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I wondering whether is it possible to merge two bitfields according a bitmask with bit operations? For example I have two value, and a bitmask:

char mask = 0x29; // 0010 1001
char a = 0x9;     // 0000 1001 original value
char b = 0xE8;    // 1110 1000 modified value

And I want to set the bits in b to the value of a, according the bitmask. Only 3 bits set.

char val = 0xC9;  // 1100 1001 value

So how can I do with only bit operations?

Thanks in advance.

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3 Answers 3

up vote 1 down vote accepted

First, clear off the bits that are set in the mask from b. Then, clear off the bits that are not set in the mask from a. Finally, OR the two results together:

b = (b & ~mask) | (a & mask);

The tilde ~ operator produces the negated mask. ANDing with ~mask zeroes out the bits of b that are set in the mask.

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Thank you, it's nice! –  hcpeter Aug 10 '12 at 11:53

Try something like:

b &= ~mask;       /* Clear bits set in mask. */
b |= (mask & a);  /* Add bits set both in a and in mask. */

Also, you might want to use unsigned types instead of the inconclusive char.

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val = a ^ ((a ^ b) & mask); 

Also works. Usually that doesn't really help as such, but there are circumstances in which it may. If a and b are both constants, for example, it can be simplified more than the normal formula can.

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