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Possible Duplicate:
Why does char* cause undefined behaviour while char[] doesn’t?

Please have a look at the code below

int main (int argc, char* argv[])
{   
    char* s = "Hello world!";
    s[0] = 'X';
    return 0;
}

where do the seg fault come from in this code?

Update: On the contrary the code below does not give seg fault, why?

int main (int argc, char* argv[])
{   
    char s[] = "Hello world!";
    s[0] = 'X';
    return 0;
}
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marked as duplicate by Daniel Fischer, loganfsmyth, Jonathan Leffler, melpomene, WhozCraig Dec 24 '12 at 3:08

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.

2  
See the duplicate. In short, char *s = "Hello World!"; lets s point to (the first character of) a string literal, and attempting to modify a string literal is undefined behaviour, often a crash because they are stored in read-only memory. char s[] = "Hello World!"; creates a writable char[13]. –  Daniel Fischer Dec 24 '12 at 2:49
    
Can we have a separate tag for this particular dupe? char *variable ="string"; variable[0]='ch';? ;) –  anishsane Dec 24 '12 at 6:39

1 Answer 1

"Hello world!" is a static string, you can not change it.

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please see my update in question and kindly update the answer, thank you! –  daNullSet Dec 24 '12 at 2:47

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