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I'm trying to create a string with a simply calloc, but i don't understand why this code works. This calloc would have to create a string with only one space to put only a char, right? Why, when i try to print my string, on stdout i see value casted to string? I thought on stdout appeared only the first number, because I have allocated with calloc only one space.

int main(int argc, const char* argv[]) {
    char* string;
    int value=6000031;
    string=calloc(1,sizeof(char));
    sprintf(string,"%d",value);
    printf("%s\n",string);
    free(string);
    exit(EXIT_SUCCESS);
}
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    Writing to invalid memory is Undefined Behaviour. There is no need to try and reason with Undefined Behaviour. Appearing to work is the one of the hardest things for beginners to understand about UB (at some point code containing UB will break even if it sometimes "works"). Bottom line is that UB is always wrong. Just fix it and move on.
    – kaylum
    Mar 17, 2016 at 23:44
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    You are allocating space for 1 char, so string only has enough legal space to hold a null terminator. Your sprint() call is going to exceed the bounds of string and overwrite surrounding memory. The printf() works because it is processing the output from sprintf(), which is valid data, even though the memory is not valid. If you get far enough to call printf() in the first place (your app hasn't crashed outright), the corrupted memory did belong to your app in some form, but of course you corrupted it, so you don't know what you app will do once sprint() has finished. Mar 17, 2016 at 23:45
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    You need enough space in the string for each digit as a separate character plus a null terminator. That means the two arguments to calloc() must multiply to at least 8 to be safe (for the given data) — whereas you've only allocated 1 byte of data, which is very inadequate. Or you could use snprintf(string, 1, "%d", value), though you'd only get the null terminator and no digits. Mar 17, 2016 at 23:45
  • It is not keeping track of how much space you allocated. That's your job. If you write past it, anything can happen. No one wants to waste their time analyzing it. Fix your known bugs, then if you're having problems ask for help.
    – Tom Karzes
    Mar 17, 2016 at 23:52
  • Why calloc instead of malloc? Mar 17, 2016 at 23:53

1 Answer 1

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sprintf will try to write the whole value to the string array. It doesn't know the size of the memory. You end up writing into invalid memory. It just so happens you're not causing a seg fault.

Use snprintf with a size of 1, but it would always return an empty string in that case. If you are just trying to pull off the first character, use snprintf(string, 2, "%d", value); and increase the calloc size to 2 bytes. (One for the NUL character at the end)

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  • @FiddlingBits: What am I missing?
    – ryry1985
    Mar 18, 2016 at 3:00

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