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This is a question from recent GATE entrance exam.
A process executes the code

fork();  
fork();  
fork();  

The total number of child processes created is

(A) 3. (B) 4. (C) 7. (D) 8.

My answer was (A) 3.

My view is that after each fork(), 1 child process will be created and execution of parent will continue normally.

Unreliable answer (without any explanation) from coaching institutes were (C) 7.

I think they are treating that each fork will create a child process and a new parent process. And they are counting all the parent process as well. [I am not allowed to post image but my friend explained in a diagram, a tree with each left node forking down in two nodes. Therefore 4 parent node in left and 3 child node in right.] But the Question clearly mentions child process only. And also I don't think that parent process is newly created in forking.

Can someone explain some forking fundamentals, and a proper solution to above question please.

P.S. If programming language make any difference in concept of forking, then as per syllabus, this should be either C or C++ program.

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3  
The child processes created by the first process go on to fork() themselves. You should count those too. –  Ismail Badawi Feb 15 '12 at 19:13
1  
No, forking is an OS concept - the programming language won't matter. –  Rup Feb 15 '12 at 19:17
2  
This shows why multi-choice questions are diabolical for demonstrating understanding. If you had to write an answer that explained how you arrived at the answer, you could get credit for understanding the concepts even if you came to a different conclusion from the 'official answer'. For example, are the children of the child processes to be counted? It changes the answer to be given. –  Jonathan Leffler Feb 15 '12 at 19:23
3  
Actually, a really good question would be: Justify each of the answers (a) 3, (b) 4, (c) 7, and (d) 8. –  Jonathan Leffler Feb 15 '12 at 23:12
    
@Rup so as an OS concept, would forking on windows and unix be different?? –  Abhinav Kulshreshtha Feb 16 '12 at 19:17

4 Answers 4

up vote 27 down vote accepted

fork() results in both the original process and one child to start from that point in the code. Therefore you have this picture:

enter image description here

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2  
Nice job on the diagram. –  Jonathan Leffler Feb 15 '12 at 23:14
    
@JonathanLeffler Hehe thanks, and nice job on your answer, after all it is more detailed! –  eznme Feb 16 '12 at 6:58
1  
@eznme"-from that point in code-" does this means that after second fork the child and parent both will continue executing from next line which is the third fork() statement? –  Abhinav Kulshreshtha Feb 16 '12 at 19:22
    
@AbhinavKulshreshtha hmm, think of it this way: fork(); fork(); fork(); there is one process in the beginning, there are 2 processes executing the first semicolon, there are 4 processes executing the second semicolon, there are 8 processes executing the third semicolon. (then subtract 1 because you only want child-processes) –  eznme Feb 16 '12 at 19:26

I think there are 8 processes in total, or 7 descendents of the original, or 3 direct children of the original (the others are grand-children and great-grand-children).

  • After the first fork(), assuming no failures (throughout), there are two processes.
  • Each of those executes fork() again - so there are now four processes.
  • Each of those executes fork() again - so there are now eight processes.
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Official answer key from iit came out few days ago. The Correct answer is 7. unfortunately, they didn't gave complete solution set, just answers. –  Abhinav Kulshreshtha Mar 22 '12 at 19:36

Try this:

printf("initial pid: %d\n", (int)getpid());
fork();
fork();
fork();
printf("final pid: %d\n", (int)getpid());
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i got linker error for _getpid and _fork. This is the code i used #include <stdio.h> #include <conio.h> void main() { printf("Initial pid: %d\n", (int)getpid()); fork(); fork(); fork(); getch(); } –  Abhinav Kulshreshtha Feb 16 '12 at 19:43
    
i am using turbo c++ 3.1 under dosbox emulation, in windows 7 –  Abhinav Kulshreshtha Feb 16 '12 at 19:47
2  
Neither DOS nor Windows have fork(). You cannot try that snippet in those Operating Systems. I have no idea how to do the same in DOS; you can try CreateProcess() in Windows (which is not exactly like fork()). –  pmg Feb 16 '12 at 19:55
    
No, DOS can only run one process at once so it has no equivalent. If you want to try this your best bet is probably to get VMware player or similar and set up a Linux VM, or find a unix machine somewhere on the internet that you can get a shell account on. –  Rup Feb 16 '12 at 23:39
    
Or buy a Raspberry Pi for €40. it's a complete Linux machine with a 700MHz ARM SoC. Completely enough to test this kind of things. –  tristopia Feb 28 '13 at 8:17

After each call to fork there are two processes, the parent and the child. And both of those processes continue executing immediately after the fork. Some of the resulting processes are (after all of the forking) both parents and children. The ones that are only children are the leaves of the process tree. The one (the original one) that is only a parent is the root of the tree. The ones that are both parents and children are the branches.

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so in the diagram above, children are the 8 leaves at the bottom, and root node is the parent. the answer should be 8. –  Abhinav Kulshreshtha Feb 16 '12 at 19:50
2  
@AbhinavKulshreshtha: In the diagram above the leftmost vertical line is the original process and is not a child created by any of the fork() in the example. It is a child of some other process but I would not have counted it as created by fork(); fork(); fork() –  Ben Jackson Feb 16 '12 at 21:34
    
Official answer came out to be 7. They did not provide full solution but on this page, yours explanation along with @eznme diagram is the simplest. thanks –  Abhinav Kulshreshtha Mar 22 '12 at 19:41

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