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I have 1 String variable in my Java code and it contain of large binary digit. How can I convert it

String binary2 = JTextArea.gettext(); // this is a String variable
Long binary3 = Long.parseLong(binary2);
System.out.print(Long.toOctalString(binary3));
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You can get use of BigInteger class which is more appropriate to use in your solution. It has an overloaded toString() method which takes radix (in your case radix = 8).

String largeBinary = "10101010100000100111011010101";
String octalVersion = (new BigInteger(largeBinary,2)).toString(8);
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Every three binary digits (0 or 1) represent exactly one octal digit (from 0 to 7).

So I think the algorithm is simple: iterate over every 3 subsequent characters and convert them to one octal digit:

"000" -> "0"
"001" -> "1"
"010" -> "2"
"011" -> "3"
...
"111" -> "7"

Extra care need to be taken in the beginning if the length of the string is not a multiply of 3. Example:

"1001001110"

"10|101|001|110"
  2|  5|  1|  6

This approach does not require parsing the string and no extra memory. It can work on arbitrarily long input and is super fast

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1  
"It can work on arbitrarily long input" but only if you know the length in advance. – Henry Jan 12 '13 at 10:20
    
@Henry: you are right, +1. I am mentioning about the length but thanks for emphasizing that. On the other hand it can't be done without knowing the size in advance, and at least you don't have to parse the whole thing. – Tomasz Nurkiewicz Jan 12 '13 at 11:11

A long value can hold any number up to 2^63-1, which is sufficient for many applications. All you need to do is to provide the appropriate radix parameter to the parseLong(String string, int radix) method (and the toString(Long number, int radix) method).

long number = Long.parseLong(binaryString, 2);
String octalString = Long.toOctalString(number); // or Long.toString(number, 8);
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I would hardly call 64 bits "very large" – Bohemian Jan 12 '13 at 11:06
    
Well, it depends on the context. The OP asked for a "large binary digit" without specifying environment or boundaries. My post defines the constraints to which it is applicable. Based on that, anyone looking for a solution can determine whether or not it will work based on their context. – matsev Jan 12 '13 at 12:16

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