16

In C, I am trying to set a pointer's value by sending it to a function, but the value wont change outside of the function. Here is my code:

#include <stdio.h>
void foo(char* str) {

    char* new_str = malloc(100);
    memset(new_str, 0, 100);
    strcpy(new_str, (char*)"new test");

    str = new_str;
}


int main (int argc, char *argv[]) {

    char* str = malloc(100);
    memset(str, 0, 100);

    strcpy(str, (char*)"test");

    foo(str);

    printf("str = %s\n", str);
}  

I want to print out:

str = new test 

but this code prints out:

str = test

Any help will be appreciated. Thanks in advance.

4 Answers 4

29

There is no pass-by-reference in C. If you provide str as the argument to a function in C, you are always passing the current value of str, never str itself.

You could pass a pointer to str into the function:

void foo(char** pstr) {
    // ...
    *pstr = new_str;
}

int main() {
    // ...
    foo(&str);
}

As Eiko says, your example code leaks the first memory allocation. You're no longer using it, and you no longer have a pointer to it, so you can't free it. This is bad.

9
  • "There is no pass-by-reference in C" - Isn't arrays passed by reference?
    – naivnomore
    Aug 19, 2010 at 21:51
  • @naivnomore Basically you pass a pointer which is (at least syntactically) different to passing references in C++.
    – Eiko
    Aug 19, 2010 at 21:56
  • 1
    No, they're not. Arrays decay to pointers when passed as parameters, but that's still not a pass-by-reference because changing the value of the pointer argument itself will not affect the array. Aug 19, 2010 at 21:56
  • 1
    @naivnomore: Well, they're passed as a pointer to the first element. Pass-by-pointer serves pretty much all the practical purposes of pass-by-reference, but it's not the same thing. C has the syntactic quirk that you can declare a function parameter char[]. That's synonymous with char*, but combined with array-to-pointer decay it looks like a pass-by-reference in inadequate light. The way to tell the difference is to use sizeof on the parameter inside the function, or assign to it. True pass-by-reference would maintain the type, as when you pass an array reference in C++. Aug 19, 2010 at 21:57
  • It is true, though, that arrays aren't passed by value in C either, perhaps leading to the thought that by a process of elimination, they must be passed by reference. In fact they can't be passed as parameters at all, just pointers to them. It's technically incorrect (although commonly done, and normally understood) to refer to "passing an array" in C, or for that matter "passing a string". Aug 19, 2010 at 22:00
4

You need to use pointer to the pointer, untested:

#include <stdio.h>

void foo(char** str)
{
    char* new_str = malloc(100);
    memset(new_str, 0, 100);
    strcpy(new_str, (char*)"new test");
    if (str) { /* if pointer to pointer is valid then */
        if (*str)   /* if there is a previous string, free it */
            free(*str);
        *str = new_str;  /* return the string */
    }
}


int main (int argc, char *argv[])
{
    char* str = malloc(100);
    memset(str, 0, 100);

    strcpy(str, (char*)"test");

    foo(&str);

    printf("str = %s\n", str);
}
4
  • You probably mean if(str) rather than if(*str). Although even with that change, in the case where str is null, foo leaks an allocation. Aug 19, 2010 at 21:51
  • Also: free(0) does nothing. But it's not actually wrong to check for null before calling free. Aug 19, 2010 at 22:04
  • @Steve: yes. old habits die hard.
    – Dummy00001
    Aug 19, 2010 at 22:08
  • Also, don't forget to include <stdlib.h>
    – ant2009
    Aug 20, 2010 at 3:09
2

You are just reassigning a pointer, which is a local variable in foo.

If you want to copy the string, use strcpy(str, new_str);

You could pass a reference to the pointer instead and reassign, but this can easily lead to memory leaks and is hard to maintain.

Edit: For the pseudo pass by reference see the answer by Steve.

0

I did it this way by returning the pointer from the function. There is no reason to use malloc in this case, so you don't have to worry about freeing.

gcc 4.4.3 c89

char* print_test(char *str)
{
    char *new_str =  "new_test";
    printf("new_str [ %s ]\n", new_str);
    str = new_str;
    return str;
}

int main(void)
{
    char *str = "test";

    printf("str [ %s ]\n", str);

    str = print_test(str);

    printf("str [ %s ]\n", str);

    return 0;
}
1
  • 1
    This only partially works because you are assigning the pointer to a string in a const memory area in print_test(), but you return a non-const pointer. The signature needs to be const char* print_test(const char *str); so that in main, the memory pointed to by str can't be written to. Add str[0] = 'X'; printf("str [ %s ]\n", str); before return 0; to see the error.
    – Erik
    Nov 2, 2021 at 15:25

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