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1.1 |
=head1 NAME |
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1.4 |
AnyEvent::Fork - everything you wanted to use fork() for, but couldn't |
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1.1 |
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=head1 SYNOPSIS |
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1.4 |
use AnyEvent::Fork; |
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1.1 |
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1.24 |
AnyEvent::Fork |
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->new |
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->require ("MyModule") |
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->run ("MyModule::server", my $cv = AE::cv); |
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my $fh = $cv->recv; |
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=head1 DESCRIPTION |
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This module allows you to create new processes, without actually forking |
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them from your current process (avoiding the problems of forking), but |
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preserving most of the advantages of fork. |
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It can be used to create new worker processes or new independent |
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subprocesses for short- and long-running jobs, process pools (e.g. for use |
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in pre-forked servers) but also to spawn new external processes (such as |
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CGI scripts from a web server), which can be faster (and more well behaved) |
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than using fork+exec in big processes. |
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Special care has been taken to make this module useful from other modules, |
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while still supporting specialised environments such as L<App::Staticperl> |
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or L<PAR::Packer>. |
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=head1 WHAT THIS MODULE IS NOT |
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This module only creates processes and lets you pass file handles and |
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strings to it, and run perl code. It does not implement any kind of RPC - |
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there is no back channel from the process back to you, and there is no RPC |
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or message passing going on. |
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If you need some form of RPC, you can either implement it yourself |
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in whatever way you like, use some message-passing module such |
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as L<AnyEvent::MP>, some pipe such as L<AnyEvent::ZeroMQ>, use |
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L<AnyEvent::Handle> on both sides to send e.g. JSON or Storable messages, |
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and so on. |
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root |
1.25 |
=head1 PROBLEM STATEMENT |
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There are two traditional ways to implement parallel processing on UNIX |
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like operating systems - fork and process, and fork+exec and process. They |
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have different advantages and disadvantages that I describe below, |
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together with how this module tries to mitigate the disadvantages. |
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=over 4 |
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=item Forking from a big process can be very slow. |
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A 5GB process needs 0.05s to fork on my 3.6GHz amd64 GNU/Linux box. This |
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overhead is often shared with exec (because you have to fork first), but |
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in some circumstances (e.g. when vfork is used), fork+exec can be much |
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faster. |
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This module can help here by telling a small(er) helper process to fork, |
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which is faster then forking the main process, and also uses vfork where |
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possible. This gives the speed of vfork, with the flexibility of fork. |
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=item Forking usually creates a copy-on-write copy of the parent |
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process. |
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For example, modules or data files that are loaded will not use additional |
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memory after a fork. When exec'ing a new process, modules and data files |
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might need to be loaded again, at extra CPU and memory cost. But when |
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forking, literally all data structures are copied - if the program frees |
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them and replaces them by new data, the child processes will retain the |
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old version even if it isn't used, which can suddenly and unexpectedly |
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increase memory usage when freeing memory. |
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The trade-off is between more sharing with fork (which can be good or |
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bad), and no sharing with exec. |
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This module allows the main program to do a controlled fork, and allows |
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modules to exec processes safely at any time. When creating a custom |
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process pool you can take advantage of data sharing via fork without |
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risking to share large dynamic data structures that will blow up child |
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memory usage. |
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In other words, this module puts you into control over what is being |
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shared and what isn't, at all times. |
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=item Exec'ing a new perl process might be difficult. |
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For example, it is not easy to find the correct path to the perl |
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interpreter - C<$^X> might not be a perl interpreter at all. |
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This module tries hard to identify the correct path to the perl |
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interpreter. With a cooperative main program, exec'ing the interpreter |
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might not even be necessary, but even without help from the main program, |
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it will still work when used from a module. |
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=item Exec'ing a new perl process might be slow, as all necessary modules |
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have to be loaded from disk again, with no guarantees of success. |
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Long running processes might run into problems when perl is upgraded |
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and modules are no longer loadable because they refer to a different |
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perl version, or parts of a distribution are newer than the ones already |
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loaded. |
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This module supports creating pre-initialised perl processes to be used as |
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a template for new processes. |
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=item Forking might be impossible when a program is running. |
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For example, POSIX makes it almost impossible to fork from a |
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multi-threaded program while doing anything useful in the child - in |
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fact, if your perl program uses POSIX threads (even indirectly via |
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e.g. L<IO::AIO> or L<threads>), you cannot call fork on the perl level |
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anymore without risking corruption issues on a number of operating |
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systems. |
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This module can safely fork helper processes at any time, by calling |
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fork+exec in C, in a POSIX-compatible way (via L<Proc::FastSpawn>). |
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=item Parallel processing with fork might be inconvenient or difficult |
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to implement. Modules might not work in both parent and child. |
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For example, when a program uses an event loop and creates watchers it |
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becomes very hard to use the event loop from a child program, as the |
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watchers already exist but are only meaningful in the parent. Worse, a |
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module might want to use such a module, not knowing whether another module |
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or the main program also does, leading to problems. |
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root |
1.26 |
Apart from event loops, graphical toolkits also commonly fall into the |
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"unsafe module" category, or just about anything that communicates with |
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the external world, such as network libraries and file I/O modules, which |
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usually don't like being copied and then allowed to continue in two |
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processes. |
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root |
1.25 |
With this module only the main program is allowed to create new processes |
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by forking (because only the main program can know when it is still safe |
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to do so) - all other processes are created via fork+exec, which makes it |
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possible to use modules such as event loops or window interfaces safely. |
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=back |
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root |
1.24 |
=head1 EXAMPLES |
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=head2 Create a single new process, tell it to run your worker function. |
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1.9 |
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AnyEvent::Fork |
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->new |
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->require ("MyModule") |
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->run ("MyModule::worker, sub { |
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my ($master_filehandle) = @_; |
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# now $master_filehandle is connected to the |
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# $slave_filehandle in the new process. |
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}); |
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# MyModule::worker might look like this |
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sub MyModule::worker { |
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my ($slave_filehandle) = @_; |
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# now $slave_filehandle is connected to the $master_filehandle |
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# in the original prorcess. have fun! |
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} |
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1.24 |
=head2 Create a pool of server processes all accepting on the same socket. |
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1.9 |
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# create listener socket |
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my $listener = ...; |
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# create a pool template, initialise it and give it the socket |
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my $pool = AnyEvent::Fork |
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->new |
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->require ("Some::Stuff", "My::Server") |
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->send_fh ($listener); |
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# now create 10 identical workers |
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for my $id (1..10) { |
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$pool |
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->fork |
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->send_arg ($id) |
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->run ("My::Server::run"); |
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} |
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# now do other things - maybe use the filehandle provided by run |
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# to wait for the processes to die. or whatever. |
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# My::Server::run might look like this |
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sub My::Server::run { |
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my ($slave, $listener, $id) = @_; |
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close $slave; # we do not use the socket, so close it to save resources |
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# we could go ballistic and use e.g. AnyEvent here, or IO::AIO, |
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# or anything we usually couldn't do in a process forked normally. |
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while (my $socket = $listener->accept) { |
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# do sth. with new socket |
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} |
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} |
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root |
1.24 |
=head2 use AnyEvent::Fork as a faster fork+exec |
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root |
1.23 |
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1.24 |
This runs /bin/echo hi, with stdout redirected to /tmp/log and stderr to |
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the communications socket. It is usually faster than fork+exec, but still |
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let's you prepare the environment. |
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root |
1.23 |
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open my $output, ">/tmp/log" or die "$!"; |
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AnyEvent::Fork |
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->new |
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->eval (' |
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sub run { |
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my ($fh, $output, @cmd) = @_; |
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# perl will clear close-on-exec on STDOUT/STDERR |
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open STDOUT, ">&", $output or die; |
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open STDERR, ">&", $fh or die; |
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exec @cmd; |
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} |
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') |
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->send_fh ($output) |
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->send_arg ("/bin/echo", "hi") |
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->run ("run", my $cv = AE::cv); |
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my $stderr = $cv->recv; |
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root |
1.3 |
=head1 CONCEPTS |
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This module can create new processes either by executing a new perl |
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process, or by forking from an existing "template" process. |
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Each such process comes with its own file handle that can be used to |
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communicate with it (it's actually a socket - one end in the new process, |
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one end in the main process), and among the things you can do in it are |
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load modules, fork new processes, send file handles to it, and execute |
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functions. |
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There are multiple ways to create additional processes to execute some |
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jobs: |
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=over 4 |
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=item fork a new process from the "default" template process, load code, |
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run it |
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This module has a "default" template process which it executes when it is |
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needed the first time. Forking from this process shares the memory used |
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for the perl interpreter with the new process, but loading modules takes |
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time, and the memory is not shared with anything else. |
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This is ideal for when you only need one extra process of a kind, with the |
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1.17 |
option of starting and stopping it on demand. |
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root |
1.3 |
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root |
1.9 |
Example: |
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AnyEvent::Fork |
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->new |
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->require ("Some::Module") |
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->run ("Some::Module::run", sub { |
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my ($fork_fh) = @_; |
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}); |
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root |
1.3 |
=item fork a new template process, load code, then fork processes off of |
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it and run the code |
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When you need to have a bunch of processes that all execute the same (or |
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very similar) tasks, then a good way is to create a new template process |
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for them, loading all the modules you need, and then create your worker |
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processes from this new template process. |
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This way, all code (and data structures) that can be shared (e.g. the |
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modules you loaded) is shared between the processes, and each new process |
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consumes relatively little memory of its own. |
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The disadvantage of this approach is that you need to create a template |
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process for the sole purpose of forking new processes from it, but if you |
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root |
1.17 |
only need a fixed number of processes you can create them, and then destroy |
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root |
1.3 |
the template process. |
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root |
1.9 |
Example: |
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my $template = AnyEvent::Fork->new->require ("Some::Module"); |
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for (1..10) { |
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$template->fork->run ("Some::Module::run", sub { |
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my ($fork_fh) = @_; |
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}); |
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} |
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# at this point, you can keep $template around to fork new processes |
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# later, or you can destroy it, which causes it to vanish. |
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root |
1.3 |
=item execute a new perl interpreter, load some code, run it |
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This is relatively slow, and doesn't allow you to share memory between |
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multiple processes. |
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The only advantage is that you don't have to have a template process |
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hanging around all the time to fork off some new processes, which might be |
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an advantage when there are long time spans where no extra processes are |
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needed. |
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root |
1.9 |
Example: |
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AnyEvent::Fork |
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->new_exec |
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->require ("Some::Module") |
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->run ("Some::Module::run", sub { |
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my ($fork_fh) = @_; |
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}); |
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root |
1.3 |
=back |
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root |
1.27 |
=head1 THE C<AnyEvent::Fork> CLASS |
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This module exports nothing, and only implements a single class - |
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C<AnyEvent::Fork>. |
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root |
1.28 |
There are two class constructors that both create new processes - C<new> |
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and C<new_exec>. The C<fork> method creates a new process by forking an |
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root |
1.27 |
existing one and could be considered a third constructor. |
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Most of the remaining methods deal with preparing the new process, by |
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loading code, evaluating code and sending data to the new process. They |
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usually return the process object, so you can chain method calls. |
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If a process object is destroyed before calling its C<run> method, then |
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the process simply exits. After C<run> is called, all responsibility is |
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passed to the specified function. |
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root |
1.3 |
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root |
1.1 |
=over 4 |
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=cut |
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root |
1.4 |
package AnyEvent::Fork; |
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root |
1.1 |
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use common::sense; |
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root |
1.18 |
use Errno (); |
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root |
1.1 |
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use AnyEvent; |
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use AnyEvent::Util (); |
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root |
1.15 |
use IO::FDPass; |
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root |
1.21 |
our $VERSION = 0.5; |
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root |
1.12 |
|
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root |
1.4 |
our $PERL; # the path to the perl interpreter, deduces with various forms of magic |
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root |
1.1 |
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=over 4 |
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=back |
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=cut |
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root |
1.5 |
# the early fork template process |
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our $EARLY; |
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root |
1.4 |
# the empty template process |
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our $TEMPLATE; |
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sub _cmd { |
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my $self = shift; |
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root |
1.18 |
# ideally, we would want to use "a (w/a)*" as format string, but perl |
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# versions from at least 5.8.9 to 5.16.3 are all buggy and can't unpack |
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# it. |
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root |
1.19 |
push @{ $self->[2] }, pack "a L/a*", $_[0], $_[1]; |
| 369 |
root |
1.4 |
|
| 370 |
root |
1.19 |
$self->[3] ||= AE::io $self->[1], 1, sub { |
| 371 |
|
|
do { |
| 372 |
|
|
# send the next "thing" in the queue - either a reference to an fh, |
| 373 |
|
|
# or a plain string. |
| 374 |
|
|
|
| 375 |
|
|
if (ref $self->[2][0]) { |
| 376 |
|
|
# send fh |
| 377 |
|
|
unless (IO::FDPass::send fileno $self->[1], fileno ${ $self->[2][0] }) { |
| 378 |
|
|
return if $! == Errno::EAGAIN || $! == Errno::EWOULDBLOCK; |
| 379 |
|
|
undef $self->[3]; |
| 380 |
|
|
die "AnyEvent::Fork: file descriptor send failure: $!"; |
| 381 |
root |
1.18 |
} |
| 382 |
root |
1.4 |
|
| 383 |
root |
1.19 |
shift @{ $self->[2] }; |
| 384 |
root |
1.18 |
|
| 385 |
root |
1.19 |
} else { |
| 386 |
|
|
# send string |
| 387 |
|
|
my $len = syswrite $self->[1], $self->[2][0]; |
| 388 |
|
|
|
| 389 |
|
|
unless ($len) { |
| 390 |
|
|
return if $! == Errno::EAGAIN || $! == Errno::EWOULDBLOCK; |
| 391 |
|
|
undef $self->[3]; |
| 392 |
|
|
die "AnyEvent::Fork: command write failure: $!"; |
| 393 |
|
|
} |
| 394 |
root |
1.18 |
|
| 395 |
root |
1.19 |
substr $self->[2][0], 0, $len, ""; |
| 396 |
|
|
shift @{ $self->[2] } unless length $self->[2][0]; |
| 397 |
|
|
} |
| 398 |
|
|
} while @{ $self->[2] }; |
| 399 |
|
|
|
| 400 |
|
|
# everything written |
| 401 |
|
|
undef $self->[3]; |
| 402 |
|
|
|
| 403 |
|
|
# invoke run callback, if any |
| 404 |
root |
1.20 |
$self->[4]->($self->[1]) if $self->[4]; |
| 405 |
root |
1.19 |
}; |
| 406 |
root |
1.14 |
|
| 407 |
|
|
() # make sure we don't leak the watcher |
| 408 |
root |
1.4 |
} |
| 409 |
root |
1.1 |
|
| 410 |
root |
1.4 |
sub _new { |
| 411 |
root |
1.19 |
my ($self, $fh, $pid) = @_; |
| 412 |
root |
1.1 |
|
| 413 |
root |
1.6 |
AnyEvent::Util::fh_nonblocking $fh, 1; |
| 414 |
|
|
|
| 415 |
root |
1.4 |
$self = bless [ |
| 416 |
root |
1.20 |
$pid, |
| 417 |
root |
1.1 |
$fh, |
| 418 |
root |
1.4 |
[], # write queue - strings or fd's |
| 419 |
|
|
undef, # AE watcher |
| 420 |
|
|
], $self; |
| 421 |
|
|
|
| 422 |
|
|
$self |
| 423 |
root |
1.1 |
} |
| 424 |
|
|
|
| 425 |
root |
1.6 |
# fork template from current process, used by AnyEvent::Fork::Early/Template |
| 426 |
|
|
sub _new_fork { |
| 427 |
|
|
my ($fh, $slave) = AnyEvent::Util::portable_socketpair; |
| 428 |
root |
1.7 |
my $parent = $$; |
| 429 |
|
|
|
| 430 |
root |
1.6 |
my $pid = fork; |
| 431 |
|
|
|
| 432 |
|
|
if ($pid eq 0) { |
| 433 |
|
|
require AnyEvent::Fork::Serve; |
| 434 |
root |
1.7 |
$AnyEvent::Fork::Serve::OWNER = $parent; |
| 435 |
root |
1.6 |
close $fh; |
| 436 |
root |
1.7 |
$0 = "$_[1] of $parent"; |
| 437 |
root |
1.16 |
$SIG{CHLD} = 'IGNORE'; |
| 438 |
root |
1.6 |
AnyEvent::Fork::Serve::serve ($slave); |
| 439 |
root |
1.15 |
exit 0; |
| 440 |
root |
1.6 |
} elsif (!$pid) { |
| 441 |
|
|
die "AnyEvent::Fork::Early/Template: unable to fork template process: $!"; |
| 442 |
|
|
} |
| 443 |
|
|
|
| 444 |
root |
1.19 |
AnyEvent::Fork->_new ($fh, $pid) |
| 445 |
root |
1.6 |
} |
| 446 |
|
|
|
| 447 |
root |
1.4 |
=item my $proc = new AnyEvent::Fork |
| 448 |
root |
1.1 |
|
| 449 |
root |
1.4 |
Create a new "empty" perl interpreter process and returns its process |
| 450 |
|
|
object for further manipulation. |
| 451 |
root |
1.1 |
|
| 452 |
root |
1.4 |
The new process is forked from a template process that is kept around |
| 453 |
|
|
for this purpose. When it doesn't exist yet, it is created by a call to |
| 454 |
|
|
C<new_exec> and kept around for future calls. |
| 455 |
|
|
|
| 456 |
root |
1.9 |
When the process object is destroyed, it will release the file handle |
| 457 |
|
|
that connects it with the new process. When the new process has not yet |
| 458 |
|
|
called C<run>, then the process will exit. Otherwise, what happens depends |
| 459 |
|
|
entirely on the code that is executed. |
| 460 |
|
|
|
| 461 |
root |
1.4 |
=cut |
| 462 |
|
|
|
| 463 |
|
|
sub new { |
| 464 |
|
|
my $class = shift; |
| 465 |
root |
1.1 |
|
| 466 |
root |
1.4 |
$TEMPLATE ||= $class->new_exec; |
| 467 |
|
|
$TEMPLATE->fork |
| 468 |
root |
1.1 |
} |
| 469 |
|
|
|
| 470 |
root |
1.4 |
=item $new_proc = $proc->fork |
| 471 |
|
|
|
| 472 |
|
|
Forks C<$proc>, creating a new process, and returns the process object |
| 473 |
|
|
of the new process. |
| 474 |
|
|
|
| 475 |
|
|
If any of the C<send_> functions have been called before fork, then they |
| 476 |
|
|
will be cloned in the child. For example, in a pre-forked server, you |
| 477 |
|
|
might C<send_fh> the listening socket into the template process, and then |
| 478 |
|
|
keep calling C<fork> and C<run>. |
| 479 |
|
|
|
| 480 |
|
|
=cut |
| 481 |
|
|
|
| 482 |
|
|
sub fork { |
| 483 |
|
|
my ($self) = @_; |
| 484 |
root |
1.1 |
|
| 485 |
|
|
my ($fh, $slave) = AnyEvent::Util::portable_socketpair; |
| 486 |
root |
1.4 |
|
| 487 |
|
|
$self->send_fh ($slave); |
| 488 |
|
|
$self->_cmd ("f"); |
| 489 |
|
|
|
| 490 |
|
|
AnyEvent::Fork->_new ($fh) |
| 491 |
|
|
} |
| 492 |
|
|
|
| 493 |
|
|
=item my $proc = new_exec AnyEvent::Fork |
| 494 |
|
|
|
| 495 |
|
|
Create a new "empty" perl interpreter process and returns its process |
| 496 |
|
|
object for further manipulation. |
| 497 |
|
|
|
| 498 |
|
|
Unlike the C<new> method, this method I<always> spawns a new perl process |
| 499 |
|
|
(except in some cases, see L<AnyEvent::Fork::Early> for details). This |
| 500 |
|
|
reduces the amount of memory sharing that is possible, and is also slower. |
| 501 |
|
|
|
| 502 |
|
|
You should use C<new> whenever possible, except when having a template |
| 503 |
|
|
process around is unacceptable. |
| 504 |
|
|
|
| 505 |
root |
1.17 |
The path to the perl interpreter is divined using various methods - first |
| 506 |
root |
1.4 |
C<$^X> is investigated to see if the path ends with something that sounds |
| 507 |
|
|
as if it were the perl interpreter. Failing this, the module falls back to |
| 508 |
|
|
using C<$Config::Config{perlpath}>. |
| 509 |
|
|
|
| 510 |
|
|
=cut |
| 511 |
|
|
|
| 512 |
|
|
sub new_exec { |
| 513 |
|
|
my ($self) = @_; |
| 514 |
|
|
|
| 515 |
root |
1.5 |
return $EARLY->fork |
| 516 |
|
|
if $EARLY; |
| 517 |
|
|
|
| 518 |
root |
1.4 |
# first find path of perl |
| 519 |
|
|
my $perl = $; |
| 520 |
|
|
|
| 521 |
|
|
# first we try $^X, but the path must be absolute (always on win32), and end in sth. |
| 522 |
|
|
# that looks like perl. this obviously only works for posix and win32 |
| 523 |
|
|
unless ( |
| 524 |
root |
1.15 |
($^O eq "MSWin32" || $perl =~ m%^/%) |
| 525 |
root |
1.4 |
&& $perl =~ m%[/\\]perl(?:[0-9]+(\.[0-9]+)+)?(\.exe)?$%i |
| 526 |
|
|
) { |
| 527 |
|
|
# if it doesn't look perlish enough, try Config |
| 528 |
|
|
require Config; |
| 529 |
|
|
$perl = $Config::Config{perlpath}; |
| 530 |
|
|
$perl =~ s/(?:\Q$Config::Config{_exe}\E)?$/$Config::Config{_exe}/; |
| 531 |
|
|
} |
| 532 |
|
|
|
| 533 |
|
|
require Proc::FastSpawn; |
| 534 |
|
|
|
| 535 |
|
|
my ($fh, $slave) = AnyEvent::Util::portable_socketpair; |
| 536 |
|
|
Proc::FastSpawn::fd_inherit (fileno $slave); |
| 537 |
|
|
|
| 538 |
root |
1.10 |
# new fh's should always be set cloexec (due to $^F), |
| 539 |
|
|
# but hey, not on win32, so we always clear the inherit flag. |
| 540 |
|
|
Proc::FastSpawn::fd_inherit (fileno $fh, 0); |
| 541 |
|
|
|
| 542 |
root |
1.4 |
# quick. also doesn't work in win32. of course. what did you expect |
| 543 |
|
|
#local $ENV{PERL5LIB} = join ":", grep !ref, @INC; |
| 544 |
root |
1.1 |
my %env = %ENV; |
| 545 |
root |
1.15 |
$env{PERL5LIB} = join +($^O eq "MSWin32" ? ";" : ":"), grep !ref, @INC; |
| 546 |
root |
1.1 |
|
| 547 |
root |
1.19 |
my $pid = Proc::FastSpawn::spawn ( |
| 548 |
root |
1.4 |
$perl, |
| 549 |
root |
1.7 |
["perl", "-MAnyEvent::Fork::Serve", "-e", "AnyEvent::Fork::Serve::me", fileno $slave, $$], |
| 550 |
root |
1.4 |
[map "$_=$env{$_}", keys %env], |
| 551 |
|
|
) or die "unable to spawn AnyEvent::Fork server: $!"; |
| 552 |
|
|
|
| 553 |
root |
1.19 |
$self->_new ($fh, $pid) |
| 554 |
root |
1.4 |
} |
| 555 |
|
|
|
| 556 |
root |
1.20 |
=item $pid = $proc->pid |
| 557 |
|
|
|
| 558 |
|
|
Returns the process id of the process I<iff it is a direct child of the |
| 559 |
|
|
process> running AnyEvent::Fork, and C<undef> otherwise. |
| 560 |
|
|
|
| 561 |
|
|
Normally, only processes created via C<< AnyEvent::Fork->new_exec >> and |
| 562 |
|
|
L<AnyEvent::Fork::Template> are direct children, and you are responsible |
| 563 |
|
|
to clean up their zombies when they die. |
| 564 |
|
|
|
| 565 |
|
|
All other processes are not direct children, and will be cleaned up by |
| 566 |
|
|
AnyEvent::Fork. |
| 567 |
|
|
|
| 568 |
|
|
=cut |
| 569 |
|
|
|
| 570 |
|
|
sub pid { |
| 571 |
|
|
$_[0][0] |
| 572 |
|
|
} |
| 573 |
|
|
|
| 574 |
root |
1.9 |
=item $proc = $proc->eval ($perlcode, @args) |
| 575 |
|
|
|
| 576 |
|
|
Evaluates the given C<$perlcode> as ... perl code, while setting C<@_> to |
| 577 |
root |
1.23 |
the strings specified by C<@args>, in the "main" package. |
| 578 |
root |
1.9 |
|
| 579 |
|
|
This call is meant to do any custom initialisation that might be required |
| 580 |
|
|
(for example, the C<require> method uses it). It's not supposed to be used |
| 581 |
|
|
to completely take over the process, use C<run> for that. |
| 582 |
|
|
|
| 583 |
|
|
The code will usually be executed after this call returns, and there is no |
| 584 |
|
|
way to pass anything back to the calling process. Any evaluation errors |
| 585 |
|
|
will be reported to stderr and cause the process to exit. |
| 586 |
|
|
|
| 587 |
root |
1.23 |
If you want to execute some code to take over the process (see the |
| 588 |
|
|
"fork+exec" example in the SYNOPSIS), you should compile a function via |
| 589 |
|
|
C<eval> first, and then call it via C<run>. This also gives you access to |
| 590 |
|
|
any arguments passed via the C<send_xxx> methods, such as file handles. |
| 591 |
|
|
|
| 592 |
root |
1.9 |
Returns the process object for easy chaining of method calls. |
| 593 |
|
|
|
| 594 |
|
|
=cut |
| 595 |
|
|
|
| 596 |
|
|
sub eval { |
| 597 |
|
|
my ($self, $code, @args) = @_; |
| 598 |
|
|
|
| 599 |
root |
1.19 |
$self->_cmd (e => pack "(w/a*)*", $code, @args); |
| 600 |
root |
1.9 |
|
| 601 |
|
|
$self |
| 602 |
|
|
} |
| 603 |
|
|
|
| 604 |
root |
1.4 |
=item $proc = $proc->require ($module, ...) |
| 605 |
root |
1.1 |
|
| 606 |
root |
1.9 |
Tries to load the given module(s) into the process |
| 607 |
root |
1.1 |
|
| 608 |
root |
1.4 |
Returns the process object for easy chaining of method calls. |
| 609 |
root |
1.1 |
|
| 610 |
root |
1.9 |
=cut |
| 611 |
|
|
|
| 612 |
|
|
sub require { |
| 613 |
|
|
my ($self, @modules) = @_; |
| 614 |
|
|
|
| 615 |
|
|
s%::%/%g for @modules; |
| 616 |
|
|
$self->eval ('require "$_.pm" for @_', @modules); |
| 617 |
|
|
|
| 618 |
|
|
$self |
| 619 |
|
|
} |
| 620 |
|
|
|
| 621 |
root |
1.4 |
=item $proc = $proc->send_fh ($handle, ...) |
| 622 |
root |
1.1 |
|
| 623 |
root |
1.4 |
Send one or more file handles (I<not> file descriptors) to the process, |
| 624 |
|
|
to prepare a call to C<run>. |
| 625 |
root |
1.1 |
|
| 626 |
root |
1.4 |
The process object keeps a reference to the handles until this is done, |
| 627 |
|
|
so you must not explicitly close the handles. This is most easily |
| 628 |
|
|
accomplished by simply not storing the file handles anywhere after passing |
| 629 |
|
|
them to this method. |
| 630 |
|
|
|
| 631 |
|
|
Returns the process object for easy chaining of method calls. |
| 632 |
|
|
|
| 633 |
root |
1.17 |
Example: pass a file handle to a process, and release it without |
| 634 |
|
|
closing. It will be closed automatically when it is no longer used. |
| 635 |
root |
1.9 |
|
| 636 |
|
|
$proc->send_fh ($my_fh); |
| 637 |
|
|
undef $my_fh; # free the reference if you want, but DO NOT CLOSE IT |
| 638 |
|
|
|
| 639 |
root |
1.4 |
=cut |
| 640 |
|
|
|
| 641 |
|
|
sub send_fh { |
| 642 |
|
|
my ($self, @fh) = @_; |
| 643 |
|
|
|
| 644 |
|
|
for my $fh (@fh) { |
| 645 |
|
|
$self->_cmd ("h"); |
| 646 |
|
|
push @{ $self->[2] }, \$fh; |
| 647 |
|
|
} |
| 648 |
|
|
|
| 649 |
|
|
$self |
| 650 |
root |
1.1 |
} |
| 651 |
|
|
|
| 652 |
root |
1.4 |
=item $proc = $proc->send_arg ($string, ...) |
| 653 |
|
|
|
| 654 |
|
|
Send one or more argument strings to the process, to prepare a call to |
| 655 |
|
|
C<run>. The strings can be any octet string. |
| 656 |
|
|
|
| 657 |
root |
1.18 |
The protocol is optimised to pass a moderate number of relatively short |
| 658 |
|
|
strings - while you can pass up to 4GB of data in one go, this is more |
| 659 |
|
|
meant to pass some ID information or other startup info, not big chunks of |
| 660 |
|
|
data. |
| 661 |
|
|
|
| 662 |
root |
1.17 |
Returns the process object for easy chaining of method calls. |
| 663 |
root |
1.4 |
|
| 664 |
|
|
=cut |
| 665 |
root |
1.1 |
|
| 666 |
root |
1.4 |
sub send_arg { |
| 667 |
|
|
my ($self, @arg) = @_; |
| 668 |
root |
1.1 |
|
| 669 |
root |
1.19 |
$self->_cmd (a => pack "(w/a*)*", @arg); |
| 670 |
root |
1.1 |
|
| 671 |
|
|
$self |
| 672 |
|
|
} |
| 673 |
|
|
|
| 674 |
root |
1.4 |
=item $proc->run ($func, $cb->($fh)) |
| 675 |
|
|
|
| 676 |
root |
1.23 |
Enter the function specified by the function name in C<$func> in the |
| 677 |
|
|
process. The function is called with the communication socket as first |
| 678 |
root |
1.4 |
argument, followed by all file handles and string arguments sent earlier |
| 679 |
|
|
via C<send_fh> and C<send_arg> methods, in the order they were called. |
| 680 |
|
|
|
| 681 |
root |
1.23 |
The function name should be fully qualified, but if it isn't, it will be |
| 682 |
|
|
looked up in the main package. |
| 683 |
root |
1.4 |
|
| 684 |
root |
1.23 |
If the called function returns, doesn't exist, or any error occurs, the |
| 685 |
|
|
process exits. |
| 686 |
root |
1.4 |
|
| 687 |
root |
1.23 |
Preparing the process is done in the background - when all commands have |
| 688 |
|
|
been sent, the callback is invoked with the local communications socket |
| 689 |
|
|
as argument. At this point you can start using the socket in any way you |
| 690 |
|
|
like. |
| 691 |
|
|
|
| 692 |
|
|
The process object becomes unusable on return from this function - any |
| 693 |
|
|
further method calls result in undefined behaviour. |
| 694 |
root |
1.4 |
|
| 695 |
|
|
If the communication socket isn't used, it should be closed on both sides, |
| 696 |
|
|
to save on kernel memory. |
| 697 |
|
|
|
| 698 |
|
|
The socket is non-blocking in the parent, and blocking in the newly |
| 699 |
root |
1.23 |
created process. The close-on-exec flag is set in both. |
| 700 |
|
|
|
| 701 |
|
|
Even if not used otherwise, the socket can be a good indicator for the |
| 702 |
|
|
existence of the process - if the other process exits, you get a readable |
| 703 |
|
|
event on it, because exiting the process closes the socket (if it didn't |
| 704 |
|
|
create any children using fork). |
| 705 |
root |
1.4 |
|
| 706 |
root |
1.9 |
Example: create a template for a process pool, pass a few strings, some |
| 707 |
|
|
file handles, then fork, pass one more string, and run some code. |
| 708 |
|
|
|
| 709 |
|
|
my $pool = AnyEvent::Fork |
| 710 |
|
|
->new |
| 711 |
|
|
->send_arg ("str1", "str2") |
| 712 |
|
|
->send_fh ($fh1, $fh2); |
| 713 |
|
|
|
| 714 |
|
|
for (1..2) { |
| 715 |
|
|
$pool |
| 716 |
|
|
->fork |
| 717 |
|
|
->send_arg ("str3") |
| 718 |
|
|
->run ("Some::function", sub { |
| 719 |
|
|
my ($fh) = @_; |
| 720 |
|
|
|
| 721 |
|
|
# fh is nonblocking, but we trust that the OS can accept these |
| 722 |
root |
1.22 |
# few octets anyway. |
| 723 |
root |
1.9 |
syswrite $fh, "hi #$_\n"; |
| 724 |
|
|
|
| 725 |
|
|
# $fh is being closed here, as we don't store it anywhere |
| 726 |
|
|
}); |
| 727 |
|
|
} |
| 728 |
|
|
|
| 729 |
|
|
# Some::function might look like this - all parameters passed before fork |
| 730 |
|
|
# and after will be passed, in order, after the communications socket. |
| 731 |
|
|
sub Some::function { |
| 732 |
|
|
my ($fh, $str1, $str2, $fh1, $fh2, $str3) = @_; |
| 733 |
|
|
|
| 734 |
root |
1.22 |
print scalar <$fh>; # prints "hi #1\n" and "hi #2\n" in any order |
| 735 |
root |
1.9 |
} |
| 736 |
|
|
|
| 737 |
root |
1.4 |
=cut |
| 738 |
|
|
|
| 739 |
|
|
sub run { |
| 740 |
|
|
my ($self, $func, $cb) = @_; |
| 741 |
|
|
|
| 742 |
root |
1.20 |
$self->[4] = $cb; |
| 743 |
root |
1.9 |
$self->_cmd (r => $func); |
| 744 |
root |
1.4 |
} |
| 745 |
|
|
|
| 746 |
root |
1.1 |
=back |
| 747 |
|
|
|
| 748 |
root |
1.16 |
=head1 PERFORMANCE |
| 749 |
|
|
|
| 750 |
|
|
Now for some unscientific benchmark numbers (all done on an amd64 |
| 751 |
|
|
GNU/Linux box). These are intended to give you an idea of the relative |
| 752 |
root |
1.18 |
performance you can expect, they are not meant to be absolute performance |
| 753 |
|
|
numbers. |
| 754 |
root |
1.16 |
|
| 755 |
root |
1.17 |
OK, so, I ran a simple benchmark that creates a socket pair, forks, calls |
| 756 |
root |
1.16 |
exit in the child and waits for the socket to close in the parent. I did |
| 757 |
root |
1.18 |
load AnyEvent, EV and AnyEvent::Fork, for a total process size of 5100kB. |
| 758 |
root |
1.16 |
|
| 759 |
root |
1.18 |
2079 new processes per second, using manual socketpair + fork |
| 760 |
root |
1.16 |
|
| 761 |
|
|
Then I did the same thing, but instead of calling fork, I called |
| 762 |
|
|
AnyEvent::Fork->new->run ("CORE::exit") and then again waited for the |
| 763 |
|
|
socket form the child to close on exit. This does the same thing as manual |
| 764 |
root |
1.17 |
socket pair + fork, except that what is forked is the template process |
| 765 |
root |
1.16 |
(2440kB), and the socket needs to be passed to the server at the other end |
| 766 |
|
|
of the socket first. |
| 767 |
|
|
|
| 768 |
|
|
2307 new processes per second, using AnyEvent::Fork->new |
| 769 |
|
|
|
| 770 |
|
|
And finally, using C<new_exec> instead C<new>, using vforks+execs to exec |
| 771 |
|
|
a new perl interpreter and compile the small server each time, I get: |
| 772 |
|
|
|
| 773 |
|
|
479 vfork+execs per second, using AnyEvent::Fork->new_exec |
| 774 |
|
|
|
| 775 |
root |
1.17 |
So how can C<< AnyEvent->new >> be faster than a standard fork, even |
| 776 |
|
|
though it uses the same operations, but adds a lot of overhead? |
| 777 |
root |
1.16 |
|
| 778 |
|
|
The difference is simply the process size: forking the 6MB process takes |
| 779 |
|
|
so much longer than forking the 2.5MB template process that the overhead |
| 780 |
|
|
introduced is canceled out. |
| 781 |
|
|
|
| 782 |
|
|
If the benchmark process grows, the normal fork becomes even slower: |
| 783 |
|
|
|
| 784 |
|
|
1340 new processes, manual fork in a 20MB process |
| 785 |
|
|
731 new processes, manual fork in a 200MB process |
| 786 |
|
|
235 new processes, manual fork in a 2000MB process |
| 787 |
|
|
|
| 788 |
root |
1.17 |
What that means (to me) is that I can use this module without having a |
| 789 |
|
|
very bad conscience because of the extra overhead required to start new |
| 790 |
root |
1.16 |
processes. |
| 791 |
|
|
|
| 792 |
root |
1.15 |
=head1 TYPICAL PROBLEMS |
| 793 |
|
|
|
| 794 |
|
|
This section lists typical problems that remain. I hope by recognising |
| 795 |
|
|
them, most can be avoided. |
| 796 |
|
|
|
| 797 |
|
|
=over 4 |
| 798 |
|
|
|
| 799 |
|
|
=item "leaked" file descriptors for exec'ed processes |
| 800 |
|
|
|
| 801 |
|
|
POSIX systems inherit file descriptors by default when exec'ing a new |
| 802 |
|
|
process. While perl itself laudably sets the close-on-exec flags on new |
| 803 |
|
|
file handles, most C libraries don't care, and even if all cared, it's |
| 804 |
|
|
often not possible to set the flag in a race-free manner. |
| 805 |
|
|
|
| 806 |
|
|
That means some file descriptors can leak through. And since it isn't |
| 807 |
root |
1.17 |
possible to know which file descriptors are "good" and "necessary" (or |
| 808 |
|
|
even to know which file descriptors are open), there is no good way to |
| 809 |
root |
1.15 |
close the ones that might harm. |
| 810 |
|
|
|
| 811 |
|
|
As an example of what "harm" can be done consider a web server that |
| 812 |
|
|
accepts connections and afterwards some module uses AnyEvent::Fork for the |
| 813 |
|
|
first time, causing it to fork and exec a new process, which might inherit |
| 814 |
|
|
the network socket. When the server closes the socket, it is still open |
| 815 |
|
|
in the child (which doesn't even know that) and the client might conclude |
| 816 |
|
|
that the connection is still fine. |
| 817 |
|
|
|
| 818 |
|
|
For the main program, there are multiple remedies available - |
| 819 |
|
|
L<AnyEvent::Fork::Early> is one, creating a process early and not using |
| 820 |
|
|
C<new_exec> is another, as in both cases, the first process can be exec'ed |
| 821 |
|
|
well before many random file descriptors are open. |
| 822 |
|
|
|
| 823 |
|
|
In general, the solution for these kind of problems is to fix the |
| 824 |
|
|
libraries or the code that leaks those file descriptors. |
| 825 |
|
|
|
| 826 |
root |
1.17 |
Fortunately, most of these leaked descriptors do no harm, other than |
| 827 |
root |
1.15 |
sitting on some resources. |
| 828 |
|
|
|
| 829 |
|
|
=item "leaked" file descriptors for fork'ed processes |
| 830 |
|
|
|
| 831 |
|
|
Normally, L<AnyEvent::Fork> does start new processes by exec'ing them, |
| 832 |
|
|
which closes file descriptors not marked for being inherited. |
| 833 |
|
|
|
| 834 |
|
|
However, L<AnyEvent::Fork::Early> and L<AnyEvent::Fork::Template> offer |
| 835 |
|
|
a way to create these processes by forking, and this leaks more file |
| 836 |
|
|
descriptors than exec'ing them, as there is no way to mark descriptors as |
| 837 |
|
|
"close on fork". |
| 838 |
|
|
|
| 839 |
|
|
An example would be modules like L<EV>, L<IO::AIO> or L<Gtk2>. Both create |
| 840 |
|
|
pipes for internal uses, and L<Gtk2> might open a connection to the X |
| 841 |
|
|
server. L<EV> and L<IO::AIO> can deal with fork, but Gtk2 might have |
| 842 |
|
|
trouble with a fork. |
| 843 |
|
|
|
| 844 |
|
|
The solution is to either not load these modules before use'ing |
| 845 |
|
|
L<AnyEvent::Fork::Early> or L<AnyEvent::Fork::Template>, or to delay |
| 846 |
|
|
initialising them, for example, by calling C<init Gtk2> manually. |
| 847 |
|
|
|
| 848 |
root |
1.19 |
=item exit runs destructors |
| 849 |
|
|
|
| 850 |
|
|
This only applies to users of Lc<AnyEvent::Fork:Early> and |
| 851 |
|
|
L<AnyEvent::Fork::Template>. |
| 852 |
|
|
|
| 853 |
|
|
When a process created by AnyEvent::Fork exits, it might do so by calling |
| 854 |
|
|
exit, or simply letting perl reach the end of the program. At which point |
| 855 |
|
|
Perl runs all destructors. |
| 856 |
|
|
|
| 857 |
|
|
Not all destructors are fork-safe - for example, an object that represents |
| 858 |
|
|
the connection to an X display might tell the X server to free resources, |
| 859 |
|
|
which is inconvenient when the "real" object in the parent still needs to |
| 860 |
|
|
use them. |
| 861 |
|
|
|
| 862 |
|
|
This is obviously not a problem for L<AnyEvent::Fork::Early>, as you used |
| 863 |
|
|
it as the very first thing, right? |
| 864 |
|
|
|
| 865 |
|
|
It is a problem for L<AnyEvent::Fork::Template> though - and the solution |
| 866 |
|
|
is to not create objects with nontrivial destructors that might have an |
| 867 |
|
|
effect outside of Perl. |
| 868 |
|
|
|
| 869 |
root |
1.15 |
=back |
| 870 |
|
|
|
| 871 |
root |
1.8 |
=head1 PORTABILITY NOTES |
| 872 |
|
|
|
| 873 |
root |
1.10 |
Native win32 perls are somewhat supported (AnyEvent::Fork::Early is a nop, |
| 874 |
|
|
and ::Template is not going to work), and it cost a lot of blood and sweat |
| 875 |
|
|
to make it so, mostly due to the bloody broken perl that nobody seems to |
| 876 |
|
|
care about. The fork emulation is a bad joke - I have yet to see something |
| 877 |
root |
1.17 |
useful that you can do with it without running into memory corruption |
| 878 |
root |
1.10 |
issues or other braindamage. Hrrrr. |
| 879 |
|
|
|
| 880 |
|
|
Cygwin perl is not supported at the moment, as it should implement fd |
| 881 |
|
|
passing, but doesn't, and rolling my own is hard, as cygwin doesn't |
| 882 |
|
|
support enough functionality to do it. |
| 883 |
root |
1.8 |
|
| 884 |
root |
1.13 |
=head1 SEE ALSO |
| 885 |
|
|
|
| 886 |
|
|
L<AnyEvent::Fork::Early> (to avoid executing a perl interpreter), |
| 887 |
|
|
L<AnyEvent::Fork::Template> (to create a process by forking the main |
| 888 |
|
|
program at a convenient time). |
| 889 |
|
|
|
| 890 |
root |
1.1 |
=head1 AUTHOR |
| 891 |
|
|
|
| 892 |
|
|
Marc Lehmann <schmorp@schmorp.de> |
| 893 |
|
|
http://home.schmorp.de/ |
| 894 |
|
|
|
| 895 |
|
|
=cut |
| 896 |
|
|
|
| 897 |
|
|
1 |
| 898 |
|
|
|