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C++ code (Visual studio started with devenv /useenv (x64) and isWOW64 is false)

DWORD64 check;

check = -1;
printf("value %u", check);

it prints the value 4294967295 i.e. 0x(32)f which is the same if i do it with simple DWORD in an x32 environment

yes i know DWORD64 is unsigned __int64, but shouldn't it be 0x(64)f ?

what did the assembler do there ? disassembling the code didn't help me much.

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simple -1. Am i doing it wrong ? –  Basit Anwer Jun 20 '12 at 6:48
1  
DWORD64 is unsigned __int64 –  James Eldridge Jun 20 '12 at 6:55
    
... and that's why you should consider using C++ streams instead. –  gwiazdorrr Jun 20 '12 at 7:51
    
lol, yeah. Good point. –  Basit Anwer Jun 20 '12 at 10:05

3 Answers 3

up vote 7 down vote accepted

You problem here lies in the printf format string. Using %u tells printf to print a 32 bits value. Hence, it uses only the first 32 bits of your DWORD64. To print all the 64 bits that has been pushed onto the stack, use %llu (for unsigned long long).

Note also that DWORD64 cannot be unsigned long. On all Windows versions, even on Windows 64 bits, long is 32 bits.

See LLP64 model.

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Thank-you for the answer :) ... missed a very basic information –  Basit Anwer Jun 20 '12 at 6:59

If you look at the manual page the %u format specification is of type int. This means that printf reads the value as int, which even on 64-bit platforms are still 32 bits.

Add a size specification of either ll or I64, so the format will be %I64u.

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true, printf will require %llu –  Basit Anwer Jun 20 '12 at 6:59

It should be -1LL because -1 is stored as a 32bit int

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-1 also works fine, thanks:) –  Basit Anwer Jun 20 '12 at 6:58

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