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I can specify an integer literal of type unsigned long as follows:

const unsigned long example = 9UL;

How do I do likewise for an unsigned char?

const unsigned char example = 9U?;

This is needed to avoid compiler warning:

unsigned char example2 = 0;
...
min(9U?, example2);

I'm hoping to avoid the verbose workaround I currently have and not have 'unsigned char' appear in the line calling min without declaring 9 in a variable on a separate line:

min(static_cast<unsigned char>(9), example2);
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I changed your question slightly to what i think your intention was. Things like 10 are called "literals" in C++ (while being called "constants" in C). It's more common to C++ folks and avoids confusion with declaration of "example". –  Johannes Schaub - litb Feb 21 '10 at 14:32

7 Answers 7

up vote 6 down vote accepted

C provides no standard way to designate an integer constant with width less that of type int.

However, stdint.h does provide the UINT8_C() macro to do something that's pretty much as close to what you're looking for as you'll get in C.

But most people just use either no suffix (to get an int constant) or a U suffix (to get an unsigned int constant). They work fine for char-sized values, and that's pretty much all you'll get from the stdint.h macro anyway.

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You can cast the constant. For example:

min(static_cast<unsigned char>(9), example2);

You can also use the constructor syntax:

typedef unsigned char uchar;
min(uchar(9), example2);

The typedef isn't required on all compilers.

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I think you are the only one that decrypted his pretty secret question correctly. Firstly, i didn't figure out either what he really wanted to ask. –  Johannes Schaub - litb Feb 21 '10 at 13:44
    
Right, that is my current work around, with this question I was hoping to avoid the cast, but it sounds like the answer is there is no literal that will allow me to avoid the cast. –  WilliamKF Feb 21 '10 at 16:07

Simply const unsigned char example = 0; will do fine.

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no, it violates MISRA Rule 77, you need to cast it as janmn answers –  Claptrap Feb 9 '12 at 8:11

Assuming that you are using std::min what you actually should do is explicitly specify what type min should be using as such

unsigned char example2 = 0;
min<unsigned char>(9, example2);
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I suppose '\0' would be a char literal with the value 0, but I don't see the point either.

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This is not unsigned char, but signed char. –  WilliamKF Feb 21 '10 at 5:10
5  
@WilliamKF: the type of '\0' in C++ is neither signed char not unsigned char, it is char as Axel says. char is unlike other integral types: signed int and int are the same type, but signed char and char are not. –  Steve Jessop Feb 21 '10 at 12:27

If you are using Visual C++ and have no need for interoperability between compilers, you can use the ui8 suffix on a number to make it into an unsigned 8-bit constant.

min(9ui8, example2);

You can't do this with actual char constants like '9' though.

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There is no suffix for unsigned char types. Integer constants are either int or long (signed or unsigned) and in C99 long long. You can use the plain 'U' suffix without worry as long as the value is within the valid range of unsigned chars.

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