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why the first execlp doesn't work and the second one its ok.

int main(){
   int fd[2];
   int i;
   char** arguments = (char**) malloc(5*sizeof(char*));
   char *line = (char*) malloc(15*sizeof(char));
   char *cfile = (char*) malloc(15*sizeof(char));
   char* token;
   size_t bufsize = 0; 

   for(i = 0;i < 5; i++){
      arguments[i] = (char*) malloc(15*sizeof(char));
   }

   getline(&line, &bufsize, stdin);

   i = 0;
   token = strtok(line,TOK_DELIM);
   while( token != NULL ){
      (arguments)[i] = token;
      strcat((arguments)[i++],"\0");
      token = strtok(NULL,TOK_DELIM_1);
   }

   if( !fork() ){
       execlp((arguments)[1],"show",(arguments)[0],NULL);
       close(fd[0]); close(fd[1]);
   }
   close(fd[0]); close(fd[1]);
   waitpid(0,NULL,0);
   if( !fork() ){
      printf("Executable c file:");
      scanf("%s",cfile);
      execlp(cfile,"show",(arguments)[0],NULL);
      close(fd[0]); close(fd[1]);
   }
   close(fd[0]); close(fd[1]);
   waitpid(0,NULL,0);
   return 0;
}

As you can see now cfile and arguments are both vuriables(dynamic char array). To run this main you have to gcc the show file writing gcc -o show show.c Then when you run the main you have to type (pwd | ./show) pwd is the command that i want to execute and ./show the executable file that i want to use to print the output of pwd.I save what the user types on line and then i parse the arguments on a 2d dynamic array.On the first cell of arguments(dynamic 2d array) i save the command that i want to execute and at the second one the executable file that i want to run.

This is the show file that i want to use:

int main(int argc, char *argv[]){
char *arg[4];
    printf("Execute commands from other file ...\n");
    arg[0] = "sh";
    arg[1] = "-c";
    arg[2] = argv[1];
    arg[3] = NULL;
    execvp ("/bin/sh", arg);
return 0;

}

And you must compile it with the same name as the executable file that you are gonna give on the main programm,for example if you gonna type :pwd | ./show on main you must compile the show file like this : gcc -o show show.c

Also im using those libs :

  • stdlib
  • stdio
  • unistd
  • string
  • sys/types
  • errno
  • sys/stat
  • fcntl
  • sys/wait
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  • 1
    execlp() does not require any of its arguments to be string literals. It is not clear why your particular use is not working as you expect, and in order for us to help, we need you to provide a minimal reproducible example that demonstrates the problem. – John Bollinger Nov 22 '18 at 17:51
  • all i want to make is to give the executable file to execlp from user and not from coder,so user can be albe to execute other c files – Σωτηρης Ιωαννιδης Nov 22 '18 at 18:29
  • What's in (*arguments)[1] ? You need to prove to yourself that what you think is happening is actually happening - so e.g. do printf("(*arguments)[1] = '%s'\n", (*arguments)[1]); before your execlp() call, so you can see what's in that variable. Also, if execl() fails, you can, on the very next line after execlp(), call perror("execlp failed"); and perror will print out why it failed. – nos Nov 22 '18 at 19:03
  • Please turn your puzzle of code fragments into a minimal reproducible example. – Yunnosch Nov 22 '18 at 19:18
  • @ΣωτηρηςΙωαννιδης, the problem is not that we fail to understand what you are trying to achieve, it is that we don't understand how you are trying to achieve it. As I said already, execlp() does not require any of its arguments to be string literals. To expand on that, it cannot tell whether the pointers in its argument list point to user-provided data. It does not attempt to make any such distinction. – John Bollinger Nov 22 '18 at 20:02

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