Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

please, can you tell me if I use free in my function the right way? I checked my code with valgrind and no errors occured.

void strconcat (char **str1, const char *str2) {
    unsigned long str1len = strlen(*str1);
    unsigned long str2len = strlen(str2);

    char *tempStr = malloc(sizeof(char) * (str1len + str2len + 1));
    memcpy(tempStr, *str1, str1len);
    memcpy(&(tempStr[str1len]), str2, (str2len + 1));

    *str1 = tempStr;

In the main-function I'm calling my function this way:

int main() {

    char *str1 = malloc(25);
    str1 = strcpy(str1, "First part of the string");

    char *str2 = malloc(16);
    str2 = strcpy(str2, " - second part.");
    printf("%s\n", str2);

    strconcat(&str1, str2);

    printf("%s\n", str1);


    return EXIT_SUCCESS;

Thank you for your help!

share|improve this question
The only thing is you're not appending the null character at the end of concatination. – Uchia Itachi Sep 2 '13 at 18:19
So long as your function is always passed a pointer-to-pointer that dereferences to only a valid allocation address, it should be ok, but egads... – WhozCraig Sep 2 '13 at 18:23
I add the null character in the second memcpy with (str2len + 1) – Ted Ferry Sep 2 '13 at 18:37
A small improvement would be to replace your malloc and strcpy lines in main with strdup. strdup mallocs and returns the pointer to a copy of the string you pass to it. – Zan Lynx Sep 2 '13 at 18:57

2 Answers 2

up vote 0 down vote accepted

Yes, you're using it correctly. In strconcat(), you'll lose the memory originally allocated to str1 when you assign the newly concatenated string to it, so you should free() it before that happens. After you return from that function, you still have two dynamically allocated blocks of memory, so you should free those both two.

Valgrind is generally pretty trustworthy, so you should have some confidence in it, provided that you're running through all the relevant different paths of execution.

Whether what you are doing with your function is a good idea, though, is another thing entirely. If someone passed in a pointer to a string literal then your function would fail catastrophically. There are also some other problems with your code, including that strconcat is a reserved identifier, but for what it does, you're using free() correctly.

share|improve this answer
This function is only a little test how it is done to change the memory and data of a function argument without returning a additional pointer. – Ted Ferry Sep 2 '13 at 18:56

After free in void strconcat()function you are assinging malloc'd tempStr variable to *str1, So you not getting any error when you debug with valgrind.

Remove *str1 = tempStr line from function, now compile and run the program your program will get crashed. Because of double free.


You have to free all the memory allocated using malloc. You have to free the memory of str1 before assigning to some other variable to avoid memory leak.

free(*str1) - free for memory allocated to str1 in main() function
free(str1) - free for memory allocated to tempStr in strconcat() function.
free(str2) - free for memory allocated to str2 in main function.
share|improve this answer
Yes, I know.The question is, do I need to call free in my function to avoid memory leaks? – Ted Ferry Sep 2 '13 at 18:18
I think that's why it is assigned the value before exiting the function. I don't see any problem – Uchia Itachi Sep 2 '13 at 18:18
@TedFerry yes. you have to free from your function. – sujin Sep 2 '13 at 19:53

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.