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I have a BitArray with the length of 8, and I need a function to convert it to a byte. How to do it?

Specifically, I need a correct function of ConvertToByte

    BitArray bit=new BitArray(new bool[]
                                  {
                                      false,false,false,false,
                                      false,false,false,true
});
    //How to write ConvertToByte
    byte myByte=ConvertToByte(bit);
    var recoveredBit = new BitArray(new[] { myByte });
    Assert.AreEqual(bit, recoveredBit);
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6 Answers

up vote 22 down vote accepted

This should work:

byte ConvertToByte(BitArray bits)
{
    if (bits.Count != 8)
    {
        throw new ArgumentException("bits");
    }
    byte[] bytes = new byte[1];
    bits.CopyTo(bytes, 0);
    return bytes[0];
}
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2  
Mind: this computes the bits in reverse order, e.g. the BitArray from the example will convert into 128, not 1! –  tehvan Feb 18 '09 at 7:41
    
Why does this happen in a reverse order? –  Kornelije Petak Feb 4 '10 at 19:39
    
@kornelijepetak: That's just the way that BitArray works, in terms of the way it chooses to copy values. –  Jon Skeet Feb 4 '10 at 19:43
1  
@kornelijepetak: It is important that it copies in reverse order. If you use BitConverter on other types they are stored in little-endian format. –  user295190 Oct 4 '10 at 18:25
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A bit late post, but this works for me:

public static byte[] BitArrayToByteArray(BitArray bits)
{
    byte[] ret = new byte[bits.Length / 8];
    bits.CopyTo(ret, 0);
    return ret;
}

Works with:

string text = "Test";
byte[] bytes = System.Text.Encoding.ASCII.GetBytes(text);
BitArray bits = new BitArray(bytes);
bytes[] bytesBack = BitArrayToByteArray(bits);
string textBack = System.Text.Encoding.ASCII.GetString(bytesBack);
// bytes == bytesBack
// text = textBack

.

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3  
Instead of "bits.Length / 8", you should use "(bits.Length - 1) / 8 + 1", otherwise if the BitArray has a length of 7, your byte array will be empty. The "- 1" part makes sure a multiple of 8 will not return plus one. Thanks to stackoverflow.com/questions/17944/… –  iano Nov 2 '11 at 22:03
    
Good point. A Math.Max(1, bits.Length / 8) will also work I guess (slightly more readable). I always operate on 8 bit bytes so I haven't considered the underflow condition. –  Tedd Hansen Nov 15 '11 at 19:17
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This should do the trick. However the previous answer is quite likely the better option.

    public byte ConvertToByte(BitArray bits)
    {
        if (bits.Count > 8)
            throw new ArgumentException("ConvertToByte can only work with a BitArray containing a maximum of 8 values");

        byte result = 0;

        for (byte i = 0; i < bits.Count; i++)
        {
            if (bits[i])
                result |= (byte)(1 << i);
        }

        return result;
    }

In the example you posted the resulting byte will be 0x80. In other words the first value in the BitArray coresponds to the first bit in the returned byte.

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A poor man's solution:

protected byte ConvertToByte(BitArray bits)
{
    if (bits.Count != 8)
    {
        throw new ArgumentException("illegal number of bits");
    }

    byte b = 0;
    if (bits.Get(7)) b++;
    if (bits.Get(6)) b += 2;
    if (bits.Get(5)) b += 4;
    if (bits.Get(4)) b += 8;
    if (bits.Get(3)) b += 16;
    if (bits.Get(2)) b += 32;
    if (bits.Get(1)) b += 64;
    if (bits.Get(0)) b += 128;
    return b;
}
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That's should be the ultimate one. Works with any length of array.

private List<byte> BoolList2ByteList(List<bool> values)
    {

        List<byte> ret = new List<byte>();
        int count = 0;
        byte currentByte = 0;

        foreach (bool b in values) 
        {

            if (b) currentByte |= (byte)(1 << count);
            count++;
            if (count == 7) { ret.Add(currentByte); currentByte = 0; count = 0; };              

        }

        if (count < 7) ret.Add(currentByte);

        return ret;

    }
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byte GetByte(BitArray input)
{
  int len = input.Length;
  if (len > 8)
    len = 8;
  int output = 0;
  for (int i = 0; i < len; i++)
    if (input.Get(i))
      output += (1 << (len - 1 - i)); //this part depends on your system (Big/Little)
      //output += (1 << i); //depends on system
  return (byte)output;
}

Cheers!

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