Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have these code

start() ->
    spawn(?MODULE, init, [self()]).

init(From) ->
    spawn(?MODULE, broadcast, []).    

broadcast() ->
    Msg = "helloworld",
    timer:sleep(10000),
    broadcast().

When I test these code in Erlang shell, it give me undef error, I need to export broadcast function, I am just refuse

share|improve this question
    
As written you need to export both the start/0 function so it can be called and the init/1 function. When you spawn a function with spawn/3 as you have done then that function must also be exported. An alternative is to spawn a fun as others have suggested. –  rvirding Feb 9 '12 at 22:50

3 Answers 3

up vote 4 down vote accepted

Code

spawn(?MODULE, init, [self()]).

means you will spawn process which initial call will be ?MODULE:init(self()) or more precisely equivalent of apply(?MODULE,init,[self()]). ?MODULE is macro evaluated to current module name but anyway It is external function call so this function have to be exported even there is ?MODULE used. In contrary

spawn(fun() -> init(self()) end).

is spawn with initial call to the func fun() -> init(self()) end which calls init/1 with result of function self(). It is local call which means init/1 may not be exported. There is another issue with it when self() is performed inside new process so you have to write

Self = self(), spawn(fun() -> init(Self) end).

to achieve same effect as in spawn(?MODULE, init, [self()]) where self() is evaluated as parameter of spawn/3.

share|improve this answer
    
Good answer: Self = self(), spawn(fun() -> init(Self) end). –  why Feb 8 '12 at 2:06

well, the function broadcast is executed in a process. This function must therefore be accessible to all processes. Even though the same piece of source code, in the same module, spawns a process which goes to execute a function from the same module, that function must be exported out of that module to make it accessible.

That brings me to the difference between spawn(fun() -> broadcast() end). and spawn(?MODULE, broadcast, []). The later is called Spawning with MFA. In this method, the function must be exported out of the module so that it can be executed. The former is however unique, its a fun.

To understand this method: spawn(fun() -> broadcast() end)., we need to compare it with this one: spawn(fun() -> ?MODULE:broadcast() end). . Now, lets talk about the later of the two


spawn(fun() -> ?MODULE:broadcast() end).

Now, here, if the function broadcast IS NOT exported in the module: ?MODULE, the process will crash. Note that in this case, the function is in the very module in which this piece of source code is written.
spawn(fun() -> broadcast() end).

In this case, the function must be in the very module in which this piece of source code is written. However, my thinking is this, the compiler converts this to the one above so that the spawned process is told that the function you are looking for is in module ?MODULE.

I am not really a guru at compilers or run time systems, but i guess you will use this answer. My Strong advice is that in most of your source code, use this spawn(fun() -> ?MODULE:broadcast() end). or spawn(fun() -> some_module:broadcast() end). even though the piece of code or the function resides in that same very module than this: spawn(fun() -> broadcast() end).. From my personal experience the code becomes manageable and understandable. I get this nice illusion that a spawned process has to go and find the function from the specified module, and then execute with the given arguments.

share|improve this answer

Look more carefully at the warnings:

test.erl:8: Warning: function init/1 is unused
test.erl:8: Warning: variable 'From' is unused
test.erl:11: Warning: function broadcast/0 is unused
test.erl:12: Warning: variable 'Msg' is unused

The compiler thinks that your other functions are unused and never compiles them. Try this instead:

start() ->
    spawn(fun() -> init(self()) end).

init(From) ->
    spawn(fun() -> broadcast() end).
share|improve this answer
    
What is the difference between "spawn(?MODULE, broadcast, [])" and "spawn(fun() -> broadcast() end)." ? –  why Feb 7 '12 at 10:16

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.