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This is what I see in java, and it puzzles me.

Long.toHexString(0xFFFFFFFF) returns ffffffffffffffff

Similarly, 0xFFFFFFFF and Long.parseLong("FFFFFFFF", 16) are unequal.

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I'm not so familiar with java, but I think 0xFFFFFFFF is interpreted as normal int (+/- 2^32-1), so this creates overflow and that is why it returns what you think is incorrect. As for second part, those two numbers don't have same amount of F's, so that me be the reason –  enoyhs Jan 30 '12 at 14:54
    
@enoyhs Yeah, my bad about the wrong F count, fixed that. –  Vic Jan 30 '12 at 14:58

4 Answers 4

up vote 5 down vote accepted

As others have said, 0xFFFFFFFF evaluates to the int value -1, which is promoted to a long.

To get the result you were expecting, qualify the constant with the L suffix to indicate it should be treated as a long, i.e. Long.toHexString(0xFFFFFFFFL).

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Marking as answer because of the "promoted" - that's when the penny dropped. –  Vic Jan 30 '12 at 15:48

This:

Long.toHexString(0xFFFFFFFF)

is equivalent to:

Long.toHexString(-1)

which is equivalent to:

Long.toHexString(0xFFFFFFFFFFFFFFFFL)

Basically, the problem is that you're specifying a negative int value, which is then being converted to the equivalent negative long value, which consists of "all Fs". If you really want 8 Fs, you should use:

Long.toHexString(0xFFFFFFFFL)
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Of course, Long in java is 64-bits long! 0xFFFFFFFF means -1 as an int, when written in 64 bits, it's ffffffffffffffff.

However, if the number were unsigned, the string would also be ffffffff [but there's no unsigned in java].

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Why 0xFFFFFFFF is -1? How can one represent the number returned by Long.parseLong("FFFFFFFF", 16) in hexa? –  Vic Jan 30 '12 at 14:57
1  
int is 32-bits, so FFFFFFFF == 1111 1111 1111 1111 1111 1111 1111 1111. When you interpret it as a signed integer, it's obviously -1. –  0605002 Jan 30 '12 at 15:01

0xFFFFFFFF is an int literal. When using ints (32 bit in Java) 0xFFFFFFFF equals -1. What your code does:

  • the compiler parses 0xFFFFFFFF as an int with value -1
  • the java runtime calls Long.toHexString(-1) (the -1 get "casted" automatically to a long which is expected here)

And when using longs (64 bit in Java) -1 is 0xffffffffffffffff.

long literals are post-fixed by an L. So your expected behaviour is written in Java as:

Long.toHexString(0xFFFFFFFFL)

and Long.toHexString(0xFFFFFFFFL) is "ffffffff"

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