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Say I have 2 bitsets

bitset<1024> test, current;

How am I supposed to modulus current with test and output it in another bitset<1024>? Note that test may be of any form, not just powers of two?

Looking for an answer with either complete code or complete pseudocode. I will not accept answers involving converting to another type except bitset because although using bitsets here may work slower, but later in the program bitsets are going to be very fast.

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"Looking for an answer with either complete code or complete pseudocode." -> So, what have you tried so far? The internet contains many algorithms on arithmetics. We are not consultants but voluntaries. –  phresnel Jan 31 '12 at 13:19
    
You need a 128-byte integer, not a bitset. –  KennyTM Jan 31 '12 at 13:20
    
@KennyTM: Why 128 bits? –  phresnel Jan 31 '12 at 13:21
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@PhoenicaMacia: If you want maximal speed you should use something like uint64_t[16]. A single 64-bit arithmetic operation is often faster than sixty-four bitwise operations. –  KennyTM Jan 31 '12 at 13:35
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The problem is how do I mod the uint64_t[16]? The % operator can be used on single integers, but this is an array! –  KoinosOfMacedon Jan 31 '12 at 13:41

1 Answer 1

Here's something you could try if you don't want to implement the modulo algorithm yourself:

  1. Instead of std::bitset, use boost::dynamic_bitset.
  2. Use boost::to_block_range to copy the bitset's bytes to a buffer.
  3. Use one of the many bigint libraries to represent a 256-byte integer.
  4. Make the 256-byte bigint use the bytes copied in step #2.
  5. Perform the modulo operation on the bigint.
  6. Convert the result back to a dynamic_bitset.
  7. Profit

Hopefully, there's a bigint library out there that lets you access its buffer, so that you can copy the bytes from the dynamic_bitset directly into the bigint.

And hopefully, the overhead of copying the 256 bytes around is negligible compared to the modulo operation itself.

Oh, and the bigint representation should have the same byte order as the dynamic_bitset.

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