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What causes the output "Hello" when I enable -O for gcc ? Shouldn't it still segfault (according to this wiki) ?

% cat segv.c 
#include <stdio.h>
int main()
{
    char * s = "Hello";
    s[0] = 'Y';
    puts(s);
    return 0;
}
% gcc segv.c && ./a.out 
zsh: segmentation fault  ./a.out
% gcc -O segv.c && ./a.out 
Hello
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it says on platforms with memory protection. What platform are you on? –  hroptatyr Oct 13 '11 at 19:09
3  
Accept one of the answers explaining that this is "Undefined Behavior", which gives the compiler license to emit anything whatsoever for the entire program. But to answer your question, "Hello" is a const char *, which means its contents cannot be changed, so the optimizer is simply throwing away your attempt to modify it. (This is a perfectly valid optimization, since the modification attempt itself invokes Undefined Behavior.) –  Nemo Oct 13 '11 at 19:15
    
No C string literals are not const; if they were, the assignment would be a constraint violation. (They are const in C++.) But yes, attempting to modify a string literal is undefined behavior. –  Keith Thompson Oct 13 '11 at 19:37
    
@Keith: Thanks for the correction. I have been using C++ for the last few years so I forgot this detail. –  Nemo Oct 13 '11 at 20:46
    
@hroptatyr I'm on amd64 linux! –  vh4x0r Oct 14 '11 at 5:41

1 Answer 1

up vote 12 down vote accepted

It's undefined behavior (might crash, might not do anything, etc) to change string literals. Well explained in a C FAQ.

6.4.5/6

It is unspecified whether these arrays are distinct provided their elements have the appropriate values. If the program attempts to modify such an array,the behavior is undefined.

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