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I'm trying to check and see if a bit is set in an unsigned int. I'm not sure how I can do this, but I assume it would be something like this. I'm trying to make the cdq instruction in C++ (but a function)

Here is what I have

unsigned int cdq(unsigned int eax)
{
     unsigned int edx = 0;

     if( (eax >> 31) & 1 ) { edx = 0xFFFFFFFF; }
     return edx
}

When I use the function with the following values:

cdq(0x12345678) bit 31 is set (1) so it should return (unsigned int)-1 cdq(0x01) bit 31 is not set (0) so it should return 0

The problem is it always returns 0, and I'm not sure why

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2  
How is bit 31 set in 0x12345678? The highest bit set is bit 28. –  syam May 21 '13 at 6:38
    
@juanchopanza "You need eax>>30" -- wrong. –  Jim Balter May 21 '13 at 6:43
1  
eax & 0x7FFFFFFF is 0 if the "last" bit is 0, != 0 otherwise. Supposing unsigned int has at least 32 bits. Then note that in 0x12345678 bit 31 is not set. –  ShinTakezou May 21 '13 at 6:43
    
@JimBalter I somehow read "31st bit" instead of "bit 31". My bad. –  juanchopanza May 21 '13 at 7:22
1  
@JimBalter You are right, it is truly terrible. I hope I live long enough to make amends for this unforgivable act. In the mean time, I have removed the offending comment, hoping that this act will go some way towards negating this aberration. –  juanchopanza May 21 '13 at 7:38

1 Answer 1

up vote 6 down vote accepted

cdq(0x12345678) bit 31 is set (1)

No, it's not ... the highest bit set is bit 28:

    1    2    3    4    5    6    7    8
 0001 0010 0011 0100 0101 0110 0111 1000
 ^  ^ 
 |  |
31  28

You code should work, but I would use

if( eax & (1U << 31) ) edx = 0xFFFFFFFF;

since it's a bit more direct and it shifts a constant rather than a variable so does less work at run time (although an optimizing compiler should produce the same code for both).

Actually I would write something like

int cdq(int eax)
{
    return eax < 0? -1 : 0;
}

By the way, your code doesn't actually implement cdq because your eax and edx variables are not the hardware eax and edx registers. And it's really not a very good idea to replicate ASM instructions as C functions anyway ... C has its own features for doing these sorts of things, e.g.,

int32_t foo = -0x12345678;
int64_t bar = (int64_t)foo;
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1  
Good point @caf, but maybe you could just leave a comment since I was still in the process of refining this answer ... editing it is a bit aggressive. –  Jim Balter May 21 '13 at 7:00

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