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I get no compiler warning from this but it segfaults. So how can I copy a '\0' at the beginning of the string so I can then use strncat ? (The use of strncpy is not allowed and using memcpy and then terminating the string segfaults also.)

I wrote this to illustrate the problem:

void func(char **str)
{
    *str = realloc(*str, -);
    *str[0] = '\0'; // I get segfault here.
    strncat(*str, -, -);

    // memcpy(*str, -, -);
    // *str[strlen(*str)] = '\0'; // I get segfault here.
}

int main(void)
{
    char *str = NULL;
    func(&str);
    return 0;
}

EDIT: I meant to write strlen(*str) and not strlen(str). Sorry.

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3  
This is a C question, not a C++ question. –  Puppy Apr 6 '11 at 10:03
2  
realloc(*str, -); doesn't look particularly legal - is there a typo? –  Jeff Foster Apr 6 '11 at 10:04
2  
I think the OP has probably just omitted irrelevant arguments - look at the strncat and memcpy calls as well. –  Chowlett Apr 6 '11 at 10:06
1  
Since you're clearly a neophyte C programmer, you don't have good judgment as to what is or is not irrelevant. Post the code you ran. –  Jim Balter Apr 6 '11 at 10:31
2  
@Jim: I'd go further - whether you're neophyte or not if you don't know what's wrong with your code then you don't have good judgement what's relevant. Reducing to a minimal test case demonstrating the problem solves the problem half the time, it's just like explaining your problem to a stuffed toy. –  Steve Jessop Apr 6 '11 at 11:16
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3 Answers

The problem with the second segfaulting line is operator precedence.

[] has higher precedence than *, so *str[strlen(*str)] is interpreted as *(str[strlen(*str)]) - that is, dereference the address pointed to by the memory at str + strlen(*str).

You want (*str)[strlen(*str)] - that is, the character at the end of of str-dereferenced.

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Jeez, don't be so wishy-washy. The problem is operator precedence and the OP does want (*str)[0] -- or **str. –  Jim Balter Apr 6 '11 at 10:09
1  
You are correct, although for *str[0] it is pretty much irrelevant since *str[0] is defined as **(str+0) == **str which is the same as (*str)[0] == *((*str)+0) == **str. But the *str[strlen(str)] is bound to segfault. –  Let_Me_Be Apr 6 '11 at 10:10
    
I'm pretty sure **str str[0][0] *str[0] and (*str)[0] would all evaluate to the same thing - the first character of the string. –  Adam Bowen Apr 6 '11 at 10:11
    
Yes, that's why I was hesitating. And in fact codepad agrees - the first indicated line does not fail. –  Chowlett Apr 6 '11 at 10:17
1  
You're right, I should have checked. However, since my answer is correct for the second segfault (and the first suspect line of code is fine if the realloc succeeds), I shall simply edit my answer to reflect what it applies to. –  Chowlett Apr 6 '11 at 10:55
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Repeating the * operator a zillion times is verbose and error-prone. Try this instead:

#include <string.h>
void func(char **ps)
{
    s = *ps;

    s = realloc(s, -);
    if( !s ) print_error_msg_and_exit();
    s[0] = '\0'; // shouldn't segfault unless the realloc failed
    strncat(s, -, -);

    memcpy(s, -, -);
    s[strlen(s)] = '\0'; // you got a segfault here because you left off a * and didn't include string.h and didn't ask the compiler to generate warnings or didn't check the warnings

    *ps = s;
}

But the odds are that your bug is somewhere in all those '-'s -- that's a very bad practice here at SO; you should post the code you actually ran.

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Segmentation faults occur when the memory being accessed by the program is invalid. It is very likely that the realloc call was not able to allocate the amount of memory being requested. It is a best practice to check whether the memory is properly allocated before proceeding to access it.

I tried this program and works well in my system.

#include <stdio.h>
#include <string.h>
#include <stdlib.h>

    void func(char **str)
    {
        *str = realloc(*str, sizeof(char) * 20);
        if( *str == NULL)
        {
            printf("Memory allocation failed\n");
            return;
        }

        *str[0] = '\0';
        strncat(*str, "hello world", 11);  
        //memcpy(*str, "hello world", 11); //memcpy also works fine
        //(*str) [strlen(*str)] = '\0';   
        printf("String : %s\n", *str);
     }
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