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I have a question about converting String type binary number to bit and write in the txt file.

For example we have String like "0101011" and want to convert to bit type "0101011" then write in to the file on the disk.

I would like to know is there anyway to covert to string to bit..

i was searching on the web they suggest to use bitarray but i am not sure


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Do you want to write the text "0101011" to the file, or do you want to write the byte 0101011? –  Louis Wasserman Dec 4 '12 at 0:40
If we just write "010101" to file, i am guessing that it is string type file so it takes more space than bits. Therefore, in the java file we get string type binary number "010101" then convert to the bit type then i would like to write into file.. –  Dc Redwing Dec 4 '12 at 0:42

2 Answers 2

Try this:

int value = Integer.parseInt("0101011", 2); // parse base 2

Then the bit pattern in value will correspond to the binary interpretation of the string "0101011". You can then write value out to a file as a byte (assuming the string is no more than 8 binary digits).

EDIT You could also use Byte.parseByte("0101011", 2);. However, byte values in Java are always signed. If you tried to parse an 8-bit value with the 8th bit set (like "10010110", which is 150 decimal), you would get a NumberFormatException because values above +127 do not fit in a byte. If you don't need to handle bit patterns greater than "01111111", then Byte.parseByte works just as well as Integer.parseInt.

Recall, though, that to write a byte to a file, you use OutputStream.write(int), which takes an int (not byte) value—even though it only writes one byte. Might as well go with an int value to start with.

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Why not Byte.parseByte? –  arshajii Dec 4 '12 at 0:42
@A.R.S. - That would work as well, except you could not parse byte values with the 8th bit set. Besides, writing a byte to an OutputStream takes an int argument (even though it's only going to write a byte). I usually just go with an int to start with, although there's certainly a "self-documenting" aspect to using Byte.parseByte(). –  Ted Hopp Dec 4 '12 at 0:45

You can try the below code to avoid overflows of the numbers.

    long avoidOverflows = Long.parseLong("11000000000000000000000000000000", 2);
    int thisShouldBeANegativeNumber = (int) avoidOverflows;
    System.out.println("Currect value : " + avoidOverflows + " -> " + "Int value : " + thisShouldBeANegativeNumber);

you can see the output

Currect value : 3221225472 -> Int value : -1073741824
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I would like to covert string type binary number "010101" to the bit type –  Dc Redwing Dec 4 '12 at 0:56
@DcRedwing What do you mean 'bit type'? Do you mean byte? –  arshajii Dec 4 '12 at 0:57
My above answer will be useful for converting large number into proper decimal format without any overflow. –  Bhavik Ambani Dec 4 '12 at 1:04

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