47

What does the postfix (or suffix) U mean for the following values?

0U
100U
  • 10
    Note that where you see U, it's common to use the lowercase version "u", because when it's capitalized it can be easily be confused with hex constants. I.e. 0xFFFFFFFFu is more obvious than 0xFFFFFFFFU. – Billy ONeal Dec 7 '10 at 19:41
  • 11
    the title says all, so why i need to write the question body? – lovespring Dec 7 '10 at 20:25
  • @BillyONeal 0x11111110ll – Sugar Feb 26 '18 at 11:20
  • @Sugar: I guess I use F a lot more than 0 and 1 in hex constants :) – Billy ONeal Feb 26 '18 at 22:49
59

It stands for unsigned.

When you declare a constant, you can also specify its type. Another common example is L, which stands for long. (and you have to put it twice to specify a 64-bit constant).

Example: 1ULL.

It helps in avoiding explicit casts.

|improve this answer|||||
  • 8
    There are also cases where it's necessary. For instance, integral constants are interpreted as integers by the compiler, so a constant like 0xffffffffffffffff will lose its high 32 bits without the ll suffix. – zneak Dec 14 '11 at 18:48
35

Integer constants in C and C++ can optionally have several suffixes:

123u      the value 123 is an unsigned int
123l       (that's a lowercase L) 123 is a signed long
123L      ditto
123uL    unsigned long
123LL    a signed long long, a 64 bit or 128 bit value (depending on the environment)
123uLL  unsigned long long

|improve this answer|||||
  • cppreference says for "12345...u" that "the type is unsigned long long even without a long long suffix". Quite confusing, since your answer says 123u is unsigned int. Who is right, or where is the misunderstanding? – Ela782 Mar 23 '18 at 22:47
  • @Ela782: I looked at cpp reference, but couldn't find anything which says "u" implies long long. Did I misunderstand? – wallyk Mar 23 '18 at 23:59
  • If you click my link in the comment above, near the bottom of that page, as a comment in the code example, it says: << 12345678901234567890u << '\n'; // the type is unsigned long long even without a long long suffix. Did you find that? It's certainly possible that I misunderstand that sentence. – Ela782 Mar 24 '18 at 10:42
  • 1
    Ooh I get it now, I see! Thank you! You mean "since it exceeds the range for (unsigned) int" though, because u would make it an (unsigned) int - but because the number is so large, it'll make an (unsigned) long long. Correct? – Ela782 Mar 27 '18 at 19:45
  • 2
    @Ela782: Yep. I am not sure off the top of my head, but without the u it could well be a signed long long. (checked) Nope, it overflows a 64-bit signed int. The u is needed. If the architecture it were compiled for had 128-bit ints one could choose either signed or unsigned. – wallyk Mar 28 '18 at 1:38

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.