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Below code is saved as abc.c on linux. It's execl() is not working in the code below. Could anybody please explain why?

#include<stdio.h>
#include<unistd.h>
#include<sys/time.h>
int main()
{
   int r;
   char ch;
   printf("Enter any character");
   scanf(" %c",&ch);
   printf("%c",ch);
   r=execl("abc",NULL);
   printf("r = %d",r);
   return 0;
}

r = -1 coming as output. Please explain

Thanks :)

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Change to execl("./abc", (char*)NULL); and check errno to determine the reason for failure. –  hmjd Mar 18 at 15:51
    
I tried ./abc , even this is not working. NULL is needed to be typecasted?? I haven't done so in other programs ever. Ok I will check for the error no. Thanks –  user3433848 Mar 18 at 15:57
    
From execl: The list of arguments must be terminated by a NULL pointer, and, since these are variadic functions, this pointer must be cast (char *) NULL. –  hmjd Mar 18 at 15:59

1 Answer 1

A few things to note:

  1. When you're calling a function like this that returns an error, examine errno to see what it was (e.g. printf("r = %d errno = %d",r,errno);

  2. The most likely cause is that execl cannot find the program abc -- it doesn't look on the path, and probably doesn't look in the current directory. In the first instance, try using the full path (e.g. execl( "/usr/me/abc", NULL );

  3. It probably won't stop it working, but it's traditional to pass the name of the program as the first argument (so, execl( "/usr/me/abc", "/usr/me/abc", NULL );

  4. If you do get execl to work, it won't return to your code to tell you that it did so.

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