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Can someone please help me figure out why this program gives the wrong answer for a modulus operation when a negative number is entered in this C program?

I am pretty sure what is causing the problems is the scanf function. The correct answer is given when positive integers are used.

The code is below:

#include <stdio.h>

int main()
    int num1 = 0;
    int num2 = 0;
    int answer = 0;
    puts("enter two number to find the modulus of...");
    if (scanf("%3d %3d",&num1,&num2) != 2)
            puts("something went wrong");
    else {
            answer = (num1 % num2);
            printf("the modulus of %d and %d is: %d\n", num1, num2, answer);
share|improve this question
@JoachimPileborg looks like it answers some questions...the main point is that negative numbers are undefined. I am sure C can handle something this simple though; there must be some simple solution. – user_loser Apr 26 '13 at 7:43
You would improve this question considerably if you gave some examples of the output you consider incorrect. It seems curious to blame scanf() for the answer generated by the % operator. – Jonathan Leffler Aug 29 '14 at 16:48
@Jerry Coffin The referenced Modulus with a negative number asks why C "modulus" differs from Google. The post asks why a%b is "the wrong answer for a modulus operation". IMO: This borders on either side of a duplicated post. – chux Aug 29 '14 at 19:37
Can someone explain to me why the current 'duplicate' (Modulus with a negative number) is better than Does either ANSI C or ISO C specify what -5 % 10 should be?? The current duplicate was asked later, has a far lower score, and is itself closed as a duplicate of two other questions. – Jonathan Leffler Aug 30 '14 at 4:50

2 Answers 2

up vote 4 down vote accepted

In ANSI C, the sign of the result of the modulus operator is not defined for negative inputs. You could try div() from the math library (ref). It returns a structure with the quotient and remainder, and it works reliably for negative inputs.

Or, as Alexey Frunze kindly suggests, you could enable C99 mode. I'm too lazy to look up the standard, but a little testing (gcc -std=c99) suggests the sign of the result matches the sign of the left operand. So div() is still best if you want ANSI compatibility.

Or, you could take total control of the situation. But you have to choose what correct means. The following is cribbed from Wikipedia.

int x, y, q, r; // all snippets: left-arg, right-arg, quotient, remainder

truncated division

q = trunc( (double)x / y);
r = x - y * q;

floored division (Knuth)

q = floor( (double)x / y);
r = x - y * q;

Euclidean division

q = y > 0 ? floor( (double)x / y) : ceiling( (double)x / y);
r = x - y * q;
share|improve this answer
% is defined for negative integers. – Alexey Frunze Apr 26 '13 at 7:39
Thanks. Corrected (?) – luser droog Apr 26 '13 at 7:44
@luserdroog looks like i am out of luck for negative integers. thanks all for the quick and super smart feedback. – user_loser Apr 26 '13 at 7:47
The C standard dropped the sign "ambiguity" in 1999 (it had been allowed by the standard from 1989). – Alexey Frunze Apr 26 '13 at 7:48
it still does not work with div though – user_loser Apr 26 '13 at 7:56

After accept answer

In C, since C99, the result of % is well defined even with negative operands. See below.

In C, % operator is named the "remainder" in C and not "modulus".

To perform a Euclidean division & remainder without incurring truncation, range, double conversion problems **:

void Euclidean_divide_remainder(int a, int b, int *q, int *r) {
  *q = a / b;
  *r = a % b;
  if (a < 0 && *r != 0) {
    if (b < 0) { (*q)++; *r -= b; }
    else {       (*q)--; *r += b; }

void rtest(int a, int b) {
  int eq, er;
  Euclidean_divide_remainder(a, b, &eq, &er);
  printf("f(%2d,%2d) / %2d  %% %2d  E/ %2d  E%% %2d\n", 
      a, b, a / b, a % b, eq, er);

void rtest4(int a, int b) {
  rtest(a, b);
  rtest(a, -b);
  rtest(-a, b);
  rtest(-a, -b);

int main(void) {
  rtest4(7, 3);
  return 0;

f( 7, 3) /  2  %  1  E/  2  E%  1
f( 7,-3) / -2  %  1  E/ -2  E%  1
f(-7, 3) / -2  % -1  E/ -3  E%  2
f(-7,-3) /  2  % -1  E/  3  E%  2

The result of the / operator is the quotient from the division of the first operand by the second; the result of the % operator is the remainder. In both operations, if the value of the second operand is zero, the behavior is undefined. C11dr §6.5.5 5

When integers are divided, the result of the / operator is the algebraic quotient with any fractional part discarded. (This is often called ‘‘truncation toward zero’’.) If the quotient a/b is representable, the expression (a/b)*b + a%b shall equal a; otherwise, the behavior of both a/b and a%b is undefined. C11dr §6.5.5 6

** Exceptions:

The result of a%0 is undefined.

For 2's complement, INT_MIN % -1 and INT_MIN E% -1 (which mathematically should be 0) are problems. This is caused by INT_MIN / -1 (which mathematically should be INT_MAX + 1) is a problem as the answer does not fit in the int range..

share|improve this answer
Interesting. I have not coded C in several months or maybe it has been over a year now! 0_o I compiled your code on my machine and ran it and obtained the same output but this example is rather confusing in my honest opinion (IMHO). I appreciate all the excitement over my c programming question though! Cool. Thanks for replying to my post guise. :D – user_loser Aug 30 '14 at 18:09

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