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I'm trying to create ls command. First, the code is not working if I enter "ls", it's working only when I enter the full path. Second, it's not looping after the exevcp(). why? Thanks.

#include<stdio.h>
#include<stdlib.h>
#include<string.h> 
#include<unistd.h>

int main(void){

 char *line;
 char *args[32]; 

 memset(args, 0, sizeof(args)); 
 while (1){
   line = (char*)malloc(1024); 
   printf("$ "); 
   fgets(line,1024,stdin); 
   args[0] = strtok(line, " "); 
   args[1] = strtok(NULL, " ");  

   execvp(args[0], args);
   perror("execvp");  
  }  
 } 
share|improve this question
1  
it's not looping after the exevcp(). why? - The exec() family of functions replaces the current process image with a new process image. Therefore, after execvp(), your initial process no longer exists. – Andreas Fester Apr 16 '14 at 7:24
up vote 1 down vote accepted

It's not looping since execve() never returns. Also, this seems to be a very strange way to implement ls: you should try to open a directory and read its contents (the list of files), not run another command, I would expect.

Look into the opendir() and readdir() functions, that's one way of actually implementing ls.

And, also, please don't cast the return value of malloc() in C.

share|improve this answer

It's not looping because (to quote the man page):

The exec family of functions replaces the current process image with a new process image.

In other words, execvp() only returns if there's been an error.

While we're on the subject, you might want to read up on fork-exec.

I am not sure about the path issue; execvp() is certainly supposed to search $PATH (and does when I test your code on my computer, so ls and /bin/ls work equally well).

One thing to bear in mind is that fgets() returns the terminating newline, which ends up in your args array. If, for example, you enter ls with no arguments and press enter, args[0] will be set to ls\n', and execvp() will fail.

Oh, and you have a memory leak since you never free line.

share|improve this answer
    
Exactly - args[0] will point to "ls\n" - thats the reason for the first part of the question (for me, it does not even work with the full path - not sure why it should for OP) – Andreas Fester Apr 16 '14 at 7:31
    
@Andreas: Thanks. I've interpreted "full path" to mean /bin/ls as opposed to just ls. However, it could be that the OP is talking about something else (e.g. the argument to ls). – NPE Apr 16 '14 at 7:37
    
Right, in that case it would find ls since it would not contain the final \n - but would then fail to find the path argument, since it would end with \n ;) (like /tmp\n) – Andreas Fester Apr 16 '14 at 7:39
    
O.k, how i fix it? how it's not point to "ls\n"? – tokenaizer Apr 16 '14 at 7:52
    
It is working if you type a path just because the \n will end up in the args and execvp will not fail. If you type ls without args[1], the \n will end up in args[0]. – urzeit Apr 17 '14 at 5:50

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