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Does the output of the code given below depends on the compiler or it is guaranteed to be same for all the compilers?

int main()
{ 
    int i=5;
    i=i/3;
    printf("%d\n",i);
    return 0;
}
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3  
What about this suggests to you that it might be compiler dependent? Also, this code has no output except compile errors ;) (check your string in the printf() call). –  FatalError Jul 7 '12 at 14:23
    
main.c|7|error: stray '\' in program| (compled with GCC 4.4.1) –  A_nto2 Jul 7 '12 at 14:25
1  
Not sure what you mean by "direction of division". –  Vaughn Cato Jul 7 '12 at 14:25
    
@Vaughn: Guessing he means "direction of rounding". Valid question, IMO... –  cha0site Jul 7 '12 at 14:26
    
Integer division always returns the integer part of the fraction and is always guaranteed to round down, even for negative numbers (e.g. -5/3 == -2), at least on x86. –  Hristo Iliev Jul 7 '12 at 14:27

2 Answers 2

up vote 1 down vote accepted

Yes, the behaviour of your example is well-defined.

However, in the case of negative values, it is less clear. Pre-C99, whether integer division was rounded towards zero or towards negative infinity was left as implementation-defined:

If either operand is negative, whether the result of the / operator is the largest integer less than the algebraic quotient or the smallest integer greater than the algebraic quotient is implementation-defined

C99 mandates rounding towards zero:

When integers are divided, the result of the / operator is the algebraic quotient with any fractional part discarded..

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Thanks..I could not get precise answer from google. –  Dhatri Jul 7 '12 at 14:41

The C99 standard, Section 6.5.5, Paragraph 6:

When integers are divided, the result of the / operator is the algebraic quotient with any fractional part discarded. If the quotient a/b is representable, the expression (a/b)*b + a%b shall equal a.

The standard also notes that this is commonly called "truncation towards zero".

So yes, it is well-defined.

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