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In the c standard, is this behavior defined?

I have code that runs on different platforms that seems to get different results. I am looking for a proper explanation.

Thanks.

Windows :

double dbl = -123.45; 
int d_cast = (unsigned int)dbl; 
// d_cast == -123

WinCE (ARM):

double dbl = -123.45; 
int d_cast = (unsigned int)dbl; 
// d_cast == 0

EDIT:

Thanks for pointing in the right direction.

fix

double dbl = -123.45; 
int d_cast = (unsigned)(int)dbl; 
// d_cast == -123
// works on both. 
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1  
i'd bet this has to do w/ endianness. –  Daniel A. White May 10 '12 at 19:56
8  
@DanielA.White: Why oh why would it have anything to do with endianness? There aren't even any pointers in the code. –  Kerrek SB May 10 '12 at 19:58
3  
@Daniel: I doubt it ... –  Goz May 10 '12 at 19:58
1  
What do you expect to happen when you cast a negative double to an unsigned int? –  David Heffernan May 10 '12 at 19:59
1  
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1 Answer 1

up vote 15 down vote accepted

No


This conversion is undefined and therefore not portable.

According to C99 §6.3.1.4 footnote 50:

The remaindering operation performed when a value of integer type is converted to unsigned type need not be performed when a value of real floating type is converted to unsigned type. Thus, the range of portable real floating values is (−1, Utype_MAX+1).

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1  
yes but When a finite value of real floating type is converted to an integer type other than _Bool, the fractional part is discarded (i.e., the value is truncated toward zero). If the value of the integral part cannot be represented by the integer type, the behavior is undefined (FROM THE C STANDARD) the integral part can be represented by the integer type –  corn3lius May 10 '12 at 20:22
    
Yes, and footnote 50 seems to have been added specifically to prevent the interpretation you are suggesting. –  DigitalRoss May 10 '12 at 20:45
1  
Yes thank you, some times you need slam your head on the book a few time before it sinks in. –  corn3lius May 10 '12 at 20:49
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