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This program prints 2^3 times hi and exits Isn't it that fork call calls main function recursively?

#include <stdio.h>
#include <stdlib.h>
#include <string.h>

int main(int argc, char *argv[])
{
    fork();
    fork();
    fork();

    puts("hi");

    return 0;
}
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migrated from superuser.com Nov 29 '12 at 22:22

This question came from our site for computer enthusiasts and power users.

It's not recursive and it doesn't keep forking indefinitely. That's why it doesn't fork bomb. Fork doesn't cause main to be called. What fork does is create a copy of the current process state and return 0 from the fork call to the child copy and the process id to the parent.

Walking through your program, it creates exactly 7 copies of the original, making for a total of 8 calls to puts("hi").

original   copy 1    copy 2    copy 3    copy 4    copy 5    copy 6    copy 7 
fork 1 --> created
fork 2 ------------> created
fork 3 ----------------------> created
"hi"                           "hi"
            fork 2 --------------------> created
            fork 3 ------------------------------> created
            "hi"                                   "hi"
                     fork 3 -------------------------------> created
                     "hi"                                    "hi"
                                         fork 3 ----------------------> created
                                         "hi"                           "hi"
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You answered it yourself. fork() does not call main(). One process calls fork() but two processes return (well, we're assuming no error)

So, fork()-1 is called, and returns twice (one in parent, one in child). They both move to the next statement.

Then fork()-2 is called twice (one in parent, one in child) and both calls return twice, again, one in parent(s) one in child(ren).

Then fork()-3 is called, this time 4 times, and 8 returns. They all print, and you get all the 'hihihihihihihihi' sent to your screen.

Please look at the man page for fork.

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