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I have the following problem, so I tried to convert a double to its binary representation, but using this Long.toBinaryString(Double.doubleToRawLongBits(d)) doesn't help, since I have large numbers, that Long can't store them i.e 2^900.

Appreciate any help :).

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2  
The binary representation can only be 64-bit long as a double is 64-bit. I don't know where 2^900 comes from. –  Peter Lawrey Jun 15 '11 at 15:04
    
Just out of curiosity, what kind of application do you work on to need to work with such a large number ? –  GhiOm Jun 15 '11 at 15:05
    
Useful link : stackoverflow.com/questions/397692/… –  99tm Jun 15 '11 at 15:13
    
I have to do some experiments thought to do sampling on those possibilities but I see i need to do random sampling! –  Besnik Jun 15 '11 at 15:17

5 Answers 5

Long.toBinaryString(Double.doubleToRawLongBits(d)) appears to work just fine.

System.out.println("0:                0b" + Long.toBinaryString(Double.doubleToRawLongBits(0D)));
System.out.println("1:                0b" + Long.toBinaryString(Double.doubleToRawLongBits(1D)));
System.out.println("2:                0b" + Long.toBinaryString(Double.doubleToRawLongBits(2D)));
System.out.println("2^900:            0b" + Long.toBinaryString(Double.doubleToRawLongBits(Math.pow(2, 900))));
System.out.println("Double.MAX_VALUE: 0b" + Long.toBinaryString(Double.doubleToRawLongBits(Double.MAX_VALUE)));

/*
    prints:
    0:                0b0
    1:                0b11111111110000000000000000000000000000000000000000000000000000
    2:                0b100000000000000000000000000000000000000000000000000000000000000
    2^900:            0b111100000110000000000000000000000000000000000000000000000000000
    Double.MAX_VALUE: 0b111111111101111111111111111111111111111111111111111111111111111
*/
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+1 ... for the solution ... –  99tm Jun 15 '11 at 15:12

You can use Double.toHexString(d) and then transform the hexadecimal string into a binary one using a for loop and a StringBuilder.

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Thanks this might help on my problem! –  Besnik Jun 15 '11 at 15:10

You can use a BigInteger to hold your large number and the BigInteger.toString() method to retrieve a binary representation of it.

BigInteger bigNum = new BigInteger(sYourNum);
System.out.println( bigNum.toString(2) );
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http://www.serc.iisc.ernet.in/~amohanty/SE288/ieee754.html you have source code there as well

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Have you tried using java.math.BigInteger and calling toString(int radix) with a parameter of 2?

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1  
Double.doubleToRawLongBits(d) is only ever going to return a 64-bit long. –  Peter Lawrey Jun 15 '11 at 15:05
    
By the way, the above applies to integer numbers only -- which I have assumed to be the case based on the 2^900 you mentioned? –  Liv Jun 15 '11 at 15:05
    
The thing is that i compute that using the Math.pow(2, 900) which returns double! –  Besnik Jun 15 '11 at 15:10
3  
Repeat after me, all double are 64-bit, all double are 64-bit, ... –  Peter Lawrey Jun 15 '11 at 15:12
    
Yup agree :) Thanks for the help all! –  Besnik Jun 15 '11 at 15:15

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