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byte[] sample = new byte[]{10,20,30};

-the value is 6 bits and started from third bit (from right to left)

new byte[]{10,20,30} looks like "00001010 00010100 00011110" (should be in order like bytes order) so i need "00001010 00010100 *000111*10" -my value is 7

the solution based on help(answer 1 by Yaur), just bits direction changed

   public static bool GetValue(byte[] data, int position)
        {
            var bytePos = data.Length - 1 - position / 8;//right -> left
            //var bytePos = position / 8;//left -> right
            var bitPos = position % 8;

            return ((data[bytePos] & (1 << bitPos)) != 0);//right -> left
            //return ((data[bytePos] & (1 << (7 - bitPos))) != 0); //left -> right
        }

        public static long GetValue(byte[] data, int position, int length)
        {
            if (length > 62)
            {
                throw new ArgumentException("not going to work properly with 63 bits if the first bit is 1");
            }
            long retv = 0;
            for (int i = position + length - 1; i > position - 1; i--)
            //for(int i = position;i<position+length;i++)//left -> right
            {
                if (GetValue(data, i)) retv |= 1;
                retv = retv << 1;
            }
            retv = retv >> 1;
            return retv;
        }
share|improve this question
1  
I don't think your question is very clear. Can you explain more what you mean in this part "new byte[]{10,20,30} is "1010 10100 11110" and i need ..."? – Austin Brunkhorst Dec 12 '13 at 22:04
    
BitArray does not have a .Copy(byte[]) function. Is that supposed to be CopyTo or is that a extension method? – Scott Chamberlain Dec 12 '13 at 22:06
    
Divide by 8 to find the byte index. The remainder is the bit index within that byte. – David Heffernan Dec 12 '13 at 22:06
    
new byte[]{10,20,30} is not 1010 10100 11110. It's 00011110 00010100 00001010. – MarcinJuraszek Dec 12 '13 at 22:10
    
yes, my mistake, it is 00001010 00010100 00011110 (should be in order like bytes order - every byte i have to see separately and successively) – Fox Dec 12 '13 at 23:00

This should work for most inputs:

public bool GetValue(byte[] data, int position) 
{
    var bytePos = position / 8;
    var bitPos = position % 8;
    return ((data[bytePos] & (1 << bitPos))!=0)
    // depending on the order in which you expect the bits you might need this instead
    //return ((data[bytePos] & (1 << (7-bitPos)))!=0)

}

public long GetValue(byte[] data, int position, int length) 
{
    if(length > 62)
    {
        throw new ArgumentException("not going to work properly with 63 bits if the first bit is 1");
    }
    long retv=0;
    for(int i = position;i<position+length;i++)
    {
         if(GetValue(data,i)
         {
             retv |=1;
         }
         retv = retv << 1;
    }
    retv = retv >> 1;
}
share|improve this answer
    
did you mean "retv = retv << 1" and "return retv = retv >> 1;"?... i try this but looks like something wrong - maybe the problem is in reversing bits before make complete the value? – Fox Dec 12 '13 at 22:36
    
that is correct, I fixed it in the answer and added code to get the bits from high order to low order. – Yaur Dec 12 '13 at 22:58
    
still cannot get the value 7 :) in any case something wrong :( really i am not sure that i am understand what your code doing :( – Fox Dec 12 '13 at 23:12
    
7 is the correct answer if you are dealing with this as a bit stream. what would you expect if you passed a position of 13 and a length of 8 100 000111 or 11100? – Yaur Dec 12 '13 at 23:31
    
byte[] {10,20,30} is "00001010 00010100 00011110" - bytes should be converted to bits in "as it order", than if i need value from position 13 and length of 8, i should get this value from right side like in windows calculator: 0000 /*1010 0001*/ 0100 00011110, so my value is 1010 0001 – Fox Dec 12 '13 at 23:40

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