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I have a .txt file consisting of 1's and 0's like so;

11111100000001010000000101110010
11111100000001100000000101110010
00000000101001100010000000100000

I would like to be able to read 8 (1's and 0's) and put each 'byte' into a byte array. So a line would be 4 bytes;

11111100 00000101 00000001 01110010 --> 4 bytes, line 1
11111100 00000110 00000001 01110010 --> 8 bytes, line 2
00000000 10100110 00100000 00100000 --> total 12 bytes, line 3
                ...
and so on.

I believe I need to store the data in a binary file but I'm not sure how to do this. Any help is greatly appreciated.

Edit 1:

I would like to put 8 1's and 0's (11111100, 00000101) into a byte and store in a byte array so 11111100 would be the first byte in the array, 00000101 the second and so on. I hope this is clearer.

Edit 2:

fileopen = new JFileChooser(System.getProperty("user.dir") + "/Example programs"); // open file from current directory
        filter = new FileNameExtensionFilter(".txt", "txt");
        fileopen.addChoosableFileFilter(filter);

        if (fileopen.showOpenDialog(null)== JFileChooser.APPROVE_OPTION) 
        {
            try
            {
                file = fileopen.getSelectedFile();

                //create FileInputStream object
                FileInputStream fin = new FileInputStream(file);

                byte[] fileContent = new byte[(int)file.length()];

                fin.read(fileContent);

                for(int i = 0; i < fileContent.length; i++)
                {
                    System.out.println("bit " + i + "= " + fileContent[i]);
                }

                //create string from byte array
                String strFileContent = new String(fileContent);
                System.out.println("File content : ");
                System.out.println(strFileContent);                      

            }
            catch(FileNotFoundException e){}
            catch(IOException e){}
        }
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1  
Could you be a bit more specific where your problem is? –  Philipp Dec 8 '12 at 16:20
    
what have you tried? –  Don Roby Dec 8 '12 at 16:27
    
I will edit with example code. –  omegaFlame Dec 8 '12 at 16:39
add comment

2 Answers 2

up vote 1 down vote accepted

Here's one way, with comments in the code:

import java.lang.*;
import java.io.*;
import java.util.*;

public class Mkt {
  public static void main(String[] args) throws Exception {
    BufferedReader br = new BufferedReader(new FileReader("in.txt"));
    List<Byte> bytesList = new ArrayList<Byte>();

    // Read line by line
    for(String line = br.readLine(); line != null; line = br.readLine()) {
      // 4 byte representations per line
      for(int i = 0; i < 4; i++) {
        // Get each of the 4 bytes (i.e. 8 characters representing the byte)
        String part = line.substring(i * 8, (i + 1) * 8);
        // Parse that into the binary representation
        // Integer.parseInt is used as byte in Java is signed (-128 to 127)
        byte currByte = (byte)Integer.parseInt(part, 2);
        bytesList.add(currByte);
      }
    }

    Byte[] byteArray = bytesList.toArray(new Byte[]{});

    // Just print for test
    for(byte currByte: byteArray) {
      System.out.println(currByte);
    }
  }
}

Input is read from file named in.txt. Here's a sample run:

$ javac Mkt.java && java Mkt
-4
5
1
114
-4
6
1
114
0
-90
32
32

Hope this helps to get you started, you can tweak to your needs.

share|improve this answer
    
Thank you, this is exactly what I wanted. –  omegaFlame Dec 8 '12 at 17:43
    
Sure thing, glad to help! –  icyrock.com Dec 8 '12 at 21:12
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Use BufferedReader to read in the txt file.

BufferedReader in = new BufferedReader(...);
ArrayList<byte> bytes = new ArrayList<byte>();
ArrayList<char> buffer = new ArrayList<char>();
int c = 0;
while((c = in.read()) >= 0) {
    if(c == '1' || c == '0') buffer.add((char)c);
    if(buffer.size() == 8) {
        bytes.add(convertToByte(buffer));
        buffer.clear();
    }
}
share|improve this answer
    
Thanks for your answer –  omegaFlame Dec 8 '12 at 17:44
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