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This line fails with a badarg exception:

register(myproc, self()),

The documentation says that self/0 returns a pid and that register/2 takes a pid. So what gives?

Edit: No, seriously, it's not already registered, it's not a reserved atom, and it works when I register it from the process that's spawning it.

Oh weird! Okay, I got some more clues. When I move the call to register() around to different places, sometimes it works and sometimes it breaks. Here's my sample code. Run it before you call me crazy. :-)

-export([start/1,  ping/2, pong/0]).

ping(N, Pong_Pid) ->
    pingr(N, Pong_Pid).

pingr(0, _) ->
    io:format("Ping exiting~n", []),

pingr(N, Pong_Pid) ->
    Pong_Pid ! {ping, self()},
        pong ->
            io:format("Ping received pong~n", [])
    pingr(N - 1, Pong_Pid).

pong() ->
    %% This one works.
    %%register(pong, self()),
    process_flag(trap_exit, true), 

pongr() ->
    %% This one fails.
    register(pong, self()),
        {ping, Ping_PID} ->
            io:format("Pong received ping~n", []),
            Ping_PID ! pong,
        {'EXIT', From, Reason} ->
            io:format("pong exiting, got ~p~n", [{'EXIT', From, Reason}])

start(Ping_Node) ->
    PongPID = spawn(pingpong, pong, []),
    spawn(Ping_Node, pingpong, ping, [3, PongPID]).
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2 Answers 2

up vote 5 down vote accepted

If the process is already registered, it will throw a badarg. There is also some other cases that causes this, like the name is already used. See the erlang:register/2 docs for more.


It's great that you posted code to reproduce your problem.

So, the first time you enter pongr/0 you will register self(). When you receive a message, you will process it and call pongr/0 again. The second time you enter pongr/0 you try to register self(), which fails because it's already registered.

Also, if you want to use register a large number of processes, you should look into gproc. register/2 requires an atom as the key and there is a limit of around one million atoms, unless you explicitly change it. See the efficiency guide. gproc can also run distributed and may thus be used instead of the global module.

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I wouldn't come to SO if I hadn't read the docs first. – Neil Traft Mar 17 '11 at 21:26
Sorry, I didn't mean to offend you. See my edited answer for an explanation of the problem in your code. – knutin Mar 17 '11 at 22:32
Ohhhhhh, DUH!!! I'm almost embarrassed I didn't see it before. Also, thanks for the bonus tip and efficiency link. – Neil Traft Mar 18 '11 at 3:22

is myproc already registered?

first call should succeed, additional calls will cause badarg exception.

1> register(myproc, self()).
2> myproc ! foo.
3> flush().
Shell got foo
4> register(myproc, self()).
** exception error: bad argument
     in function  register/2
        called as register(myproc,<0.30.0>)
share|improve this answer
Nope, I know about that gotcha already. – Neil Traft Mar 17 '11 at 21:26

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