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My working environment is Erlang. Can a process having 2 different functions have two receive blocks in the different functions.

receive
....
end.

request()
PID!(message)
%% Can i get the reply back here instead of the receive block above?
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2 Answers 2

up vote 10 down vote accepted

Yes, you can have many receive expressions. When one is evaluated it will take the first matching message out of the message queue/mailbox (take your pick of names) and leave the rest for the next receive. Sending a message, using the Pid ! Message syntax (the only way), is completely asynchronous and just adds the message to the end of the receiving processes message queue. receive is the only way to receive messages i.e. take them out of the message queue. You can never put them back.

There is no built-in synchronous message passing in Erlang, it is one by sending two messages:

  • The "requesting" process sends a message to the receiving process and then goes into a receive to wait for the reply.

  • The "receiving" process will itself get the message in a receive, process it, send the reply message back the the "requesting" process and then go into a receive to sit and wait for the next message.

Remember there is no inherent connection between processes, ever, and all communication is done using asynchronous message sending and receive.

So in reply to your second question: you can ONLY get a reply back in a receive expression. That is the only way!

Sorry to be a bit pedantic but Erlang doesn't have either blocks or statements. It is a functional language and only has expressions which always return a value even if the return value is sometimes ignored.

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Of couse, you can.

Receives messages sent to the process using the send operator (!). The patterns Pattern are sequentially matched against the first message in time order in the mailbox, then the second, and so on. If a match succeeds and the optional guard sequence GuardSeq is true, the corresponding Body is evaluated. The matching message is consumed, that is removed from the mailbox, while any other messages in the mailbox remain unchanged.

The following code is from supervisor2.erl of rabbitmq project. It even uses nested receive statement. I have marked nested receive below.

terminate_simple_children(Child, Dynamics, SupName) ->
    Pids = dict:fold(fun (Pid, _Args, Pids) ->
                         erlang:monitor(process, Pid),
                         unlink(Pid),
                         exit(Pid, child_exit_reason(Child)),
                         [Pid | Pids]
                     end, [], Dynamics),
    TimeoutMsg = {timeout, make_ref()},
    TRef = timeout_start(Child, TimeoutMsg),
    {Replies, Timedout} =
        lists:foldl(
          fun (_Pid, {Replies, Timedout}) ->
                  {Reply, Timedout1} =
                      receive %% attention here 
                          TimeoutMsg ->
                              Remaining = Pids -- [P || {P, _} <- Replies],
                              [exit(P, kill) || P <- Remaining],
                              receive {'DOWN', _MRef, process, Pid, Reason} -> %%attention here
                                      {{error, Reason}, true}
                              end;
                          {'DOWN', _MRef, process, Pid, Reason} ->
                              {child_res(Child, Reason, Timedout), Timedout};
                          {'EXIT', Pid, Reason} -> 
                              receive {'DOWN', _MRef, process, Pid, _} ->
                                      {{error, Reason}, Timedout}
                              end
                      end,
                  {[{Pid, Reply} | Replies], Timedout1}
          end, {[], false}, Pids),
    timeout_stop(Child, TRef, TimeoutMsg, Timedout),
    ReportError = shutdown_error_reporter(SupName),
    [case Reply of
         {_Pid, ok}         -> ok;
         {Pid,  {error, R}} -> ReportError(R, Child#child{pid = Pid})
     end || Reply <- Replies],
    ok.
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