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I've tried running this code:

int x = 0;
double y = 1/2;
if (y <= x || y/x < 1)
y++;
printf("%.2f", y);

The output is 1.00, which is kinda surprising to me. I thought the first expression (y <= x) is false and since this is the || operator, C also have to evaluate the second expression (y/x < 1), which involves a division by zero. But why doesn't any error show up?

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Can you give us an info about your cpu architecture and the compiler you are using? This could play a role if you are still experiencing the same situation after making the suggested change. –  jdehaan Feb 23 '13 at 13:04
    
I'm running on cygwin environment for Windows. My CPU is i7-3612 QM. The compiler I used is gcc 4.5.3. –  drawar Feb 23 '13 at 13:47
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4 Answers 4

y is actually 0:

double y = 1/2;

The above does integer division, so the result is 0. What you want is:

double y = 1.0/2.0;
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2  
Or possibly y = 0.5; :-) –  Bo Persson Feb 23 '13 at 12:58
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The assignment double y = 1/2; yields 0 for y. So the || is shortcut (that means the second part of the or is not evaluated).

If you intend y to be 0.5, then write:

double y = 1/2.0;
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Tried interchanging the 2 expressions. The output is still the same? –  drawar Feb 23 '13 at 12:50
1  
@Alok Save, 0 <= 0 yields 1... So short circuit is relevant here –  jdehaan Feb 23 '13 at 12:53
    
Ah Yes, it is realized no sooner after i posted the comment. Please ignore my comment. –  Alok Save Feb 23 '13 at 12:55
    
@drawar, I am not 100% sure but I think I remember there is a pitfall with division by zero and int. Turn x to be a double and retry. I think the FPU throws the exception but with integer arithmetic it might look different. Compiler options can also play a role. –  jdehaan Feb 23 '13 at 13:00
    
I showed around, there are indeed architectures (e.g. ARM) and compilers for which an integer division results in 0 and no exception is generated... –  jdehaan Feb 23 '13 at 13:06
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First, as everyone else pointed out, you assign zero to y because 1/2 is a division by 2 integers.

In your - wrong - example where 1 and 2 are integers and y gets assigned 0 your assumption "the first expression (y <= x) is false" is obviously incorrect as y and x are both zero and hence equal. The expression is short circuited and the second part is never evaluated (no division by zero).

Even if you divide by zero it's not guaranteed that you'll get an error. IEEE 754 for example states that a divison by zero yields infinty.

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double y = 1f / 2f;: 1/ The question is tagged C and this is a syntax error in C. You may at best write 1.f and 2.f. 2/ Worse, 1.f / 2.f is fine but 1.f / 3.f is different from 1.0 / 3.0 and you would have to really know what you are doing to initialize a double to the former voluntarily. –  Pascal Cuoq Feb 23 '13 at 14:55
    
@PascalCuoq You are right. Too much Java coding in the past few hours I think. :-) I removed that part. Regarding your comment about the difference of 1.f/3.f and 1.0/3.0: I just tested that and could confirm it (although it seems to be in the minor decimals). Do you know where this difference comes from? –  junix Feb 23 '13 at 15:29
    
For the same reason that 1 / 3 is computed as an int, 1.f / 3.f is computed as a single-precision float, whereas 1. / 3. is computed as a double-precision double. The numbers 1 and 3 are representable exactly as both single-precision and double-precision IEEE 754 numbers, but the ratio isn't. double d = 1. / 3.; sets d to the nearest double-precision approximation of the real 1/3, whereas double d = 1.f / 3.f; sets d to the conversion to double of its nearest single-precision approximation. –  Pascal Cuoq Feb 23 '13 at 15:32
    
More fun with floating-point constants: blog.frama-c.com/index.php?post/2011/11/08/Floating-point-quiz –  Pascal Cuoq Feb 23 '13 at 15:35
    
@PascalCuoq Ah, I understand. The default type of a real number is double. Forgot that. Thanks for the clearification. Those things are why I hate floating points ;-) –  junix Feb 23 '13 at 15:36
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Firstly Thank u. That the Question is Very Essential but i have not Face Yet.

Firstly, the line "y=1/2" yields "y=0", Secondly, the line in "if Condition y/x" is mean 0/0 "Result is Undefined". But in "||" if the Left side Argument is True, than it don't need to test the rest Argument(condition). So it jumps to "y++" & as a result We see the Result is 1.00.

But if we Write if(y/x<1 || y<=x)

than it give "Abnormal Program Termination"

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