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I'm writing a minishell, and everything has been working fine, however I recently added command expansion. The way I do it is by calling

void processline (char *line, int outFD, int waitFlag)

from main and pass it the command line input string for *line, 1(which is stdout) for outFD, and 1 for waitFlag. I then call expand() on the line. Lets say that the original line is:

echo a $(echo b c)

Well expand will detect the embedded command, and then recursively call processline again, however this time with values, "echo b c", pipeFD[1], and 0 respectively. The reason I tell it to not wait is because my teacher insisted on it, because apparently it is the only way to process massively nested commands(up to 200,000 characters) without taking forever. However, when I tell it not to wait on the child(which does execvp on "echo"), it returns to the while loop in main and prints the prompt. This is printing before the child outputs anything, so it ends up doing this:

% echo a $(echo b c)
% a b c
/* IT ASKS FOR INPUT HERE */

As you can see the prompt '% ' is printed before the child's output. How do I prevent this?

If you guys want to take a look at my code, here it is:

msh.c - http://pastebin.com/bfdLYdAw expand.c(goto lines 266 and down for relevant part) - http://pastebin.com/BwQrqpLi

If you guys want me to post some more code just ask, thanks a lot.

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The first echo cannot be run until the second echo (inside the $(...) notation) has completed. You can detect its completion by EOF on a pipe, or by wait() or one of its variants, or both. –  Jonathan Leffler Nov 20 '12 at 6:55
    
I ended up figuring it out. I needed to wait in the expand() function right after I read the childs output to the pipe. Thanks for the help :) –  Optimus_Pwn Nov 20 '12 at 7:50

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