5

When I try to run the following code I get a seg fault. I've tried running it through gdb, and I understand that the error is occurring as part of calling printf, but I'm lost as to why exactly it isn't working.

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

int main() {
  char c[5] = "Test";
  char *type = NULL;

  type = &c[0];
  printf("%s\n", *type);
}

If I replace printf("%s\n", *type); with printf("%s\n", c); I get "Test" printed as I expected. Why doesn't it work with a pointer to the char array?

  • 2
    I just would like to nitpick: "C" did not crash because C is not a program. Your compiler did not crash. You used C to write a program that crashes. – David Grayson Feb 21 '12 at 19:04
  • 1
    You are correct David. I know what I meant to say, and so do you, obviously, but it is important to be precise when discussing these sorts of things. – WhiteHotLoveTiger Feb 21 '12 at 19:29
  • Change your %s to %c to see the c[0] – wulfgarpro Jun 21 '16 at 22:44
15

You're passing a plain char and printf is trying to dereference it. Try this instead:

printf("%s\n", type);
              ^ 

If you pass *type it's like telling printf "I've got a string at location T".

Also type = &c[0] is kind of misleading. Why don't you just:

type = c;
  • Thanks for the clear explanation. Just when I thought I was getting the hang of pointers, I realize that I need to review them a little more. – WhiteHotLoveTiger Feb 21 '12 at 19:26
5

Don't dereference type. It must remain a pointer.

4

Remove the dereferencing of type in your printf.

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