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I have used this line of code many times (update: when string was a parameter to the function!), however when I try to do it now I get a bus error (both with gcc and clang). I am reproducing the simplest possible code;

char *string = "this is a string";
char *p = string;
p++;
*p='x'; //this line will cause the Bus error
printf("string is %s\n",string);

Why am I unable to change the second character of the string using the p pointer?

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1  
gcc has the option -Wwrite-strings that will warn you about changing literal strings by making them const char[]. Be aware that the Standard says literal strings are char [] ("read only char []" in fact, but not const) and making them const makes your compiler (more) non-conformant. –  pmg Nov 9 '10 at 0:00

1 Answer 1

up vote 8 down vote accepted

You are trying to modify read only memory (where that string literal is stored). You can use a char array instead if you need to modify that memory.

char str[] = "This is a string";
str[0] = 'S'; /* works */

I have used this line of code many times..

I sure hope not. At best you would get a segfault (I say "at best" because attempting to modify readonly memory is unspecified behavior, in which case anything can happen, and a crash is the best thing that can happen).

When you declare a pointer to a string literal it points to read only memory in the data segment (look at the assembly output if you like). Declaring your type as a char[] will copy that literal onto the function's stack, which will in turn allow it to be modified if needed.

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+1. Attempting to modify a string literal is undefined behaviour. It might appear to work but of course, it isn't guaranteed to. –  dreamlax Nov 9 '10 at 0:01
    
"At best you would get a segfault" - actually, that bit's not quite true. Undefined behaviour is undefined and sometime that means it works as expected :-) There are plenty of embedded chips with no memory protection. Not saying your answer is wrong since the question is tagged linux (so +1 for that), just that one particular point isn't necessarily true in all cases. –  paxdiablo Nov 9 '10 at 0:02
    
@paxdiablo: Hence the "At best" part =) –  Ed S. Nov 9 '10 at 0:04
    
i.e., you'd be lucky to get a seg fault. –  Ed S. Nov 9 '10 at 0:04
    
Cleared that up a bit. –  Ed S. Nov 9 '10 at 0:05

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