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I am trying to do something really basic on C but I keep getting a segmentation fault. All I want to do is replace a letter of a word with a different letter- in this example replace the l with a L. Can anyone help explain where I have gone wrong? It should be a really basic problem I think, I just have no idea why its not working.

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

int main(int argc, char *argv[])
{
    char *string1;

    string1 = "hello";
    printf("string1 %s\n", string1);    

    printf("string1[2] %c\n", string1[2]);
    string1[2] = 'L';
    printf("string1 %s\n", string1);

    return 0;
}

For my output I get

string1 hello
string1[2] l
Segmentation fault

Thanks!

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marked as duplicate by CSᵠ, Cole Johnson, Peter Ritchie, Trott, Vishal Apr 16 '13 at 3:24

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
String1 is a pointer to read-only memory (in most systems) as it is a constant initializer. You can't write to that string without copying it first. –  gaige Apr 16 '13 at 1:45
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4 Answers

up vote 6 down vote accepted
string1 = "hello";
string1[2] = 'L';

You can't change string literals, it's undefined behavior. Try this:

char string1[] = "hello";

Or maybe:

char *string1;
string1 = malloc(6); /* hello + 0-terminator */
strcpy(string1, "hello");

/* Stuff. */

free(string1);
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Ok- thank you! I'll give this a go. –  user1163974 Feb 5 '12 at 12:51
    
Nothing big but you can use strdup("hello") instead of a call to malloc and strcpy. strdup do this for you, it's more convenient to use –  Zoneur Feb 5 '12 at 13:32
    
@Zoneur Yup, I often recommend strdup but it's sometimes problematic because it's not standard. –  cnicutar Feb 5 '12 at 13:33
    
@cnicutar I didn't know about this, thanks :) –  Zoneur Feb 5 '12 at 13:41
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char *string1;
string1 = "hello";

string1 points to a string literal and string literals are non-modifiable.

What you can do is initialize an array with the elements of a string literal.

char string1[] =  "hello";

the elements of string1 array are modifiable.

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 string1[2] = 'L';

you are trying to change a string literal which is undefined behavior in C. Instead use string1[]="hello"; Segmentation fault you get is because the literal is probably stored in the the read only section of the memory and trying to write to it produces undefined behavior.

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char *string1 = "hello";

When running the code, the string literal will be in a section that is read-only. OS does not allow the code to change that block of memory, so you get a seg-fault.

char string1[] = "hello";

The string literal will be pushed onto the stack when you run the code.

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