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Just to test some code I wrote the following program in C:

int main(int argc, char *argv[])
{
    char *a = "hello ";
    char *b = "there";
    char *c = malloc(100);
    strcat(c, a); 
    strcat(c, b); 
    printf("length of a is %d\n", strlen(a));
    printf("length of concatenated string is %d\n", strlen(c));
    return 0;
}

The output of this is:

length of a is 6
length of concatenated string is 11

Now instead of doing malloc, I did the following (rest of the code being the same):

char c[100];

The output changes to:

length of a is 6
length of concatenated string is 12

I don't understand why using a pointer over a char array would change the size of the concatenated string.

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3 Answers 3

Since you did not put anything into c after calling malloc, the call of strcat leads to undefined behavior, because the allocated memory block may not contain the null terminator at all. In this case, strcat would eventually access memory beyond the allocated block during its search for a terminator.

This should make the calls consistent:

char *c = malloc(100);
*c = '\0';
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Behaviour in both examples is undefined. strcat appends data after a terminating nul in the source string. c is uninitialised so it is undefined where (and if) it'll have a nul terminator.

You'd get consistent results if you changed to use strcpy followed by strcat

strcpy(c, a); 
strcat(c, b);
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Use calloc to initialize elements of c to 0. Otherwise it remains unitialized before the first call of strcat and the result is undefined. Using an uninitialized variable like you do invokes undefined behavior and this is never good.

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