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When I run this program I get segmentation fault, and I could not find it's origin. I don't know how to deal with it. Could you help me?

This is my code.

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

    static int func(int argc, char * argv[])
    {
      char msg[500]="sdfsdf";

      argv[0]="sdf grgrg";

      printf("%s",argv[0]);

      argv[0]='\0';

      strcpy(argv[0],msg);

      printf("%s",argv[0]);

      return 0;
    }

    int main(int argc, char* argv[])
    {
      func(argc, argv);
      //printf("sdfasf");
    }
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migrated from superuser.com Apr 10 at 18:20

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2 Answers 2

Let's focus on these lines.

argv[0]='\0';
strcpy(argv[0],msg);

It's irrelevant that this is argv[0], so I'll introduce a variable:

char *var = '\0';
strcpy(var, msg);

Then, recall that '\0' is an integer literal with value zero, so when it is assigned to a pointer variable it becomes a null pointer:

char *var = NULL;
strcpy(var, msg);

We can inline the variable:

strcpy(NULL, msg);

Whoops! Don't do that. That will crash, or worse--it might not crash.

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Actually that's wrong, because argv[0]='\0' does assign '\0' to the place argv points to while char *var='\0' creates a char pointer which points to NULL.. So strcpy(NULL,msg) is not the same as strcpy(argv[0],msg) (BTW strcpy needs char pointers and not argv[0] which is a single char) Or am I totally wrong here? :D –  Uroc327 Apr 10 at 18:31
    
@Uroc327: Yes, you are totally wrong here (since you asked...). Remember that argv has type char **, not char *, so argv[0] has type char *. –  Dietrich Epp Apr 10 at 18:56
    
Oh right! Thank You! :D Gonna remove the downvote –  Uroc327 Apr 10 at 19:13

You can't do this: argv[0]="sdf grgrg";. Instead, try

strcpy(argv[0],"sdf grgrg");
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You mean is Do I have to change line 6. argv[0]="sdf grgrg"; to strcpy(argv[0],"sdf grgrg")? –  user3503130 Apr 9 at 1:25
    
yes, I think so. –  Gutierrez PS Apr 9 at 15:21
    
This is still dangerous. You can't know how much space is allocated at argv[0] and might start writing into memory that you don't own, still causing a segmentation fault. –  turbulencetoo Apr 10 at 18:23
    
This is not a good answer. The assignment is perfectly legal. The strcpy is not safe if argv[0] isn't big enough to contain the desired string. –  Andrew Medico Apr 10 at 18:24

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