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I have written a problem to practice pointers and allocating memory.

However, I am getting a stack dump when I free the memory. Am I freeing in the correct place? Is there anything else wrong with my program that could make it unsafe?

void display_names(char **names_to_display, char **output);

int main(void)
{
    char *names[] = {"Luke", "John", "Peter", 0};
    char **my_names = names;
    char *new_output[1024] = {0};
    size_t i = 0;

    // Print the ordinal names
    while(*my_names)
    {
        printf("Name: %s\n", *my_names++);
    }

    my_names = names; /* Reset */
    display_names(my_names, new_output);

    // Print the updated names
    while(new_output[i])
    {
        printf("Full names: %s\n", new_output[i]);
        i++;
    }

    // Free allocated memory
    free(new_output);

    getchar();

    return 0;
}

void display_names(char **names_to_display, char **output)
{
    while(*names_to_display)
    {   
        *output = (char*) malloc(strlen("FullName: ") + strlen(*names_to_display) + 1);
        if(!*output)
        {
            fprintf(stderr, "Cannot allocate memory");
            exit(1);
        }

        // Copy new output
        sprintf(*output, "FullName: %s", *names_to_display++);
        printf("display_names(): Name: %s\n", *output++);
    }   
}
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You edited it and removed the problem? or is it still a problem/question? –  epatel Jun 6 '09 at 9:14
    
I edited and ran the code. Everything worked ok. However, I just wanted to get a final answer if this was the correct way to free memory, that has been allocated in another function. –  ant2009 Jun 6 '09 at 9:24
    
Yes, this is the correct way –  mfawzymkh Jun 6 '09 at 9:40
2  
Suggestion Maybe you shouldn't "correct" your code, but rather write an "update" below as it's difficult for late comers to understand what was a problem and how it was solved... –  epatel Jun 6 '09 at 12:35
    
Rolling back. Editing the question to remove the problem makes the question worthless and answers senseless to anyone reading after the edit. Better to leave the question as-is and add a comment (or add a little update to the end of the question). –  paxdiablo Dec 22 '09 at 13:41

3 Answers 3

You didn't allocate the memory for new_output, it was allocated by the compiler. free is for use when you malloc memory at runtime, not for freeing memory allocated by the compiler at compile time.

Your new_output is a local variable and will be 'released' when it goes out of scope, i.e. at the closing brace of the function in which it's declared.

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the declaration of char* new_display[1024] means that you are declaring an array of 1024 elements, each element is a pointer to char. The array itself is statically allocated here, an array of 1024 element will be reserved on the stack. In your example, you are populating the entries of this array by allocating memory using malloc and setting each element of the array, this is the memory that you should free, and not the statically allocated array itself.

So instead of calling free(new_display), you will need to loop through the array entries and do free(new_display[i]), this way you are freeing only what you have allocated.

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I have edited my code. Now I have a while loop that will free memory that was allocated. Is this a correct interpretation of your answer? Is there anything else you can see wrong with my code? Thanks –  ant2009 Jun 6 '09 at 9:08
    
I think you got it write now, does it still crash? –  mfawzymkh Jun 6 '09 at 9:19
    
sorry, i meant you got it right:) –  mfawzymkh Jun 6 '09 at 9:41

Your problem is that When you say:

free(new_output);

new_output is an array on the stack. It was not allocated with malloc(), so you cannot free it with free(). You need to free the pointers that new_output contains.

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