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Can you tell me what exactly does the 'u' after a number, for example:

#define NAME_DEFINE 1u 
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4 Answers 4

It is a way to define unsigned literal integer constants.

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Integer literals like 1 in C code are always of the type int. int is the same thing as signed int. One adds u or U (equivalent) to the literal to ensure it is unsigned int, to prevent various unexpected bugs and strange behavior.

One example of such a bug:

On a 16-bit machine where int is 16 bits, this expression will result in a negative value:

long x = 30000 + 30000;

Both 30000 literals are int, and since both operands are int, the result will be int. A 16-bit signed int can only contain values up to 32766, so it will overflow. x will get a strange, negative value because of this, rather than 60000 as expected.

The code

long x = 30000u + 30000u;

will however behave as expected.

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this expression will result in a negative value. Well or demons will fly out of your nose as integer overflows are undefined behavior. –  ouah Jan 27 '12 at 9:01
    
@ouah In theory yes. In the real world, all compilers I have ever seen handle integer overflows in the same manner. Anyway, it is a bug regardless of the result. –  Lundin Jan 27 '12 at 10:10
    
the fact that integer overflow is undefined is not only theoritical. Even in the real world, compilers take advantage of integers overflow being undefined behavior to perform optimizations. gcc for example has at least 20 cases where it doesn't consider integer overflow to wrap so it can perform optimization. A simple example is an expression like a - 8 < 42, if a is a signed type gcc could reduce the expression to a < 50. –  ouah Jan 27 '12 at 10:28
    
+1. Great answer. –  Alex Reynolds Jan 27 '12 at 10:58
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it means "unsigned int", basically it functions like a cast to make sure that numeric constants are converted to the appropriate type at compile-time.

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It's not converted, it already is of type unsigned int. –  Keith Thompson Jan 27 '12 at 7:07
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Yes, but H2CO3 said "it functions like a cast", he didn't say it is a cast! –  Basile Starynkevitch Jan 27 '12 at 7:09
    
I mean, without the "u" it would be signed as that's the default for integer constants. So tge u is a notice to the compiler to take it as unsigned. I know that it's not a cast, it was only a sample for better understanding. –  user529758 Jan 27 '12 at 7:10
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It is a way of telling the compiler that the constant 1 is meant to be used as an unsigned integer. Some compilers assume that any number without a suffix like 'u' is of int type. To avoid this confusion, it is recommended to use a suffix like 'u' when using a constant as an unsigned integer. Other similar suffixes also exist. For example, for float 'f' is used.

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Not "some compilers". All compilers. –  Lundin Jan 27 '12 at 7:50
    
I did not want to generalize, since I personally have used only a couple of compilers. –  Mocha Jan 27 '12 at 8:06
    
My point is that the C standard enforces the compiler to treat an integer literal without 'u' as signed int. –  Lundin Jan 27 '12 at 8:45
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@Lundin Not exactly correct, it can also be a long or long long. Without suffix, an integer literal's type is the first of int, long and long long which can hold the value (if any). –  Daniel Fischer Jan 27 '12 at 13:00
    
@DanielFischer: That is true. But it will always be of signed type unless you write the 'u'. –  Lundin Jan 27 '12 at 15:16
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