value, optimise
345 return unless $self->{timeout}; 654 return unless $self->{timeout};
346 655
388 my ($self, $cb) = @_; 697 my ($self, $cb) = @_;
389 698
390 $self->{on_drain} = $cb; 699 $self->{on_drain} = $cb;
391 700
392 $cb->($self) 701 $cb->($self)
393 if $cb && $self->{low_water_mark} >= length $self->{wbuf}; 702 if $cb && $self->{low_water_mark} >= (length $self->{wbuf}) + (length $self->{_tls_wbuf});
394} 703}
395 704
396=item $handle->push_write ($data) 705=item $handle->push_write ($data)
397 706
398Queues the given scalar to be written. You can push as much data as you 707Queues the given scalar to be written. You can push as much data as you
409 Scalar::Util::weaken $self; 718 Scalar::Util::weaken $self;
410 719
411 my $cb = sub { 720 my $cb = sub {
412 my $len = syswrite $self->{fh}, $self->{wbuf}; 721 my $len = syswrite $self->{fh}, $self->{wbuf};
413 722
414 if ($len >= 0) { 723 if (defined $len) {
415 substr $self->{wbuf}, 0, $len, ""; 724 substr $self->{wbuf}, 0, $len, "";
416 725
417 $self->{_activity} = AnyEvent->now; 726 $self->{_activity} = AnyEvent->now;
418 727
419 $self->{on_drain}($self) 728 $self->{on_drain}($self)
420 if $self->{low_water_mark} >= length $self->{wbuf} 729 if $self->{low_water_mark} >= (length $self->{wbuf}) + (length $self->{_tls_wbuf})
421 && $self->{on_drain}; 730 && $self->{on_drain};
422 731
423 delete $self->{_ww} unless length $self->{wbuf}; 732 delete $self->{_ww} unless length $self->{wbuf};
424 } elsif ($! != EAGAIN && $! != EINTR && $! != WSAEWOULDBLOCK) { 733 } elsif ($! != EAGAIN && $! != EINTR && $! != WSAEWOULDBLOCK) {
425 $self->_error ($!, 1); 734 $self->_error ($!, 1);
426 } 735 }
427 }; 736 };
428 737
429 # try to write data immediately 738 # try to write data immediately
430 $cb->(); 739 $cb->() unless $self->{autocork};
431 740
432 # if still data left in wbuf, we need to poll 741 # if still data left in wbuf, we need to poll
433 $self->{_ww} = AnyEvent->io (fh => $self->{fh}, poll => "w", cb => $cb) 742 $self->{_ww} = AnyEvent->io (fh => $self->{fh}, poll => "w", cb => $cb)
434 if length $self->{wbuf}; 743 if length $self->{wbuf};
435 }; 744 };
449 758
450 @_ = ($WH{$type} or Carp::croak "unsupported type passed to AnyEvent::Handle::push_write") 759 @_ = ($WH{$type} or Carp::croak "unsupported type passed to AnyEvent::Handle::push_write")
451 ->($self, @_); 760 ->($self, @_);
452 } 761 }
453 762
454 if ($self->{filter_w}) { 763 if ($self->{tls}) {
455 $self->{filter_w}($self, \$_[0]); 764 $self->{_tls_wbuf} .= $_[0];
765 &_dotls ($self) if $self->{fh};
456 } else { 766 } else {
457 $self->{wbuf} .= $_[0]; 767 $self->{wbuf} .= $_[0];
458 $self->_drain_wbuf; 768 $self->_drain_wbuf if $self->{fh};
459 } 769 }
460} 770}
461 771
462=item $handle->push_write (type => @args) 772=item $handle->push_write (type => @args)
463 773
477=cut 787=cut
478 788
479register_write_type netstring => sub { 789register_write_type netstring => sub {
480 my ($self, $string) = @_; 790 my ($self, $string) = @_;
481 791
482 sprintf "%d:%s,", (length $string), $string 792 (length $string) . ":$string,"
793};
794
795=item packstring => $format, $data
796
797An octet string prefixed with an encoded length. The encoding C<$format>
798uses the same format as a Perl C<pack> format, but must specify a single
799integer only (only one of C<cCsSlLqQiInNvVjJw> is allowed, plus an
800optional C<!>, C<< < >> or C<< > >> modifier).
801
802=cut
803
804register_write_type packstring => sub {
805 my ($self, $format, $string) = @_;
806
807 pack "$format/a*", $string
483}; 808};
484 809
485=item json => $array_or_hashref 810=item json => $array_or_hashref
486 811
487Encodes the given hash or array reference into a JSON object. Unless you 812Encodes the given hash or array reference into a JSON object. Unless you
521 846
522 $self->{json} ? $self->{json}->encode ($ref) 847 $self->{json} ? $self->{json}->encode ($ref)
523 : JSON::encode_json ($ref) 848 : JSON::encode_json ($ref)
524}; 849};
525 850
851=item storable => $reference
852
853Freezes the given reference using L<Storable> and writes it to the
854handle. Uses the C<nfreeze> format.
855
856=cut
857
858register_write_type storable => sub {
859 my ($self, $ref) = @_;
860
861 require Storable;
862
863 pack "w/a*", Storable::nfreeze ($ref)
864};
865
526=back 866=back
867
868=item $handle->push_shutdown
869
870Sometimes you know you want to close the socket after writing your data
871before it was actually written. One way to do that is to replace your
872C<on_drain> handler by a callback that shuts down the socket (and set
873C<low_water_mark> to C<0>). This method is a shorthand for just that, and
874replaces the C<on_drain> callback with:
875
876 sub { shutdown $_[0]{fh}, 1 } # for push_shutdown
877
878This simply shuts down the write side and signals an EOF condition to the
879the peer.
880
881You can rely on the normal read queue and C<on_eof> handling
882afterwards. This is the cleanest way to close a connection.
883
884=cut
885
886sub push_shutdown {
887 my ($self) = @_;
888
889 delete $self->{low_water_mark};
890 $self->on_drain (sub { shutdown $_[0]{fh}, 1 });
891}
527 892
528=item AnyEvent::Handle::register_write_type type => $coderef->($handle, @args) 893=item AnyEvent::Handle::register_write_type type => $coderef->($handle, @args)
529 894
530This function (not method) lets you add your own types to C<push_write>. 895This function (not method) lets you add your own types to C<push_write>.
531Whenever the given C<type> is used, C<push_write> will invoke the code 896Whenever the given C<type> is used, C<push_write> will invoke the code
552ways, the "simple" way, using only C<on_read> and the "complex" way, using 917ways, the "simple" way, using only C<on_read> and the "complex" way, using
553a queue. 918a queue.
554 919
555In the simple case, you just install an C<on_read> callback and whenever 920In the simple case, you just install an C<on_read> callback and whenever
556new data arrives, it will be called. You can then remove some data (if 921new data arrives, it will be called. You can then remove some data (if
557enough is there) from the read buffer (C<< $handle->rbuf >>) if you want 922enough is there) from the read buffer (C<< $handle->rbuf >>). Or you cna
558or not. 923leave the data there if you want to accumulate more (e.g. when only a
924partial message has been received so far).
559 925
560In the more complex case, you want to queue multiple callbacks. In this 926In the more complex case, you want to queue multiple callbacks. In this
561case, AnyEvent::Handle will call the first queued callback each time new 927case, AnyEvent::Handle will call the first queued callback each time new
562data arrives and removes it when it has done its job (see C<push_read>, 928data arrives (also the first time it is queued) and removes it when it has
563below). 929done its job (see C<push_read>, below).
564 930
565This way you can, for example, push three line-reads, followed by reading 931This way you can, for example, push three line-reads, followed by reading
566a chunk of data, and AnyEvent::Handle will execute them in order. 932a chunk of data, and AnyEvent::Handle will execute them in order.
567 933
568Example 1: EPP protocol parser. EPP sends 4 byte length info, followed by 934Example 1: EPP protocol parser. EPP sends 4 byte length info, followed by
581 # handle xml 947 # handle xml
582 }); 948 });
583 }); 949 });
584 }); 950 });
585 951
586Example 2: Implement a client for a protocol that replies either with 952Example 2: Implement a client for a protocol that replies either with "OK"
587"OK" and another line or "ERROR" for one request, and 64 bytes for the 953and another line or "ERROR" for the first request that is sent, and 64
588second request. Due tot he availability of a full queue, we can just 954bytes for the second request. Due to the availability of a queue, we can
589pipeline sending both requests and manipulate the queue as necessary in 955just pipeline sending both requests and manipulate the queue as necessary
590the callbacks: 956in the callbacks.
591 957
592 # request one 958When the first callback is called and sees an "OK" response, it will
959C<unshift> another line-read. This line-read will be queued I<before> the
96064-byte chunk callback.
961
962 # request one, returns either "OK + extra line" or "ERROR"
593 $handle->push_write ("request 1\015\012"); 963 $handle->push_write ("request 1\015\012");
594 964
595 # we expect "ERROR" or "OK" as response, so push a line read 965 # we expect "ERROR" or "OK" as response, so push a line read
596 $handle->push_read (line => sub { 966 $handle->push_read (line => sub {
597 # if we got an "OK", we have to _prepend_ another line, 967 # if we got an "OK", we have to _prepend_ another line,
604 ... 974 ...
605 }); 975 });
606 } 976 }
607 }); 977 });
608 978
609 # request two 979 # request two, simply returns 64 octets
610 $handle->push_write ("request 2\015\012"); 980 $handle->push_write ("request 2\015\012");
611 981
612 # simply read 64 bytes, always 982 # simply read 64 bytes, always
613 $handle->push_read (chunk => 64, sub { 983 $handle->push_read (chunk => 64, sub {
614 my $response = $_[1]; 984 my $response = $_[1];
620=cut 990=cut
621 991
622sub _drain_rbuf { 992sub _drain_rbuf {
623 my ($self) = @_; 993 my ($self) = @_;
624 994
625 if ( 995 # avoid recursion
626 defined $self->{rbuf_max}
627 && $self->{rbuf_max} < length $self->{rbuf}
628 ) {
629 return $self->_error (&Errno::ENOSPC, 1);
630 }
631
632 return if $self->{in_drain}; 996 return if $self->{_skip_drain_rbuf};
633 local $self->{in_drain} = 1; 997 local $self->{_skip_drain_rbuf} = 1;
634 998
999 while () {
1000 # we need to use a separate tls read buffer, as we must not receive data while
1001 # we are draining the buffer, and this can only happen with TLS.
1002 $self->{rbuf} .= delete $self->{_tls_rbuf}
1003 if exists $self->{_tls_rbuf};
1004
635 while (my $len = length $self->{rbuf}) { 1005 my $len = length $self->{rbuf};
636 no strict 'refs'; 1006
637 if (my $cb = shift @{ $self->{_queue} }) { 1007 if (my $cb = shift @{ $self->{_queue} }) {
638 unless ($cb->($self)) { 1008 unless ($cb->($self)) {
1009 # no progress can be made
1010 # (not enough data and no data forthcoming)
1011 $self->_error (Errno::EPIPE, 1), return
639 if ($self->{_eof}) { 1012 if $self->{_eof};
640 # no progress can be made (not enough data and no data forthcoming)
641 return $self->_error (&Errno::EPIPE, 1);
642 }
643 1013
644 unshift @{ $self->{_queue} }, $cb; 1014 unshift @{ $self->{_queue} }, $cb;
645 last; 1015 last;
646 } 1016 }
647 } elsif ($self->{on_read}) { 1017 } elsif ($self->{on_read}) {
1018 last unless $len;
1019
648 $self->{on_read}($self); 1020 $self->{on_read}($self);
649 1021
650 if ( 1022 if (
651 $len == length $self->{rbuf} # if no data has been consumed 1023 $len == length $self->{rbuf} # if no data has been consumed
652 && !@{ $self->{_queue} } # and the queue is still empty 1024 && !@{ $self->{_queue} } # and the queue is still empty
653 && $self->{on_read} # but we still have on_read 1025 && $self->{on_read} # but we still have on_read
654 ) { 1026 ) {
655 # no further data will arrive 1027 # no further data will arrive
656 # so no progress can be made 1028 # so no progress can be made
657 return $self->_error (&Errno::EPIPE, 1) 1029 $self->_error (Errno::EPIPE, 1), return
658 if $self->{_eof}; 1030 if $self->{_eof};
659 1031
660 last; # more data might arrive 1032 last; # more data might arrive
661 } 1033 }
662 } else { 1034 } else {
663 # read side becomes idle 1035 # read side becomes idle
664 delete $self->{_rw}; 1036 delete $self->{_rw} unless $self->{tls};
665 last; 1037 last;
666 } 1038 }
667 } 1039 }
668 1040
1041 if ($self->{_eof}) {
1042 $self->{on_eof}
669 $self->{on_eof}($self) 1043 ? $self->{on_eof}($self)
670 if $self->{_eof} && $self->{on_eof}; 1044 : $self->_error (0, 1, "Unexpected end-of-file");
1045
1046 return;
1047 }
1048
1049 if (
1050 defined $self->{rbuf_max}
1051 && $self->{rbuf_max} < length $self->{rbuf}
1052 ) {
1053 $self->_error (Errno::ENOSPC, 1), return;
1054 }
671 1055
672 # may need to restart read watcher 1056 # may need to restart read watcher
673 unless ($self->{_rw}) { 1057 unless ($self->{_rw}) {
674 $self->start_read 1058 $self->start_read
675 if $self->{on_read} || @{ $self->{_queue} }; 1059 if $self->{on_read} || @{ $self->{_queue} };
686 1070
687sub on_read { 1071sub on_read {
688 my ($self, $cb) = @_; 1072 my ($self, $cb) = @_;
689 1073
690 $self->{on_read} = $cb; 1074 $self->{on_read} = $cb;
1075 $self->_drain_rbuf if $cb;
691} 1076}
692 1077
693=item $handle->rbuf 1078=item $handle->rbuf
694 1079
695Returns the read buffer (as a modifiable lvalue). 1080Returns the read buffer (as a modifiable lvalue).
696 1081
697You can access the read buffer directly as the C<< ->{rbuf} >> member, if 1082You can access the read buffer directly as the C<< ->{rbuf} >>
698you want. 1083member, if you want. However, the only operation allowed on the
1084read buffer (apart from looking at it) is removing data from its
1085beginning. Otherwise modifying or appending to it is not allowed and will
1086lead to hard-to-track-down bugs.
699 1087
700NOTE: The read buffer should only be used or modified if the C<on_read>, 1088NOTE: The read buffer should only be used or modified if the C<on_read>,
701C<push_read> or C<unshift_read> methods are used. The other read methods 1089C<push_read> or C<unshift_read> methods are used. The other read methods
702automatically manage the read buffer. 1090automatically manage the read buffer.
703 1091
800 $cb->($_[0], substr $_[0]{rbuf}, 0, $len, ""); 1188 $cb->($_[0], substr $_[0]{rbuf}, 0, $len, "");
801 1 1189 1
802 } 1190 }
803}; 1191};
804 1192
805# compatibility with older API
806sub push_read_chunk {
807 $_[0]->push_read (chunk => $_[1], $_[2]);
808}
809
810sub unshift_read_chunk {
811 $_[0]->unshift_read (chunk => $_[1], $_[2]);
812}
813
814=item line => [$eol, ]$cb->($handle, $line, $eol) 1193=item line => [$eol, ]$cb->($handle, $line, $eol)
815 1194
816The callback will be called only once a full line (including the end of 1195The callback will be called only once a full line (including the end of
817line marker, C<$eol>) has been read. This line (excluding the end of line 1196line marker, C<$eol>) has been read. This line (excluding the end of line
818marker) will be passed to the callback as second argument (C<$line>), and 1197marker) will be passed to the callback as second argument (C<$line>), and
833=cut 1212=cut
834 1213
835register_read_type line => sub { 1214register_read_type line => sub {
836 my ($self, $cb, $eol) = @_; 1215 my ($self, $cb, $eol) = @_;
837 1216
838 $eol = qr|(\015?\012)| if @_ < 3; 1217 if (@_ < 3) {
839 $eol = quotemeta $eol unless ref $eol; 1218 # this is more than twice as fast as the generic code below
840 $eol = qr|^(.*?)($eol)|s;
841
842 sub { 1219 sub {
843 $_[0]{rbuf} =~ s/$eol// or return; 1220 $_[0]{rbuf} =~ s/^([^\015\012]*)(\015?\012)// or return;
844 1221
845 $cb->($_[0], $1, $2); 1222 $cb->($_[0], $1, $2);
846 1
847 }
848};
849
850# compatibility with older API
851sub push_read_line {
852 my $self = shift;
853 $self->push_read (line => @_);
854}
855
856sub unshift_read_line {
857 my $self = shift;
858 $self->unshift_read (line => @_);
859}
860
861=item netstring => $cb->($handle, $string)
862
863A netstring (http://cr.yp.to/proto/netstrings.txt, this is not an endorsement).
864
865Throws an error with C<$!> set to EBADMSG on format violations.
866
867=cut
868
869register_read_type netstring => sub {
870 my ($self, $cb) = @_;
871
872 sub {
873 unless ($_[0]{rbuf} =~ s/^(0|[1-9][0-9]*)://) {
874 if ($_[0]{rbuf} =~ /[^0-9]/) {
875 $self->_error (&Errno::EBADMSG);
876 } 1223 1
877 return;
878 } 1224 }
1225 } else {
1226 $eol = quotemeta $eol unless ref $eol;
1227 $eol = qr|^(.*?)($eol)|s;
879 1228
880 my $len = $1; 1229 sub {
1230 $_[0]{rbuf} =~ s/$eol// or return;
881 1231
882 $self->unshift_read (chunk => $len, sub { 1232 $cb->($_[0], $1, $2);
883 my $string = $_[1];
884 $_[0]->unshift_read (chunk => 1, sub {
885 if ($_[1] eq ",") {
886 $cb->($_[0], $string);
887 } else {
888 $self->_error (&Errno::EBADMSG);
889 }
890 }); 1233 1
891 }); 1234 }
892
893 1
894 } 1235 }
895}; 1236};
896 1237
897=item regex => $accept[, $reject[, $skip], $cb->($handle, $data) 1238=item regex => $accept[, $reject[, $skip], $cb->($handle, $data)
898 1239
950 return 1; 1291 return 1;
951 } 1292 }
952 1293
953 # reject 1294 # reject
954 if ($reject && $$rbuf =~ $reject) { 1295 if ($reject && $$rbuf =~ $reject) {
955 $self->_error (&Errno::EBADMSG); 1296 $self->_error (Errno::EBADMSG);
956 } 1297 }
957 1298
958 # skip 1299 # skip
959 if ($skip && $$rbuf =~ $skip) { 1300 if ($skip && $$rbuf =~ $skip) {
960 $data .= substr $$rbuf, 0, $+[0], ""; 1301 $data .= substr $$rbuf, 0, $+[0], "";
962 1303
963 () 1304 ()
964 } 1305 }
965}; 1306};
966 1307
1308=item netstring => $cb->($handle, $string)
1309
1310A netstring (http://cr.yp.to/proto/netstrings.txt, this is not an endorsement).
1311
1312Throws an error with C<$!> set to EBADMSG on format violations.
1313
1314=cut
1315
1316register_read_type netstring => sub {
1317 my ($self, $cb) = @_;
1318
1319 sub {
1320 unless ($_[0]{rbuf} =~ s/^(0|[1-9][0-9]*)://) {
1321 if ($_[0]{rbuf} =~ /[^0-9]/) {
1322 $self->_error (Errno::EBADMSG);
1323 }
1324 return;
1325 }
1326
1327 my $len = $1;
1328
1329 $self->unshift_read (chunk => $len, sub {
1330 my $string = $_[1];
1331 $_[0]->unshift_read (chunk => 1, sub {
1332 if ($_[1] eq ",") {
1333 $cb->($_[0], $string);
1334 } else {
1335 $self->_error (Errno::EBADMSG);
1336 }
1337 });
1338 });
1339
1340 1
1341 }
1342};
1343
1344=item packstring => $format, $cb->($handle, $string)
1345
1346An octet string prefixed with an encoded length. The encoding C<$format>
1347uses the same format as a Perl C<pack> format, but must specify a single
1348integer only (only one of C<cCsSlLqQiInNvVjJw> is allowed, plus an
1349optional C<!>, C<< < >> or C<< > >> modifier).
1350
1351For example, DNS over TCP uses a prefix of C<n> (2 octet network order),
1352EPP uses a prefix of C<N> (4 octtes).
1353
1354Example: read a block of data prefixed by its length in BER-encoded
1355format (very efficient).
1356
1357 $handle->push_read (packstring => "w", sub {
1358 my ($handle, $data) = @_;
1359 });
1360
1361=cut
1362
1363register_read_type packstring => sub {
1364 my ($self, $cb, $format) = @_;
1365
1366 sub {
1367 # when we can use 5.10 we can use ".", but for 5.8 we use the re-pack method
1368 defined (my $len = eval { unpack $format, $_[0]{rbuf} })
1369 or return;
1370
1371 $format = length pack $format, $len;
1372
1373 # bypass unshift if we already have the remaining chunk
1374 if ($format + $len <= length $_[0]{rbuf}) {
1375 my $data = substr $_[0]{rbuf}, $format, $len;
1376 substr $_[0]{rbuf}, 0, $format + $len, "";
1377 $cb->($_[0], $data);
1378 } else {
1379 # remove prefix
1380 substr $_[0]{rbuf}, 0, $format, "";
1381
1382 # read remaining chunk
1383 $_[0]->unshift_read (chunk => $len, $cb);
1384 }
1385
1386 1
1387 }
1388};
1389
967=item json => $cb->($handle, $hash_or_arrayref) 1390=item json => $cb->($handle, $hash_or_arrayref)
968 1391
969Reads a JSON object or array, decodes it and passes it to the callback. 1392Reads a JSON object or array, decodes it and passes it to the
1393callback. When a parse error occurs, an C<EBADMSG> error will be raised.
970 1394
971If a C<json> object was passed to the constructor, then that will be used 1395If a C<json> object was passed to the constructor, then that will be used
972for the final decode, otherwise it will create a JSON coder expecting UTF-8. 1396for the final decode, otherwise it will create a JSON coder expecting UTF-8.
973 1397
974This read type uses the incremental parser available with JSON version 1398This read type uses the incremental parser available with JSON version
981the C<json> write type description, above, for an actual example. 1405the C<json> write type description, above, for an actual example.
982 1406
983=cut 1407=cut
984 1408
985register_read_type json => sub { 1409register_read_type json => sub {
986 my ($self, $cb, $accept, $reject, $skip) = @_; 1410 my ($self, $cb) = @_;
987 1411
988 require JSON; 1412 my $json = $self->{json} ||=
1413 eval { require JSON::XS; JSON::XS->new->utf8 }
1414 || do { require JSON; JSON->new->utf8 };
989 1415
990 my $data; 1416 my $data;
991 my $rbuf = \$self->{rbuf}; 1417 my $rbuf = \$self->{rbuf};
992 1418
993 my $json = $self->{json} ||= JSON->new->utf8;
994
995 sub { 1419 sub {
996 my $ref = $json->incr_parse ($self->{rbuf}); 1420 my $ref = eval { $json->incr_parse ($self->{rbuf}) };
997 1421
998 if ($ref) { 1422 if ($ref) {
999 $self->{rbuf} = $json->incr_text; 1423 $self->{rbuf} = $json->incr_text;
1000 $json->incr_text = ""; 1424 $json->incr_text = "";
1001 $cb->($self, $ref); 1425 $cb->($self, $ref);
1002 1426
1003 1 1427 1
1428 } elsif ($@) {
1429 # error case
1430 $json->incr_skip;
1431
1432 $self->{rbuf} = $json->incr_text;
1433 $json->incr_text = "";
1434
1435 $self->_error (Errno::EBADMSG);
1436
1437 ()
1004 } else { 1438 } else {
1005 $self->{rbuf} = ""; 1439 $self->{rbuf} = "";
1440
1006 () 1441 ()
1007 } 1442 }
1443 }
1444};
1445
1446=item storable => $cb->($handle, $ref)
1447
1448Deserialises a L<Storable> frozen representation as written by the
1449C<storable> write type (BER-encoded length prefix followed by nfreeze'd
1450data).
1451
1452Raises C<EBADMSG> error if the data could not be decoded.
1453
1454=cut
1455
1456register_read_type storable => sub {
1457 my ($self, $cb) = @_;
1458
1459 require Storable;
1460
1461 sub {
1462 # when we can use 5.10 we can use ".", but for 5.8 we use the re-pack method
1463 defined (my $len = eval { unpack "w", $_[0]{rbuf} })
1464 or return;
1465
1466 my $format = length pack "w", $len;
1467
1468 # bypass unshift if we already have the remaining chunk
1469 if ($format + $len <= length $_[0]{rbuf}) {
1470 my $data = substr $_[0]{rbuf}, $format, $len;
1471 substr $_[0]{rbuf}, 0, $format + $len, "";
1472 $cb->($_[0], Storable::thaw ($data));
1473 } else {
1474 # remove prefix
1475 substr $_[0]{rbuf}, 0, $format, "";
1476
1477 # read remaining chunk
1478 $_[0]->unshift_read (chunk => $len, sub {
1479 if (my $ref = eval { Storable::thaw ($_[1]) }) {
1480 $cb->($_[0], $ref);
1481 } else {
1482 $self->_error (Errno::EBADMSG);
1483 }
1484 });
1485 }
1486
1487 1
1008 } 1488 }
1009}; 1489};
1010 1490
1011=back 1491=back
1012 1492
1033=item $handle->stop_read 1513=item $handle->stop_read
1034 1514
1035=item $handle->start_read 1515=item $handle->start_read
1036 1516
1037In rare cases you actually do not want to read anything from the 1517In rare cases you actually do not want to read anything from the
1038socket. In this case you can call C<stop_read>. Neither C<on_read> no 1518socket. In this case you can call C<stop_read>. Neither C<on_read> nor
1039any queued callbacks will be executed then. To start reading again, call 1519any queued callbacks will be executed then. To start reading again, call
1040C<start_read>. 1520C<start_read>.
1041 1521
1042Note that AnyEvent::Handle will automatically C<start_read> for you when 1522Note that AnyEvent::Handle will automatically C<start_read> for you when
1043you change the C<on_read> callback or push/unshift a read callback, and it 1523you change the C<on_read> callback or push/unshift a read callback, and it
1044will automatically C<stop_read> for you when neither C<on_read> is set nor 1524will automatically C<stop_read> for you when neither C<on_read> is set nor
1045there are any read requests in the queue. 1525there are any read requests in the queue.
1046 1526
1527These methods will have no effect when in TLS mode (as TLS doesn't support
1528half-duplex connections).
1529
1047=cut 1530=cut
1048 1531
1049sub stop_read { 1532sub stop_read {
1050 my ($self) = @_; 1533 my ($self) = @_;
1051 1534
1052 delete $self->{_rw}; 1535 delete $self->{_rw} unless $self->{tls};
1053} 1536}
1054 1537
1055sub start_read { 1538sub start_read {
1056 my ($self) = @_; 1539 my ($self) = @_;
1057 1540
1058 unless ($self->{_rw} || $self->{_eof}) { 1541 unless ($self->{_rw} || $self->{_eof}) {
1059 Scalar::Util::weaken $self; 1542 Scalar::Util::weaken $self;
1060 1543
1061 $self->{_rw} = AnyEvent->io (fh => $self->{fh}, poll => "r", cb => sub { 1544 $self->{_rw} = AnyEvent->io (fh => $self->{fh}, poll => "r", cb => sub {
1062 my $rbuf = $self->{filter_r} ? \my $buf : \$self->{rbuf}; 1545 my $rbuf = \($self->{tls} ? my $buf : $self->{rbuf});
1063 my $len = sysread $self->{fh}, $$rbuf, $self->{read_size} || 8192, length $$rbuf; 1546 my $len = sysread $self->{fh}, $$rbuf, $self->{read_size} || 8192, length $$rbuf;
1064 1547
1065 if ($len > 0) { 1548 if ($len > 0) {
1066 $self->{_activity} = AnyEvent->now; 1549 $self->{_activity} = AnyEvent->now;
1067 1550
1068 $self->{filter_r} 1551 if ($self->{tls}) {
1069 ? $self->{filter_r}($self, $rbuf) 1552 Net::SSLeay::BIO_write ($self->{_rbio}, $$rbuf);
1553
1554 &_dotls ($self);
1555 } else {
1070 : $self->_drain_rbuf; 1556 $self->_drain_rbuf;
1557 }
1071 1558
1072 } elsif (defined $len) { 1559 } elsif (defined $len) {
1073 delete $self->{_rw}; 1560 delete $self->{_rw};
1074 $self->{_eof} = 1; 1561 $self->{_eof} = 1;
1075 $self->_drain_rbuf; 1562 $self->_drain_rbuf;
1079 } 1566 }
1080 }); 1567 });
1081 } 1568 }
1082} 1569}
1083 1570
1571our $ERROR_SYSCALL;
1572our $ERROR_WANT_READ;
1573
1574sub _tls_error {
1575 my ($self, $err) = @_;
1576
1577 return $self->_error ($!, 1)
1578 if $err == Net::SSLeay::ERROR_SYSCALL ();
1579
1580 my $err =Net::SSLeay::ERR_error_string (Net::SSLeay::ERR_get_error ());
1581
1582 # reduce error string to look less scary
1583 $err =~ s/^error:[0-9a-fA-F]{8}:[^:]+:([^:]+):/\L$1: /;
1584
1585 if ($self->{_on_starttls}) {
1586 (delete $self->{_on_starttls})->($self, undef, $err);
1587 &_freetls;
1588 } else {
1589 &_freetls;
1590 $self->_error (Errno::EPROTO, 1, $err);
1591 }
1592}
1593
1594# poll the write BIO and send the data if applicable
1595# also decode read data if possible
1596# this is basiclaly our TLS state machine
1597# more efficient implementations are possible with openssl,
1598# but not with the buggy and incomplete Net::SSLeay.
1084sub _dotls { 1599sub _dotls {
1085 my ($self) = @_; 1600 my ($self) = @_;
1086 1601
1087 my $buf; 1602 my $tmp;
1088 1603
1089 if (length $self->{_tls_wbuf}) { 1604 if (length $self->{_tls_wbuf}) {
1090 while ((my $len = Net::SSLeay::write ($self->{tls}, $self->{_tls_wbuf})) > 0) { 1605 while (($tmp = Net::SSLeay::write ($self->{tls}, $self->{_tls_wbuf})) > 0) {
1091 substr $self->{_tls_wbuf}, 0, $len, ""; 1606 substr $self->{_tls_wbuf}, 0, $tmp, "";
1092 } 1607 }
1093 }
1094 1608
1609 $tmp = Net::SSLeay::get_error ($self->{tls}, $tmp);
1610 return $self->_tls_error ($tmp)
1611 if $tmp != $ERROR_WANT_READ
1612 && ($tmp != $ERROR_SYSCALL || $!);
1613 }
1614
1615 while (defined ($tmp = Net::SSLeay::read ($self->{tls}))) {
1616 unless (length $tmp) {
1617 $self->{_on_starttls}
1618 and (delete $self->{_on_starttls})->($self, undef, "EOF during handshake"); # ???
1619 &_freetls;
1620
1621 if ($self->{on_stoptls}) {
1622 $self->{on_stoptls}($self);
1623 return;
1624 } else {
1625 # let's treat SSL-eof as we treat normal EOF
1626 delete $self->{_rw};
1627 $self->{_eof} = 1;
1628 }
1629 }
1630
1631 $self->{_tls_rbuf} .= $tmp;
1632 $self->_drain_rbuf;
1633 $self->{tls} or return; # tls session might have gone away in callback
1634 }
1635
1636 $tmp = Net::SSLeay::get_error ($self->{tls}, -1);
1637 return $self->_tls_error ($tmp)
1638 if $tmp != $ERROR_WANT_READ
1639 && ($tmp != $ERROR_SYSCALL || $!);
1640
1095 if (length ($buf = Net::SSLeay::BIO_read ($self->{_wbio}))) { 1641 while (length ($tmp = Net::SSLeay::BIO_read ($self->{_wbio}))) {
1096 $self->{wbuf} .= $buf; 1642 $self->{wbuf} .= $tmp;
1097 $self->_drain_wbuf; 1643 $self->_drain_wbuf;
1098 } 1644 }
1099 1645
1100 while (defined ($buf = Net::SSLeay::read ($self->{tls}))) { 1646 $self->{_on_starttls}
1101 if (length $buf) { 1647 and Net::SSLeay::state ($self->{tls}) == Net::SSLeay::ST_OK ()
1102 $self->{rbuf} .= $buf; 1648 and (delete $self->{_on_starttls})->($self, 1, "TLS/SSL connection established");
1103 $self->_drain_rbuf;
1104 } else {
1105 # let's treat SSL-eof as we treat normal EOF
1106 $self->{_eof} = 1;
1107 $self->_shutdown;
1108 return;
1109 }
1110 }
1111
1112 my $err = Net::SSLeay::get_error ($self->{tls}, -1);
1113
1114 if ($err!= Net::SSLeay::ERROR_WANT_READ ()) {
1115 if ($err == Net::SSLeay::ERROR_SYSCALL ()) {
1116 return $self->_error ($!, 1);
1117 } elsif ($err == Net::SSLeay::ERROR_SSL ()) {
1118 return $self->_error (&Errno::EIO, 1);
1119 }
1120
1121 # all others are fine for our purposes
1122 }
1123} 1649}
1124 1650
1125=item $handle->starttls ($tls[, $tls_ctx]) 1651=item $handle->starttls ($tls[, $tls_ctx])
1126 1652
1127Instead of starting TLS negotiation immediately when the AnyEvent::Handle 1653Instead of starting TLS negotiation immediately when the AnyEvent::Handle
1128object is created, you can also do that at a later time by calling 1654object is created, you can also do that at a later time by calling
1129C<starttls>. 1655C<starttls>.
1130 1656
1657Starting TLS is currently an asynchronous operation - when you push some
1658write data and then call C<< ->starttls >> then TLS negotiation will start
1659immediately, after which the queued write data is then sent.
1660
1131The first argument is the same as the C<tls> constructor argument (either 1661The first argument is the same as the C<tls> constructor argument (either
1132C<"connect">, C<"accept"> or an existing Net::SSLeay object). 1662C<"connect">, C<"accept"> or an existing Net::SSLeay object).
1133 1663
1134The second argument is the optional C<Net::SSLeay::CTX> object that is 1664The second argument is the optional C<AnyEvent::TLS> object that is used
1135used when AnyEvent::Handle has to create its own TLS connection object. 1665when AnyEvent::Handle has to create its own TLS connection object, or
1666a hash reference with C<< key => value >> pairs that will be used to
1667construct a new context.
1136 1668
1137The TLS connection object will end up in C<< $handle->{tls} >> after this 1669The TLS connection object will end up in C<< $handle->{tls} >>, the TLS
1138call and can be used or changed to your liking. Note that the handshake 1670context in C<< $handle->{tls_ctx} >> after this call and can be used or
1139might have already started when this function returns. 1671changed to your liking. Note that the handshake might have already started
1672when this function returns.
1140 1673
1674Due to bugs in OpenSSL, it might or might not be possible to do multiple
1675handshakes on the same stream. Best do not attempt to use the stream after
1676stopping TLS.
1677
1141=cut 1678=cut
1679
1680our %TLS_CACHE; #TODO not yet documented, should we?
1142 1681
1143sub starttls { 1682sub starttls {
1144 my ($self, $ssl, $ctx) = @_; 1683 my ($self, $tls, $ctx) = @_;
1145 1684
1146 $self->stoptls; 1685 Carp::croak "It is an error to call starttls on an AnyEvent::Handle object while TLS is already active, caught"
1686 if $self->{tls};
1147 1687
1148 if ($ssl eq "accept") { 1688 $self->{tls} = $tls;
1149 $ssl = Net::SSLeay::new ($ctx || TLS_CTX ()); 1689 $self->{tls_ctx} = $ctx if @_ > 2;
1150 Net::SSLeay::set_accept_state ($ssl); 1690
1151 } elsif ($ssl eq "connect") { 1691 return unless $self->{fh};
1152 $ssl = Net::SSLeay::new ($ctx || TLS_CTX ()); 1692
1153 Net::SSLeay::set_connect_state ($ssl); 1693 require Net::SSLeay;
1694
1695 $ERROR_SYSCALL = Net::SSLeay::ERROR_SYSCALL ();
1696 $ERROR_WANT_READ = Net::SSLeay::ERROR_WANT_READ ();
1697
1698 $tls = $self->{tls};
1699 $ctx = $self->{tls_ctx};
1700
1701 local $Carp::CarpLevel = 1; # skip ourselves when creating a new context or session
1702
1703 if ("HASH" eq ref $ctx) {
1704 require AnyEvent::TLS;
1705
1706 if ($ctx->{cache}) {
1707 my $key = $ctx+0;
1708 $ctx = $TLS_CACHE{$key} ||= new AnyEvent::TLS %$ctx;
1709 } else {
1710 $ctx = new AnyEvent::TLS %$ctx;
1711 }
1712 }
1154 } 1713
1155 1714 $self->{tls_ctx} = $ctx || TLS_CTX ();
1156 $self->{tls} = $ssl; 1715 $self->{tls} = $tls = $self->{tls_ctx}->_get_session ($tls, $self, $self->{peername});
1157 1716
1158 # basically, this is deep magic (because SSL_read should have the same issues) 1717 # basically, this is deep magic (because SSL_read should have the same issues)
1159 # but the openssl maintainers basically said: "trust us, it just works". 1718 # but the openssl maintainers basically said: "trust us, it just works".
1160 # (unfortunately, we have to hardcode constants because the abysmally misdesigned 1719 # (unfortunately, we have to hardcode constants because the abysmally misdesigned
1161 # and mismaintained ssleay-module doesn't even offer them). 1720 # and mismaintained ssleay-module doesn't even offer them).
1162 # http://www.mail-archive.com/openssl-dev@openssl.org/msg22420.html 1721 # http://www.mail-archive.com/openssl-dev@openssl.org/msg22420.html
1722 #
1723 # in short: this is a mess.
1724 #
1725 # note that we do not try to keep the length constant between writes as we are required to do.
1726 # we assume that most (but not all) of this insanity only applies to non-blocking cases,
1727 # and we drive openssl fully in blocking mode here. Or maybe we don't - openssl seems to
1728 # have identity issues in that area.
1163 Net::SSLeay::CTX_set_mode ($self->{tls}, 1729# Net::SSLeay::CTX_set_mode ($ssl,
1164 (eval { local $SIG{__DIE__}; Net::SSLeay::MODE_ENABLE_PARTIAL_WRITE () } || 1) 1730# (eval { local $SIG{__DIE__}; Net::SSLeay::MODE_ENABLE_PARTIAL_WRITE () } || 1)
1165 | (eval { local $SIG{__DIE__}; Net::SSLeay::MODE_ACCEPT_MOVING_WRITE_BUFFER () } || 2)); 1731# | (eval { local $SIG{__DIE__}; Net::SSLeay::MODE_ACCEPT_MOVING_WRITE_BUFFER () } || 2));
1732 Net::SSLeay::CTX_set_mode ($tls, 1|2);
1166 1733
1167 $self->{_rbio} = Net::SSLeay::BIO_new (Net::SSLeay::BIO_s_mem ()); 1734 $self->{_rbio} = Net::SSLeay::BIO_new (Net::SSLeay::BIO_s_mem ());
1168 $self->{_wbio} = Net::SSLeay::BIO_new (Net::SSLeay::BIO_s_mem ()); 1735 $self->{_wbio} = Net::SSLeay::BIO_new (Net::SSLeay::BIO_s_mem ());
1169 1736
1737 Net::SSLeay::BIO_write ($self->{_rbio}, delete $self->{rbuf});
1738
1170 Net::SSLeay::set_bio ($ssl, $self->{_rbio}, $self->{_wbio}); 1739 Net::SSLeay::set_bio ($tls, $self->{_rbio}, $self->{_wbio});
1171 1740
1172 $self->{filter_w} = sub { 1741 $self->{_on_starttls} = sub { $_[0]{on_starttls}(@_) }
1173 $_[0]{_tls_wbuf} .= ${$_[1]}; 1742 if $self->{on_starttls};
1174 &_dotls; 1743
1175 }; 1744 &_dotls; # need to trigger the initial handshake
1176 $self->{filter_r} = sub { 1745 $self->start_read; # make sure we actually do read
1177 Net::SSLeay::BIO_write ($_[0]{_rbio}, ${$_[1]});
1178 &_dotls;
1179 };
1180} 1746}
1181 1747
1182=item $handle->stoptls 1748=item $handle->stoptls
1183 1749
1184Destroys the SSL connection, if any. Partial read or write data will be 1750Shuts down the SSL connection - this makes a proper EOF handshake by
1185lost. 1751sending a close notify to the other side, but since OpenSSL doesn't
1752support non-blocking shut downs, it is not guarenteed that you can re-use
1753the stream afterwards.
1186 1754
1187=cut 1755=cut
1188 1756
1189sub stoptls { 1757sub stoptls {
1190 my ($self) = @_; 1758 my ($self) = @_;
1191 1759
1192 Net::SSLeay::free (delete $self->{tls}) if $self->{tls}; 1760 if ($self->{tls}) {
1761 Net::SSLeay::shutdown ($self->{tls});
1193 1762
1194 delete $self->{_rbio}; 1763 &_dotls;
1195 delete $self->{_wbio}; 1764
1196 delete $self->{_tls_wbuf}; 1765# # we don't give a shit. no, we do, but we can't. no...#d#
1197 delete $self->{filter_r}; 1766# # we, we... have to use openssl :/#d#
1198 delete $self->{filter_w}; 1767# &_freetls;#d#
1768 }
1769}
1770
1771sub _freetls {
1772 my ($self) = @_;
1773
1774 return unless $self->{tls};
1775
1776 $self->{tls_ctx}->_put_session (delete $self->{tls})
1777 if $self->{tls} > 0;
1778
1779 delete @$self{qw(_rbio _wbio _tls_wbuf _on_starttls)};
1199} 1780}
1200 1781
1201sub DESTROY { 1782sub DESTROY {
1202 my $self = shift; 1783 my ($self) = @_;
1203 1784
1204 $self->stoptls; 1785 &_freetls;
1786
1787 my $linger = exists $self->{linger} ? $self->{linger} : 3600;
1788
1789 if ($linger && length $self->{wbuf} && $self->{fh}) {
1790 my $fh = delete $self->{fh};
1791 my $wbuf = delete $self->{wbuf};
1792
1793 my @linger;
1794
1795 push @linger, AnyEvent->io (fh => $fh, poll => "w", cb => sub {
1796 my $len = syswrite $fh, $wbuf, length $wbuf;
1797
1798 if ($len > 0) {
1799 substr $wbuf, 0, $len, "";
1800 } else {
1801 @linger = (); # end
1802 }
1803 });
1804 push @linger, AnyEvent->timer (after => $linger, cb => sub {
1805 @linger = ();
1806 });
1807 }
1808}
1809
1810=item $handle->destroy
1811
1812Shuts down the handle object as much as possible - this call ensures that
1813no further callbacks will be invoked and as many resources as possible
1814will be freed. Any method you will call on the handle object after
1815destroying it in this way will be silently ignored (and it will return the
1816empty list).
1817
1818Normally, you can just "forget" any references to an AnyEvent::Handle
1819object and it will simply shut down. This works in fatal error and EOF
1820callbacks, as well as code outside. It does I<NOT> work in a read or write
1821callback, so when you want to destroy the AnyEvent::Handle object from
1822within such an callback. You I<MUST> call C<< ->destroy >> explicitly in
1823that case.
1824
1825Destroying the handle object in this way has the advantage that callbacks
1826will be removed as well, so if those are the only reference holders (as
1827is common), then one doesn't need to do anything special to break any
1828reference cycles.
1829
1830The handle might still linger in the background and write out remaining
1831data, as specified by the C<linger> option, however.
1832
1833=cut
1834
1835sub destroy {
1836 my ($self) = @_;
1837
1838 $self->DESTROY;
1839 %$self = ();
1840 bless $self, "AnyEvent::Handle::destroyed";
1841}
1842
1843sub AnyEvent::Handle::destroyed::AUTOLOAD {
1844 #nop
1205} 1845}
1206 1846
1207=item AnyEvent::Handle::TLS_CTX 1847=item AnyEvent::Handle::TLS_CTX
1208 1848
1209This function creates and returns the Net::SSLeay::CTX object used by 1849This function creates and returns the AnyEvent::TLS object used by default
1210default for TLS mode. 1850for TLS mode.
1211 1851
1212The context is created like this: 1852The context is created by calling L<AnyEvent::TLS> without any arguments.
1213
1214 Net::SSLeay::load_error_strings;
1215 Net::SSLeay::SSLeay_add_ssl_algorithms;
1216 Net::SSLeay::randomize;
1217
1218 my $CTX = Net::SSLeay::CTX_new;
1219
1220 Net::SSLeay::CTX_set_options $CTX, Net::SSLeay::OP_ALL
1221 1853
1222=cut 1854=cut
1223 1855
1224our $TLS_CTX; 1856our $TLS_CTX;
1225 1857
1226sub TLS_CTX() { 1858sub TLS_CTX() {
1227 $TLS_CTX || do { 1859 $TLS_CTX ||= do {
1228 require Net::SSLeay; 1860 require AnyEvent::TLS;
1229 1861
1230 Net::SSLeay::load_error_strings (); 1862 new AnyEvent::TLS
1231 Net::SSLeay::SSLeay_add_ssl_algorithms ();
1232 Net::SSLeay::randomize ();
1233
1234 $TLS_CTX = Net::SSLeay::CTX_new ();
1235
1236 Net::SSLeay::CTX_set_options ($TLS_CTX, Net::SSLeay::OP_ALL ());
1237
1238 $TLS_CTX
1239 } 1863 }
1240} 1864}
1241 1865
1242=back 1866=back
1867
1868
1869=head1 NONFREQUENTLY ASKED QUESTIONS
1870
1871=over 4
1872
1873=item I C<undef> the AnyEvent::Handle reference inside my callback and
1874still get further invocations!
1875
1876That's because AnyEvent::Handle keeps a reference to itself when handling
1877read or write callbacks.
1878
1879It is only safe to "forget" the reference inside EOF or error callbacks,
1880from within all other callbacks, you need to explicitly call the C<<
1881->destroy >> method.
1882
1883=item I get different callback invocations in TLS mode/Why can't I pause
1884reading?
1885
1886Unlike, say, TCP, TLS connections do not consist of two independent
1887communication channels, one for each direction. Or put differently. The
1888read and write directions are not independent of each other: you cannot
1889write data unless you are also prepared to read, and vice versa.
1890
1891This can mean than, in TLS mode, you might get C<on_error> or C<on_eof>
1892callback invocations when you are not expecting any read data - the reason
1893is that AnyEvent::Handle always reads in TLS mode.
1894
1895During the connection, you have to make sure that you always have a
1896non-empty read-queue, or an C<on_read> watcher. At the end of the
1897connection (or when you no longer want to use it) you can call the
1898C<destroy> method.
1899
1900=item How do I read data until the other side closes the connection?
1901
1902If you just want to read your data into a perl scalar, the easiest way
1903to achieve this is by setting an C<on_read> callback that does nothing,
1904clearing the C<on_eof> callback and in the C<on_error> callback, the data
1905will be in C<$_[0]{rbuf}>:
1906
1907 $handle->on_read (sub { });
1908 $handle->on_eof (undef);
1909 $handle->on_error (sub {
1910 my $data = delete $_[0]{rbuf};
1911 });
1912
1913The reason to use C<on_error> is that TCP connections, due to latencies
1914and packets loss, might get closed quite violently with an error, when in
1915fact, all data has been received.
1916
1917It is usually better to use acknowledgements when transferring data,
1918to make sure the other side hasn't just died and you got the data
1919intact. This is also one reason why so many internet protocols have an
1920explicit QUIT command.
1921
1922=item I don't want to destroy the handle too early - how do I wait until
1923all data has been written?
1924
1925After writing your last bits of data, set the C<on_drain> callback
1926and destroy the handle in there - with the default setting of
1927C<low_water_mark> this will be called precisely when all data has been
1928written to the socket:
1929
1930 $handle->push_write (...);
1931 $handle->on_drain (sub {
1932 warn "all data submitted to the kernel\n";
1933 undef $handle;
1934 });
1935
1936If you just want to queue some data and then signal EOF to the other side,
1937consider using C<< ->push_shutdown >> instead.
1938
1939=item I want to contact a TLS/SSL server, I don't care about security.
1940
1941If your TLS server is a pure TLS server (e.g. HTTPS) that only speaks TLS,
1942simply connect to it and then create the AnyEvent::Handle with the C<tls>
1943parameter:
1944
1945 tcp_connect $host, $port, sub {
1946 my ($fh) = @_;
1947
1948 my $handle = new AnyEvent::Handle
1949 fh => $fh,
1950 tls => "connect",
1951 on_error => sub { ... };
1952
1953 $handle->push_write (...);
1954 };
1955
1956=item I want to contact a TLS/SSL server, I do care about security.
1957
1958Then you should additionally enable certificate verification, including
1959peername verification, if the protocol you use supports it (see
1960L<AnyEvent::TLS>, C<verify_peername>).
1961
1962E.g. for HTTPS:
1963
1964 tcp_connect $host, $port, sub {
1965 my ($fh) = @_;
1966
1967 my $handle = new AnyEvent::Handle
1968 fh => $fh,
1969 peername => $host,
1970 tls => "connect",
1971 tls_ctx => { verify => 1, verify_peername => "https" },
1972 ...
1973
1974Note that you must specify the hostname you connected to (or whatever
1975"peername" the protocol needs) as the C<peername> argument, otherwise no
1976peername verification will be done.
1977
1978The above will use the system-dependent default set of trusted CA
1979certificates. If you want to check against a specific CA, add the
1980C<ca_file> (or C<ca_cert>) arguments to C<tls_ctx>:
1981
1982 tls_ctx => {
1983 verify => 1,
1984 verify_peername => "https",
1985 ca_file => "my-ca-cert.pem",
1986 },
1987
1988=item I want to create a TLS/SSL server, how do I do that?
1989
1990Well, you first need to get a server certificate and key. You have
1991three options: a) ask a CA (buy one, use cacert.org etc.) b) create a
1992self-signed certificate (cheap. check the search engine of your choice,
1993there are many tutorials on the net) or c) make your own CA (tinyca2 is a
1994nice program for that purpose).
1995
1996Then create a file with your private key (in PEM format, see
1997L<AnyEvent::TLS>), followed by the certificate (also in PEM format). The
1998file should then look like this:
1999
2000 -----BEGIN RSA PRIVATE KEY-----
2001 ...header data
2002 ... lots of base64'y-stuff
2003 -----END RSA PRIVATE KEY-----
2004
2005 -----BEGIN CERTIFICATE-----
2006 ... lots of base64'y-stuff
2007 -----END CERTIFICATE-----
2008
2009The important bits are the "PRIVATE KEY" and "CERTIFICATE" parts. Then
2010specify this file as C<cert_file>:
2011
2012 tcp_server undef, $port, sub {
2013 my ($fh) = @_;
2014
2015 my $handle = new AnyEvent::Handle
2016 fh => $fh,
2017 tls => "accept",
2018 tls_ctx => { cert_file => "my-server-keycert.pem" },
2019 ...
2020
2021When you have intermediate CA certificates that your clients might not
2022know about, just append them to the C<cert_file>.
2023
2024=back
2025
1243 2026
1244=head1 SUBCLASSING AnyEvent::Handle 2027=head1 SUBCLASSING AnyEvent::Handle
1245 2028
1246In many cases, you might want to subclass AnyEvent::Handle. 2029In many cases, you might want to subclass AnyEvent::Handle.
1247 2030
1251=over 4 2034=over 4
1252 2035
1253=item * all constructor arguments become object members. 2036=item * all constructor arguments become object members.
1254 2037
1255At least initially, when you pass a C<tls>-argument to the constructor it 2038At least initially, when you pass a C<tls>-argument to the constructor it
1256will end up in C<< $handle->{tls} >>. Those members might be changes or 2039will end up in C<< $handle->{tls} >>. Those members might be changed or
1257mutated later on (for example C<tls> will hold the TLS connection object). 2040mutated later on (for example C<tls> will hold the TLS connection object).
1258 2041
1259=item * other object member names are prefixed with an C<_>. 2042=item * other object member names are prefixed with an C<_>.
1260 2043
1261All object members not explicitly documented (internal use) are prefixed 2044All object members not explicitly documented (internal use) are prefixed

Diff Legend

Removed lines
+ Added lines
< Changed lines
> Changed lines