0

I am experimenting with both unsigned int data types and main method parameters in simple C programs. As an experiment I wrote a program that takes an int number from the command line as a parameter to the main method, and sums every integer between that number and 0.

E.g. The program calculates f(n) = (1 + 2 + 3... + n) valid when n > 0

#include <stdio.h>
#include <stdlib.h>

const unsigned int MAX_NUM = 92681; //Max input that will avoid int overflow later on

unsigned int sum(unsigned int x); 

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

    unsigned int input = atoi(argv[1]); 

    if (input < 0 || input > MAX_NUM) {
        printf("Invalid input! Input must be less than 92682\n");
        exit(0); //If input > MAX_NUM, quit program
    }

    unsigned int result = sum(input);

    printf("Sum to %d = %d\n", input, result);

    return 0;
}

unsigned int sum(unsigned int x) {
    unsigned int sum = 0;
    unsigned int y;
    for (y = 0; y <= x; y++) {
        sum += y;
        printf("Current sum:\t%u\n",sum);
    }
    return sum;
}

The first thing I began to notice was integer overflow when f(n) > 2147483648 - aka the maximum value for a signed int.

I found the maximum values mathematically by hand for which the results generated by my program would be valid (e.g. before integer overflow) to be 65535 for signed ints and 92681 for unsigned ints.

Running the program for signed ints produced the expected results - at 65535 the very large positive number became a very large negative number as the integer overflowed.

I then went through and changed every "int" to "unsigned int". Despite this integer overflow occurs as if the ints were signed and not unsigned.

My question is a) Why is this? b) How can I make it so that my answer can use the whole range of unsigned int i.e. 0 through to (2^32) - 1 (as I dont need negative values!).

Thanks very much!

  • 1
    Tip from Gauss: n*(n-1)/2. – Grzegorz Szpetkowski Oct 14 '14 at 20:58
  • 1
    Thats how I calculated the max values ie. 2^32 = n*(n-1)/2 – davidhood2 Oct 14 '14 at 21:02
4

You forgot to change the final printf formats from signed to unsigned.

Change:

printf("Sum to %d = %d\n", input, result);

to:

printf("Sum to %u = %u\n", input, result);
               ^^   ^^

Note that enabling compiler warnings (e.g. gcc -Wall ...) would have alerted you to this. Always enable compiler warnings and always take heed of them.

  • 1
    Oh wow - I feel foolish! Thank you – davidhood2 Oct 14 '14 at 20:56
  • Well if this teaches you to always enable compiler warnings then it will have been worth it. ;-) – Paul R Oct 14 '14 at 20:57
  • 1
    @PaulR Not sure what OP is using but I wish MSVC would finally start emitting warnings for this... /analyze kinda does but is terribly slow and doesn't warn about this particular case (signed/unsigned mismatch). Oh well, at least we'll finally get C99 (sn)printf in the "14" version, sigh... ;) – user2802841 Oct 14 '14 at 22:10
  • @user2802841: I didn't realise MSVC was still lagging behind on this, although I guess I shouldn't be surprised - most other compilers have been generating warnings for printf et al for many years now of course. – Paul R Oct 15 '14 at 5:58
  • @user2802841: For such printf warnings to be helpful, they should take into account how the arguments were produced. If u is of type unsigned char, requiring an (unsigned) cast within printf is mindless pedantry, especially since there's no reason why a non-obtuse implementation wouldn't treat signed and unsigned types interchangeably when dealing with values that are within range of both. – supercat Jul 14 '16 at 16:35

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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