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Recipe 3.10 Turning Bits On or OffProblemYou have a numeric value or an enumeration that contains bit flags. You need a method to turn on (set the bit to 1) or turn off (set the bit to 0) one or more of these bit flags. In addition, you also want a method to flip one or more bit flag values; that is, change the bit(s) to their opposite value. SolutionThe following method turns one or more bits on: public static int TurnBitOn(int value, int bitToTurnOn)
{
return (value | bitToTurnOn);
}
The following method turns one or more bits off: public static int TurnBitOff(int value, int bitToTurnOff)
{
return (value & ~bitToTurnOff);
}
The following method flips a bit to its opposite value: public static int FlipBit(int value, int bitToFlip)
{
return (value ^ bitToFlip);
}
DiscussionWhen a large number of flags are required, and particularly when combinations of flags can be set, it becomes cumbersome and unwieldy to use Boolean variables. In this case, using the binary representation of a number, we can assign each bit to indicate a specific Boolean value. Each Boolean value is called a bit flag. For example, we have a number defined as a byte data type. This number is comprised of eight binary bit values, which can be either a 1 or a 0. Supposing we assign a color to each bit, our number would be defined as follows: byte colorValue = 0; // colorValue initialized to no color // colorValue Bit position // red 0 (least-significant bit) // green 1 // blue 2 // black 3 // grey 4 // silver 5 // olive 6 // teal 7 (most-significant bit) By setting each bit to 0 or 1, we can define a color value for the colorValue variable. Unfortunately, the colorValue variable does not take into account all colors. We can remedy this by allowing multiple bits to be set to 1. This trick allows us to combine red (bit 0) and green (bit 1) to get the color yellow; red (bit 0) and blue (bit 2) to get violet; or red, green, and blue to get white.
Now that we have our bit flags set up in the colorValue variable, we need a way to set the individual bits to a 0 or 1, as well as a way to determine whether one or more bits (colors) are turned on. To do this, we use a bitmask. A bitmask is a constant number, usually of the same type as the target type containing the bit flags. This bitmask value will be ANDed, ORed, or XORed with the number containing the bit flags to determine the state of each bit flag or to set each bit flag to a 0 or 1: [Flags]
public enum ColorBitMask
{
NoColorBitMask = 0, //binary value == 00000000
RedBitMask = 1, //binary value == 00000001
GreenBitMask = 2, //binary value == 00000010
BlueBitMask = 4, //binary value == 00000100
BlackBitMask = 8, //binary value == 00001000
GreyBitMask = 16, //binary value == 00010000
SilverBitMask = 32, //binary value == 00100000
OliveBitMask = 64, //binary value == 01000000
TealBitMask = 128, //binary value == 10000000
YellowBitMask = 3, //binary value == 00000011
VioletBitMask = 5, //binary value == 00000101
WhiteBitMask = 7, //binary value == 00000111
}
One common use for the & operator is to set one or more bits in a bit flag value to 0. If we AND a binary value with 1, we always obtain the original binary value. If, on the other hand, we AND a binary value with 0, we always obtain 0. Knowing this, we can use the bitmask values to remove various colors from the colorValue variable: ColorBitMask color = YellowBitMask; ColorBitMask newColor = color & ~ColorBitMask.RedBitMask); This operation removes the RedBitMask from the color value. This value is then assigned to the newColor variable. The newColor variable now contains the value 2 (00000010 in binary), which is equal to the GreenBitMask value. Essentially, we removed the color red from the color yellow and ended up with the color green, which is a constituent color of yellow. The | operator can also be used to set one or more bits to 1. If we OR a binary value with 0, we always obtain the original binary value. If, on the other hand, we OR a binary value with 1, we always obtain 1. Using this knowledge, we can use the bitmask values to add various colors to the color variable. For example: ColorBitMask color = ColorBitMask.RedBitMask; ColorBitMask newColor = color | ColorBitMask.GreenBitMask; This operation ORs the GreenBitMask to the color value, which is currently set to the value RedBitMask. This value is then assigned to the newColor variable. The newColor variable now contains the value 3 (00000011 in binary); this value is equal to the YellowBitMask value. Essentially, we added the color green to the color red and obtained the color yellow. The ^ operator is often used to flip or invert one or more bits in a bit flag value. It returns a 1 only when either bit is set to 1. If both bits are set to 1s or 0s, this operator returns a 0. This operation provides a convenient method of flipping a bit: ColorBitMask color = ColorBitMask.RedBitMask; ColorBitMask newColor = color ^ ColorBitMask.RedBitMask; The code shown here flips the least-significant bit (defined by the RedBitMask operation) to its opposite value. So if the color were red, it would become 0, or no defined color, as shown here: 00000001 == Color (red)
^ 00000001 == RedBitMask
00000000
If we XOR this result a second time with the bitmask RedBitMask, we get our original color (red) back again, as shown here: 00000000 == Color (red)
^ 00000001 == RedBitMask
00000001 == red
If this operation is performed on the color yellow, we can obtain the color other than red that makes up this color. This operation is shown here along with the code: ColorBitMask color = ColorBitMask.YellowBitMask;
ColorBitMask newColor = color ^ ColorBitMask.RedBitMask;
00000011 == Color (yellow)
^ 00000001 == RedBitMask
00000010 == green
See AlsoSee Recipe 1.4; see the "C# Operators" topic in the MSDN documentation. |
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