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I need an efficient method with the following signature:

public byte SetBits(byte oldValue, byte newValue, int startBit, int bitCount)

Which returns oldValue, only that starting from its startbit bit up to its startbit + bitcount bit (zero-based), it's replaced with the first bitcount bits of newValue

For example, if:

  • oldValue = 11101101
  • newValue = 10000011
  • startBit = 1
  • bitCount = 2

Then the result would be: 11101111 (the segment 10 in oldValue is replaced with the corresponding 11 segment in newValue)

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btw void method returning a byte is really cool ;) [no offense :)] –  Can Poyrazoğlu Jul 20 '11 at 1:47
    
Thanks, fixed that –  Ohad Schneider Jul 20 '11 at 1:48
1  
I just got done with a 12 hour kernel debugging session so I hope my code can help you :) –  Jesus Ramos Jul 20 '11 at 1:48
    
And here I am complaining :) –  Ohad Schneider Jul 20 '11 at 1:51
1  
By debugging I mean yelling at the monitor whenever the kernel hangs. –  Jesus Ramos Jul 20 '11 at 2:01
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3 Answers

up vote 4 down vote accepted

Here you go... Bitshift both directions to get the mask... then use it to generate the new byte

public static byte SetBits(byte oldValue, byte newValue, int startBit, int bitCount)
{
    if (startBit < 0 || startBit > 7 || bitCount < 0 || bitCount > 7 
                     || startBit + bitCount > 8)
        throw new OverflowException();

    int mask = (255 >> 8 - bitCount) << startBit;
    return Convert.ToByte((oldValue & (~mask)) | ((newValue << startBit) & mask));
}
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Currently too dumbfounded by highmem errors to write something like this. GJ –  Jesus Ramos Jul 20 '11 at 2:32
    
Thanks, this looks similar to what I ended up doing, only more efficient (just like I predicted) - will accept as soon as I test your solution –  Ohad Schneider Jul 20 '11 at 20:53
    
OK, I needed to make some small modifications (I've edited your answer accordingly) and now it works well –  Ohad Schneider Jul 21 '11 at 20:23
    
@ohadsc Ahh... 0 indexed from right side... my implementation was from left side. Glad you adapted it to your needs. –  deepee1 Jul 21 '11 at 20:50
    
@deepee1, wait, you really indexed your bit numbers from the left (most-significant) side?? –  Jonathon Reinhart Jan 21 '12 at 5:17
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startBit--; //account for 0 indexing
byte flag = 1 << startBit;
for (int i = startBit; i < bitCount; i++, flag <<= 1)
{
    byte mask = newValue & flag;
    if (mask != 0)
        oldValue |= mask;
    else
        oldValue &= ~(flag);
}
return oldValue;

Some brain compiled code here but it should be along the lines that you want if I read the question correctly.

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|= would not zero ones in oldValue –  Ohad Schneider Jul 20 '11 at 1:48
    
Thanks for catching that, will fix :) –  Jesus Ramos Jul 20 '11 at 1:50
    
flag doesn't change during each invocation. You'd have to make flag a delegate and 1 << startBit a lambda for this to work. Or add flag = 1 << startBit to the third for loop clause. Also, due to the &= operating one bit at a time, I think you'd clear out oldValue after two iterations through the loop. –  Merlyn Morgan-Graham Jul 20 '11 at 1:57
    
Woops I see what you mean, I accidentally put startBit <<= 1 instead of flag, my bad –  Jesus Ramos Jul 20 '11 at 1:58
    
@Jesus: I still think you're going to nearly always get 0 for oldValue at the end. For example, first you mask against 0001000, then against 0010000. I think you need to build your mask in the loop, then apply the mask. Also, I don't think a triple-& is going to work, either, if you're trying to replace those bits. You probably want to mask oldValue, reverse-mask newValue, and | the results together. –  Merlyn Morgan-Graham Jul 20 '11 at 2:02
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If I understood your question, I think this is what you are after:

byte mask = 0xFF;
for (int i = startPos-1; i < numBits; i++)
{
     if ((newValue & (1 << i)) == 1)
     {
          mask = (byte)(mask | (1 << i));
     }
     else
     {
          mask = (byte)(mask &~(1<<i));
     }
 }
 return (byte)(oldValue & mask);

This code is based on some neat tricks from Low Level Bit Hacks You Absolutely Must Know

I know setting a bit in a byte initialized to 0xFF is really a no-op, but I felt the code should be left in as it can help show off what is really going on. I encourage users of the code to optimize it as needed.

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