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This program is written in VC++ 6.0 on a WindowsXP machine.

If I try to set an __int64 variable to -2500000000 directly, it is truncated to a 32bit value and the two's complement is taken.

__int64 testval;
testval = -2500000000;

At this point testval equals 1794967293 (110 1010 1111 1101 0000 0111 0000 0000 binary).

When I set the variable to 2500000000 and then multiply by negative one, it works:

__int64 testval;
testval = 2500000000;
testval *= -1;

The variable testval equals -2500000000 (1001 0101 0000 0010 1111 1001 0000 0000 binary).

Any ideas? Thanks.

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3  
MSVC6? Ouch! That hurts! – David Heffernan Feb 18 '11 at 21:07
up vote 10 down vote accepted

Get a newer compiler. VC6 standard compliance is VERY poor.

In VC6, try a suffix of i64, as in

__int64 toobig = -2500000000i64;

Found the documentation!

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Thanks, that would be the preferred method, but it's not an option at the moment. – E.Freitas Feb 18 '11 at 21:25
    
@E: I think I have the solution for VC6, but I no longer have a copy installed where I can test it. – Ben Voigt Feb 18 '11 at 21:37
    
That works. Thanks! That needs to be linked in their documentation for __int64. – E.Freitas Feb 18 '11 at 21:52
    
@E: I agree, but I don't think Microsoft is fixing VC6 documentation anymore. That they still care whether it installs and runs on new versions of Windows is a miracle. And it seems to be on the old MSDN site which doesn't support community-contributed content, so I can't add it myself. – Ben Voigt Feb 18 '11 at 21:54

The compiler is treating the constant 2500000000 as a 32-bit number. You need to explicitly tell it to treat it as a long int by appending an LL to the end of the constant. So, try instead:

testval = -2500000000LL;

Update: Since your compiler doesn't support this, and you are stuck with VC6, try instead breaking it into a value that results from the product of two 32 bit numbers as in:

testval = -250000;
testval *= 10000;
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1  
Probably safer to make it LL rather than L – Paul R Feb 18 '11 at 21:01
    
That (the compiler using a 32-bit type for that literal) is a violation of C++0x section [lex.icon]... anybody have the wording from C++03 or C++98? – Ben Voigt Feb 18 '11 at 21:04
2  
C++03 probably isn't going to help much, considering Visual C++ 6 shipped in the late 90s. – ChrisV Feb 18 '11 at 21:06
    
Thanks,LL doesn't work, I get a compiler erro, and L makes no difference because a long in WindowsXP(32bit) is still only 32bits, the same as an int. – E.Freitas Feb 18 '11 at 21:17
    
@Paul R: Thanks; Fixed. – andand Feb 18 '11 at 21:37

The correct syntax is -2500000000LL. If it doesn't work, get a newer compiler.

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