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1.1 |
=head1 NAME |
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AnyEvent::MP - multi-processing/message-passing framework |
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=head1 SYNOPSIS |
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use AnyEvent::MP; |
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1.22 |
$NODE # contains this node's noderef |
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NODE # returns this node's noderef |
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NODE $port # returns the noderef of the port |
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1.2 |
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1.38 |
$SELF # receiving/own port id in rcv callbacks |
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1.48 |
# initialise the node so it can send/receive messages |
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initialise_node; # -OR- |
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initialise_node "localhost:4040"; # -OR- |
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initialise_node "slave/", "localhost:4040" |
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1.38 |
# ports are message endpoints |
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# sending messages |
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1.2 |
snd $port, type => data...; |
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1.38 |
snd $port, @msg; |
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snd @msg_with_first_element_being_a_port; |
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1.2 |
|
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1.50 |
# creating/using ports, the simple way |
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my $somple_port = port { my @msg = @_; 0 }; |
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1.22 |
|
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1.52 |
# creating/using ports, tagged message matching |
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1.38 |
my $port = port; |
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rcv $port, ping => sub { snd $_[0], "pong"; 0 }; |
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rcv $port, pong => sub { warn "pong received\n"; 0 }; |
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1.2 |
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1.48 |
# create a port on another node |
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my $port = spawn $node, $initfunc, @initdata; |
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1.35 |
# monitoring |
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mon $port, $cb->(@msg) # callback is invoked on death |
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mon $port, $otherport # kill otherport on abnormal death |
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mon $port, $otherport, @msg # send message on death |
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1.45 |
=head1 CURRENT STATUS |
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AnyEvent::MP - stable API, should work |
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AnyEvent::MP::Intro - outdated |
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AnyEvent::MP::Kernel - WIP |
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AnyEvent::MP::Transport - mostly stable |
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stay tuned. |
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1.1 |
=head1 DESCRIPTION |
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1.2 |
This module (-family) implements a simple message passing framework. |
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Despite its simplicity, you can securely message other processes running |
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on the same or other hosts. |
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1.23 |
For an introduction to this module family, see the L<AnyEvent::MP::Intro> |
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manual page. |
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At the moment, this module family is severly broken and underdocumented, |
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1.21 |
so do not use. This was uploaded mainly to reserve the CPAN namespace - |
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1.45 |
stay tuned! |
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1.6 |
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1.2 |
=head1 CONCEPTS |
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=over 4 |
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=item port |
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1.29 |
A port is something you can send messages to (with the C<snd> function). |
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Some ports allow you to register C<rcv> handlers that can match specific |
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messages. All C<rcv> handlers will receive messages they match, messages |
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will not be queued. |
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1.2 |
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1.3 |
=item port id - C<noderef#portname> |
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1.2 |
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1.29 |
A port id is normaly the concatenation of a noderef, a hash-mark (C<#>) as |
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separator, and a port name (a printable string of unspecified format). An |
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1.30 |
exception is the the node port, whose ID is identical to its node |
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1.29 |
reference. |
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1.2 |
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=item node |
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A node is a single process containing at least one port - the node |
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1.29 |
port. You can send messages to node ports to find existing ports or to |
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create new ports, among other things. |
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1.2 |
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1.29 |
Nodes are either private (single-process only), slaves (connected to a |
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master node only) or public nodes (connectable from unrelated nodes). |
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1.2 |
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1.5 |
=item noderef - C<host:port,host:port...>, C<id@noderef>, C<id> |
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1.29 |
A node reference is a string that either simply identifies the node (for |
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private and slave nodes), or contains a recipe on how to reach a given |
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1.2 |
node (for public nodes). |
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1.29 |
This recipe is simply a comma-separated list of C<address:port> pairs (for |
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TCP/IP, other protocols might look different). |
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Node references come in two flavours: resolved (containing only numerical |
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addresses) or unresolved (where hostnames are used instead of addresses). |
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Before using an unresolved node reference in a message you first have to |
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resolve it. |
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1.2 |
=back |
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1.3 |
=head1 VARIABLES/FUNCTIONS |
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1.2 |
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=over 4 |
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1.1 |
=cut |
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package AnyEvent::MP; |
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1.44 |
use AnyEvent::MP::Kernel; |
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1.2 |
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1.1 |
use common::sense; |
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1.2 |
use Carp (); |
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1.1 |
use AE (); |
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1.2 |
use base "Exporter"; |
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1.44 |
our $VERSION = $AnyEvent::MP::Kernel::VERSION; |
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1.43 |
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1.8 |
our @EXPORT = qw( |
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1.22 |
NODE $NODE *SELF node_of _any_ |
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1.31 |
resolve_node initialise_node |
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1.38 |
snd rcv mon kil reg psub spawn |
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1.22 |
port |
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1.8 |
); |
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1.2 |
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1.22 |
our $SELF; |
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sub _self_die() { |
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my $msg = $@; |
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$msg =~ s/\n+$// unless ref $msg; |
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kil $SELF, die => $msg; |
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} |
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=item $thisnode = NODE / $NODE |
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1.52 |
The C<NODE> function returns, and the C<$NODE> variable contains the |
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noderef of the local node. The value is initialised by a call to |
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C<initialise_node>. |
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1.22 |
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1.33 |
=item $noderef = node_of $port |
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1.22 |
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1.52 |
Extracts and returns the noderef from a port ID or a noderef. |
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1.22 |
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1.34 |
=item initialise_node $noderef, $seednode, $seednode... |
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=item initialise_node "slave/", $master, $master... |
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Before a node can talk to other nodes on the network it has to initialise |
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itself - the minimum a node needs to know is it's own name, and optionally |
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it should know the noderefs of some other nodes in the network. |
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This function initialises a node - it must be called exactly once (or |
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never) before calling other AnyEvent::MP functions. |
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1.49 |
All arguments (optionally except for the first) are noderefs, which can be |
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either resolved or unresolved. |
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The first argument will be looked up in the configuration database first |
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(if it is C<undef> then the current nodename will be used instead) to find |
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the relevant configuration profile (see L<aemp>). If none is found then |
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the default configuration is used. The configuration supplies additional |
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seed/master nodes and can override the actual noderef. |
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1.34 |
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There are two types of networked nodes, public nodes and slave nodes: |
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=over 4 |
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=item public nodes |
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1.49 |
For public nodes, C<$noderef> (supplied either directly to |
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C<initialise_node> or indirectly via a profile or the nodename) must be a |
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noderef (possibly unresolved, in which case it will be resolved). |
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After resolving, the node will bind itself on all endpoints and try to |
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connect to all additional C<$seednodes> that are specified. Seednodes are |
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optional and can be used to quickly bootstrap the node into an existing |
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network. |
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1.34 |
|
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=item slave nodes |
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1.49 |
When the C<$noderef> (either as given or overriden by the config file) |
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is the special string C<slave/>, then the node will become a slave |
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node. Slave nodes cannot be contacted from outside and will route most of |
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their traffic to the master node that they attach to. |
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At least one additional noderef is required (either by specifying it |
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directly or because it is part of the configuration profile): The node |
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will try to connect to all of them and will become a slave attached to the |
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first node it can successfully connect to. |
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1.34 |
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=back |
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This function will block until all nodes have been resolved and, for slave |
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nodes, until it has successfully established a connection to a master |
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server. |
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1.49 |
Example: become a public node listening on the guessed noderef, or the one |
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specified via C<aemp> for the current node. This should be the most common |
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form of invocation for "daemon"-type nodes. |
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1.34 |
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initialise_node; |
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1.49 |
Example: become a slave node to any of the the seednodes specified via |
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C<aemp>. This form is often used for commandline clients. |
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initialise_node "slave/"; |
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Example: become a slave node to any of the specified master servers. This |
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form is also often used for commandline clients. |
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initialise_node "slave/", "master1", "192.168.13.17", "mp.example.net"; |
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1.34 |
Example: become a public node, and try to contact some well-known master |
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servers to become part of the network. |
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initialise_node undef, "master1", "master2"; |
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Example: become a public node listening on port C<4041>. |
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initialise_node 4041; |
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Example: become a public node, only visible on localhost port 4044. |
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1.49 |
initialise_node "localhost:4044"; |
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1.34 |
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1.29 |
=item $cv = resolve_node $noderef |
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Takes an unresolved node reference that may contain hostnames and |
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abbreviated IDs, resolves all of them and returns a resolved node |
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reference. |
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In addition to C<address:port> pairs allowed in resolved noderefs, the |
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following forms are supported: |
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=over 4 |
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=item the empty string |
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An empty-string component gets resolved as if the default port (4040) was |
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specified. |
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=item naked port numbers (e.g. C<1234>) |
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These are resolved by prepending the local nodename and a colon, to be |
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further resolved. |
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=item hostnames (e.g. C<localhost:1234>, C<localhost>) |
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These are resolved by using AnyEvent::DNS to resolve them, optionally |
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looking up SRV records for the C<aemp=4040> port, if no port was |
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specified. |
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=back |
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1.22 |
=item $SELF |
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Contains the current port id while executing C<rcv> callbacks or C<psub> |
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blocks. |
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1.3 |
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1.22 |
=item SELF, %SELF, @SELF... |
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Due to some quirks in how perl exports variables, it is impossible to |
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just export C<$SELF>, all the symbols called C<SELF> are exported by this |
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module, but only C<$SELF> is currently used. |
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1.3 |
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1.33 |
=item snd $port, type => @data |
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1.3 |
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1.33 |
=item snd $port, @msg |
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1.3 |
|
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1.8 |
Send the given message to the given port ID, which can identify either |
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1.52 |
a local or a remote port, and must be a port ID. |
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1.8 |
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While the message can be about anything, it is highly recommended to use a |
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1.52 |
string as first element (a port ID, or some word that indicates a request |
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1.8 |
type etc.). |
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1.3 |
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The message data effectively becomes read-only after a call to this |
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function: modifying any argument is not allowed and can cause many |
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problems. |
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The type of data you can transfer depends on the transport protocol: when |
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JSON is used, then only strings, numbers and arrays and hashes consisting |
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of those are allowed (no objects). When Storable is used, then anything |
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that Storable can serialise and deserialise is allowed, and for the local |
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node, anything can be passed. |
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1.22 |
=item $local_port = port |
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1.2 |
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1.50 |
Create a new local port object and returns its port ID. Initially it has |
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no callbacks set and will throw an error when it receives messages. |
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1.10 |
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1.50 |
=item $local_port = port { my @msg = @_ } |
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1.15 |
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1.50 |
Creates a new local port, and returns its ID. Semantically the same as |
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creating a port and calling C<rcv $port, $callback> on it. |
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1.15 |
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1.50 |
The block will be called for every message received on the port, with the |
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global variable C<$SELF> set to the port ID. Runtime errors will cause the |
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port to be C<kil>ed. The message will be passed as-is, no extra argument |
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(i.e. no port ID) will be passed to the callback. |
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1.15 |
|
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1.50 |
If you want to stop/destroy the port, simply C<kil> it: |
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1.15 |
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1.50 |
my $port = port { |
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my @msg = @_; |
| 318 |
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... |
| 319 |
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kil $SELF; |
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root |
1.15 |
}; |
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root |
1.10 |
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=cut |
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root |
1.33 |
sub rcv($@); |
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1.50 |
sub _kilme { |
| 327 |
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die "received message on port without callback"; |
| 328 |
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} |
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1.22 |
sub port(;&) { |
| 331 |
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my $id = "$UNIQ." . $ID++; |
| 332 |
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my $port = "$NODE#$id"; |
| 333 |
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| 334 |
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1.50 |
rcv $port, shift || \&_kilme; |
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1.10 |
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1.22 |
$port |
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1.10 |
} |
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1.50 |
=item rcv $local_port, $callback->(@msg) |
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1.31 |
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1.50 |
Replaces the default callback on the specified port. There is no way to |
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remove the default callback: use C<sub { }> to disable it, or better |
| 343 |
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C<kil> the port when it is no longer needed. |
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root |
1.3 |
|
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root |
1.33 |
The global C<$SELF> (exported by this module) contains C<$port> while |
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root |
1.50 |
executing the callback. Runtime errors during callback execution will |
| 347 |
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result in the port being C<kil>ed. |
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root |
1.22 |
|
| 349 |
root |
1.50 |
The default callback received all messages not matched by a more specific |
| 350 |
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C<tag> match. |
| 351 |
root |
1.22 |
|
| 352 |
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1.50 |
=item rcv $local_port, tag => $callback->(@msg_without_tag), ... |
| 353 |
root |
1.3 |
|
| 354 |
root |
1.50 |
Register callbacks to be called on messages starting with the given tag on |
| 355 |
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the given port (and return the port), or unregister it (when C<$callback> |
| 356 |
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is C<$undef>). |
| 357 |
root |
1.3 |
|
| 358 |
root |
1.50 |
The original message will be passed to the callback, after the first |
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element (the tag) has been removed. The callback will use the same |
| 360 |
|
|
environment as the default callback (see above). |
| 361 |
root |
1.3 |
|
| 362 |
root |
1.36 |
Example: create a port and bind receivers on it in one go. |
| 363 |
|
|
|
| 364 |
|
|
my $port = rcv port, |
| 365 |
root |
1.50 |
msg1 => sub { ... }, |
| 366 |
|
|
msg2 => sub { ... }, |
| 367 |
root |
1.36 |
; |
| 368 |
|
|
|
| 369 |
|
|
Example: create a port, bind receivers and send it in a message elsewhere |
| 370 |
|
|
in one go: |
| 371 |
|
|
|
| 372 |
|
|
snd $otherport, reply => |
| 373 |
|
|
rcv port, |
| 374 |
root |
1.50 |
msg1 => sub { ... }, |
| 375 |
root |
1.36 |
... |
| 376 |
|
|
; |
| 377 |
|
|
|
| 378 |
root |
1.3 |
=cut |
| 379 |
|
|
|
| 380 |
|
|
sub rcv($@) { |
| 381 |
root |
1.33 |
my $port = shift; |
| 382 |
|
|
my ($noderef, $portid) = split /#/, $port, 2; |
| 383 |
root |
1.3 |
|
| 384 |
root |
1.22 |
($NODE{$noderef} || add_node $noderef) == $NODE{""} |
| 385 |
root |
1.33 |
or Carp::croak "$port: rcv can only be called on local ports, caught"; |
| 386 |
root |
1.22 |
|
| 387 |
root |
1.50 |
while (@_) { |
| 388 |
|
|
if (ref $_[0]) { |
| 389 |
|
|
if (my $self = $PORT_DATA{$portid}) { |
| 390 |
|
|
"AnyEvent::MP::Port" eq ref $self |
| 391 |
|
|
or Carp::croak "$port: rcv can only be called on message matching ports, caught"; |
| 392 |
root |
1.33 |
|
| 393 |
root |
1.50 |
$self->[2] = shift; |
| 394 |
|
|
} else { |
| 395 |
|
|
my $cb = shift; |
| 396 |
|
|
$PORT{$portid} = sub { |
| 397 |
|
|
local $SELF = $port; |
| 398 |
|
|
eval { &$cb }; _self_die if $@; |
| 399 |
|
|
}; |
| 400 |
|
|
} |
| 401 |
|
|
} elsif (defined $_[0]) { |
| 402 |
|
|
my $self = $PORT_DATA{$portid} ||= do { |
| 403 |
|
|
my $self = bless [$PORT{$port} || sub { }, { }, $port], "AnyEvent::MP::Port"; |
| 404 |
|
|
|
| 405 |
|
|
$PORT{$portid} = sub { |
| 406 |
|
|
local $SELF = $port; |
| 407 |
|
|
|
| 408 |
|
|
if (my $cb = $self->[1]{$_[0]}) { |
| 409 |
|
|
shift; |
| 410 |
|
|
eval { &$cb }; _self_die if $@; |
| 411 |
|
|
} else { |
| 412 |
|
|
&{ $self->[0] }; |
| 413 |
root |
1.33 |
} |
| 414 |
|
|
}; |
| 415 |
root |
1.50 |
|
| 416 |
|
|
$self |
| 417 |
root |
1.33 |
}; |
| 418 |
|
|
|
| 419 |
root |
1.50 |
"AnyEvent::MP::Port" eq ref $self |
| 420 |
|
|
or Carp::croak "$port: rcv can only be called on message matching ports, caught"; |
| 421 |
root |
1.22 |
|
| 422 |
root |
1.50 |
my ($tag, $cb) = splice @_, 0, 2; |
| 423 |
root |
1.33 |
|
| 424 |
root |
1.50 |
if (defined $cb) { |
| 425 |
|
|
$self->[1]{$tag} = $cb; |
| 426 |
root |
1.33 |
} else { |
| 427 |
root |
1.50 |
delete $self->[1]{$tag}; |
| 428 |
root |
1.33 |
} |
| 429 |
root |
1.22 |
} |
| 430 |
root |
1.3 |
} |
| 431 |
root |
1.31 |
|
| 432 |
root |
1.33 |
$port |
| 433 |
root |
1.2 |
} |
| 434 |
|
|
|
| 435 |
root |
1.22 |
=item $closure = psub { BLOCK } |
| 436 |
root |
1.2 |
|
| 437 |
root |
1.22 |
Remembers C<$SELF> and creates a closure out of the BLOCK. When the |
| 438 |
|
|
closure is executed, sets up the environment in the same way as in C<rcv> |
| 439 |
|
|
callbacks, i.e. runtime errors will cause the port to get C<kil>ed. |
| 440 |
|
|
|
| 441 |
|
|
This is useful when you register callbacks from C<rcv> callbacks: |
| 442 |
|
|
|
| 443 |
|
|
rcv delayed_reply => sub { |
| 444 |
|
|
my ($delay, @reply) = @_; |
| 445 |
|
|
my $timer = AE::timer $delay, 0, psub { |
| 446 |
|
|
snd @reply, $SELF; |
| 447 |
|
|
}; |
| 448 |
|
|
}; |
| 449 |
root |
1.3 |
|
| 450 |
root |
1.8 |
=cut |
| 451 |
root |
1.3 |
|
| 452 |
root |
1.22 |
sub psub(&) { |
| 453 |
|
|
my $cb = shift; |
| 454 |
root |
1.3 |
|
| 455 |
root |
1.22 |
my $port = $SELF |
| 456 |
|
|
or Carp::croak "psub can only be called from within rcv or psub callbacks, not"; |
| 457 |
root |
1.1 |
|
| 458 |
root |
1.22 |
sub { |
| 459 |
|
|
local $SELF = $port; |
| 460 |
root |
1.2 |
|
| 461 |
root |
1.22 |
if (wantarray) { |
| 462 |
|
|
my @res = eval { &$cb }; |
| 463 |
|
|
_self_die if $@; |
| 464 |
|
|
@res |
| 465 |
|
|
} else { |
| 466 |
|
|
my $res = eval { &$cb }; |
| 467 |
|
|
_self_die if $@; |
| 468 |
|
|
$res |
| 469 |
|
|
} |
| 470 |
|
|
} |
| 471 |
root |
1.2 |
} |
| 472 |
|
|
|
| 473 |
root |
1.33 |
=item $guard = mon $port, $cb->(@reason) |
| 474 |
root |
1.32 |
|
| 475 |
root |
1.36 |
=item $guard = mon $port, $rcvport |
| 476 |
|
|
|
| 477 |
|
|
=item $guard = mon $port |
| 478 |
root |
1.32 |
|
| 479 |
root |
1.36 |
=item $guard = mon $port, $rcvport, @msg |
| 480 |
root |
1.32 |
|
| 481 |
root |
1.42 |
Monitor the given port and do something when the port is killed or |
| 482 |
|
|
messages to it were lost, and optionally return a guard that can be used |
| 483 |
|
|
to stop monitoring again. |
| 484 |
|
|
|
| 485 |
|
|
C<mon> effectively guarantees that, in the absence of hardware failures, |
| 486 |
|
|
that after starting the monitor, either all messages sent to the port |
| 487 |
|
|
will arrive, or the monitoring action will be invoked after possible |
| 488 |
|
|
message loss has been detected. No messages will be lost "in between" |
| 489 |
|
|
(after the first lost message no further messages will be received by the |
| 490 |
|
|
port). After the monitoring action was invoked, further messages might get |
| 491 |
|
|
delivered again. |
| 492 |
root |
1.32 |
|
| 493 |
root |
1.36 |
In the first form (callback), the callback is simply called with any |
| 494 |
|
|
number of C<@reason> elements (no @reason means that the port was deleted |
| 495 |
root |
1.32 |
"normally"). Note also that I<< the callback B<must> never die >>, so use |
| 496 |
|
|
C<eval> if unsure. |
| 497 |
|
|
|
| 498 |
root |
1.43 |
In the second form (another port given), the other port (C<$rcvport>) |
| 499 |
root |
1.36 |
will be C<kil>'ed with C<@reason>, iff a @reason was specified, i.e. on |
| 500 |
|
|
"normal" kils nothing happens, while under all other conditions, the other |
| 501 |
|
|
port is killed with the same reason. |
| 502 |
root |
1.32 |
|
| 503 |
root |
1.36 |
The third form (kill self) is the same as the second form, except that |
| 504 |
|
|
C<$rvport> defaults to C<$SELF>. |
| 505 |
|
|
|
| 506 |
|
|
In the last form (message), a message of the form C<@msg, @reason> will be |
| 507 |
|
|
C<snd>. |
| 508 |
root |
1.32 |
|
| 509 |
root |
1.37 |
As a rule of thumb, monitoring requests should always monitor a port from |
| 510 |
|
|
a local port (or callback). The reason is that kill messages might get |
| 511 |
|
|
lost, just like any other message. Another less obvious reason is that |
| 512 |
|
|
even monitoring requests can get lost (for exmaple, when the connection |
| 513 |
|
|
to the other node goes down permanently). When monitoring a port locally |
| 514 |
|
|
these problems do not exist. |
| 515 |
|
|
|
| 516 |
root |
1.32 |
Example: call a given callback when C<$port> is killed. |
| 517 |
|
|
|
| 518 |
|
|
mon $port, sub { warn "port died because of <@_>\n" }; |
| 519 |
|
|
|
| 520 |
|
|
Example: kill ourselves when C<$port> is killed abnormally. |
| 521 |
|
|
|
| 522 |
root |
1.36 |
mon $port; |
| 523 |
root |
1.32 |
|
| 524 |
root |
1.36 |
Example: send us a restart message when another C<$port> is killed. |
| 525 |
root |
1.32 |
|
| 526 |
|
|
mon $port, $self => "restart"; |
| 527 |
|
|
|
| 528 |
|
|
=cut |
| 529 |
|
|
|
| 530 |
|
|
sub mon { |
| 531 |
|
|
my ($noderef, $port) = split /#/, shift, 2; |
| 532 |
|
|
|
| 533 |
|
|
my $node = $NODE{$noderef} || add_node $noderef; |
| 534 |
|
|
|
| 535 |
root |
1.41 |
my $cb = @_ ? shift : $SELF || Carp::croak 'mon: called with one argument only, but $SELF not set,'; |
| 536 |
root |
1.32 |
|
| 537 |
|
|
unless (ref $cb) { |
| 538 |
|
|
if (@_) { |
| 539 |
|
|
# send a kill info message |
| 540 |
root |
1.41 |
my (@msg) = ($cb, @_); |
| 541 |
root |
1.32 |
$cb = sub { snd @msg, @_ }; |
| 542 |
|
|
} else { |
| 543 |
|
|
# simply kill other port |
| 544 |
|
|
my $port = $cb; |
| 545 |
|
|
$cb = sub { kil $port, @_ if @_ }; |
| 546 |
|
|
} |
| 547 |
|
|
} |
| 548 |
|
|
|
| 549 |
|
|
$node->monitor ($port, $cb); |
| 550 |
|
|
|
| 551 |
|
|
defined wantarray |
| 552 |
|
|
and AnyEvent::Util::guard { $node->unmonitor ($port, $cb) } |
| 553 |
|
|
} |
| 554 |
|
|
|
| 555 |
|
|
=item $guard = mon_guard $port, $ref, $ref... |
| 556 |
|
|
|
| 557 |
|
|
Monitors the given C<$port> and keeps the passed references. When the port |
| 558 |
|
|
is killed, the references will be freed. |
| 559 |
|
|
|
| 560 |
|
|
Optionally returns a guard that will stop the monitoring. |
| 561 |
|
|
|
| 562 |
|
|
This function is useful when you create e.g. timers or other watchers and |
| 563 |
|
|
want to free them when the port gets killed: |
| 564 |
|
|
|
| 565 |
|
|
$port->rcv (start => sub { |
| 566 |
|
|
my $timer; $timer = mon_guard $port, AE::timer 1, 1, sub { |
| 567 |
|
|
undef $timer if 0.9 < rand; |
| 568 |
|
|
}); |
| 569 |
|
|
}); |
| 570 |
|
|
|
| 571 |
|
|
=cut |
| 572 |
|
|
|
| 573 |
|
|
sub mon_guard { |
| 574 |
|
|
my ($port, @refs) = @_; |
| 575 |
|
|
|
| 576 |
root |
1.36 |
#TODO: mon-less form? |
| 577 |
|
|
|
| 578 |
root |
1.32 |
mon $port, sub { 0 && @refs } |
| 579 |
|
|
} |
| 580 |
|
|
|
| 581 |
root |
1.33 |
=item kil $port[, @reason] |
| 582 |
root |
1.32 |
|
| 583 |
|
|
Kill the specified port with the given C<@reason>. |
| 584 |
|
|
|
| 585 |
|
|
If no C<@reason> is specified, then the port is killed "normally" (linked |
| 586 |
|
|
ports will not be kileld, or even notified). |
| 587 |
|
|
|
| 588 |
|
|
Otherwise, linked ports get killed with the same reason (second form of |
| 589 |
|
|
C<mon>, see below). |
| 590 |
|
|
|
| 591 |
|
|
Runtime errors while evaluating C<rcv> callbacks or inside C<psub> blocks |
| 592 |
|
|
will be reported as reason C<< die => $@ >>. |
| 593 |
|
|
|
| 594 |
|
|
Transport/communication errors are reported as C<< transport_error => |
| 595 |
|
|
$message >>. |
| 596 |
|
|
|
| 597 |
root |
1.38 |
=cut |
| 598 |
|
|
|
| 599 |
|
|
=item $port = spawn $node, $initfunc[, @initdata] |
| 600 |
|
|
|
| 601 |
|
|
Creates a port on the node C<$node> (which can also be a port ID, in which |
| 602 |
|
|
case it's the node where that port resides). |
| 603 |
|
|
|
| 604 |
|
|
The port ID of the newly created port is return immediately, and it is |
| 605 |
|
|
permissible to immediately start sending messages or monitor the port. |
| 606 |
|
|
|
| 607 |
|
|
After the port has been created, the init function is |
| 608 |
root |
1.39 |
called. This function must be a fully-qualified function name |
| 609 |
root |
1.40 |
(e.g. C<MyApp::Chat::Server::init>). To specify a function in the main |
| 610 |
|
|
program, use C<::name>. |
| 611 |
root |
1.38 |
|
| 612 |
|
|
If the function doesn't exist, then the node tries to C<require> |
| 613 |
|
|
the package, then the package above the package and so on (e.g. |
| 614 |
|
|
C<MyApp::Chat::Server>, C<MyApp::Chat>, C<MyApp>) until the function |
| 615 |
|
|
exists or it runs out of package names. |
| 616 |
|
|
|
| 617 |
|
|
The init function is then called with the newly-created port as context |
| 618 |
|
|
object (C<$SELF>) and the C<@initdata> values as arguments. |
| 619 |
|
|
|
| 620 |
|
|
A common idiom is to pass your own port, monitor the spawned port, and |
| 621 |
|
|
in the init function, monitor the original port. This two-way monitoring |
| 622 |
|
|
ensures that both ports get cleaned up when there is a problem. |
| 623 |
|
|
|
| 624 |
|
|
Example: spawn a chat server port on C<$othernode>. |
| 625 |
|
|
|
| 626 |
|
|
# this node, executed from within a port context: |
| 627 |
|
|
my $server = spawn $othernode, "MyApp::Chat::Server::connect", $SELF; |
| 628 |
|
|
mon $server; |
| 629 |
|
|
|
| 630 |
|
|
# init function on C<$othernode> |
| 631 |
|
|
sub connect { |
| 632 |
|
|
my ($srcport) = @_; |
| 633 |
|
|
|
| 634 |
|
|
mon $srcport; |
| 635 |
|
|
|
| 636 |
|
|
rcv $SELF, sub { |
| 637 |
|
|
... |
| 638 |
|
|
}; |
| 639 |
|
|
} |
| 640 |
|
|
|
| 641 |
|
|
=cut |
| 642 |
|
|
|
| 643 |
|
|
sub _spawn { |
| 644 |
|
|
my $port = shift; |
| 645 |
|
|
my $init = shift; |
| 646 |
|
|
|
| 647 |
|
|
local $SELF = "$NODE#$port"; |
| 648 |
|
|
eval { |
| 649 |
|
|
&{ load_func $init } |
| 650 |
|
|
}; |
| 651 |
|
|
_self_die if $@; |
| 652 |
|
|
} |
| 653 |
|
|
|
| 654 |
|
|
sub spawn(@) { |
| 655 |
|
|
my ($noderef, undef) = split /#/, shift, 2; |
| 656 |
|
|
|
| 657 |
|
|
my $id = "$RUNIQ." . $ID++; |
| 658 |
|
|
|
| 659 |
root |
1.39 |
$_[0] =~ /::/ |
| 660 |
|
|
or Carp::croak "spawn init function must be a fully-qualified name, caught"; |
| 661 |
|
|
|
| 662 |
root |
1.38 |
($NODE{$noderef} || add_node $noderef) |
| 663 |
|
|
->send (["", "AnyEvent::MP::_spawn" => $id, @_]); |
| 664 |
|
|
|
| 665 |
|
|
"$noderef#$id" |
| 666 |
|
|
} |
| 667 |
|
|
|
| 668 |
root |
1.8 |
=back |
| 669 |
|
|
|
| 670 |
root |
1.4 |
=head1 NODE MESSAGES |
| 671 |
|
|
|
| 672 |
root |
1.5 |
Nodes understand the following messages sent to them. Many of them take |
| 673 |
|
|
arguments called C<@reply>, which will simply be used to compose a reply |
| 674 |
|
|
message - C<$reply[0]> is the port to reply to, C<$reply[1]> the type and |
| 675 |
|
|
the remaining arguments are simply the message data. |
| 676 |
root |
1.4 |
|
| 677 |
root |
1.29 |
While other messages exist, they are not public and subject to change. |
| 678 |
|
|
|
| 679 |
root |
1.4 |
=over 4 |
| 680 |
|
|
|
| 681 |
|
|
=cut |
| 682 |
|
|
|
| 683 |
root |
1.22 |
=item lookup => $name, @reply |
| 684 |
root |
1.3 |
|
| 685 |
root |
1.8 |
Replies with the port ID of the specified well-known port, or C<undef>. |
| 686 |
root |
1.3 |
|
| 687 |
root |
1.7 |
=item devnull => ... |
| 688 |
|
|
|
| 689 |
|
|
Generic data sink/CPU heat conversion. |
| 690 |
|
|
|
| 691 |
root |
1.4 |
=item relay => $port, @msg |
| 692 |
|
|
|
| 693 |
|
|
Simply forwards the message to the given port. |
| 694 |
|
|
|
| 695 |
|
|
=item eval => $string[ @reply] |
| 696 |
|
|
|
| 697 |
|
|
Evaluates the given string. If C<@reply> is given, then a message of the |
| 698 |
root |
1.5 |
form C<@reply, $@, @evalres> is sent. |
| 699 |
|
|
|
| 700 |
|
|
Example: crash another node. |
| 701 |
|
|
|
| 702 |
|
|
snd $othernode, eval => "exit"; |
| 703 |
root |
1.4 |
|
| 704 |
|
|
=item time => @reply |
| 705 |
|
|
|
| 706 |
|
|
Replies the the current node time to C<@reply>. |
| 707 |
|
|
|
| 708 |
root |
1.5 |
Example: tell the current node to send the current time to C<$myport> in a |
| 709 |
|
|
C<timereply> message. |
| 710 |
|
|
|
| 711 |
|
|
snd $NODE, time => $myport, timereply => 1, 2; |
| 712 |
|
|
# => snd $myport, timereply => 1, 2, <time> |
| 713 |
|
|
|
| 714 |
root |
1.2 |
=back |
| 715 |
|
|
|
| 716 |
root |
1.26 |
=head1 AnyEvent::MP vs. Distributed Erlang |
| 717 |
|
|
|
| 718 |
root |
1.35 |
AnyEvent::MP got lots of its ideas from distributed Erlang (Erlang node |
| 719 |
|
|
== aemp node, Erlang process == aemp port), so many of the documents and |
| 720 |
|
|
programming techniques employed by Erlang apply to AnyEvent::MP. Here is a |
| 721 |
root |
1.27 |
sample: |
| 722 |
|
|
|
| 723 |
root |
1.35 |
http://www.Erlang.se/doc/programming_rules.shtml |
| 724 |
|
|
http://Erlang.org/doc/getting_started/part_frame.html # chapters 3 and 4 |
| 725 |
|
|
http://Erlang.org/download/Erlang-book-part1.pdf # chapters 5 and 6 |
| 726 |
|
|
http://Erlang.org/download/armstrong_thesis_2003.pdf # chapters 4 and 5 |
| 727 |
root |
1.27 |
|
| 728 |
|
|
Despite the similarities, there are also some important differences: |
| 729 |
root |
1.26 |
|
| 730 |
|
|
=over 4 |
| 731 |
|
|
|
| 732 |
|
|
=item * Node references contain the recipe on how to contact them. |
| 733 |
|
|
|
| 734 |
|
|
Erlang relies on special naming and DNS to work everywhere in the |
| 735 |
|
|
same way. AEMP relies on each node knowing it's own address(es), with |
| 736 |
|
|
convenience functionality. |
| 737 |
|
|
|
| 738 |
root |
1.27 |
This means that AEMP requires a less tightly controlled environment at the |
| 739 |
|
|
cost of longer node references and a slightly higher management overhead. |
| 740 |
|
|
|
| 741 |
root |
1.51 |
=item Erlang has a "remote ports are like local ports" philosophy, AEMP |
| 742 |
|
|
uses "local ports are like remote ports". |
| 743 |
|
|
|
| 744 |
|
|
The failure modes for local ports are quite different (runtime errors |
| 745 |
|
|
only) then for remote ports - when a local port dies, you I<know> it dies, |
| 746 |
|
|
when a connection to another node dies, you know nothing about the other |
| 747 |
|
|
port. |
| 748 |
|
|
|
| 749 |
|
|
Erlang pretends remote ports are as reliable as local ports, even when |
| 750 |
|
|
they are not. |
| 751 |
|
|
|
| 752 |
|
|
AEMP encourages a "treat remote ports differently" philosophy, with local |
| 753 |
|
|
ports being the special case/exception, where transport errors cannot |
| 754 |
|
|
occur. |
| 755 |
|
|
|
| 756 |
root |
1.26 |
=item * Erlang uses processes and a mailbox, AEMP does not queue. |
| 757 |
|
|
|
| 758 |
root |
1.51 |
Erlang uses processes that selectively receive messages, and therefore |
| 759 |
|
|
needs a queue. AEMP is event based, queuing messages would serve no |
| 760 |
|
|
useful purpose. For the same reason the pattern-matching abilities of |
| 761 |
|
|
AnyEvent::MP are more limited, as there is little need to be able to |
| 762 |
|
|
filter messages without dequeing them. |
| 763 |
root |
1.26 |
|
| 764 |
root |
1.35 |
(But see L<Coro::MP> for a more Erlang-like process model on top of AEMP). |
| 765 |
root |
1.26 |
|
| 766 |
|
|
=item * Erlang sends are synchronous, AEMP sends are asynchronous. |
| 767 |
|
|
|
| 768 |
root |
1.51 |
Sending messages in Erlang is synchronous and blocks the process (and |
| 769 |
|
|
so does not need a queue that can overflow). AEMP sends are immediate, |
| 770 |
|
|
connection establishment is handled in the background. |
| 771 |
root |
1.26 |
|
| 772 |
root |
1.51 |
=item * Erlang suffers from silent message loss, AEMP does not. |
| 773 |
root |
1.26 |
|
| 774 |
|
|
Erlang makes few guarantees on messages delivery - messages can get lost |
| 775 |
|
|
without any of the processes realising it (i.e. you send messages a, b, |
| 776 |
|
|
and c, and the other side only receives messages a and c). |
| 777 |
|
|
|
| 778 |
|
|
AEMP guarantees correct ordering, and the guarantee that there are no |
| 779 |
|
|
holes in the message sequence. |
| 780 |
|
|
|
| 781 |
root |
1.35 |
=item * In Erlang, processes can be declared dead and later be found to be |
| 782 |
root |
1.26 |
alive. |
| 783 |
|
|
|
| 784 |
root |
1.35 |
In Erlang it can happen that a monitored process is declared dead and |
| 785 |
root |
1.26 |
linked processes get killed, but later it turns out that the process is |
| 786 |
|
|
still alive - and can receive messages. |
| 787 |
|
|
|
| 788 |
|
|
In AEMP, when port monitoring detects a port as dead, then that port will |
| 789 |
|
|
eventually be killed - it cannot happen that a node detects a port as dead |
| 790 |
|
|
and then later sends messages to it, finding it is still alive. |
| 791 |
|
|
|
| 792 |
|
|
=item * Erlang can send messages to the wrong port, AEMP does not. |
| 793 |
|
|
|
| 794 |
root |
1.51 |
In Erlang it is quite likely that a node that restarts reuses a process ID |
| 795 |
|
|
known to other nodes for a completely different process, causing messages |
| 796 |
|
|
destined for that process to end up in an unrelated process. |
| 797 |
root |
1.26 |
|
| 798 |
|
|
AEMP never reuses port IDs, so old messages or old port IDs floating |
| 799 |
|
|
around in the network will not be sent to an unrelated port. |
| 800 |
|
|
|
| 801 |
|
|
=item * Erlang uses unprotected connections, AEMP uses secure |
| 802 |
|
|
authentication and can use TLS. |
| 803 |
|
|
|
| 804 |
|
|
AEMP can use a proven protocol - SSL/TLS - to protect connections and |
| 805 |
|
|
securely authenticate nodes. |
| 806 |
|
|
|
| 807 |
root |
1.28 |
=item * The AEMP protocol is optimised for both text-based and binary |
| 808 |
|
|
communications. |
| 809 |
|
|
|
| 810 |
root |
1.35 |
The AEMP protocol, unlike the Erlang protocol, supports both |
| 811 |
root |
1.28 |
language-independent text-only protocols (good for debugging) and binary, |
| 812 |
|
|
language-specific serialisers (e.g. Storable). |
| 813 |
|
|
|
| 814 |
|
|
It has also been carefully designed to be implementable in other languages |
| 815 |
|
|
with a minimum of work while gracefully degrading fucntionality to make the |
| 816 |
|
|
protocol simple. |
| 817 |
|
|
|
| 818 |
root |
1.35 |
=item * AEMP has more flexible monitoring options than Erlang. |
| 819 |
|
|
|
| 820 |
|
|
In Erlang, you can chose to receive I<all> exit signals as messages |
| 821 |
|
|
or I<none>, there is no in-between, so monitoring single processes is |
| 822 |
|
|
difficult to implement. Monitoring in AEMP is more flexible than in |
| 823 |
|
|
Erlang, as one can choose between automatic kill, exit message or callback |
| 824 |
|
|
on a per-process basis. |
| 825 |
|
|
|
| 826 |
root |
1.37 |
=item * Erlang tries to hide remote/local connections, AEMP does not. |
| 827 |
root |
1.35 |
|
| 828 |
|
|
Monitoring in Erlang is not an indicator of process death/crashes, |
| 829 |
root |
1.37 |
as linking is (except linking is unreliable in Erlang). |
| 830 |
|
|
|
| 831 |
|
|
In AEMP, you don't "look up" registered port names or send to named ports |
| 832 |
|
|
that might or might not be persistent. Instead, you normally spawn a port |
| 833 |
|
|
on the remote node. The init function monitors the you, and you monitor |
| 834 |
|
|
the remote port. Since both monitors are local to the node, they are much |
| 835 |
|
|
more reliable. |
| 836 |
|
|
|
| 837 |
|
|
This also saves round-trips and avoids sending messages to the wrong port |
| 838 |
|
|
(hard to do in Erlang). |
| 839 |
root |
1.35 |
|
| 840 |
root |
1.26 |
=back |
| 841 |
|
|
|
| 842 |
root |
1.46 |
=head1 RATIONALE |
| 843 |
|
|
|
| 844 |
|
|
=over 4 |
| 845 |
|
|
|
| 846 |
|
|
=item Why strings for ports and noderefs, why not objects? |
| 847 |
|
|
|
| 848 |
|
|
We considered "objects", but found that the actual number of methods |
| 849 |
|
|
thatc an be called are very low. Since port IDs and noderefs travel over |
| 850 |
|
|
the network frequently, the serialising/deserialising would add lots of |
| 851 |
|
|
overhead, as well as having to keep a proxy object. |
| 852 |
|
|
|
| 853 |
|
|
Strings can easily be printed, easily serialised etc. and need no special |
| 854 |
|
|
procedures to be "valid". |
| 855 |
|
|
|
| 856 |
root |
1.47 |
And a a miniport consists of a single closure stored in a global hash - it |
| 857 |
|
|
can't become much cheaper. |
| 858 |
|
|
|
| 859 |
root |
1.46 |
=item Why favour JSON, why not real serialising format such as Storable? |
| 860 |
|
|
|
| 861 |
|
|
In fact, any AnyEvent::MP node will happily accept Storable as framing |
| 862 |
|
|
format, but currently there is no way to make a node use Storable by |
| 863 |
|
|
default. |
| 864 |
|
|
|
| 865 |
|
|
The default framing protocol is JSON because a) JSON::XS is many times |
| 866 |
|
|
faster for small messages and b) most importantly, after years of |
| 867 |
|
|
experience we found that object serialisation is causing more problems |
| 868 |
|
|
than it gains: Just like function calls, objects simply do not travel |
| 869 |
|
|
easily over the network, mostly because they will always be a copy, so you |
| 870 |
|
|
always have to re-think your design. |
| 871 |
|
|
|
| 872 |
|
|
Keeping your messages simple, concentrating on data structures rather than |
| 873 |
|
|
objects, will keep your messages clean, tidy and efficient. |
| 874 |
|
|
|
| 875 |
|
|
=back |
| 876 |
|
|
|
| 877 |
root |
1.1 |
=head1 SEE ALSO |
| 878 |
|
|
|
| 879 |
|
|
L<AnyEvent>. |
| 880 |
|
|
|
| 881 |
|
|
=head1 AUTHOR |
| 882 |
|
|
|
| 883 |
|
|
Marc Lehmann <schmorp@schmorp.de> |
| 884 |
|
|
http://home.schmorp.de/ |
| 885 |
|
|
|
| 886 |
|
|
=cut |
| 887 |
|
|
|
| 888 |
|
|
1 |
| 889 |
|
|
|