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#include <stdio.h>

void main(){
    char *str[]={"aa","bb"};
    str[0][0]='h';
}

I receive a segmentation fault when executing this code. Does anyone know the reason?

Thanks in advance.

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1  
possible duplicate of Segmentation Fault With Char Array and Pointer in C on Linux –  Timbo Apr 17 '12 at 15:49

2 Answers 2

up vote 4 down vote accepted

You are assigning to a location occupied by a string constant, an undefined behavior. If you know the max lengths of your strings, you can do this:

char ss[][3] = {"aa", "bb"};

It's not a precise equivalent, but it should work. If you do not know max length, or do not want to waste a few bytes here and there, you can still pull it off with a little more work:

char aa[] = "aa";
char bbbb[] = "bbbb";
char *ss[] = {aa, bbbb};
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You are attempting to update a literal constant, which is not allowed. It would result in undefined behavior.

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It is not required to work by ISO C, and not allowed by this compiler/environment (at least by default: there may be a way to request it to work). GCC used to allow this with -fwritable-strings support for which has been removed. –  Kaz Apr 17 '12 at 16:24

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