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As in this code:

int nx = (int)((rev3[gx]) / 193U);

Whats with the U in the end of 193 ?

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5 Answers 5

up vote 6 down vote accepted

The u is unsigned, that is: 1 is the int value 1, and 1u is the unsigned int value 1.

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2  
And the effect of it in this case is that if rev3[gx] is an int, and therefore could be negative, that it will be converted to unsigned before being divided by 193. On my machine (int)(-1 / 193) is 0, whereas (int)(-1 / 193U) is 22253716. But if rev3[gx] is a signed integer type bigger than int, then the U makes no difference to the result: (-1LL/193U) == (-1LL/193), both are type long long. Got to love them integer promotion rules. –  Steve Jessop Mar 8 '10 at 0:35

It means that the number is an unsigned int, which is a data type much like an int except that it has no negative values, which is a trade-off it makes so that it can store larger values (twice as large as a regular int).

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It means it's an unsigned int constant. It's a way of telling the compiler to use a specific type for a constant where it wouldn't otherwise know the type. A naked 193 would be treated as an int normally.

It's similar to the L suffix for long, the ULL for unsigned long long and so forth.

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U means unsigned.

Have a look here for more: http://cplus.about.com/od/learnc/ss/variables_6.htm

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It means to treat the value as an unsigned value

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