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Revision 1.63 by root, Fri Jun 6 11:00:32 2008 UTC vs.
Revision 1.178 by root, Tue Aug 11 01:15:17 2009 UTC

1package AnyEvent::Handle;
2
3no warnings;
4use strict;
5
6use AnyEvent ();
7use AnyEvent::Util qw(WSAEWOULDBLOCK);
8use Scalar::Util ();
9use Carp ();
10use Fcntl ();
11use Errno qw(EAGAIN EINTR);
12
13=head1 NAME 1=head1 NAME
14 2
15AnyEvent::Handle - non-blocking I/O on file handles via AnyEvent 3AnyEvent::Handle - non-blocking I/O on file handles via AnyEvent
16
17=cut
18
19our $VERSION = 4.14;
20 4
21=head1 SYNOPSIS 5=head1 SYNOPSIS
22 6
23 use AnyEvent; 7 use AnyEvent;
24 use AnyEvent::Handle; 8 use AnyEvent::Handle;
25 9
26 my $cv = AnyEvent->condvar; 10 my $cv = AnyEvent->condvar;
27 11
28 my $handle = 12 my $hdl; $hdl = new AnyEvent::Handle
29 AnyEvent::Handle->new (
30 fh => \*STDIN, 13 fh => \*STDIN,
31 on_eof => sub { 14 on_error => sub {
32 $cv->broadcast; 15 my ($hdl, $fatal, $msg) = @_;
33 }, 16 warn "got error $msg\n";
17 $hdl->destroy;
18 $cv->send;
34 ); 19 );
35 20
36 # send some request line 21 # send some request line
37 $handle->push_write ("getinfo\015\012"); 22 $hdl->push_write ("getinfo\015\012");
38 23
39 # read the response line 24 # read the response line
40 $handle->push_read (line => sub { 25 $hdl->push_read (line => sub {
41 my ($handle, $line) = @_; 26 my ($hdl, $line) = @_;
42 warn "read line <$line>\n"; 27 warn "got line <$line>\n";
43 $cv->send; 28 $cv->send;
44 }); 29 });
45 30
46 $cv->recv; 31 $cv->recv;
47 32
48=head1 DESCRIPTION 33=head1 DESCRIPTION
49 34
50This module is a helper module to make it easier to do event-based I/O on 35This 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 36filehandles.
52on sockets see L<AnyEvent::Util>. 37
38The L<AnyEvent::Intro> tutorial contains some well-documented
39AnyEvent::Handle examples.
53 40
54In the following, when the documentation refers to of "bytes" then this 41In the following, when the documentation refers to of "bytes" then this
55means characters. As sysread and syswrite are used for all I/O, their 42means characters. As sysread and syswrite are used for all I/O, their
56treatment of characters applies to this module as well. 43treatment of characters applies to this module as well.
57 44
45At the very minimum, you should specify C<fh> or C<connect>, and the
46C<on_error> callback.
47
58All callbacks will be invoked with the handle object as their first 48All callbacks will be invoked with the handle object as their first
59argument. 49argument.
60 50
51=cut
52
53package AnyEvent::Handle;
54
55use Scalar::Util ();
56use List::Util ();
57use Carp ();
58use Errno qw(EAGAIN EINTR);
59
60use AnyEvent (); BEGIN { AnyEvent::common_sense }
61use AnyEvent::Util qw(WSAEWOULDBLOCK);
62
63our $VERSION = $AnyEvent::VERSION;
64
61=head1 METHODS 65=head1 METHODS
62 66
63=over 4 67=over 4
64 68
65=item B<new (%args)> 69=item $handle = B<new> AnyEvent::TLS fh => $filehandle, key => value...
66 70
67The constructor supports these arguments (all as key => value pairs). 71The constructor supports these arguments (all as C<< key => value >> pairs).
68 72
69=over 4 73=over 4
70 74
71=item fh => $filehandle [MANDATORY] 75=item fh => $filehandle [C<fh> or C<connect> MANDATORY]
72 76
73The filehandle this L<AnyEvent::Handle> object will operate on. 77The filehandle this L<AnyEvent::Handle> object will operate on.
74
75NOTE: The filehandle will be set to non-blocking (using 78NOTE: The filehandle will be set to non-blocking mode (using
76AnyEvent::Util::fh_nonblocking). 79C<AnyEvent::Util::fh_nonblocking>) by the constructor and needs to stay in
80that mode.
77 81
82=item connect => [$host, $service] [C<fh> or C<connect> MANDATORY]
83
84Try to connect to the specified host and service (port), using
85C<AnyEvent::Socket::tcp_connect>. The C<$host> additionally becomes the
86default C<peername>.
87
88You have to specify either this parameter, or C<fh>, above.
89
90It is possible to push requests on the read and write queues, and modify
91properties of the stream, even while AnyEvent::Handle is connecting.
92
93When this parameter is specified, then the C<on_prepare>,
94C<on_connect_error> and C<on_connect> callbacks will be called under the
95appropriate circumstances:
96
97=over 4
98
78=item on_eof => $cb->($handle) 99=item on_prepare => $cb->($handle)
79 100
80Set the callback to be called when an end-of-file condition is detcted, 101This (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 102attempted, but after the file handle has been created. It could be used to
82connection cleanly. 103prepare the file handle with parameters required for the actual connect
104(as opposed to settings that can be changed when the connection is already
105established).
83 106
84While not mandatory, it is highly recommended to set an eof callback, 107The 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 108seconds (or C<0>, or C<undef>, or the empty list, to indicate the default
86waiting for data. 109timeout is to be used).
87 110
111=item on_connect => $cb->($handle, $host, $port, $retry->())
112
113This callback is called when a connection has been successfully established.
114
115The actual numeric host and port (the socket peername) are passed as
116parameters, together with a retry callback.
117
118When, for some reason, the handle is not acceptable, then calling
119C<$retry> will continue with the next conenction target (in case of
120multi-homed hosts or SRV records there can be multiple connection
121endpoints). When it is called then the read and write queues, eof status,
122tls status and similar properties of the handle are being reset.
123
124In most cases, ignoring the C<$retry> parameter is the way to go.
125
126=item on_connect_error => $cb->($handle, $message)
127
128This callback is called when the conenction could not be
129established. C<$!> will contain the relevant error code, and C<$message> a
130message describing it (usually the same as C<"$!">).
131
132If this callback isn't specified, then C<on_error> will be called with a
133fatal error instead.
134
135=back
136
88=item on_error => $cb->($handle, $fatal) 137=item on_error => $cb->($handle, $fatal, $message)
89 138
90This is the error callback, which is called when, well, some error 139This is the error callback, which is called when, well, some error
91occured, such as not being able to resolve the hostname, failure to 140occured, such as not being able to resolve the hostname, failure to
92connect or a read error. 141connect or a read error.
93 142
94Some errors are fatal (which is indicated by C<$fatal> being true). On 143Some errors are fatal (which is indicated by C<$fatal> being true). On
95fatal errors the handle object will be shut down and will not be 144fatal errors the handle object will be destroyed (by a call to C<< ->
145destroy >>) after invoking the error callback (which means you are free to
146examine the handle object). Examples of fatal errors are an EOF condition
147with active (but unsatisifable) read watchers (C<EPIPE>) or I/O errors. In
148cases where the other side can close the connection at their will it is
149often easiest to not report C<EPIPE> errors in this callback.
150
151AnyEvent::Handle tries to find an appropriate error code for you to check
152against, but in some cases (TLS errors), this does not work well. It is
153recommended to always output the C<$message> argument in human-readable
154error messages (it's usually the same as C<"$!">).
155
96usable. Non-fatal errors can be retried by simply returning, but it is 156Non-fatal errors can be retried by simply returning, but it is recommended
97recommended to simply ignore this parameter and instead abondon the handle 157to simply ignore this parameter and instead abondon the handle object
98object when this callback is invoked. 158when this callback is invoked. Examples of non-fatal errors are timeouts
159C<ETIMEDOUT>) or badly-formatted data (C<EBADMSG>).
99 160
100On callback entrance, the value of C<$!> contains the operating system 161On callback entrance, the value of C<$!> contains the operating system
101error (or C<ENOSPC>, C<EPIPE>, C<ETIMEDOUT> or C<EBADMSG>). 162error code (or C<ENOSPC>, C<EPIPE>, C<ETIMEDOUT>, C<EBADMSG> or
163C<EPROTO>).
102 164
103While not mandatory, it is I<highly> recommended to set this callback, as 165While not mandatory, it is I<highly> recommended to set this callback, as
104you will not be notified of errors otherwise. The default simply calls 166you will not be notified of errors otherwise. The default simply calls
105C<croak>. 167C<croak>.
106 168
110and no read request is in the queue (unlike read queue callbacks, this 172and no read request is in the queue (unlike read queue callbacks, this
111callback will only be called when at least one octet of data is in the 173callback will only be called when at least one octet of data is in the
112read buffer). 174read buffer).
113 175
114To access (and remove data from) the read buffer, use the C<< ->rbuf >> 176To access (and remove data from) the read buffer, use the C<< ->rbuf >>
115method or access the C<$handle->{rbuf}> member directly. 177method or access the C<< $handle->{rbuf} >> member directly. Note that you
178must not enlarge or modify the read buffer, you can only remove data at
179the beginning from it.
116 180
117When an EOF condition is detected then AnyEvent::Handle will first try to 181When an EOF condition is detected then AnyEvent::Handle will first try to
118feed all the remaining data to the queued callbacks and C<on_read> before 182feed all the remaining data to the queued callbacks and C<on_read> before
119calling the C<on_eof> callback. If no progress can be made, then a fatal 183calling the C<on_eof> callback. If no progress can be made, then a fatal
120error will be raised (with C<$!> set to C<EPIPE>). 184error will be raised (with C<$!> set to C<EPIPE>).
121 185
186Note that, unlike requests in the read queue, an C<on_read> callback
187doesn't mean you I<require> some data: if there is an EOF and there
188are outstanding read requests then an error will be flagged. With an
189C<on_read> callback, the C<on_eof> callback will be invoked.
190
191=item on_eof => $cb->($handle)
192
193Set the callback to be called when an end-of-file condition is detected,
194i.e. in the case of a socket, when the other side has closed the
195connection cleanly, and there are no outstanding read requests in the
196queue (if there are read requests, then an EOF counts as an unexpected
197connection close and will be flagged as an error).
198
199For sockets, this just means that the other side has stopped sending data,
200you can still try to write data, and, in fact, one can return from the EOF
201callback and continue writing data, as only the read part has been shut
202down.
203
204If an EOF condition has been detected but no C<on_eof> callback has been
205set, then a fatal error will be raised with C<$!> set to <0>.
206
122=item on_drain => $cb->($handle) 207=item on_drain => $cb->($handle)
123 208
124This sets the callback that is called when the write buffer becomes empty 209This sets the callback that is called when the write buffer becomes empty
125(or when the callback is set and the buffer is empty already). 210(or when the callback is set and the buffer is empty already).
126 211
127To append to the write buffer, use the C<< ->push_write >> method. 212To append to the write buffer, use the C<< ->push_write >> method.
128 213
214This callback is useful when you don't want to put all of your write data
215into the queue at once, for example, when you want to write the contents
216of some file to the socket you might not want to read the whole file into
217memory and push it into the queue, but instead only read more data from
218the file when the write queue becomes empty.
219
129=item timeout => $fractional_seconds 220=item timeout => $fractional_seconds
130 221
222=item rtimeout => $fractional_seconds
223
224=item wtimeout => $fractional_seconds
225
131If non-zero, then this enables an "inactivity" timeout: whenever this many 226If non-zero, then these enables an "inactivity" timeout: whenever this
132seconds pass without a successful read or write on the underlying file 227many seconds pass without a successful read or write on the underlying
133handle, the C<on_timeout> callback will be invoked (and if that one is 228file handle (or a call to C<timeout_reset>), the C<on_timeout> callback
134missing, an C<ETIMEDOUT> error will be raised). 229will be invoked (and if that one is missing, a non-fatal C<ETIMEDOUT>
230error will be raised).
231
232There are three variants of the timeouts that work fully independent
233of each other, for both read and write, just read, and just write:
234C<timeout>, C<rtimeout> and C<wtimeout>, with corresponding callbacks
235C<on_timeout>, C<on_rtimeout> and C<on_wtimeout>, and reset functions
236C<timeout_reset>, C<rtimeout_reset>, and C<wtimeout_reset>.
135 237
136Note that timeout processing is also active when you currently do not have 238Note that timeout processing is also active when you currently do not have
137any outstanding read or write requests: If you plan to keep the connection 239any outstanding read or write requests: If you plan to keep the connection
138idle then you should disable the timout temporarily or ignore the timeout 240idle then you should disable the timout temporarily or ignore the timeout
139in the C<on_timeout> callback. 241in the C<on_timeout> callback, in which case AnyEvent::Handle will simply
242restart the timeout.
140 243
141Zero (the default) disables this timeout. 244Zero (the default) disables this timeout.
142 245
143=item on_timeout => $cb->($handle) 246=item on_timeout => $cb->($handle)
144 247
148 251
149=item rbuf_max => <bytes> 252=item rbuf_max => <bytes>
150 253
151If defined, then a fatal error will be raised (with C<$!> set to C<ENOSPC>) 254If defined, then a fatal error will be raised (with C<$!> set to C<ENOSPC>)
152when the read buffer ever (strictly) exceeds this size. This is useful to 255when the read buffer ever (strictly) exceeds this size. This is useful to
153avoid denial-of-service attacks. 256avoid some forms of denial-of-service attacks.
154 257
155For example, a server accepting connections from untrusted sources should 258For example, a server accepting connections from untrusted sources should
156be configured to accept only so-and-so much data that it cannot act on 259be configured to accept only so-and-so much data that it cannot act on
157(for example, when expecting a line, an attacker could send an unlimited 260(for example, when expecting a line, an attacker could send an unlimited
158amount of data without a callback ever being called as long as the line 261amount of data without a callback ever being called as long as the line
159isn't finished). 262isn't finished).
160 263
264=item autocork => <boolean>
265
266When disabled (the default), then C<push_write> will try to immediately
267write the data to the handle, if possible. This avoids having to register
268a write watcher and wait for the next event loop iteration, but can
269be inefficient if you write multiple small chunks (on the wire, this
270disadvantage is usually avoided by your kernel's nagle algorithm, see
271C<no_delay>, but this option can save costly syscalls).
272
273When enabled, then writes will always be queued till the next event loop
274iteration. This is efficient when you do many small writes per iteration,
275but less efficient when you do a single write only per iteration (or when
276the write buffer often is full). It also increases write latency.
277
278=item no_delay => <boolean>
279
280When doing small writes on sockets, your operating system kernel might
281wait a bit for more data before actually sending it out. This is called
282the Nagle algorithm, and usually it is beneficial.
283
284In some situations you want as low a delay as possible, which can be
285accomplishd by setting this option to a true value.
286
287The default is your opertaing system's default behaviour (most likely
288enabled), this option explicitly enables or disables it, if possible.
289
161=item read_size => <bytes> 290=item read_size => <bytes>
162 291
163The default read block size (the amount of bytes this module will try to read 292The default read block size (the amount of bytes this module will
164during each (loop iteration). Default: C<8192>. 293try to read during each loop iteration, which affects memory
294requirements). Default: C<8192>.
165 295
166=item low_water_mark => <bytes> 296=item low_water_mark => <bytes>
167 297
168Sets the amount of bytes (default: C<0>) that make up an "empty" write 298Sets the amount of bytes (default: C<0>) that make up an "empty" write
169buffer: If the write reaches this size or gets even samller it is 299buffer: If the write reaches this size or gets even samller it is
170considered empty. 300considered empty.
171 301
302Sometimes it can be beneficial (for performance reasons) to add data to
303the write buffer before it is fully drained, but this is a rare case, as
304the operating system kernel usually buffers data as well, so the default
305is good in almost all cases.
306
172=item linger => <seconds> 307=item linger => <seconds>
173 308
174If non-zero (default: C<3600>), then the destructor of the 309If non-zero (default: C<3600>), then the destructor of the
175AnyEvent::Handle object will check wether there is still outstanding write 310AnyEvent::Handle object will check whether there is still outstanding
176data and will install a watcher that will write out this data. No errors 311write data and will install a watcher that will write this data to the
177will be reported (this mostly matches how the operating system treats 312socket. No errors will be reported (this mostly matches how the operating
178outstanding data at socket close time). 313system treats outstanding data at socket close time).
179 314
180This will not work for partial TLS data that could not yet been 315This will not work for partial TLS data that could not be encoded
181encoded. This data will be lost. 316yet. This data will be lost. Calling the C<stoptls> method in time might
317help.
318
319=item peername => $string
320
321A string used to identify the remote site - usually the DNS hostname
322(I<not> IDN!) used to create the connection, rarely the IP address.
323
324Apart from being useful in error messages, this string is also used in TLS
325peername verification (see C<verify_peername> in L<AnyEvent::TLS>). This
326verification will be skipped when C<peername> is not specified or
327C<undef>.
182 328
183=item tls => "accept" | "connect" | Net::SSLeay::SSL object 329=item tls => "accept" | "connect" | Net::SSLeay::SSL object
184 330
185When this parameter is given, it enables TLS (SSL) mode, that means it 331When this parameter is given, it enables TLS (SSL) mode, that means
186will start making tls handshake and will transparently encrypt/decrypt 332AnyEvent will start a TLS handshake as soon as the conenction has been
187data. 333established and will transparently encrypt/decrypt data afterwards.
334
335All TLS protocol errors will be signalled as C<EPROTO>, with an
336appropriate error message.
188 337
189TLS mode requires Net::SSLeay to be installed (it will be loaded 338TLS mode requires Net::SSLeay to be installed (it will be loaded
190automatically when you try to create a TLS handle). 339automatically when you try to create a TLS handle): this module doesn't
340have a dependency on that module, so if your module requires it, you have
341to add the dependency yourself.
191 342
192For the TLS server side, use C<accept>, and for the TLS client side of a 343Unlike TCP, TLS has a server and client side: for the TLS server side, use
193connection, use C<connect> mode. 344C<accept>, and for the TLS client side of a connection, use C<connect>
345mode.
194 346
195You can also provide your own TLS connection object, but you have 347You can also provide your own TLS connection object, but you have
196to make sure that you call either C<Net::SSLeay::set_connect_state> 348to make sure that you call either C<Net::SSLeay::set_connect_state>
197or C<Net::SSLeay::set_accept_state> on it before you pass it to 349or C<Net::SSLeay::set_accept_state> on it before you pass it to
198AnyEvent::Handle. 350AnyEvent::Handle. Also, this module will take ownership of this connection
351object.
199 352
353At some future point, AnyEvent::Handle might switch to another TLS
354implementation, then the option to use your own session object will go
355away.
356
357B<IMPORTANT:> since Net::SSLeay "objects" are really only integers,
358passing in the wrong integer will lead to certain crash. This most often
359happens when one uses a stylish C<< tls => 1 >> and is surprised about the
360segmentation fault.
361
200See the C<starttls> method if you need to start TLs negotiation later. 362See the C<< ->starttls >> method for when need to start TLS negotiation later.
201 363
202=item tls_ctx => $ssl_ctx 364=item tls_ctx => $anyevent_tls
203 365
204Use the given Net::SSLeay::CTX object to create the new TLS connection 366Use the given C<AnyEvent::TLS> object to create the new TLS connection
205(unless a connection object was specified directly). If this parameter is 367(unless a connection object was specified directly). If this parameter is
206missing, then AnyEvent::Handle will use C<AnyEvent::Handle::TLS_CTX>. 368missing, then AnyEvent::Handle will use C<AnyEvent::Handle::TLS_CTX>.
207 369
370Instead of an object, you can also specify a hash reference with C<< key
371=> value >> pairs. Those will be passed to L<AnyEvent::TLS> to create a
372new TLS context object.
373
374=item on_starttls => $cb->($handle, $success[, $error_message])
375
376This callback will be invoked when the TLS/SSL handshake has finished. If
377C<$success> is true, then the TLS handshake succeeded, otherwise it failed
378(C<on_stoptls> will not be called in this case).
379
380The session in C<< $handle->{tls} >> can still be examined in this
381callback, even when the handshake was not successful.
382
383TLS handshake failures will not cause C<on_error> to be invoked when this
384callback is in effect, instead, the error message will be passed to C<on_starttls>.
385
386Without this callback, handshake failures lead to C<on_error> being
387called, as normal.
388
389Note that you cannot call C<starttls> right again in this callback. If you
390need to do that, start an zero-second timer instead whose callback can
391then call C<< ->starttls >> again.
392
393=item on_stoptls => $cb->($handle)
394
395When a SSLv3/TLS shutdown/close notify/EOF is detected and this callback is
396set, then it will be invoked after freeing the TLS session. If it is not,
397then a TLS shutdown condition will be treated like a normal EOF condition
398on the handle.
399
400The session in C<< $handle->{tls} >> can still be examined in this
401callback.
402
403This callback will only be called on TLS shutdowns, not when the
404underlying handle signals EOF.
405
208=item json => JSON or JSON::XS object 406=item json => JSON or JSON::XS object
209 407
210This is the json coder object used by the C<json> read and write types. 408This is the json coder object used by the C<json> read and write types.
211 409
212If you don't supply it, then AnyEvent::Handle will create and use a 410If you don't supply it, then AnyEvent::Handle will create and use a
213suitable one, which will write and expect UTF-8 encoded JSON texts. 411suitable one (on demand), which will write and expect UTF-8 encoded JSON
412texts.
214 413
215Note that you are responsible to depend on the JSON module if you want to 414Note that you are responsible to depend on the JSON module if you want to
216use this functionality, as AnyEvent does not have a dependency itself. 415use this functionality, as AnyEvent does not have a dependency itself.
217 416
218=item filter_r => $cb
219
220=item filter_w => $cb
221
222These exist, but are undocumented at this time.
223
224=back 417=back
225 418
226=cut 419=cut
227 420
228sub new { 421sub new {
229 my $class = shift; 422 my $class = shift;
230
231 my $self = bless { @_ }, $class; 423 my $self = bless { @_ }, $class;
232 424
233 $self->{fh} or Carp::croak "mandatory argument fh is missing"; 425 if ($self->{fh}) {
426 $self->_start;
427 return unless $self->{fh}; # could be gone by now
428
429 } elsif ($self->{connect}) {
430 require AnyEvent::Socket;
431
432 $self->{peername} = $self->{connect}[0]
433 unless exists $self->{peername};
434
435 $self->{_skip_drain_rbuf} = 1;
436
437 {
438 Scalar::Util::weaken (my $self = $self);
439
440 $self->{_connect} =
441 AnyEvent::Socket::tcp_connect (
442 $self->{connect}[0],
443 $self->{connect}[1],
444 sub {
445 my ($fh, $host, $port, $retry) = @_;
446
447 if ($fh) {
448 $self->{fh} = $fh;
449
450 delete $self->{_skip_drain_rbuf};
451 $self->_start;
452
453 $self->{on_connect}
454 and $self->{on_connect}($self, $host, $port, sub {
455 delete @$self{qw(fh _tw _rtw _wtw _ww _rw _eof _queue rbuf _wbuf tls _tls_rbuf _tls_wbuf)};
456 $self->{_skip_drain_rbuf} = 1;
457 &$retry;
458 });
459
460 } else {
461 if ($self->{on_connect_error}) {
462 $self->{on_connect_error}($self, "$!");
463 $self->destroy;
464 } else {
465 $self->_error ($!, 1);
466 }
467 }
468 },
469 sub {
470 local $self->{fh} = $_[0];
471
472 $self->{on_prepare}
473 ? $self->{on_prepare}->($self)
474 : ()
475 }
476 );
477 }
478
479 } else {
480 Carp::croak "AnyEvent::Handle: either an existing fh or the connect parameter must be specified";
481 }
482
483 $self
484}
485
486sub _start {
487 my ($self) = @_;
234 488
235 AnyEvent::Util::fh_nonblocking $self->{fh}, 1; 489 AnyEvent::Util::fh_nonblocking $self->{fh}, 1;
236 490
237 if ($self->{tls}) { 491 $self->{_activity} =
238 require Net::SSLeay; 492 $self->{_ractivity} =
493 $self->{_wactivity} = AE::now;
494
495 $self->timeout (delete $self->{timeout} ) if $self->{timeout};
496 $self->rtimeout (delete $self->{rtimeout}) if $self->{rtimeout};
497 $self->wtimeout (delete $self->{wtimeout}) if $self->{wtimeout};
498
499 $self->no_delay (delete $self->{no_delay}) if exists $self->{no_delay};
500
239 $self->starttls (delete $self->{tls}, delete $self->{tls_ctx}); 501 $self->starttls (delete $self->{tls}, delete $self->{tls_ctx})
240 } 502 if $self->{tls};
241
242 $self->{_activity} = AnyEvent->now;
243 $self->_timeout;
244 503
245 $self->on_drain (delete $self->{on_drain}) if $self->{on_drain}; 504 $self->on_drain (delete $self->{on_drain}) if $self->{on_drain};
246 505
247 $self 506 $self->start_read
248} 507 if $self->{on_read} || @{ $self->{_queue} };
249 508
250sub _shutdown { 509 $self->_drain_wbuf;
251 my ($self) = @_;
252
253 delete $self->{_tw};
254 delete $self->{_rw};
255 delete $self->{_ww};
256 delete $self->{fh};
257
258 $self->stoptls;
259} 510}
260 511
261sub _error { 512sub _error {
262 my ($self, $errno, $fatal) = @_; 513 my ($self, $errno, $fatal, $message) = @_;
263
264 $self->_shutdown
265 if $fatal;
266 514
267 $! = $errno; 515 $! = $errno;
516 $message ||= "$!";
268 517
269 if ($self->{on_error}) { 518 if ($self->{on_error}) {
270 $self->{on_error}($self, $fatal); 519 $self->{on_error}($self, $fatal, $message);
271 } else { 520 $self->destroy if $fatal;
521 } elsif ($self->{fh}) {
522 $self->destroy;
272 Carp::croak "AnyEvent::Handle uncaught error: $!"; 523 Carp::croak "AnyEvent::Handle uncaught error: $message";
273 } 524 }
274} 525}
275 526
276=item $fh = $handle->fh 527=item $fh = $handle->fh
277 528
278This method returns the file handle of the L<AnyEvent::Handle> object. 529This method returns the file handle used to create the L<AnyEvent::Handle> object.
279 530
280=cut 531=cut
281 532
282sub fh { $_[0]{fh} } 533sub fh { $_[0]{fh} }
283 534
301 $_[0]{on_eof} = $_[1]; 552 $_[0]{on_eof} = $_[1];
302} 553}
303 554
304=item $handle->on_timeout ($cb) 555=item $handle->on_timeout ($cb)
305 556
306Replace the current C<on_timeout> callback, or disables the callback 557=item $handle->on_rtimeout ($cb)
307(but not the timeout) if C<$cb> = C<undef>. See C<timeout> constructor
308argument.
309 558
310=cut 559=item $handle->on_wtimeout ($cb)
311 560
312sub on_timeout { 561Replace the current C<on_timeout>, C<on_rtimeout> or C<on_wtimeout>
562callback, or disables the callback (but not the timeout) if C<$cb> =
563C<undef>. See the C<timeout> constructor argument and method.
564
565=cut
566
567# see below
568
569=item $handle->autocork ($boolean)
570
571Enables or disables the current autocork behaviour (see C<autocork>
572constructor argument). Changes will only take effect on the next write.
573
574=cut
575
576sub autocork {
577 $_[0]{autocork} = $_[1];
578}
579
580=item $handle->no_delay ($boolean)
581
582Enables or disables the C<no_delay> setting (see constructor argument of
583the same name for details).
584
585=cut
586
587sub no_delay {
588 $_[0]{no_delay} = $_[1];
589
590 eval {
591 local $SIG{__DIE__};
592 setsockopt $_[0]{fh}, &Socket::IPPROTO_TCP, &Socket::TCP_NODELAY, int $_[1]
593 if $_[0]{fh};
594 };
595}
596
597=item $handle->on_starttls ($cb)
598
599Replace the current C<on_starttls> callback (see the C<on_starttls> constructor argument).
600
601=cut
602
603sub on_starttls {
604 $_[0]{on_starttls} = $_[1];
605}
606
607=item $handle->on_stoptls ($cb)
608
609Replace the current C<on_stoptls> callback (see the C<on_stoptls> constructor argument).
610
611=cut
612
613sub on_starttls {
313 $_[0]{on_timeout} = $_[1]; 614 $_[0]{on_stoptls} = $_[1];
615}
616
617=item $handle->rbuf_max ($max_octets)
618
619Configures the C<rbuf_max> setting (C<undef> disables it).
620
621=cut
622
623sub rbuf_max {
624 $_[0]{rbuf_max} = $_[1];
314} 625}
315 626
316############################################################################# 627#############################################################################
317 628
318=item $handle->timeout ($seconds) 629=item $handle->timeout ($seconds)
319 630
631=item $handle->rtimeout ($seconds)
632
633=item $handle->wtimeout ($seconds)
634
320Configures (or disables) the inactivity timeout. 635Configures (or disables) the inactivity timeout.
321 636
322=cut 637=item $handle->timeout_reset
323 638
324sub timeout { 639=item $handle->rtimeout_reset
640
641=item $handle->wtimeout_reset
642
643Reset the activity timeout, as if data was received or sent.
644
645These methods are cheap to call.
646
647=cut
648
649for my $dir ("", "r", "w") {
650 my $timeout = "${dir}timeout";
651 my $tw = "_${dir}tw";
652 my $on_timeout = "on_${dir}timeout";
653 my $activity = "_${dir}activity";
654 my $cb;
655
656 *$on_timeout = sub {
657 $_[0]{$on_timeout} = $_[1];
658 };
659
660 *$timeout = sub {
325 my ($self, $timeout) = @_; 661 my ($self, $new_value) = @_;
326 662
327 $self->{timeout} = $timeout; 663 $self->{$timeout} = $new_value;
328 $self->_timeout; 664 delete $self->{$tw}; &$cb;
329} 665 };
330 666
667 *{"${dir}timeout_reset"} = sub {
668 $_[0]{$activity} = AE::now;
669 };
670
671 # main workhorse:
331# reset the timeout watcher, as neccessary 672 # reset the timeout watcher, as neccessary
332# also check for time-outs 673 # also check for time-outs
333sub _timeout { 674 $cb = sub {
334 my ($self) = @_; 675 my ($self) = @_;
335 676
336 if ($self->{timeout}) { 677 if ($self->{$timeout} && $self->{fh}) {
337 my $NOW = AnyEvent->now; 678 my $NOW = AE::now;
338 679
339 # when would the timeout trigger? 680 # when would the timeout trigger?
340 my $after = $self->{_activity} + $self->{timeout} - $NOW; 681 my $after = $self->{$activity} + $self->{$timeout} - $NOW;
341 682
342 # now or in the past already? 683 # now or in the past already?
343 if ($after <= 0) { 684 if ($after <= 0) {
344 $self->{_activity} = $NOW; 685 $self->{$activity} = $NOW;
345 686
346 if ($self->{on_timeout}) { 687 if ($self->{$on_timeout}) {
347 $self->{on_timeout}($self); 688 $self->{$on_timeout}($self);
348 } else { 689 } else {
349 $self->_error (&Errno::ETIMEDOUT); 690 $self->_error (Errno::ETIMEDOUT);
691 }
692
693 # callback could have changed timeout value, optimise
694 return unless $self->{$timeout};
695
696 # calculate new after
697 $after = $self->{$timeout};
350 } 698 }
351 699
352 # callback could have changed timeout value, optimise 700 Scalar::Util::weaken $self;
353 return unless $self->{timeout}; 701 return unless $self; # ->error could have destroyed $self
354 702
355 # calculate new after 703 $self->{$tw} ||= AE::timer $after, 0, sub {
356 $after = $self->{timeout}; 704 delete $self->{$tw};
705 $cb->($self);
706 };
707 } else {
708 delete $self->{$tw};
357 } 709 }
358
359 Scalar::Util::weaken $self;
360 return unless $self; # ->error could have destroyed $self
361
362 $self->{_tw} ||= AnyEvent->timer (after => $after, cb => sub {
363 delete $self->{_tw};
364 $self->_timeout;
365 });
366 } else {
367 delete $self->{_tw};
368 } 710 }
369} 711}
370 712
371############################################################################# 713#############################################################################
372 714
396 my ($self, $cb) = @_; 738 my ($self, $cb) = @_;
397 739
398 $self->{on_drain} = $cb; 740 $self->{on_drain} = $cb;
399 741
400 $cb->($self) 742 $cb->($self)
401 if $cb && $self->{low_water_mark} >= length $self->{wbuf}; 743 if $cb && $self->{low_water_mark} >= (length $self->{wbuf}) + (length $self->{_tls_wbuf});
402} 744}
403 745
404=item $handle->push_write ($data) 746=item $handle->push_write ($data)
405 747
406Queues the given scalar to be written. You can push as much data as you 748Queues the given scalar to be written. You can push as much data as you
417 Scalar::Util::weaken $self; 759 Scalar::Util::weaken $self;
418 760
419 my $cb = sub { 761 my $cb = sub {
420 my $len = syswrite $self->{fh}, $self->{wbuf}; 762 my $len = syswrite $self->{fh}, $self->{wbuf};
421 763
422 if ($len >= 0) { 764 if (defined $len) {
423 substr $self->{wbuf}, 0, $len, ""; 765 substr $self->{wbuf}, 0, $len, "";
424 766
425 $self->{_activity} = AnyEvent->now; 767 $self->{_activity} = $self->{_wactivity} = AE::now;
426 768
427 $self->{on_drain}($self) 769 $self->{on_drain}($self)
428 if $self->{low_water_mark} >= length $self->{wbuf} 770 if $self->{low_water_mark} >= (length $self->{wbuf}) + (length $self->{_tls_wbuf})
429 && $self->{on_drain}; 771 && $self->{on_drain};
430 772
431 delete $self->{_ww} unless length $self->{wbuf}; 773 delete $self->{_ww} unless length $self->{wbuf};
432 } elsif ($! != EAGAIN && $! != EINTR && $! != WSAEWOULDBLOCK) { 774 } elsif ($! != EAGAIN && $! != EINTR && $! != WSAEWOULDBLOCK) {
433 $self->_error ($!, 1); 775 $self->_error ($!, 1);
434 } 776 }
435 }; 777 };
436 778
437 # try to write data immediately 779 # try to write data immediately
438 $cb->(); 780 $cb->() unless $self->{autocork};
439 781
440 # if still data left in wbuf, we need to poll 782 # if still data left in wbuf, we need to poll
441 $self->{_ww} = AnyEvent->io (fh => $self->{fh}, poll => "w", cb => $cb) 783 $self->{_ww} = AE::io $self->{fh}, 1, $cb
442 if length $self->{wbuf}; 784 if length $self->{wbuf};
443 }; 785 };
444} 786}
445 787
446our %WH; 788our %WH;
457 799
458 @_ = ($WH{$type} or Carp::croak "unsupported type passed to AnyEvent::Handle::push_write") 800 @_ = ($WH{$type} or Carp::croak "unsupported type passed to AnyEvent::Handle::push_write")
459 ->($self, @_); 801 ->($self, @_);
460 } 802 }
461 803
462 if ($self->{filter_w}) { 804 if ($self->{tls}) {
463 $self->{filter_w}($self, \$_[0]); 805 $self->{_tls_wbuf} .= $_[0];
806 &_dotls ($self) if $self->{fh};
464 } else { 807 } else {
465 $self->{wbuf} .= $_[0]; 808 $self->{wbuf} .= $_[0];
466 $self->_drain_wbuf; 809 $self->_drain_wbuf if $self->{fh};
467 } 810 }
468} 811}
469 812
470=item $handle->push_write (type => @args) 813=item $handle->push_write (type => @args)
471 814
485=cut 828=cut
486 829
487register_write_type netstring => sub { 830register_write_type netstring => sub {
488 my ($self, $string) = @_; 831 my ($self, $string) = @_;
489 832
490 sprintf "%d:%s,", (length $string), $string 833 (length $string) . ":$string,"
491}; 834};
492 835
493=item packstring => $format, $data 836=item packstring => $format, $data
494 837
495An octet string prefixed with an encoded length. The encoding C<$format> 838An octet string prefixed with an encoded length. The encoding C<$format>
500=cut 843=cut
501 844
502register_write_type packstring => sub { 845register_write_type packstring => sub {
503 my ($self, $format, $string) = @_; 846 my ($self, $format, $string) = @_;
504 847
505 pack "$format/a", $string 848 pack "$format/a*", $string
506}; 849};
507 850
508=item json => $array_or_hashref 851=item json => $array_or_hashref
509 852
510Encodes the given hash or array reference into a JSON object. Unless you 853Encodes the given hash or array reference into a JSON object. Unless you
556register_write_type storable => sub { 899register_write_type storable => sub {
557 my ($self, $ref) = @_; 900 my ($self, $ref) = @_;
558 901
559 require Storable; 902 require Storable;
560 903
561 pack "w/a", Storable::nfreeze ($ref) 904 pack "w/a*", Storable::nfreeze ($ref)
562}; 905};
563 906
564=back 907=back
908
909=item $handle->push_shutdown
910
911Sometimes you know you want to close the socket after writing your data
912before it was actually written. One way to do that is to replace your
913C<on_drain> handler by a callback that shuts down the socket (and set
914C<low_water_mark> to C<0>). This method is a shorthand for just that, and
915replaces the C<on_drain> callback with:
916
917 sub { shutdown $_[0]{fh}, 1 } # for push_shutdown
918
919This simply shuts down the write side and signals an EOF condition to the
920the peer.
921
922You can rely on the normal read queue and C<on_eof> handling
923afterwards. This is the cleanest way to close a connection.
924
925=cut
926
927sub push_shutdown {
928 my ($self) = @_;
929
930 delete $self->{low_water_mark};
931 $self->on_drain (sub { shutdown $_[0]{fh}, 1 });
932}
565 933
566=item AnyEvent::Handle::register_write_type type => $coderef->($handle, @args) 934=item AnyEvent::Handle::register_write_type type => $coderef->($handle, @args)
567 935
568This function (not method) lets you add your own types to C<push_write>. 936This function (not method) lets you add your own types to C<push_write>.
569Whenever the given C<type> is used, C<push_write> will invoke the code 937Whenever the given C<type> is used, C<push_write> will invoke the code
590ways, the "simple" way, using only C<on_read> and the "complex" way, using 958ways, the "simple" way, using only C<on_read> and the "complex" way, using
591a queue. 959a queue.
592 960
593In the simple case, you just install an C<on_read> callback and whenever 961In the simple case, you just install an C<on_read> callback and whenever
594new data arrives, it will be called. You can then remove some data (if 962new data arrives, it will be called. You can then remove some data (if
595enough is there) from the read buffer (C<< $handle->rbuf >>) if you want 963enough is there) from the read buffer (C<< $handle->rbuf >>). Or you cna
596or not. 964leave the data there if you want to accumulate more (e.g. when only a
965partial message has been received so far).
597 966
598In the more complex case, you want to queue multiple callbacks. In this 967In the more complex case, you want to queue multiple callbacks. In this
599case, AnyEvent::Handle will call the first queued callback each time new 968case, AnyEvent::Handle will call the first queued callback each time new
600data arrives (also the first time it is queued) and removes it when it has 969data arrives (also the first time it is queued) and removes it when it has
601done its job (see C<push_read>, below). 970done its job (see C<push_read>, below).
619 # handle xml 988 # handle xml
620 }); 989 });
621 }); 990 });
622 }); 991 });
623 992
624Example 2: Implement a client for a protocol that replies either with 993Example 2: Implement a client for a protocol that replies either with "OK"
625"OK" and another line or "ERROR" for one request, and 64 bytes for the 994and another line or "ERROR" for the first request that is sent, and 64
626second request. Due tot he availability of a full queue, we can just 995bytes for the second request. Due to the availability of a queue, we can
627pipeline sending both requests and manipulate the queue as necessary in 996just pipeline sending both requests and manipulate the queue as necessary
628the callbacks: 997in the callbacks.
629 998
630 # request one 999When the first callback is called and sees an "OK" response, it will
1000C<unshift> another line-read. This line-read will be queued I<before> the
100164-byte chunk callback.
1002
1003 # request one, returns either "OK + extra line" or "ERROR"
631 $handle->push_write ("request 1\015\012"); 1004 $handle->push_write ("request 1\015\012");
632 1005
633 # we expect "ERROR" or "OK" as response, so push a line read 1006 # we expect "ERROR" or "OK" as response, so push a line read
634 $handle->push_read (line => sub { 1007 $handle->push_read (line => sub {
635 # if we got an "OK", we have to _prepend_ another line, 1008 # if we got an "OK", we have to _prepend_ another line,
642 ... 1015 ...
643 }); 1016 });
644 } 1017 }
645 }); 1018 });
646 1019
647 # request two 1020 # request two, simply returns 64 octets
648 $handle->push_write ("request 2\015\012"); 1021 $handle->push_write ("request 2\015\012");
649 1022
650 # simply read 64 bytes, always 1023 # simply read 64 bytes, always
651 $handle->push_read (chunk => 64, sub { 1024 $handle->push_read (chunk => 64, sub {
652 my $response = $_[1]; 1025 my $response = $_[1];
658=cut 1031=cut
659 1032
660sub _drain_rbuf { 1033sub _drain_rbuf {
661 my ($self) = @_; 1034 my ($self) = @_;
662 1035
1036 # avoid recursion
1037 return if $self->{_skip_drain_rbuf};
663 local $self->{_in_drain} = 1; 1038 local $self->{_skip_drain_rbuf} = 1;
664
665 if (
666 defined $self->{rbuf_max}
667 && $self->{rbuf_max} < length $self->{rbuf}
668 ) {
669 return $self->_error (&Errno::ENOSPC, 1);
670 }
671 1039
672 while () { 1040 while () {
673 no strict 'refs'; 1041 # we need to use a separate tls read buffer, as we must not receive data while
1042 # we are draining the buffer, and this can only happen with TLS.
1043 $self->{rbuf} .= delete $self->{_tls_rbuf}
1044 if exists $self->{_tls_rbuf};
674 1045
675 my $len = length $self->{rbuf}; 1046 my $len = length $self->{rbuf};
676 1047
677 if (my $cb = shift @{ $self->{_queue} }) { 1048 if (my $cb = shift @{ $self->{_queue} }) {
678 unless ($cb->($self)) { 1049 unless ($cb->($self)) {
679 if ($self->{_eof}) { 1050 # no progress can be made
680 # no progress can be made (not enough data and no data forthcoming) 1051 # (not enough data and no data forthcoming)
681 $self->_error (&Errno::EPIPE, 1), last; 1052 $self->_error (Errno::EPIPE, 1), return
682 } 1053 if $self->{_eof};
683 1054
684 unshift @{ $self->{_queue} }, $cb; 1055 unshift @{ $self->{_queue} }, $cb;
685 last; 1056 last;
686 } 1057 }
687 } elsif ($self->{on_read}) { 1058 } elsif ($self->{on_read}) {
694 && !@{ $self->{_queue} } # and the queue is still empty 1065 && !@{ $self->{_queue} } # and the queue is still empty
695 && $self->{on_read} # but we still have on_read 1066 && $self->{on_read} # but we still have on_read
696 ) { 1067 ) {
697 # no further data will arrive 1068 # no further data will arrive
698 # so no progress can be made 1069 # so no progress can be made
699 $self->_error (&Errno::EPIPE, 1), last 1070 $self->_error (Errno::EPIPE, 1), return
700 if $self->{_eof}; 1071 if $self->{_eof};
701 1072
702 last; # more data might arrive 1073 last; # more data might arrive
703 } 1074 }
704 } else { 1075 } else {
705 # read side becomes idle 1076 # read side becomes idle
706 delete $self->{_rw}; 1077 delete $self->{_rw} unless $self->{tls};
707 last; 1078 last;
708 } 1079 }
709 } 1080 }
710 1081
1082 if ($self->{_eof}) {
1083 $self->{on_eof}
711 $self->{on_eof}($self) 1084 ? $self->{on_eof}($self)
712 if $self->{_eof} && $self->{on_eof}; 1085 : $self->_error (0, 1, "Unexpected end-of-file");
1086
1087 return;
1088 }
1089
1090 if (
1091 defined $self->{rbuf_max}
1092 && $self->{rbuf_max} < length $self->{rbuf}
1093 ) {
1094 $self->_error (Errno::ENOSPC, 1), return;
1095 }
713 1096
714 # may need to restart read watcher 1097 # may need to restart read watcher
715 unless ($self->{_rw}) { 1098 unless ($self->{_rw}) {
716 $self->start_read 1099 $self->start_read
717 if $self->{on_read} || @{ $self->{_queue} }; 1100 if $self->{on_read} || @{ $self->{_queue} };
728 1111
729sub on_read { 1112sub on_read {
730 my ($self, $cb) = @_; 1113 my ($self, $cb) = @_;
731 1114
732 $self->{on_read} = $cb; 1115 $self->{on_read} = $cb;
733 $self->_drain_rbuf if $cb && !$self->{_in_drain}; 1116 $self->_drain_rbuf if $cb;
734} 1117}
735 1118
736=item $handle->rbuf 1119=item $handle->rbuf
737 1120
738Returns the read buffer (as a modifiable lvalue). 1121Returns the read buffer (as a modifiable lvalue).
739 1122
740You can access the read buffer directly as the C<< ->{rbuf} >> member, if 1123You can access the read buffer directly as the C<< ->{rbuf} >>
741you want. 1124member, if you want. However, the only operation allowed on the
1125read buffer (apart from looking at it) is removing data from its
1126beginning. Otherwise modifying or appending to it is not allowed and will
1127lead to hard-to-track-down bugs.
742 1128
743NOTE: The read buffer should only be used or modified if the C<on_read>, 1129NOTE: The read buffer should only be used or modified if the C<on_read>,
744C<push_read> or C<unshift_read> methods are used. The other read methods 1130C<push_read> or C<unshift_read> methods are used. The other read methods
745automatically manage the read buffer. 1131automatically manage the read buffer.
746 1132
787 $cb = ($RH{$type} or Carp::croak "unsupported type passed to AnyEvent::Handle::push_read") 1173 $cb = ($RH{$type} or Carp::croak "unsupported type passed to AnyEvent::Handle::push_read")
788 ->($self, $cb, @_); 1174 ->($self, $cb, @_);
789 } 1175 }
790 1176
791 push @{ $self->{_queue} }, $cb; 1177 push @{ $self->{_queue} }, $cb;
792 $self->_drain_rbuf unless $self->{_in_drain}; 1178 $self->_drain_rbuf;
793} 1179}
794 1180
795sub unshift_read { 1181sub unshift_read {
796 my $self = shift; 1182 my $self = shift;
797 my $cb = pop; 1183 my $cb = pop;
803 ->($self, $cb, @_); 1189 ->($self, $cb, @_);
804 } 1190 }
805 1191
806 1192
807 unshift @{ $self->{_queue} }, $cb; 1193 unshift @{ $self->{_queue} }, $cb;
808 $self->_drain_rbuf unless $self->{_in_drain}; 1194 $self->_drain_rbuf;
809} 1195}
810 1196
811=item $handle->push_read (type => @args, $cb) 1197=item $handle->push_read (type => @args, $cb)
812 1198
813=item $handle->unshift_read (type => @args, $cb) 1199=item $handle->unshift_read (type => @args, $cb)
843 $cb->($_[0], substr $_[0]{rbuf}, 0, $len, ""); 1229 $cb->($_[0], substr $_[0]{rbuf}, 0, $len, "");
844 1 1230 1
845 } 1231 }
846}; 1232};
847 1233
848# compatibility with older API
849sub push_read_chunk {
850 $_[0]->push_read (chunk => $_[1], $_[2]);
851}
852
853sub unshift_read_chunk {
854 $_[0]->unshift_read (chunk => $_[1], $_[2]);
855}
856
857=item line => [$eol, ]$cb->($handle, $line, $eol) 1234=item line => [$eol, ]$cb->($handle, $line, $eol)
858 1235
859The callback will be called only once a full line (including the end of 1236The callback will be called only once a full line (including the end of
860line marker, C<$eol>) has been read. This line (excluding the end of line 1237line marker, C<$eol>) has been read. This line (excluding the end of line
861marker) will be passed to the callback as second argument (C<$line>), and 1238marker) will be passed to the callback as second argument (C<$line>), and
876=cut 1253=cut
877 1254
878register_read_type line => sub { 1255register_read_type line => sub {
879 my ($self, $cb, $eol) = @_; 1256 my ($self, $cb, $eol) = @_;
880 1257
881 $eol = qr|(\015?\012)| if @_ < 3; 1258 if (@_ < 3) {
1259 # this is more than twice as fast as the generic code below
1260 sub {
1261 $_[0]{rbuf} =~ s/^([^\015\012]*)(\015?\012)// or return;
1262
1263 $cb->($_[0], $1, $2);
1264 1
1265 }
1266 } else {
882 $eol = quotemeta $eol unless ref $eol; 1267 $eol = quotemeta $eol unless ref $eol;
883 $eol = qr|^(.*?)($eol)|s; 1268 $eol = qr|^(.*?)($eol)|s;
884 1269
885 sub { 1270 sub {
886 $_[0]{rbuf} =~ s/$eol// or return; 1271 $_[0]{rbuf} =~ s/$eol// or return;
887 1272
888 $cb->($_[0], $1, $2); 1273 $cb->($_[0], $1, $2);
1274 1
889 1 1275 }
890 } 1276 }
891}; 1277};
892
893# compatibility with older API
894sub push_read_line {
895 my $self = shift;
896 $self->push_read (line => @_);
897}
898
899sub unshift_read_line {
900 my $self = shift;
901 $self->unshift_read (line => @_);
902}
903 1278
904=item regex => $accept[, $reject[, $skip], $cb->($handle, $data) 1279=item regex => $accept[, $reject[, $skip], $cb->($handle, $data)
905 1280
906Makes a regex match against the regex object C<$accept> and returns 1281Makes a regex match against the regex object C<$accept> and returns
907everything up to and including the match. 1282everything up to and including the match.
957 return 1; 1332 return 1;
958 } 1333 }
959 1334
960 # reject 1335 # reject
961 if ($reject && $$rbuf =~ $reject) { 1336 if ($reject && $$rbuf =~ $reject) {
962 $self->_error (&Errno::EBADMSG); 1337 $self->_error (Errno::EBADMSG);
963 } 1338 }
964 1339
965 # skip 1340 # skip
966 if ($skip && $$rbuf =~ $skip) { 1341 if ($skip && $$rbuf =~ $skip) {
967 $data .= substr $$rbuf, 0, $+[0], ""; 1342 $data .= substr $$rbuf, 0, $+[0], "";
983 my ($self, $cb) = @_; 1358 my ($self, $cb) = @_;
984 1359
985 sub { 1360 sub {
986 unless ($_[0]{rbuf} =~ s/^(0|[1-9][0-9]*)://) { 1361 unless ($_[0]{rbuf} =~ s/^(0|[1-9][0-9]*)://) {
987 if ($_[0]{rbuf} =~ /[^0-9]/) { 1362 if ($_[0]{rbuf} =~ /[^0-9]/) {
988 $self->_error (&Errno::EBADMSG); 1363 $self->_error (Errno::EBADMSG);
989 } 1364 }
990 return; 1365 return;
991 } 1366 }
992 1367
993 my $len = $1; 1368 my $len = $1;
996 my $string = $_[1]; 1371 my $string = $_[1];
997 $_[0]->unshift_read (chunk => 1, sub { 1372 $_[0]->unshift_read (chunk => 1, sub {
998 if ($_[1] eq ",") { 1373 if ($_[1] eq ",") {
999 $cb->($_[0], $string); 1374 $cb->($_[0], $string);
1000 } else { 1375 } else {
1001 $self->_error (&Errno::EBADMSG); 1376 $self->_error (Errno::EBADMSG);
1002 } 1377 }
1003 }); 1378 });
1004 }); 1379 });
1005 1380
1006 1 1381 1
1012An octet string prefixed with an encoded length. The encoding C<$format> 1387An octet string prefixed with an encoded length. The encoding C<$format>
1013uses the same format as a Perl C<pack> format, but must specify a single 1388uses the same format as a Perl C<pack> format, but must specify a single
1014integer only (only one of C<cCsSlLqQiInNvVjJw> is allowed, plus an 1389integer only (only one of C<cCsSlLqQiInNvVjJw> is allowed, plus an
1015optional C<!>, C<< < >> or C<< > >> modifier). 1390optional C<!>, C<< < >> or C<< > >> modifier).
1016 1391
1017DNS over TCP uses a prefix of C<n>, EPP uses a prefix of C<N>. 1392For example, DNS over TCP uses a prefix of C<n> (2 octet network order),
1393EPP uses a prefix of C<N> (4 octtes).
1018 1394
1019Example: read a block of data prefixed by its length in BER-encoded 1395Example: read a block of data prefixed by its length in BER-encoded
1020format (very efficient). 1396format (very efficient).
1021 1397
1022 $handle->push_read (packstring => "w", sub { 1398 $handle->push_read (packstring => "w", sub {
1028register_read_type packstring => sub { 1404register_read_type packstring => sub {
1029 my ($self, $cb, $format) = @_; 1405 my ($self, $cb, $format) = @_;
1030 1406
1031 sub { 1407 sub {
1032 # when we can use 5.10 we can use ".", but for 5.8 we use the re-pack method 1408 # when we can use 5.10 we can use ".", but for 5.8 we use the re-pack method
1033 defined (my $len = eval { unpack $format, $_[0]->{rbuf} }) 1409 defined (my $len = eval { unpack $format, $_[0]{rbuf} })
1034 or return; 1410 or return;
1035 1411
1412 $format = length pack $format, $len;
1413
1414 # bypass unshift if we already have the remaining chunk
1415 if ($format + $len <= length $_[0]{rbuf}) {
1416 my $data = substr $_[0]{rbuf}, $format, $len;
1417 substr $_[0]{rbuf}, 0, $format + $len, "";
1418 $cb->($_[0], $data);
1419 } else {
1036 # remove prefix 1420 # remove prefix
1037 substr $_[0]->{rbuf}, 0, (length pack $format, $len), ""; 1421 substr $_[0]{rbuf}, 0, $format, "";
1038 1422
1039 # read rest 1423 # read remaining chunk
1040 $_[0]->unshift_read (chunk => $len, $cb); 1424 $_[0]->unshift_read (chunk => $len, $cb);
1425 }
1041 1426
1042 1 1427 1
1043 } 1428 }
1044}; 1429};
1045 1430
1046=item json => $cb->($handle, $hash_or_arrayref) 1431=item json => $cb->($handle, $hash_or_arrayref)
1047 1432
1048Reads a JSON object or array, decodes it and passes it to the callback. 1433Reads a JSON object or array, decodes it and passes it to the
1434callback. When a parse error occurs, an C<EBADMSG> error will be raised.
1049 1435
1050If a C<json> object was passed to the constructor, then that will be used 1436If a C<json> object was passed to the constructor, then that will be used
1051for the final decode, otherwise it will create a JSON coder expecting UTF-8. 1437for the final decode, otherwise it will create a JSON coder expecting UTF-8.
1052 1438
1053This read type uses the incremental parser available with JSON version 1439This read type uses the incremental parser available with JSON version
1062=cut 1448=cut
1063 1449
1064register_read_type json => sub { 1450register_read_type json => sub {
1065 my ($self, $cb) = @_; 1451 my ($self, $cb) = @_;
1066 1452
1067 require JSON; 1453 my $json = $self->{json} ||=
1454 eval { require JSON::XS; JSON::XS->new->utf8 }
1455 || do { require JSON; JSON->new->utf8 };
1068 1456
1069 my $data; 1457 my $data;
1070 my $rbuf = \$self->{rbuf}; 1458 my $rbuf = \$self->{rbuf};
1071 1459
1072 my $json = $self->{json} ||= JSON->new->utf8;
1073
1074 sub { 1460 sub {
1075 my $ref = $json->incr_parse ($self->{rbuf}); 1461 my $ref = eval { $json->incr_parse ($self->{rbuf}) };
1076 1462
1077 if ($ref) { 1463 if ($ref) {
1078 $self->{rbuf} = $json->incr_text; 1464 $self->{rbuf} = $json->incr_text;
1079 $json->incr_text = ""; 1465 $json->incr_text = "";
1080 $cb->($self, $ref); 1466 $cb->($self, $ref);
1081 1467
1082 1 1468 1
1469 } elsif ($@) {
1470 # error case
1471 $json->incr_skip;
1472
1473 $self->{rbuf} = $json->incr_text;
1474 $json->incr_text = "";
1475
1476 $self->_error (Errno::EBADMSG);
1477
1478 ()
1083 } else { 1479 } else {
1084 $self->{rbuf} = ""; 1480 $self->{rbuf} = "";
1481
1085 () 1482 ()
1086 } 1483 }
1087 } 1484 }
1088}; 1485};
1089 1486
1102 1499
1103 require Storable; 1500 require Storable;
1104 1501
1105 sub { 1502 sub {
1106 # when we can use 5.10 we can use ".", but for 5.8 we use the re-pack method 1503 # when we can use 5.10 we can use ".", but for 5.8 we use the re-pack method
1107 defined (my $len = eval { unpack "w", $_[0]->{rbuf} }) 1504 defined (my $len = eval { unpack "w", $_[0]{rbuf} })
1108 or return; 1505 or return;
1109 1506
1507 my $format = length pack "w", $len;
1508
1509 # bypass unshift if we already have the remaining chunk
1510 if ($format + $len <= length $_[0]{rbuf}) {
1511 my $data = substr $_[0]{rbuf}, $format, $len;
1512 substr $_[0]{rbuf}, 0, $format + $len, "";
1513 $cb->($_[0], Storable::thaw ($data));
1514 } else {
1110 # remove prefix 1515 # remove prefix
1111 substr $_[0]->{rbuf}, 0, (length pack "w", $len), ""; 1516 substr $_[0]{rbuf}, 0, $format, "";
1112 1517
1113 # read rest 1518 # read remaining chunk
1114 $_[0]->unshift_read (chunk => $len, sub { 1519 $_[0]->unshift_read (chunk => $len, sub {
1115 if (my $ref = eval { Storable::thaw ($_[1]) }) { 1520 if (my $ref = eval { Storable::thaw ($_[1]) }) {
1116 $cb->($_[0], $ref); 1521 $cb->($_[0], $ref);
1117 } else { 1522 } else {
1118 $self->_error (&Errno::EBADMSG); 1523 $self->_error (Errno::EBADMSG);
1524 }
1119 } 1525 });
1120 }); 1526 }
1527
1528 1
1121 } 1529 }
1122}; 1530};
1123 1531
1124=back 1532=back
1125 1533
1155Note that AnyEvent::Handle will automatically C<start_read> for you when 1563Note that AnyEvent::Handle will automatically C<start_read> for you when
1156you change the C<on_read> callback or push/unshift a read callback, and it 1564you change the C<on_read> callback or push/unshift a read callback, and it
1157will automatically C<stop_read> for you when neither C<on_read> is set nor 1565will automatically C<stop_read> for you when neither C<on_read> is set nor
1158there are any read requests in the queue. 1566there are any read requests in the queue.
1159 1567
1568These methods will have no effect when in TLS mode (as TLS doesn't support
1569half-duplex connections).
1570
1160=cut 1571=cut
1161 1572
1162sub stop_read { 1573sub stop_read {
1163 my ($self) = @_; 1574 my ($self) = @_;
1164 1575
1165 delete $self->{_rw}; 1576 delete $self->{_rw} unless $self->{tls};
1166} 1577}
1167 1578
1168sub start_read { 1579sub start_read {
1169 my ($self) = @_; 1580 my ($self) = @_;
1170 1581
1171 unless ($self->{_rw} || $self->{_eof}) { 1582 unless ($self->{_rw} || $self->{_eof}) {
1172 Scalar::Util::weaken $self; 1583 Scalar::Util::weaken $self;
1173 1584
1174 $self->{_rw} = AnyEvent->io (fh => $self->{fh}, poll => "r", cb => sub { 1585 $self->{_rw} = AE::io $self->{fh}, 0, sub {
1175 my $rbuf = $self->{filter_r} ? \my $buf : \$self->{rbuf}; 1586 my $rbuf = \($self->{tls} ? my $buf : $self->{rbuf});
1176 my $len = sysread $self->{fh}, $$rbuf, $self->{read_size} || 8192, length $$rbuf; 1587 my $len = sysread $self->{fh}, $$rbuf, $self->{read_size} || 8192, length $$rbuf;
1177 1588
1178 if ($len > 0) { 1589 if ($len > 0) {
1179 $self->{_activity} = AnyEvent->now; 1590 $self->{_activity} = $self->{_ractivity} = AE::now;
1180 1591
1181 $self->{filter_r} 1592 if ($self->{tls}) {
1182 ? $self->{filter_r}($self, $rbuf) 1593 Net::SSLeay::BIO_write ($self->{_rbio}, $$rbuf);
1183 : $self->{_in_drain} || $self->_drain_rbuf; 1594
1595 &_dotls ($self);
1596 } else {
1597 $self->_drain_rbuf;
1598 }
1184 1599
1185 } elsif (defined $len) { 1600 } elsif (defined $len) {
1186 delete $self->{_rw}; 1601 delete $self->{_rw};
1187 $self->{_eof} = 1; 1602 $self->{_eof} = 1;
1188 $self->_drain_rbuf unless $self->{_in_drain}; 1603 $self->_drain_rbuf;
1189 1604
1190 } elsif ($! != EAGAIN && $! != EINTR && $! != WSAEWOULDBLOCK) { 1605 } elsif ($! != EAGAIN && $! != EINTR && $! != WSAEWOULDBLOCK) {
1191 return $self->_error ($!, 1); 1606 return $self->_error ($!, 1);
1192 } 1607 }
1193 }); 1608 };
1194 } 1609 }
1195} 1610}
1196 1611
1612our $ERROR_SYSCALL;
1613our $ERROR_WANT_READ;
1614
1615sub _tls_error {
1616 my ($self, $err) = @_;
1617
1618 return $self->_error ($!, 1)
1619 if $err == Net::SSLeay::ERROR_SYSCALL ();
1620
1621 my $err =Net::SSLeay::ERR_error_string (Net::SSLeay::ERR_get_error ());
1622
1623 # reduce error string to look less scary
1624 $err =~ s/^error:[0-9a-fA-F]{8}:[^:]+:([^:]+):/\L$1: /;
1625
1626 if ($self->{_on_starttls}) {
1627 (delete $self->{_on_starttls})->($self, undef, $err);
1628 &_freetls;
1629 } else {
1630 &_freetls;
1631 $self->_error (Errno::EPROTO, 1, $err);
1632 }
1633}
1634
1635# poll the write BIO and send the data if applicable
1636# also decode read data if possible
1637# this is basiclaly our TLS state machine
1638# more efficient implementations are possible with openssl,
1639# but not with the buggy and incomplete Net::SSLeay.
1197sub _dotls { 1640sub _dotls {
1198 my ($self) = @_; 1641 my ($self) = @_;
1199 1642
1200 my $buf; 1643 my $tmp;
1201 1644
1202 if (length $self->{_tls_wbuf}) { 1645 if (length $self->{_tls_wbuf}) {
1203 while ((my $len = Net::SSLeay::write ($self->{tls}, $self->{_tls_wbuf})) > 0) { 1646 while (($tmp = Net::SSLeay::write ($self->{tls}, $self->{_tls_wbuf})) > 0) {
1204 substr $self->{_tls_wbuf}, 0, $len, ""; 1647 substr $self->{_tls_wbuf}, 0, $tmp, "";
1205 } 1648 }
1206 }
1207 1649
1650 $tmp = Net::SSLeay::get_error ($self->{tls}, $tmp);
1651 return $self->_tls_error ($tmp)
1652 if $tmp != $ERROR_WANT_READ
1653 && ($tmp != $ERROR_SYSCALL || $!);
1654 }
1655
1656 while (defined ($tmp = Net::SSLeay::read ($self->{tls}))) {
1657 unless (length $tmp) {
1658 $self->{_on_starttls}
1659 and (delete $self->{_on_starttls})->($self, undef, "EOF during handshake"); # ???
1660 &_freetls;
1661
1662 if ($self->{on_stoptls}) {
1663 $self->{on_stoptls}($self);
1664 return;
1665 } else {
1666 # let's treat SSL-eof as we treat normal EOF
1667 delete $self->{_rw};
1668 $self->{_eof} = 1;
1669 }
1670 }
1671
1672 $self->{_tls_rbuf} .= $tmp;
1673 $self->_drain_rbuf;
1674 $self->{tls} or return; # tls session might have gone away in callback
1675 }
1676
1677 $tmp = Net::SSLeay::get_error ($self->{tls}, -1);
1678 return $self->_tls_error ($tmp)
1679 if $tmp != $ERROR_WANT_READ
1680 && ($tmp != $ERROR_SYSCALL || $!);
1681
1208 if (length ($buf = Net::SSLeay::BIO_read ($self->{_wbio}))) { 1682 while (length ($tmp = Net::SSLeay::BIO_read ($self->{_wbio}))) {
1209 $self->{wbuf} .= $buf; 1683 $self->{wbuf} .= $tmp;
1210 $self->_drain_wbuf; 1684 $self->_drain_wbuf;
1211 } 1685 }
1212 1686
1213 while (defined ($buf = Net::SSLeay::read ($self->{tls}))) { 1687 $self->{_on_starttls}
1214 if (length $buf) { 1688 and Net::SSLeay::state ($self->{tls}) == Net::SSLeay::ST_OK ()
1215 $self->{rbuf} .= $buf; 1689 and (delete $self->{_on_starttls})->($self, 1, "TLS/SSL connection established");
1216 $self->_drain_rbuf unless $self->{_in_drain};
1217 } else {
1218 # let's treat SSL-eof as we treat normal EOF
1219 $self->{_eof} = 1;
1220 $self->_shutdown;
1221 return;
1222 }
1223 }
1224
1225 my $err = Net::SSLeay::get_error ($self->{tls}, -1);
1226
1227 if ($err!= Net::SSLeay::ERROR_WANT_READ ()) {
1228 if ($err == Net::SSLeay::ERROR_SYSCALL ()) {
1229 return $self->_error ($!, 1);
1230 } elsif ($err == Net::SSLeay::ERROR_SSL ()) {
1231 return $self->_error (&Errno::EIO, 1);
1232 }
1233
1234 # all others are fine for our purposes
1235 }
1236} 1690}
1237 1691
1238=item $handle->starttls ($tls[, $tls_ctx]) 1692=item $handle->starttls ($tls[, $tls_ctx])
1239 1693
1240Instead of starting TLS negotiation immediately when the AnyEvent::Handle 1694Instead of starting TLS negotiation immediately when the AnyEvent::Handle
1241object is created, you can also do that at a later time by calling 1695object is created, you can also do that at a later time by calling
1242C<starttls>. 1696C<starttls>.
1243 1697
1698Starting TLS is currently an asynchronous operation - when you push some
1699write data and then call C<< ->starttls >> then TLS negotiation will start
1700immediately, after which the queued write data is then sent.
1701
1244The first argument is the same as the C<tls> constructor argument (either 1702The first argument is the same as the C<tls> constructor argument (either
1245C<"connect">, C<"accept"> or an existing Net::SSLeay object). 1703C<"connect">, C<"accept"> or an existing Net::SSLeay object).
1246 1704
1247The second argument is the optional C<Net::SSLeay::CTX> object that is 1705The second argument is the optional C<AnyEvent::TLS> object that is used
1248used when AnyEvent::Handle has to create its own TLS connection object. 1706when AnyEvent::Handle has to create its own TLS connection object, or
1707a hash reference with C<< key => value >> pairs that will be used to
1708construct a new context.
1249 1709
1250The TLS connection object will end up in C<< $handle->{tls} >> after this 1710The TLS connection object will end up in C<< $handle->{tls} >>, the TLS
1251call and can be used or changed to your liking. Note that the handshake 1711context in C<< $handle->{tls_ctx} >> after this call and can be used or
1252might have already started when this function returns. 1712changed to your liking. Note that the handshake might have already started
1713when this function returns.
1253 1714
1715Due to bugs in OpenSSL, it might or might not be possible to do multiple
1716handshakes on the same stream. Best do not attempt to use the stream after
1717stopping TLS.
1718
1254=cut 1719=cut
1720
1721our %TLS_CACHE; #TODO not yet documented, should we?
1255 1722
1256sub starttls { 1723sub starttls {
1257 my ($self, $ssl, $ctx) = @_; 1724 my ($self, $tls, $ctx) = @_;
1258 1725
1259 $self->stoptls; 1726 Carp::croak "It is an error to call starttls on an AnyEvent::Handle object while TLS is already active, caught"
1727 if $self->{tls};
1260 1728
1261 if ($ssl eq "accept") { 1729 $self->{tls} = $tls;
1262 $ssl = Net::SSLeay::new ($ctx || TLS_CTX ()); 1730 $self->{tls_ctx} = $ctx if @_ > 2;
1263 Net::SSLeay::set_accept_state ($ssl); 1731
1264 } elsif ($ssl eq "connect") { 1732 return unless $self->{fh};
1265 $ssl = Net::SSLeay::new ($ctx || TLS_CTX ()); 1733
1266 Net::SSLeay::set_connect_state ($ssl); 1734 require Net::SSLeay;
1735
1736 $ERROR_SYSCALL = Net::SSLeay::ERROR_SYSCALL ();
1737 $ERROR_WANT_READ = Net::SSLeay::ERROR_WANT_READ ();
1738
1739 $tls = $self->{tls};
1740 $ctx = $self->{tls_ctx};
1741
1742 local $Carp::CarpLevel = 1; # skip ourselves when creating a new context or session
1743
1744 if ("HASH" eq ref $ctx) {
1745 require AnyEvent::TLS;
1746
1747 if ($ctx->{cache}) {
1748 my $key = $ctx+0;
1749 $ctx = $TLS_CACHE{$key} ||= new AnyEvent::TLS %$ctx;
1750 } else {
1751 $ctx = new AnyEvent::TLS %$ctx;
1752 }
1753 }
1267 } 1754
1268 1755 $self->{tls_ctx} = $ctx || TLS_CTX ();
1269 $self->{tls} = $ssl; 1756 $self->{tls} = $tls = $self->{tls_ctx}->_get_session ($tls, $self, $self->{peername});
1270 1757
1271 # basically, this is deep magic (because SSL_read should have the same issues) 1758 # basically, this is deep magic (because SSL_read should have the same issues)
1272 # but the openssl maintainers basically said: "trust us, it just works". 1759 # but the openssl maintainers basically said: "trust us, it just works".
1273 # (unfortunately, we have to hardcode constants because the abysmally misdesigned 1760 # (unfortunately, we have to hardcode constants because the abysmally misdesigned
1274 # and mismaintained ssleay-module doesn't even offer them). 1761 # and mismaintained ssleay-module doesn't even offer them).
1275 # http://www.mail-archive.com/openssl-dev@openssl.org/msg22420.html 1762 # http://www.mail-archive.com/openssl-dev@openssl.org/msg22420.html
1763 #
1764 # in short: this is a mess.
1765 #
1766 # note that we do not try to keep the length constant between writes as we are required to do.
1767 # we assume that most (but not all) of this insanity only applies to non-blocking cases,
1768 # and we drive openssl fully in blocking mode here. Or maybe we don't - openssl seems to
1769 # have identity issues in that area.
1276 Net::SSLeay::CTX_set_mode ($self->{tls}, 1770# Net::SSLeay::CTX_set_mode ($ssl,
1277 (eval { local $SIG{__DIE__}; Net::SSLeay::MODE_ENABLE_PARTIAL_WRITE () } || 1) 1771# (eval { local $SIG{__DIE__}; Net::SSLeay::MODE_ENABLE_PARTIAL_WRITE () } || 1)
1278 | (eval { local $SIG{__DIE__}; Net::SSLeay::MODE_ACCEPT_MOVING_WRITE_BUFFER () } || 2)); 1772# | (eval { local $SIG{__DIE__}; Net::SSLeay::MODE_ACCEPT_MOVING_WRITE_BUFFER () } || 2));
1773 Net::SSLeay::CTX_set_mode ($tls, 1|2);
1279 1774
1280 $self->{_rbio} = Net::SSLeay::BIO_new (Net::SSLeay::BIO_s_mem ()); 1775 $self->{_rbio} = Net::SSLeay::BIO_new (Net::SSLeay::BIO_s_mem ());
1281 $self->{_wbio} = Net::SSLeay::BIO_new (Net::SSLeay::BIO_s_mem ()); 1776 $self->{_wbio} = Net::SSLeay::BIO_new (Net::SSLeay::BIO_s_mem ());
1282 1777
1778 Net::SSLeay::BIO_write ($self->{_rbio}, delete $self->{rbuf});
1779
1283 Net::SSLeay::set_bio ($ssl, $self->{_rbio}, $self->{_wbio}); 1780 Net::SSLeay::set_bio ($tls, $self->{_rbio}, $self->{_wbio});
1284 1781
1285 $self->{filter_w} = sub { 1782 $self->{_on_starttls} = sub { $_[0]{on_starttls}(@_) }
1286 $_[0]{_tls_wbuf} .= ${$_[1]}; 1783 if $self->{on_starttls};
1287 &_dotls; 1784
1288 }; 1785 &_dotls; # need to trigger the initial handshake
1289 $self->{filter_r} = sub { 1786 $self->start_read; # make sure we actually do read
1290 Net::SSLeay::BIO_write ($_[0]{_rbio}, ${$_[1]});
1291 &_dotls;
1292 };
1293} 1787}
1294 1788
1295=item $handle->stoptls 1789=item $handle->stoptls
1296 1790
1297Destroys the SSL connection, if any. Partial read or write data will be 1791Shuts down the SSL connection - this makes a proper EOF handshake by
1298lost. 1792sending a close notify to the other side, but since OpenSSL doesn't
1793support non-blocking shut downs, it is not guarenteed that you can re-use
1794the stream afterwards.
1299 1795
1300=cut 1796=cut
1301 1797
1302sub stoptls { 1798sub stoptls {
1303 my ($self) = @_; 1799 my ($self) = @_;
1304 1800
1305 Net::SSLeay::free (delete $self->{tls}) if $self->{tls}; 1801 if ($self->{tls}) {
1802 Net::SSLeay::shutdown ($self->{tls});
1306 1803
1307 delete $self->{_rbio}; 1804 &_dotls;
1308 delete $self->{_wbio}; 1805
1309 delete $self->{_tls_wbuf}; 1806# # we don't give a shit. no, we do, but we can't. no...#d#
1310 delete $self->{filter_r}; 1807# # we, we... have to use openssl :/#d#
1311 delete $self->{filter_w}; 1808# &_freetls;#d#
1809 }
1810}
1811
1812sub _freetls {
1813 my ($self) = @_;
1814
1815 return unless $self->{tls};
1816
1817 $self->{tls_ctx}->_put_session (delete $self->{tls})
1818 if $self->{tls} > 0;
1819
1820 delete @$self{qw(_rbio _wbio _tls_wbuf _on_starttls)};
1312} 1821}
1313 1822
1314sub DESTROY { 1823sub DESTROY {
1315 my $self = shift; 1824 my ($self) = @_;
1316 1825
1317 $self->stoptls; 1826 &_freetls;
1318 1827
1319 my $linger = exists $self->{linger} ? $self->{linger} : 3600; 1828 my $linger = exists $self->{linger} ? $self->{linger} : 3600;
1320 1829
1321 if ($linger && length $self->{wbuf}) { 1830 if ($linger && length $self->{wbuf} && $self->{fh}) {
1322 my $fh = delete $self->{fh}; 1831 my $fh = delete $self->{fh};
1323 my $wbuf = delete $self->{wbuf}; 1832 my $wbuf = delete $self->{wbuf};
1324 1833
1325 my @linger; 1834 my @linger;
1326 1835
1327 push @linger, AnyEvent->io (fh => $fh, poll => "w", cb => sub { 1836 push @linger, AE::io $fh, 1, sub {
1328 my $len = syswrite $fh, $wbuf, length $wbuf; 1837 my $len = syswrite $fh, $wbuf, length $wbuf;
1329 1838
1330 if ($len > 0) { 1839 if ($len > 0) {
1331 substr $wbuf, 0, $len, ""; 1840 substr $wbuf, 0, $len, "";
1332 } else { 1841 } else {
1333 @linger = (); # end 1842 @linger = (); # end
1334 } 1843 }
1335 }); 1844 };
1336 push @linger, AnyEvent->timer (after => $linger, cb => sub { 1845 push @linger, AE::timer $linger, 0, sub {
1337 @linger = (); 1846 @linger = ();
1338 }); 1847 };
1339 } 1848 }
1849}
1850
1851=item $handle->destroy
1852
1853Shuts down the handle object as much as possible - this call ensures that
1854no further callbacks will be invoked and as many resources as possible
1855will be freed. Any method you will call on the handle object after
1856destroying it in this way will be silently ignored (and it will return the
1857empty list).
1858
1859Normally, you can just "forget" any references to an AnyEvent::Handle
1860object and it will simply shut down. This works in fatal error and EOF
1861callbacks, as well as code outside. It does I<NOT> work in a read or write
1862callback, so when you want to destroy the AnyEvent::Handle object from
1863within such an callback. You I<MUST> call C<< ->destroy >> explicitly in
1864that case.
1865
1866Destroying the handle object in this way has the advantage that callbacks
1867will be removed as well, so if those are the only reference holders (as
1868is common), then one doesn't need to do anything special to break any
1869reference cycles.
1870
1871The handle might still linger in the background and write out remaining
1872data, as specified by the C<linger> option, however.
1873
1874=cut
1875
1876sub destroy {
1877 my ($self) = @_;
1878
1879 $self->DESTROY;
1880 %$self = ();
1881 bless $self, "AnyEvent::Handle::destroyed";
1882}
1883
1884sub AnyEvent::Handle::destroyed::AUTOLOAD {
1885 #nop
1340} 1886}
1341 1887
1342=item AnyEvent::Handle::TLS_CTX 1888=item AnyEvent::Handle::TLS_CTX
1343 1889
1344This function creates and returns the Net::SSLeay::CTX object used by 1890This function creates and returns the AnyEvent::TLS object used by default
1345default for TLS mode. 1891for TLS mode.
1346 1892
1347The context is created like this: 1893The context is created by calling L<AnyEvent::TLS> without any arguments.
1348
1349 Net::SSLeay::load_error_strings;
1350 Net::SSLeay::SSLeay_add_ssl_algorithms;
1351 Net::SSLeay::randomize;
1352
1353 my $CTX = Net::SSLeay::CTX_new;
1354
1355 Net::SSLeay::CTX_set_options $CTX, Net::SSLeay::OP_ALL
1356 1894
1357=cut 1895=cut
1358 1896
1359our $TLS_CTX; 1897our $TLS_CTX;
1360 1898
1361sub TLS_CTX() { 1899sub TLS_CTX() {
1362 $TLS_CTX || do { 1900 $TLS_CTX ||= do {
1363 require Net::SSLeay; 1901 require AnyEvent::TLS;
1364 1902
1365 Net::SSLeay::load_error_strings (); 1903 new AnyEvent::TLS
1366 Net::SSLeay::SSLeay_add_ssl_algorithms ();
1367 Net::SSLeay::randomize ();
1368
1369 $TLS_CTX = Net::SSLeay::CTX_new ();
1370
1371 Net::SSLeay::CTX_set_options ($TLS_CTX, Net::SSLeay::OP_ALL ());
1372
1373 $TLS_CTX
1374 } 1904 }
1375} 1905}
1376 1906
1377=back 1907=back
1908
1909
1910=head1 NONFREQUENTLY ASKED QUESTIONS
1911
1912=over 4
1913
1914=item I C<undef> the AnyEvent::Handle reference inside my callback and
1915still get further invocations!
1916
1917That's because AnyEvent::Handle keeps a reference to itself when handling
1918read or write callbacks.
1919
1920It is only safe to "forget" the reference inside EOF or error callbacks,
1921from within all other callbacks, you need to explicitly call the C<<
1922->destroy >> method.
1923
1924=item I get different callback invocations in TLS mode/Why can't I pause
1925reading?
1926
1927Unlike, say, TCP, TLS connections do not consist of two independent
1928communication channels, one for each direction. Or put differently. The
1929read and write directions are not independent of each other: you cannot
1930write data unless you are also prepared to read, and vice versa.
1931
1932This can mean than, in TLS mode, you might get C<on_error> or C<on_eof>
1933callback invocations when you are not expecting any read data - the reason
1934is that AnyEvent::Handle always reads in TLS mode.
1935
1936During the connection, you have to make sure that you always have a
1937non-empty read-queue, or an C<on_read> watcher. At the end of the
1938connection (or when you no longer want to use it) you can call the
1939C<destroy> method.
1940
1941=item How do I read data until the other side closes the connection?
1942
1943If you just want to read your data into a perl scalar, the easiest way
1944to achieve this is by setting an C<on_read> callback that does nothing,
1945clearing the C<on_eof> callback and in the C<on_error> callback, the data
1946will be in C<$_[0]{rbuf}>:
1947
1948 $handle->on_read (sub { });
1949 $handle->on_eof (undef);
1950 $handle->on_error (sub {
1951 my $data = delete $_[0]{rbuf};
1952 });
1953
1954The reason to use C<on_error> is that TCP connections, due to latencies
1955and packets loss, might get closed quite violently with an error, when in
1956fact, all data has been received.
1957
1958It is usually better to use acknowledgements when transferring data,
1959to make sure the other side hasn't just died and you got the data
1960intact. This is also one reason why so many internet protocols have an
1961explicit QUIT command.
1962
1963=item I don't want to destroy the handle too early - how do I wait until
1964all data has been written?
1965
1966After writing your last bits of data, set the C<on_drain> callback
1967and destroy the handle in there - with the default setting of
1968C<low_water_mark> this will be called precisely when all data has been
1969written to the socket:
1970
1971 $handle->push_write (...);
1972 $handle->on_drain (sub {
1973 warn "all data submitted to the kernel\n";
1974 undef $handle;
1975 });
1976
1977If you just want to queue some data and then signal EOF to the other side,
1978consider using C<< ->push_shutdown >> instead.
1979
1980=item I want to contact a TLS/SSL server, I don't care about security.
1981
1982If your TLS server is a pure TLS server (e.g. HTTPS) that only speaks TLS,
1983simply connect to it and then create the AnyEvent::Handle with the C<tls>
1984parameter:
1985
1986 tcp_connect $host, $port, sub {
1987 my ($fh) = @_;
1988
1989 my $handle = new AnyEvent::Handle
1990 fh => $fh,
1991 tls => "connect",
1992 on_error => sub { ... };
1993
1994 $handle->push_write (...);
1995 };
1996
1997=item I want to contact a TLS/SSL server, I do care about security.
1998
1999Then you should additionally enable certificate verification, including
2000peername verification, if the protocol you use supports it (see
2001L<AnyEvent::TLS>, C<verify_peername>).
2002
2003E.g. for HTTPS:
2004
2005 tcp_connect $host, $port, sub {
2006 my ($fh) = @_;
2007
2008 my $handle = new AnyEvent::Handle
2009 fh => $fh,
2010 peername => $host,
2011 tls => "connect",
2012 tls_ctx => { verify => 1, verify_peername => "https" },
2013 ...
2014
2015Note that you must specify the hostname you connected to (or whatever
2016"peername" the protocol needs) as the C<peername> argument, otherwise no
2017peername verification will be done.
2018
2019The above will use the system-dependent default set of trusted CA
2020certificates. If you want to check against a specific CA, add the
2021C<ca_file> (or C<ca_cert>) arguments to C<tls_ctx>:
2022
2023 tls_ctx => {
2024 verify => 1,
2025 verify_peername => "https",
2026 ca_file => "my-ca-cert.pem",
2027 },
2028
2029=item I want to create a TLS/SSL server, how do I do that?
2030
2031Well, you first need to get a server certificate and key. You have
2032three options: a) ask a CA (buy one, use cacert.org etc.) b) create a
2033self-signed certificate (cheap. check the search engine of your choice,
2034there are many tutorials on the net) or c) make your own CA (tinyca2 is a
2035nice program for that purpose).
2036
2037Then create a file with your private key (in PEM format, see
2038L<AnyEvent::TLS>), followed by the certificate (also in PEM format). The
2039file should then look like this:
2040
2041 -----BEGIN RSA PRIVATE KEY-----
2042 ...header data
2043 ... lots of base64'y-stuff
2044 -----END RSA PRIVATE KEY-----
2045
2046 -----BEGIN CERTIFICATE-----
2047 ... lots of base64'y-stuff
2048 -----END CERTIFICATE-----
2049
2050The important bits are the "PRIVATE KEY" and "CERTIFICATE" parts. Then
2051specify this file as C<cert_file>:
2052
2053 tcp_server undef, $port, sub {
2054 my ($fh) = @_;
2055
2056 my $handle = new AnyEvent::Handle
2057 fh => $fh,
2058 tls => "accept",
2059 tls_ctx => { cert_file => "my-server-keycert.pem" },
2060 ...
2061
2062When you have intermediate CA certificates that your clients might not
2063know about, just append them to the C<cert_file>.
2064
2065=back
2066
1378 2067
1379=head1 SUBCLASSING AnyEvent::Handle 2068=head1 SUBCLASSING AnyEvent::Handle
1380 2069
1381In many cases, you might want to subclass AnyEvent::Handle. 2070In many cases, you might want to subclass AnyEvent::Handle.
1382 2071
1386=over 4 2075=over 4
1387 2076
1388=item * all constructor arguments become object members. 2077=item * all constructor arguments become object members.
1389 2078
1390At least initially, when you pass a C<tls>-argument to the constructor it 2079At least initially, when you pass a C<tls>-argument to the constructor it
1391will end up in C<< $handle->{tls} >>. Those members might be changes or 2080will end up in C<< $handle->{tls} >>. Those members might be changed or
1392mutated later on (for example C<tls> will hold the TLS connection object). 2081mutated later on (for example C<tls> will hold the TLS connection object).
1393 2082
1394=item * other object member names are prefixed with an C<_>. 2083=item * other object member names are prefixed with an C<_>.
1395 2084
1396All object members not explicitly documented (internal use) are prefixed 2085All object members not explicitly documented (internal use) are prefixed

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