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Working of fork() in linux gcc
Why does this code print two times?

I want to know the reason behind the output of the below code:

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

int main()
{
   FILE *fp;
   int n;
   printf("%d",45);
   //fflush(stdout);
   if((n=fork())>0){
      printf("in parent\n");  
      exit(0);
   }
   else if(n==0)
       printf("%d",45);
}

Output is

45inparent
4545

If I use fflush, then output is

45inparent
45

Also, I am running on the linux platform

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marked as duplicate by hmjd, Blue Moon, interjay, H2CO3, Evan Mulawski Jul 5 '12 at 15:47

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
A similar post which explains more about the fork call:theunixshell.blogspot.in/2013/07/… –  Vijay Apr 22 '14 at 10:20

2 Answers 2

The first printf() writes the string 45 in a memory buffer.

During the fork() call, the buffer is virtually duplicated in the child process, so both the parent and the child have 45 in stdout`s buffer.

Flushing that buffer in both processes will write 45 twice.

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The child process inherits the open file descriptors (stdout in this case) and the buffer associated with it.

  • If you don't flush the buffer before the fork, then the content of the buffer is duplicated (including "45"), and "45" is printed twice.
  • If you flush before the fork, the buffer is emptied and the child gets an empty copy of the buffer, therefore "45" is printed only once by the parent.
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