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I saw an interesting technique used in an answer to another question, and would like to understand it a little better.

We're given an unsigned 64-bit integer, and we are interested in the following bits:

1.......2.......3.......4.......5.......6.......7.......8.......

Specifically, we'd like to move them to the top eight positions, like so:

12345678........................................................

We don't care about the value of the bits indicated by ., and they don't have to be preserved.

The solution was to mask out the unwanted bits, and multiply the result by 0x2040810204081. This, as it turns out, does the trick.

How general is this method? Can this technique be used to extract any subset of bits? If not, how does one figure out whether or not the method works for a particular set of bits?

Finally, how would one go about finding the (a?) correct multiplier to extract the given bits?

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24  
If you found that one interesting, have a look at this list: graphics.stanford.edu/~seander/bithacks.html A lot of them (ab)use a wider-integer multiplication/division to achieve interesting results. ("Reverse the bits in a byte with 4 operations" part shows how to deal with the bitshift/multiplication trick when you don't have enough space and need to mask/multiply twice) –  viraptor Jan 27 '13 at 13:18
    
@viraptor: Excellent point. If you understand the limitations of this method, you can really use multiplication to accomplish a lot with respect to bit manipulation. –  Pé de Leão Jan 27 '13 at 13:31
8  
So interestingly there is an instruction in AVX2 (which sadly isn't available yet) that does exactly the operation you describe: software.intel.com/sites/products/documentation/studio/composer/… –  JPvdMerwe Jan 27 '13 at 19:41
3  
Another place to look for clever bit-twiddling algorithms is MIT HAKMEM –  Barmar Jan 29 '13 at 18:57
1  
Um livro que conheço sobre o assunto (e gosto bastante) é o "Hacker's Delight" link –  Salles Jan 31 '13 at 16:15

5 Answers 5

up vote 206 down vote accepted

Very interesting question, and clever trick.

Let's look at a simple example of getting a single byte manipulated. Using unsigned 8 bit for simplicity. Imagine your number is xxaxxbxx and you want ab000000.

The solution consisted of two steps: a bit masking, followed by multiplication. The bit mask is a simple AND operation that turns uninteresting bits to zeros. In the above case, your mask would be 00100100 and the result 00a00b00.

Now the hard part: turning that into ab.......

A multiplication is a bunch of shift-and-add operations. The key is to allow overflow to "shift away" the bits we don't need and put the ones we want in the right place.

Multiplication by 4 (00000100) would shift everything left by 2 and get you to a00b0000 . To get the b to move up we need to multiply by 1 (to keep the a in the right place) + 4 (to move the b up). This sum is 5, and combined with the earlier 4 we get a magic number of 20, or 00010100. The original was 00a00b00 after masking; the multiplication gives:

000000a00b000000
00000000a00b0000 +
----------------
000000a0ab0b0000
xxxxxxxxab......

From this approach you can extend to larger numbers and more bits.

One of the questions you asked was "can this be done with any number of bits?" I think the answer is "no", unless you allow several masking operations, or several multiplications. The problem is the issue of "collisions" - for example, the "stray b" in the problem above. Imagine we need to do this to a number like xaxxbxxcx. Following the earlier approach, you would think we need {x 2, x {1 + 4 + 16}} = x 42 (oooh - the answer to everything!). Result:

00000000a00b00c00
000000a00b00c0000
0000a00b00c000000
-----------------
0000a0ababcbc0c00
xxxxxxxxabc......

As you can see, it still works, but "only just". They key here is that there is "enough space" between the bits we want that we can squeeze everything up. I could not add a fourth bit d right after c, because I would get instances where I get c+d, bits might carry, ...

So without formal proof, I would answer the more interesting parts of your question as follows: "No, this will not work for any number of bits. To extract N bits, you need (N-1) spaces between the bits you want to extract, or have additional mask-multiply steps."

The only exception I can think of for the "must have (N-1) zeros between bits" rule is this: if you want to extract two bits that are adjacent to each other in the original, AND you want to keep them in the same order, then you can still do it. And for the purpose of the (N-1) rule they count as two bits.

There is another insight - inspired by the answer of @Ternary below (see my comment there). For each interesting bit, you only need as many zeros to the right of it as you need space for bits that need to go there. But also, it needs as many bits to the left as it has result-bits to the left. So if a bit b ends up in position m of n, then it needs to have m-1 zeros to its left, and n-m zeros to its right. Especially when the bits are not in the same order in the original number as they will be after the re-ordering, this is an important improvement to the original criteria. This means, for example, that a 16 bit word

a...e.b...d..c..

Can be shifted into

abcde...........

even though there is only one space between e and b, two between d and c, three between the others. Whatever happened to N-1?? In this case, a...e becomes "one block" - they are multiplied by 1 to end up in the right place, and so "we got e for free". The same is true for b and d (b needs three spaces to the right, d needs the same three to its left). So when we compute the magic number, we find there are duplicates:

a: << 0  ( x 1    )
b: << 5  ( x 32   )
c: << 11 ( x 2048 )
d: << 5  ( x 32   )  !! duplicate
e: << 0  ( x 1    )  !! duplicate

Clearly, if you wanted these numbers in a different order, you would have to space them further. We can reformulate the (N-1) rule: "It will always work if there are at least (N-1) spaces between bits; or, if the order of bits in the final result is known, then if a bit b ends up in position m of n, it needs to have m-1 zeros to its left, and n-m zeros to its right."

@Ternary pointed out that this rule doesn't quite work, as there can be a carry from bits adding "just to the right of the target area" - namely, when the bits we're looking for are all ones. Continuing the example I gave above with the five tightly packed bits in a 16 bit word: if we start with

a...e.b...d..c..

For simplicity, I will name the bit positions ABCDEFGHIJKLMNOP

The math we were going to do was

ABCDEFGHIJKLMNOP

a000e0b000d00c00
0b000d00c0000000
000d00c000000000
00c0000000000000 +
----------------
abcded(b+c)0c0d00c00

Until now, we thought anything below abcde (positions ABCDE) would not matter, but in fact, as @Ternary pointed out, if b=1, c=1, d=1 then (b+c) in position G will cause a bit to carry to position F, which means that (d+1) in position F will carry a bit into E - and our result is spoilt. Note that space to the right of the least significant bit of interest (c in this example) doesn't matter, since the multiplication will cause padding with zeros from beyone the least significant bit.

So we need to modify our (m-1)/(n-m) rule. If there is more than one bit that has "exactly (n-m) unused bits to the right (not counting the last bit in the pattern - "c" in the example above), then we need to strengthen the rule - and we have to do so iteratively!

We have to look not only at the number of bits that meet the (n-m) criterion, but also the ones that are at (n-m+1), etc. Let's call their number Q0 (exactly n-m to next bit), Q1 (n-m+1), up to Q(N-1) (n-1). Then we risk carry if

Q0 > 1
Q0 == 1 && Q1 >= 2
Q0 == 0 && Q1 >= 4
Q0 == 1 && Q1 > 1 && Q2 >=2
... 

If you look at this, you can see that if you write a simple mathematical expression

W = N * Q0 + (N - 1) * Q1 + ... + Q(N-1)

and the result is W > 2 * N, then you need to increase the RHS criterion by one bit to (n-m+1). At this point, the operation is safe as long as W < 4; if that doesn't work, increase the criterion one more, etc.

I think that following the above will get you a long way to your answer...

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1  
Great. One more subtle problem: the m-1/n-m test fails some of the time due to carry-bits. Try a...b..c...d -- you wind up with b+c in the fifth bit which if they're both 1 makes a carry bit that clobbers d(!) –  Ternary Jan 28 '13 at 1:36
1  
upshot: n-1 bits of space forbids configurations that should work (i.e. a....b..c...d), and m-1/n-m allows ones that don't work (a...b..c...d). I haven't been able to come up with a simple way to characterize which will work and which won't. –  Ternary Jan 28 '13 at 1:50
    
You're good! The carry problem means we need slightly more space to the right of each bit as "protection". At first glance, if there are at least two bits that have exactly the minimum n-m to the right, you need to increase the space by 1. More generally, if there are P such bits, you need log2(P) additional bits to the right of any that had the minimum (m-n). Seems right to you? –  Floris Jan 28 '13 at 2:29
1  
It is probably a coincidence, but this answer was accepted when the number of upvotes reached 127. If you have read this far, you will smile with me... –  Floris Feb 1 '13 at 16:48
1  
+1 Outstanding answer. The analysis is wonderful. –  WhozCraig Dec 4 '13 at 12:24

Very interesting question indeed. I'm chiming in with my two cents, which is that, if you can manage to state problems like this in terms of first-order logic over the bitvector theory, then theorem provers are your friend, and can potentially provide you with very fast answers to your questions. Let's re-state the problem being asked as a theorem:

"There exists some 64-bit constants 'mask' and 'multiplicand' such that, for all 64-bit bitvectors x, in the expression y = (x & mask) * multiplicand, we have that y.63 == x.63, y.62 == x.55, y.61 == x.47, etc."

If this sentence is in fact a theorem, then it is true that some values of the constants 'mask' and 'multiplicand' satisfy this property. So let's phrase this in terms of something that a theorem prover can understand, namely SMT-LIB 2 input:

(set-logic BV)

(declare-const mask         (_ BitVec 64))
(declare-const multiplicand (_ BitVec 64))

(assert
  (forall ((x (_ BitVec 64)))
    (let ((y (bvmul (bvand mask x) multiplicand)))
      (and
        (= ((_ extract 63 63) x) ((_ extract 63 63) y))
        (= ((_ extract 55 55) x) ((_ extract 62 62) y))
        (= ((_ extract 47 47) x) ((_ extract 61 61) y))
        (= ((_ extract 39 39) x) ((_ extract 60 60) y))
        (= ((_ extract 31 31) x) ((_ extract 59 59) y))
        (= ((_ extract 23 23) x) ((_ extract 58 58) y))
        (= ((_ extract 15 15) x) ((_ extract 57 57) y))
        (= ((_ extract  7  7) x) ((_ extract 56 56) y))
      )
    )
  )
)

(check-sat)
(get-model)

And now let's ask the theorem prover Z3 whether this is a theorem:

z3.exe /m /smt2 ExtractBitsThroughAndWithMultiplication.smt2

The result is:

sat
(model
  (define-fun mask () (_ BitVec 64)
    #x8080808080808080)
  (define-fun multiplicand () (_ BitVec 64)
    #x0002040810204081)
)

Bingo! It reproduces the result given in the original post in 0.06 seconds.

Looking at this from a more general perspective, we can view this as being an instance of a first-order program synthesis problem, which is a nascent area of research about which few papers have been published. A search for "program synthesis" filetype:pdf should get you started.

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2  
(+1) This is very illuminating, thank you. –  NPE Jan 27 '13 at 20:32
6  
+1 Pure awesomness! –  ewernli Jan 28 '13 at 7:41
16  
The best part of this is that I have learned something from each of the answers, and none of those giving them are already 250K rep SO-as-a-job folks. –  Andrew Backer Jan 28 '13 at 16:11
1  
I am impressed! I didn't know that "first-order logic over the bitvector theory" was even a real subject that people studied - let alone that it could give such interesting results. Thanks so much for sharing this. –  Floris Jan 29 '13 at 3:54
2  
Sure. SO is also a game (anything with points is) for a lot of people. Just human nature, like hunting in /r/new so you can post the first comment and get karma. Nothing bad about it, as long as the answers are still good. I'm just happier to be able to upvote someone's time and effort when they are likely to actually notice that someone did. Encouragement is good stuff :) And... that was a really old comment, and still true. I don't see how it's not clear. –  Andrew Backer Sep 25 '13 at 6:44

Every 1-bit in the multiplier is used to copy one of the bits into its correct position:

  • 1 is already in the correct position, so multiply by 0x0000000000000001.
  • 2 must be shifted 7 bit positions to the left, so we multiply by 0x0000000000000080 (bit 7 is set).
  • 3 must be shifted 14 bit positions to the left, so we multiply by 0x0000000000000400 (bit 14 is set).
  • and so on until
  • 8 must be shifted 49 bit positions to the left, so we multiply by 0x0002000000000000 (bit 49 is set).

The multiplier is the sum of the multipliers for the individual bits.

This only works because the bits to be collected are not too close together, so that the multiplication of bits which do not belong together in our scheme either fall beyond the 64 bit or in the lower don't-care part.

Note that the other bits in the original number must be 0. This can be achieved by masking them with an AND operation.

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1  
Great explanation! Your short answer made it possible to quickly find the value of the "magic number." –  Pé de Leão Jan 27 '13 at 13:37
2  
This really is the best answer, but it wouldn't have been so helpful without reading (the first half) of @floris's answer first. –  Andrew Backer Jan 28 '13 at 16:12
1  
(+1) for capturing so much of the explanation in so few words! –  Floris Jan 29 '13 at 3:53

(I'd never seen it before. This trick is great!)

I'll expand a bit on Floris's assertion that when extracting n bits you need n-1 space between any non-consecutive bits:

My initial thought (we'll see in a minute how this doesn't quite work) was that you could do better: If you want to extract n bits, you'll have a collision when extracting/shifting bit i if you have anyone (non-consecutive with bit i) in the i-1 bits preceding or n-i bits subsequent.

I'll give a few examples to illustrate:

...a..b...c... Works (nobody in the 2 bits after a, the bit before and the bit after b, and nobody is in the 2 bits before c):

  a00b000c
+ 0b000c00
+ 00c00000
= abc.....

...a.b....c... Fails because b is in the 2 bits after a (and gets pulled into someone else's spot when we shift a):

  a0b0000c
+ 0b0000c0
+ 00c00000
= abX.....

...a...b.c... Fails because b is in the 2 bits preceding c (and gets pushed into someone else's spot when we shift c):

  a000b0c0
+ 0b0c0000
+ b0c00000
= Xbc.....

...a...bc...d... Works because consecutive bits shift together:

  a000bc000d
+ 0bc000d000
+ 000d000000
= abcd000000

But we have a problem. If we use n-i instead of n-1 we could have the following scenario: what if we have a collision outside of the part that we care about, something we would mask away at the end, but whose carry bits end up interfering in the important un-masked range? (and note: the n-1 requirement makes sure this doesn't happen by making sure the i-1 bits after our un-masked range are clear when we shift the the ith bit)

...a...b..c...d... Potential failure on carry-bits, c is in n-1 after b, but satisfies n-i criteria:

  a000b00c000d
+ 0b00c000d000
+ 00c000d00000
+ 000d00000000
= abcdX.......

So why don't we just go back to that "n-1 bits of space" requirement? Because we can do better:

...a....b..c...d.. Fails the "n-1 bits of space" test, but works for our bit-extracting trick:

+ a0000b00c000d00
+ 0b00c000d000000
+ 00c000d00000000
+ 000d00000000000
= abcd...0X......

I can't come up with a good way to characterize these fields that don't have n-1 space between important bits, but still would work for our operation. However, since we know ahead of time which bits we're interested in we can check our filter to make sure we don't experience carry-bit collisions:

Compare (-1 AND mask) * shift against the expected all-ones result, -1 << (64-n) (for 64-bit unsigned)

The magic shift/multiply to extract our bits works if and only if the two are equal.

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I like it - you are right that for each bit, you only need as many zeros to the right of it as you need space for bits that need to go there. But also, it needs as many bits to the left as it has result-bits to the left. So if a bit b ends up in position m of n, then it needs to have m-1 zeros to its left, and n-m-1 zeros to its right. Especially when the bits are not in the same order in the original number as they will be after the re-ordering, this is an important improvement to the original criteria. This is fun. –  Floris Jan 27 '13 at 21:38

In addition to the already excellent answers to this very interesting question, it might be useful to know that this bitwise multiplication trick has been known in the computer chess community since 2007, where it goes under the name of Magic BitBoards.

Many computer chess engines use several 64-bit integers (called bitboards) to represent the various piece sets (1 bit per occupied square). Suppose a sliding piece (rook, bishop, queen) on a certain origin square can move to at most K squares if no blocking pieces were present. Using bitwise-and of those scattered K bits with the bitboard of occupied squares gives a specific K-bit word embedded within a 64-bit integer.

Magic multiplication can be used to map these scattered K bits to the lower K bits of a 64-bit integer. These lower K bits can then be used to index a table of pre-computed bitboards that representst the allowed squares that the piece on its origin square can actually move to (taking care of blocking pieces etc.)

A typical chess engine using this approach has 2 tables (one for rooks, one for bishops, queens using the combination of both) of 64 entries (one per origin square) that contain such pre-computed results. Both the highest rated closed source (Houdini) and open source chess engine (Stockfish) currently use this approach for its very high performance.

Finding these magic multipliers is done either using an exhaustive search (optimized with early cutoffs) or with trial and erorr (e.g. trying lots of random 64-bit integers). There have been no bit patterns used during move generation for which no magic constant could be found. However, bitwise carry effects are typically necessary when the to-be-mapped bits have (almost) adjacent indices.

AFAIK, the very general SAT-solver approachy by @Syzygy has not been used in computer chess, and neither does there appear to be any formal theory regarding existence and uniqueness of such magic constants.

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I'd have thought that anyone who has full-blown formal CS background would have jumped at the SAT approach directly upon seeing this problem. Perhaps CS people find chess uninteresting? :( –  Kuba Ober Sep 23 '13 at 18:10
    
@KubaOber It's mostly the other way around: computer chess is dominated by bit-twiddlers who program in C or assembly, and hate any kind of abstraction (C++, templates, OO). I think that scares off the real CS guys :-) –  TemplateRex Sep 23 '13 at 18:36
    
Especially nice topping to this interesting post. Especially liked the links you took time to enter. Thanks! –  ryyker Feb 4 at 21:22
    
@ryyker glad to have been of help! –  TemplateRex Feb 4 at 21:33

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