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I am fairly new to C programming, and I encountered masking. Can someone explain to me the general concept and function of masking? Examples are much appreciated.

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Do you mean masking as in bit masks ? –  Paul R May 8 '12 at 6:09
    
yes bit masking, i forgot to mention that. My bad. –  Mr.Z May 8 '12 at 6:10
    
Do you understand bitwise operators such as & | ^ etc and Boolean logic in general ? Any explanation of mask operations will require this. –  Paul R May 8 '12 at 6:18
    
Yes I have an understand of bitwise operators, and boolean logic –  Mr.Z May 8 '12 at 6:24

1 Answer 1

A mask defines which bits you want to keep, and which bits you want to clear.

Masking is the act of applying a mask to a value. This is accomplished by doing:

  • Bitwise ANDing in order to extract a subset of the bits in the value
  • Bitwise ORing in order to set a subset of the bits in the value
  • Bitwise XORing in order to toggle a subset of the bits in the value

Below is an example of extracting a subset of the bits in the value:

Mask:   00001111b
Value:  01010101b

Applying the mask to the value means that we want to clear the first (higher) 4 bits, and keep the last (lower) 4 bits. Thus we have extracted the lower 4 bits. The result is:

Mask:   00001111b
Value:  01010101b
Result: 00000101b

Masking is implemented using AND, so in C we get:

uint8_t stuff(...) {
  uint8_t mask = 0x0f;   // 00001111b
  uint8_t value = 0x55;  // 01010101b
  return mask & value;
}

Here is a fairly common use-case: Extracting individual bytes from a larger word. We define the high-order bits in the word as the first byte. We use two operators for this, &, and >> (shift right). This is how we can extract the four bytes from a 32-bit integer:

void more_stuff(uint32_t value) {             // Example value: 0x01020304
    uint32_t byte1 = (value >> 24);           // 0x01020304 >> 24 is 0x01 so
                                              // no masking is necessary
    uint32_t byte2 = (value >> 16) & 0xff;    // 0x01020304 >> 16 is 0x0102 so
                                              // we must mask to get 0x02
    uint32_t byte3 = (value >> 8)  & 0xff;    // 0x01020304 >> 8 is 0x010203 so
                                              // we must mask to get 0x03
    uint32_t byte4 = value & 0xff;            // here we only mask, no shifting
                                              // is necessary
    ...
}

Notice that you could switch the order of the operators above, you could first do the mask, then the shift. The results are the same, but now you would have to use a different mask:

uint32_t byte3 = (value & 0xff00) >> 8;
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Good answer but masking can also be applied for setting or toggling specific bits with OR or XOR operations and a suitable mask. –  Paul R May 8 '12 at 6:28
    
@ user239558 thanks for the example and the proper syntax. @ Paul R. Would I simply say mask AND value in the example provided by user239558 –  Mr.Z May 8 '12 at 6:32
    
@Mr.Z: in C, C++ and related languages you would you the bitwise AND operator, which is written as &. –  Paul R May 8 '12 at 6:45
    
@Mr.Z For example: clear one byte of a uint32_t by masking the contents away: #define MASK 0x000000FF .... my_uint32_t &= ~MASK. –  Lundin May 8 '12 at 7:31
1  
Good answer btw, since it is endianess-independent. –  Lundin May 8 '12 at 7:33

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