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I've run across some code like this:

line += addr & 0x3fULL;

Obviously, 'U' and 'L' are not hex digits. I'm guessing that the 'ULL' at the end of that hex numeric literal means "Unsigned Long Long" - am I correct? (this sort of thing is very difficult to google) if so then this is some sort of suffix modifier on the number?

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2 Answers 2

up vote 26 down vote accepted

From the gcc manual:

ISO C99 supports data types for integers that are at least 64 bits wide, and as an extension GCC supports them in C90 mode and in C++. Simply write long long int for a signed integer, or unsigned long long int for an unsigned integer. To make an integer constant of type long long int, add the suffix LL to the integer. To make an integer constant of type unsigned long long int, add the suffix ULL to the integer.

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Yes that's correct.

  • 0x makes it a hexadecimal literal.
  • ULL makes it type unsigned long long.
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I suppose it makes the type at least that, but since it's the largest available type, that's probably the same thing. – Kerrek SB Jan 10 '12 at 19:29
You're right. I just tested it with long long x = 0xfffffffffffful; on Windows and it doesn't truncate - no warnings either. – Mysticial Jan 10 '12 at 19:34
All literals only specify the minimal desired width, with the absolute minimum being int. But any literal has a type that supports it, if any... – Kerrek SB Jan 10 '12 at 19:37

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