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I have a float z_f that is clamped between 0.0f and 1.0f and I want to convert this to an unsigned integer that maintains sort order.

A simple way to do this might be:

float z_f = 0.5;
unsigned int z_ui = (unsigned int) z_f*(MAX_UINT32);//Scale to full range of uint32

Will this work?
Will this cause a loss in precision? Is there a better way to achieve same result?

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Why the C-style cast and why don't you use std::numeric_limits<unsigned int>::max() (or do you?) –  thokra Oct 31 '13 at 15:42
    
One question that arises is why you need the whole operation, why do you want to convert to unsigned int in the first place? The restrictions on ordering may hint that you just want to perform a fast sort operation as integers, if that is the case, there are better alternatives that don't involve loosing precision –  David Rodríguez - dribeas Oct 31 '13 at 17:09
    
I have the similar problems - here are some hints: stackoverflow.com/questions/24360347/… –  Libor Jun 23 '14 at 11:16

3 Answers 3

The type conversion (unsigned int) z_f has higher precedence than the binary *, so you are effectively multiplying MAX_UINT32 with 0 or 1.

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There are many possible values of z_f that would map to the same integer (think of the many floats that are very close to zero). This could potentially affect the sort order.

There's also the precedence bug pointed out by @Oswald.

As to a better way, I am not sure (other than keeping the numbers as floats).

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I would first avoid the C style casts, for precedence reasons. The second thing is that you don't want to do this operation on a float due to precission issues, but rather in a double.

unsigned int z_ui 
                 = static_cast<unsigned int>(satic_cast<double>(z_f)*MAX_UINT32);
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I'm constrained to floats by hardware. –  CodeFusionMobile Oct 31 '13 at 16:45
    
@CodeFusionMobile: I am not 100% sure, but if you are constrained to float there is not enough significant bits in float to map to all of the unsigned int, so you will be loosing precision and some of the values that differ in the original float might be the same in the unsigned int representation. Not sure if this is the case, but that is my feeling. –  David Rodríguez - dribeas Oct 31 '13 at 16:48

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