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I'm trying to pass in a memory reference to a character in a string and edit it in a function using C. The code is below:

void EditChar(char *input) {
printf("# %s #",*input);
*input = *input << 1
    }

int main() {
char *string ="aaaa";
EditChar(&string[2]);
printf("%s",string);
}

I can print the character inside the function fine which I presume must mean it's following the pointer so why am I unable to edit the pointer location of that character, any ideas?

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2  
Probably because when you write a string literal like "aaaa", those four letters are put in a read-only data segment in the computer's memory. They are const, you can't change them. –  librik Dec 9 '12 at 2:35
    
Your code shouldn't be compiling (certainly not without warnings) because you don't pass a bit to EditChar(). You also don't use the variable, but two wrongs don't really make a right. –  Jonathan Leffler Dec 9 '12 at 2:37
1  
Replace "aaaa" with strdup("aaaa"). That gives you a copy (a duplicate) of the string. The copy is not in read-only memory. (It uses malloc to get some memory you can change, then copies the old string into that memory. If you're using this seriously in a program, remember to free that memory when you're finished using it.) –  librik Dec 9 '12 at 2:47
4  
Or use: char string[] = "aaaa"; –  Jonathan Leffler Dec 9 '12 at 2:47
1  
I like Jonathan's solution better than mine (it's simpler), so I'll let him write the answer and collect the karma. –  librik Dec 9 '12 at 2:54

1 Answer 1

up vote 0 down vote accepted

The lack of a ; on line 3 is going to cause problems to start with.

You're passing a character instead of a character pointer on line 2.

And on my mac, once you fix those problems, you get a bus error on line 3 because you're trying to change read-only memory.

char *string =strdup("aaaa");

and now it works.

Also, as stated in question comments, instead of strdup, you may want to use

char string[] = "aaaa";

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