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UPDATE: There was an obvious debugging step I forget. What happens if I try a command like ps & in the regular old bash shell? The answer is that I see the same behavior. For example:

[ahoffer@uw1-320-21 ~/program1]$ ps &
[1] 30166
[ahoffer@uw1-320-21 ~/program1]$   PID TTY          TIME CMD
26423 pts/0    00:00:00 bash
30166 pts/0    00:00:00 ps
<no prompt!>

If I then press Enter, the command shell reports the exit status and the console displays the exit status and the prompt:

[ahoffer@uw1-320-21 ~/program1]$ ps&
[1] 30166
[ahoffer@uw1-320-21 ~/program1]$   PID TTY          TIME CMD
26423 pts/0    00:00:00 bash
30166 pts/0    00:00:00 ps

[1]    Done                          ps
[ahoffer@uw1-320-21 ~/program1]$

PS: I am using PuttY to access the Linux machine via SSH on port 22.


ORIGINAL QUESTION: I am working on a homework assignment. The task is to implement part of a command shell interpreter on Linux using functions like fork(), exec(). I have a strange bug that occurs when my code executes a command as a background process.

For example, in the code below, the command ls correctly executes ls and prints its output to the console. When the command is finished, the The event loop in the calling code correctly prints the prompt, "% ", to the console.

However, when ls & is executed, ls executes correctly and its output is printed to the console. However, the prompt, " %", is never printed!

The code is simple. Here is what the pseudo code looks like:

int child_pid;

if ( (child_pid=fork()) == 0 )  {

   //child process
   ...execute the command...
}

else {

    //Parent process
    if( delim == ';' )    

        waidpid(child_pid);
}

//end of function.

The parent process blocks if the delimiter is a semicolon. Otherwise the function ends and the code re-enters the event loop. However, if the parent sleeps while the the background command executes, the prompt appears correctly:

...

//Parent process
        if( delim == ';' ) {

        waidpid(child_pid)
   }

    else if( delim == '&' ) {

        sleep(1); 
        //The prompt, " %", is correctly printed to the
        // console when the parent wakes up.
    }

No one in class knows why this happens. The OS is RedHat Enterprise 5 and the compiler is g++.

share|improve this question
    
You should show your real code, not pseudo code. And I strongly suggest studying what simple existing shells -e.g. sash- do (by reading their source code). I don't understand the details of your question (and why the sleep(1) in your code)? –  Basile Starynkevitch Jan 15 '12 at 7:50
    
You can also use strace (or also ltrace) on simple existing shells to understand the system calls they are doing. Maybe your question is related to process groups and controlling terminals. –  Basile Starynkevitch Jan 15 '12 at 7:51
    
Instead of a quickly running command like ls try some command lasting more time, like sleep 2 (or write your own C test program running for more than a second). –  Basile Starynkevitch Jan 15 '12 at 7:54
1  
Are you certain the prompt is not simply being printed before the output of ls? –  William Pursell Jan 15 '12 at 13:57
    
I'll look into strace and ltrace. I tried them briefly in the bash shell for "ls" they produced pages of information. If I had another week or two I would look through the source code, but the professor made clear to me he doesn't want me to burn much more time on the assignment-- he wants me to move on to POSIX threads and then Java threads. So thanks for the input. Given the time and need, I would dig into open source code and the trace commands. –  ahoffer Jan 15 '12 at 18:50

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