0

I have a comprension question about this code that I am currently studying: this function is used in a C Shell implementation to execute piped commands. I can't understand how the person who wrote it got to know how many pipes to close (why is the limit 2*com- 2)?

        for(i = 0; i < 2*com - 2; i++) close(pip[i]);
        for(i = 0; i < com; ++i) {
                waitpid(pid, &status, WUNTRACED);
Improve this question
2
  • 1
    The number of pairs is one less than the commands because that's all that is needed. Consider two commands. How many pipe sets to you setup between them? Ans: one. What about three commands? Ans: two (one set between the first and second command, another between the second and third. – WhozCraig Jan 31 '20 at 9:54
  • @Anna : Why is this question tagged by shell? – user1934428 Jan 31 '20 at 11:12
2

In this program, num_pipe is not actually the number of pipes but the number of commands (very bad name indeed!).
Between two commands you need one pipe, between three commands you need two pipes ... between N commands you need N-1 pipes.
Each pipe relies on two file descriptors (one for reading, one for writing) thus 2*(num_pipe-1) file descriptors are needed for num_pipe commands.
note: the malloc() does not allocate an array of integer pointers (as stated in the question) but an array of integers.

Following this logic, I would have written for(i = 0; i < 2*(num_pipe-1); i += 2) but 2*(num_pipe-1) equals to 2*num_pipe-2 and since the step is 2, the loop condition is the same with the limit 2*num_pipe-3.
It's just terribly confusing in my opinion.

Improve this answer

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