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I've declared a uint8 variable and when the value in it is printed, I get smiley faces and white spaces. Shouldn't it display integer values?

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post your code. –  tenfour Sep 4 '10 at 10:25
    
I'm using a library from a vendor..it returns a uint8 type –  aks Sep 4 '10 at 10:27
    
Are you trying to print it as a string using the %s format specifier? Try to print out the individual characters instead. –  dirkgently Sep 4 '10 at 10:30
    
I'm reading it into a stringstream and printing .str() –  aks Sep 4 '10 at 10:51

2 Answers 2

I bet uint8 is a typedef for unsigned char in your system headers. Then std::cout << u will print symbols rather than integer values, where u is of type uint8. Try

std::cout << static_cast< int >( u );

or

std::cout << +u;

to have numeric values printed.

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but wont that cast to int32? –  aks Sep 4 '10 at 10:56
    
Yes, it will. But what's the problem? That creates a temporary int from your uint8 variable and feeds that int to std::cout for printing. –  usta Sep 4 '10 at 11:03
    
@Rajesh. If you are printing in decimal do you think it makes any difference if the value is stored in a uint8 or a uint32 just before it is printed? –  Loki Astari Sep 4 '10 at 11:04
    
@usta: +1 for the nice little trick with the +u for the auto conversion to int. –  Loki Astari Sep 4 '10 at 11:06
    
Thanks Martin :) –  usta Sep 4 '10 at 11:07

It all depends on how you printing the value out. For cout, try cout << (long unsigned int)var;, and for printf, you can try using the %lu format specifier. However, like usta mentioned, uint8 is likely defined or typedef'd as something else, since that is not an ISO C++ type. There is also the possibility that uint8 is typedef'd to unsigned long int (generic), or unsigned __int64 (MS platform specific), and the MSVC++ compiler is just doing the wrong implicit conversion. Without knowing what uint8 is defined as, it is hard to tell.

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uint8 is being used directly.... > typedef uint8 _UINT1; In the comment, it says 1 byte integer(How do i put a grey block around code?) –  aks Sep 4 '10 at 11:32
    
Well, then _UIN1; is likely defined as something else, too. You'd have to follow the typedef's until you hit the underlying intrinsic type (although, _UINT1 seems to imply a single unsigned char, not a 64 bit number). Also, you can specify text as code (i.e. the "grey box") by wrapping it in back quote characters. –  Javert93 Sep 4 '10 at 12:48
    
typedef uint8 _UINT1; defines _UINT1 as alias to uint8, not the other way around. So you'll have to look for a typedef XXX uint8; declaration to find out what uint8 is. Or you can just trust me that it is an 8-bit unsigned integer, and is an alias for unsigned char :) [u]intN[_t] types always signify N-bit integers, not N-byte integers. –  usta Sep 4 '10 at 12:59
    
Yep, my bad... I read it like it was a #define for some reason ::duh::. It also seems (like usta says), the 8 is referring to the number of bits in the number, not the number of bytes. –  Javert93 Sep 5 '10 at 3:27

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