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How can I get single bits (or an entire variable) of a double or a float?

For example if I have float a = 0.5;

I would expect a String equal to:
"00111111000000000000000000000000"

or in hex:
"F000000"

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Is this homework? –  dckrooney May 17 '12 at 21:26
    
No. Why? It is related to stackoverflow.com/questions/10637594/… . I thought that if I subtract 1 from the binary value, I would get the other value. –  Jan Ajan May 17 '12 at 21:28
2  
@dcrooney asked because it's good to know whether it's homework because when it's homework we try to be careful with our answers that we don't inhibit your learning :) –  kentcdodds May 17 '12 at 21:30

4 Answers 4

up vote 7 down vote accepted
long bits = Double.doubleToLongBits(myDouble);
System.out.println(Long.toBinaryString(bits));
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If the sign bit is zero, it wouldn't be printed! –  math Nov 4 '13 at 14:42
    
@math, could you explain? Do you mean the sign bit won't be printed, or the value in its entirety? If the former, yes, Long.toBinaryString doesn't print extraneous bits per "This [unsigned long] value is converted to a string of ASCII digits in binary (base 2) with no extra leading 0's", but this is not unique to the sign bit. You can zero pad the value from the left to get your desired column width. –  Mike Samuel Nov 4 '13 at 16:54
    
As I said, it just won't be printed, due to leading zero. Of course, one could pad this with leading zeros, but the statement above could be misinterpreted in that. And yes, if the exponent has leading zeros as well they will be cut of the same. –  math Nov 4 '13 at 22:18

Look at Float.floatToIntBits() or Float.floatToRawIntBits(). That gets you the bits as an int. If you need it as a String, Integer.toBinaryString().

Note, there may be an issue if the HSB is on - you may need to convert to a long to avoid an "overflow".

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The HSB in an IEEE-754 float is the sign bit, unless it's a NaN value, so the sign of the resulting int will be the same as that of the float, with the exception of -0.0. –  Mike Samuel May 18 '12 at 15:06
    
Agreed. That comment was because some of the Java int <-> String code is fussy about the HSB. e.g. this stackoverflow discussion. Though I think it's mainly for parsing Strings, not creating them, so that issue might not apply here. –  user949300 May 18 '12 at 15:32

Double.byteValue() might help you.

There is also a 32-bit equivalent Float.byteValue().

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4  
Why +4? Based on his example, this isn't what he wants. –  user949300 May 17 '12 at 21:32
2  
Byte value just returns the equivalent of (byte) myDouble. It's a lossy conversion. –  Mike Samuel May 18 '12 at 3:07
1  
This answer is wrong. Float.byteValue() and Double.byteValue() simply casts the number to byte. –  Pacerier Aug 22 '14 at 5:15
public void printFloatBits(float f) {
    int bits = Float.floatToIntBits(f);
    // Extract each bit from 'bits' and compare it by '0'
    for (int i=31; i>=0; --i) {
        // int mask = 1 << i;
        // int oneBit = bits & mask;
        // oneBit == 0 or 1?
        System.out.print((bits & (1 << i)) == 0 ? "0" : "1");
    }
}
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2  
please, add some explanation to your code. –  AlexKM Jan 15 at 14:41

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