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I'm looking for an algorithm to retrieve the two closest out of 3. I don't have any variable to get close to, just the three of this. For example, if i have 31, 52 and 84, i'd like the function to return 31 and 52.

I've tried some methods with array sorting, but fact is the three numbers are variables (X, Y and Z). When I sort my [X, Y, Z] array, i lose the order of vars.

I'm sure there's a very simple solution, i'm feeling quite silly right now... This is actually a MAXScript project so I'd like to avoid specific language functions, but any kind of information would be greatly appreciated.

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What does sorting have to do with this problem at all? –  Wooble May 2 '12 at 11:24
    
Duplicate here –  Chris May 2 '12 at 11:26
    
@Chris: That's a different problem with a different solution. This is finding the two closest numbers amount a set of given numbers. The other question is finding the one closest number in a set to a single given number. –  David Schwartz May 2 '12 at 11:27
    
@DavidSchwartz aha my mistake, I looked at the first answer in terms of algorithm specifics of finding out the closest between two numbers. And misread that only one is passed in. –  Chris May 2 '12 at 11:31

2 Answers 2

up vote 4 down vote accepted

Call the three numbers A, B, and C.

Compute three variables:

AB = (A - B)^2
BC = (B - C)^2
CA = (C - A)^2

Then compare AB, BC, and CA. If AB is smallest, output A and B. If BC is smallest, output B and C. If CA is smallest, output C and A.

If you want to make it a bit more elegant, create a structure that consists of three numbers and create three such structures as follows:

S1 = (A-B)^2, A, B
S2 = (B-C)^2, B, C
S3 = (C-A)^2, C, A

Then sort S1,S2,S3 based on the first number. For the entry that sorts first, output its second two numbers.

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Actually, you could go with just abs(A - B) etc. :) –  Vlad May 2 '12 at 11:31
    
The way with sorting is obviously less efficient: you need O(n^2 log (n^2)) = O(n^2 log n) for it, while for simple finding a maximum just O(n^2) (here n is number of variables). –  Vlad May 2 '12 at 11:33
    
@Vlad Make a call into the library to call code that will likely have an unpredictable branch? Or make a macro? Or an if/negate with, again, an unpredictable branch. Yuck. A single multiplication is much nicer. (As for the complexity argument for sorting, if n is fixed at 3, it doesn't matter. But of course you're right that we only need to find the minimum.) –  David Schwartz May 2 '12 at 11:35
    
there is a possibility to calculate abs without branching with some bit tricks: graphics.stanford.edu/~seander/bithacks.html#IntegerAbs –  Vlad May 2 '12 at 11:41
    
@Vlad: That seems like a lot of unneeded complexity for such a simple problem. But I suppose you can argue that your compiler may well have an inlined, optimized abs operation too. –  David Schwartz May 2 '12 at 11:44

For just 3 variables, you need to compare the distances between them and choose the closest two (see David's answer). For n variables, you can do this trick:

  1. sort the values (O(n log n))
  2. go through the sorted list and find the smallest difference between the adjacent variables (O(n))
  3. result is the pair of variables with the smallest difference
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This is a nice approach. It's simple and efficient. And it doesn't require any fancy extra work to return the desired values. –  David Schwartz May 2 '12 at 11:38
    
@David: thanks for your evaluation! Anyway, my answer is just an enhancement for the imaginary case of n variables. –  Vlad May 2 '12 at 17:11
    
True, but even for just three variables, it's simpler to explain. –  David Schwartz May 2 '12 at 22:21

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