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I'm working in Hadoop, and I need to provide a comparator to sort objects as raw network order byte arrays. This is easy for me to do with integers -- I just compare each byte in order. I also need to do this for floats. I think, but I can't find a reference, that the IEEE 754 format for floats used by Java can be sorted by just comparing each byte as a signed 8 bit value.

Can anyone confirm or refute this?

Edit: the representation is IEEE 754 32 bit floating point. I actually have a (larger) byte buffer and an offset and length within that buffer. I found some utility methods already there that make it easy to turn this into a float, so I guess this question is moot. I'm still curious if anyone knows the answer.

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4 Answers 4

up vote 2 down vote accepted

Positive floats have the same ordering as their bit representations viewed as 2s complement integers. Negative floats do not.

For example, the bit representation of -2.0f is 0xc0000000 and -1.0f is 0xbf800000. If you try to use a comparison on the representations, you get -2.0f > -1.0f, which is incorrect.

There's also the issue of NaNs (which compare unordered against all floating point data, whereas the representations do not), but you may not care about them.

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well, if you are transmitting data over the network, you should have some form of semantic representation for when you are transmitting an int and when you are transmitting a float. Since it is machine agnostic information, data type width should also be defined in some place or predefined by the spec (i.e 32 bit or 64 bit floats). So, what you should really do is accumulate your bytes into the appropriate data type, then use the natural language data types to do the comparison.

To be really accurate with an answer tho, we would need to see your transmit and receive code to see if you are autoboxing primitives via some kind of decorated i/o stream or some such thing. For a better answer, please provide better detail.

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Use Float.toIntBits(float) and compare the integers.

Edit: This works only for positive numbers, including positive infinity, but not NaN. For negative numbers you have to reverse the ordering. And positive numbers are of course greater than negative numbers.

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This works if there are no negative values. –  finnw May 28 '11 at 16:40

This almost works:

int bits = Float.floatToIntBits(x);
bits ^= (bits >> 31) & Integer.MAX_VALUE;

Here negative floats have bits 0-30 inverted (because you want the opposite order to what the original sign/magnitude representation would give you, whilst preserving the sign bit.)

Caveats:

  • NaNs are included in the ordering (best to consider the results undefined if NaNs are involved.)
  • +0 now compares as greater than -0 (the built-in relational operators consider them equal.)

It works for all other values though, including denormals and infinities.

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