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I am confused about it. I have read that when a child is created by a parent process, child gets a copy of its parent's address space. What it means here by copy? If i use code below, then it prints same addresses of variable 'a' which is on heap in all cases. i.e in case of child and parent. So what is happening here?

int main () { pid_t pid; int *a = (int *)malloc(4); printf ("heap pointer %p\n", a); pid = fork(); if (pid < 0) { fprintf (stderr, "Fork Failed"); exit(-1); } else if (pid == 0) { printf ("Child\n"); printf ("in child heap pointer %p\n", a); } else {

wait (NULL); printf ("Child Complete\n"); printf ("in parent heap pointer %p\n", a); exit(0); }

}

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Note that in both parent and child you do NOT print the address of variable a. You print the value of the variable a, (which is of type pointer). –  Didier Trosset Jan 4 '11 at 13:55
    
yes thats true. thank you :) –  abbas1707 Jan 4 '11 at 14:04
    
Did you see an answer you liked? –  Robert S. Barnes Jan 9 '11 at 19:18

4 Answers 4

up vote 7 down vote accepted

The child gets an exact copy of the parents address space, which in many cases is likely to be laid out in the same format as the parent address space. I have to point out that each one will have it's own virtual address space for it's memory, such that each could have the same data at the same address, yet in different address spaces. Also, linux uses copy on write when creating child processes. This means that the parent and child will share the parent address space until one of them does a write, at which point the memory will be physically copied to the child. This eliminates unneeded copies when execing a new process. Since you're just going to overwrite the memory with a new executable, why bother copying it?

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+1 For Nice answer and for Guts Avatar. –  GeorgeAl Jan 4 '11 at 13:59

A copy means exactly that, a bit-identical copy of the virtual address space. For all intents and purposes, the two copies are indistinguishable, until you start writing to one (the changes are not visible in the other copy).

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Downvoter: why, please? –  Oliver Charlesworth Jan 4 '11 at 16:26

You get two heaps, and since the memory addresses are translated to different parts of physical memory, both of them have the same virtual memory address.

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With fork() the child process receives a new address space where all the contents of the parent address space are copied (actually, modern kernels use copy-on-write).

This means that if you modify a or the value pointed by it in a process, the other process still sees the old value.

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