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Is there any difference between these:

float foo1 = (int)(bar / 3.0);
float foo2 = floor(bar / 3.0);

As I understand both cases have the same result. Is there any difference in the compiled code?

Note: updated fabs() to floor() as that was the real question

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Why would you think there would be no difference? Since the difference is obvious and major (one converts to an int, one to absolute value), I presume you mistyped something. –  David Thornley Jul 21 '10 at 14:33
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sorry of course floor() not fabs() –  OgreSwamp Jul 21 '10 at 14:51
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I'd edit your question to reflect what you meant to ask. –  Edd Jul 21 '10 at 15:02
    
a bit better with floor, but beware that this is for double not for float. C99 also has floorf for float. –  Jens Gustedt Jul 21 '10 at 17:11
    
So they have same result as long as bar is positive –  Zac Mar 6 '13 at 11:13
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6 Answers

up vote 41 down vote accepted

Were you by chance confusing fabs with floor ?

Casting to an int will truncate toward zero. floor() will truncate toward negative infinite. This will give you different values if bar were negative.

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I think you hit the nail on the head here. Another difference, if floor() is the intent, is if the value of bar is too big to fit in an int. –  Fred Larson Jul 21 '10 at 14:44
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Why do you think they will have the same result?

float foo = (int)(bar / 3.0) will create an integer then assign it to a float

float foo = fabs(bar / 3.0 ) will do the absolute value of a float division

bar = 1.0

foo1 = 0; foo2 = 0.33333...

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Yes. fabs returns the absolute value of its argument, and the cast to int causes truncation of the division (down to the nearest int), so the results will almost always be different.

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EDIT: Because the question may have been modified due to confusion between fabs() and floor().

Given the original question example lines:

1.  float foo = (int)(bar / 3.0);

2.  float foo = fabs(bar / 3.0);

The difference is that if bar is negative the result will be negative with the first but positive with the second. The first will be truncated to an integer and the second will return the full decimal value including fractional part.

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As was said before, for positive numbers they are the same, but they differ for negative numbers. The rule is that int rounds towards 0, while floor rounds towards negative infinity.

floor(4.5) = (int)4.5 = 4
floor(-4.5) = -5 
(int)(-4.5) = -4

This being said, there is also a difference in execution time. On my system, I've timed that casting is at least 3 times faster than floor.

I have code that needs the floor operation of a limited range of values, including negative numbers. And it needs to be very efficient, so we use the following function for it:

int int_floor(double x) 
{ 
    return (int)(x+100000) - 100000; 
}

Of course this will fail for very large values of x (you will run into some overflow issues) and for negative values below -100000, etc. But I've clocked it to be at least 3 times faster than floor, which was really critical for our application. Take it with a grain of salt, test it on your system, etc. but it's worth considering IMHO.

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(int) x is a request to keep the integer part of x (there is no rounding here)

fabs(x) = |x| so that it's >= 0;

Ex: (int) -3.5 returns -3; fabs(-3.5) returns 3.5;

In general, fabs (x) >= x for all x;

x >= (int) x if x >= 0

x < (int) x if x < 0

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Your last statement is wrong; consider your -3 example. –  Dennis Zickefoose Jul 21 '10 at 15:11
    
x = -3 fabs(-3) = 3 (int) -3 = -3; I think the last inequalities hold. Can you elaborate more on why it's wrong? –  Paul Hoang Jul 21 '10 at 15:41
    
Sorry, I meant -3.5, the example you gave. -3 > -3.5 –  Dennis Zickefoose Jul 21 '10 at 16:25
    
yup, edited. Thanks. –  Paul Hoang Jul 22 '10 at 4:41
    
The last statement should still be "x <= int(x) if x < 0", and not "x < (int)x if x < 0": negative integers stay the same. –  Tomasz Gandor Feb 20 at 15:18
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