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I have a byte, specifically one byte from a byte array which came in via UDP sent from another device. This byte stores the on/off state of 8 relays in the device.

How do I get the value of a specific bit in said byte? Ideally an extension method would look the most elegant and returning a bool would make the most sense to me.

public static bool GetBit(this byte b, int bitNumber)
{
    //black magic goes here
}
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9 Answers 9

up vote 88 down vote accepted

Easy. Use a bitwise AND to compare your number with the value 2^bitNumber, which can be cheaply calculated by bit-shifting.

//your black magic
var bit = (b & (1 << bitNumber-1)) != 0;

EDIT: To add a little more detail because there are a lot of similar answers with no explanation:

A bitwise AND compares each number, bit-by-bit, using an AND join to produce a number that is the combination of bits where both the first bit and second bit in that place were set. Here's the logic matrix of AND logic in a "nibble" that shows the operation of a bitwise AND:

  0101
& 0011
  ----
  0001 //Only the last bit is set, because only the last bit of both summands were set

In your case, we compare the number you passed with a number that has only the bit you want to look for set. Let's say you're looking for the fourth bit:

  11010010
& 00001000
  --------
  00000000 //== 0, so the bit is not set

  11011010
& 00001000
  --------
  00001000 //!= 0, so the bit is set

Bit-shifting, to produce the number we want to compare against, is exactly what it sounds like: take the number, represented as a set of bits, and shift those bits left or right by a certain number of places. Because these are binary numbers and so each bit is one greater power-of-two than the one to its right, bit-shifting to the left is equivalent to doubling the number once for each place that is shifted, equivalent to multiplying the number by 2^x. In your example, looking for the fourth bit, we perform:

       1 (2^0) << (4-1) ==        8 (2^3)
00000001       << (4-1) == 00001000

Now you know how it's done, what's going on at the low level, and why it works.

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1  
Because of missing braces (operator precedence) this code does not compile, it must be var bit = (b & (1 << bitNumber-1)) != 0; –  bitbonk Aug 30 '12 at 8:44
    
Thanks, editing. –  KeithS Aug 30 '12 at 14:17

While it's good to read and understand Josh's answer, you'll probably be happier using the class Microsoft provided for this purpose: System.Collections.BitArray It's available in all versions of .NET Framework.

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1  
+1 for built-in solution. :) –  Sapph Jan 31 '11 at 17:59
    
This is fabulous but I believe Josh's solution is much faster and more efficient. –  user2332868 Apr 2 at 18:59
    
@user2332868: the JIT compiler does specially recognize calls to certain library functions and generate efficient code, but I have no idea if these particular functions get the love. –  Ben Voigt Apr 2 at 19:01
    
well to be sure you can do the same as Josh but in pure inline assembly. But sadly I only program in NASM assembly and don't know about the assembly C# compiles into :(. –  user2332868 Apr 2 at 19:10

This

public static bool GetBit(this byte b, int bitNumber) {
   return (b & (1 << bitNumber)) != 0;
}

should do it, I think.

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another way of doing it :)

return ((b >> bitNumber) & 1) != 0;
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Using BitArray class and making an extension method as OP suggests:

public static bool GetBit(this byte b, int bitNumber)
{
    System.Collections.BitArray ba = new BitArray(new byte[]{b});
    return ba.Get(bitNumber);
}
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3  
No, please don't create and throw away a BitArray for each bit test. –  Ben Voigt Jan 28 at 20:58
    
@BenVoigt, it's an extension method on a byte per OP request. Where do you recommend storing the BitArray instance? –  Jay Walker Jan 29 at 7:29
1  
You push back against the request and say, don't call it like a method on the byte, call it on the BitArray. Maybe the byte variable can completely go away. –  Ben Voigt Jan 29 at 15:00
    
+1 for making it into an extension :) –  user2332868 Apr 2 at 19:03

try this:

return (b & (1 << bitNumber))>0;
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This website has multiple implementations of how to get a bit from a byte in C#. It also has quite a good explanation of this. http://bytes.com/topic/c-sharp/answers/505085-reading-bits-byte-file

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The method is to use another byte along with a bitwise AND to mask out the target bit.

I used convention from my classes here where "0" is the most significant bit and "7" is the least.

public static class ByteExtensions
{
    // Assume 0 is the MSB andd 7 is the LSB.
    public static bool GetBit(this byte byt, int index)
    {
        if (index < 0 || index > 7)
            throw new ArgumentOutOfRangeException();

        int shift = 7 - index;

        // Get a single bit in the proper position.
        byte bitMask = (byte)(1 << shift);

        // Mask out the appropriate bit.
        byte masked = (byte)(byt & bitMask);

        // If masked != 0, then the masked out bit is 1.
        // Otherwise, masked will be 0.
        return masked != 0;
    }
}
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Try the code below. The difference with other posts is that you can set/get multiple bits using a mask (field). The mask for the 4th bit can be 1<<3, or 0x10, for example.

    public int SetBits(this int target, int field, bool value)
    {
        if (value) //set value
        {
            return target | field;
        }
        else //clear value
        {
            return target & (~field);
        }
    }

    public bool GetBits(this int target, int field)
    {
        return (target & field) > 0;
    }

** Example **

        bool is_ok = 0x01AF.GetBits(0x10); //false
        int res = 0x01AF.SetBits(0x10, true);
        is_ok = res.GetBits(0x10);  // true
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