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Hi i want to convert a long integer to binary but the problem is i want a fixed 16 bit binary result after conversion like if i convert 2 to 16 bit binary it should give me 0000000000000010 as ans can anyone help me ?

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2  
Is it a String of 1s and 0s that you want as the output? –  uckelman Apr 12 '10 at 9:38
    
16bit is not a very long integer... –  Thilo Apr 12 '10 at 9:39
    
you only need non-negative integers right? –  Thilo Apr 12 '10 at 9:40
    
@Thilo: Indeed. 16 bit is a short isn't it? –  Martijn Courteaux Apr 12 '10 at 9:57
    
@Martijn: A short in Java is still signed, though. –  Thilo Apr 12 '10 at 9:59
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8 Answers

Most likely what you want is Integer.toBinaryString(), combined with something to ensure that you get exactly 16 places:

int val = 2;
String bin = Integer.toBinaryString(0x10000 | val).substring(1);

The idea here is to get the zero padding by putting a 1 in the 17th place of your value, and then use String.substring() to chop off the leading 1 this creates, thus always giving you exactly 16 binary digits. (This works, of course, only when you are certain that the input is a 16-bit number.)

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Nice trick! +1! –  polygenelubricants Apr 12 '10 at 9:56
1  
My bad. I saw 16 bits and was thinking short. Accept my apology? FYI, short val = -1; String bin = Integer.toBinaryString(0x10000 | val).substring(1); is what won't work. –  Matt Quigley Nov 7 '13 at 19:23
    
NP. Yes, that definitely won't work if you start with a negative short. –  uckelman Nov 7 '13 at 22:44
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I'm presuming that you want a String output of fixed length (16). Here's what the code would look like:

String binarized = Integer.toBinaryString(i);
int len = binarized.length();
String sixteenZeroes = "00000000000000000";
if (len < 16)
  binarized = sixteenZeroes.subString(0, 16-len).concat(binarized);
else
  binarized = binarized.subString(len - 16);
return binarized;

Warning: I didn't compile or run it, so make sure no bug is there :)

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As I understand things, not running the code is OK, as long as you prove it correct. –  msandiford Apr 12 '10 at 10:50
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In contrast to many suggestions here: Integer.toBinaryString, doesn't work for a 16 bit (a short) and it will not print leading zero's. The reason is that (as the name suggests) this will only work for integers. And for negative numbers the bit representation will change (the first bit indicates a negative number). The two numbers below represent the same number in short and int. So if you want to represent the raw bits you have received (this is the general application of your problem), this function will generate strange output.

decimal: -3
short:                     1111 1111 1111 1101
int:   1111 1111 1111 1111 1111 1111 1111 1101

EDIT: Changed the number above

Hence you can not cast the short if you are interested in the bit.

Java doesn't provide the implementation for short, so you will have to provide your own. Something like this (size is the number of bits):

int displayMask = 1 << (size - 1);
StringBuffer buf = new StringBuffer( size);
for ( int c = 1; c <= size; c++ ) 
{
    buf.append( ( value & displayMask ) == 0 ? '0' : '1' );
    value <<= 1;
}
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1  
Those two aren't the same numbers. What are you talking about? –  polygenelubricants Apr 12 '10 at 10:25
    
You are right, I used the wrong bit representation. I will update the numbers. –  Thirler Apr 12 '10 at 10:54
    
You don't need all that. short decimal = -3; String s = Integer.toBinaryString(0xFFFF & decimal); will produce the correct 1111111111111101. –  Matt Quigley Nov 7 '13 at 19:27
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Integer.toBinaryString will convert an int to its binary representation as a string.

It does not give you leading zeroes, so if you really need the string to have those and be 16 bits, you can just add them yourself.

You should know how to do that.


Do note that an int is actually 32 bits in Java. You should also know how two's complement works. The binary representation of -1, for example, is 32 1s.

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In terms of an algorithm to convert base10 numbers to binary, I personally think the following is pretty straightforward:

char[] array;

for (i; i < 16; i++)
{
    if (yourNumber % 2 == 0)
          array[16-i] = '0';
    else if (yourNumber % 2 == 1)
          array[16-i] = '1';
    yourNumber = yourNumber / 2;
}

You can then convert your char array to a String if you like.

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Binary is a representation and not a format to convert an integer to. For example, if you have an integer:

int i = 2;

The binary representation will be 00000010. Java has only signed integers, so this link will be helpful.

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if you want the binary representation of a long, then there is a method in the Long objet to do so :

String Long.toString(long i, int radix);

with a radix of 2, you should have a binary representation.

regards
Guillaume

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I had to do it for a 32 bit number and ended up with:

String stringWord = Long.toBinaryString(word);
while (stringWord.length() < 32) // ensure that length of word is 32
        stringWord = "0" + stringWord;
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