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Can someone suggest an algorithm that finds all Pythagorean triplets among numbers in a given array? If it's possible, please, suggest an algorithm faster than O(n2).

Pythagorean triplet is a set {a,b,c} such that a2 = b2 + c2. Example: for array [9, 2, 3, 4, 8, 5, 6, 10] the output of the algorithm should be {3, 4, 5} and {6, 8, 10}.

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What do you mean by "finding pythagorean triplets in an array"? Are you starting with an array of integers and trying to find 3-element subsets that are Pythagorean triples? –  Jim Lewis Jan 9 '10 at 3:47
    
please rephrase the question and make it more clearer –  Anurag Jan 9 '10 at 4:12
4  
question is unclear. perhaps including an example will help? –  Peter Recore Jan 9 '10 at 4:40
2  
Sorry for the ambiguity in the question. I will explain with an example. Suppose i have an array like { 9,2, 3, 4, 8, 5,6, 10} then my algorithm should generate the output 3, 4, 5 and 6, 8, 10 in O(n) complexity or less than 0(n2) –  Supriya Sane Jan 9 '10 at 20:38

11 Answers 11

I understand this question as

Given an array, find all such triplets i,j and k, such that a[i]2 = a[j]2+a[k]2

The key idea of the solution is:

  • Square each element. (This takes O(n) time). This will reduce the original task to "find three numbers in array, one of which is the sum of other two".

Now it you know how to solve such task in less than O(n2) time, use such algorithm. Out of my mind comes only the following O(n2) solution:

  1. Sort the array in ascending order. This takes O(n log n).
  2. Now consider each element a[i]. If a[i]=a[j]+a[k], then, since numbers are positive and array is now sorted, k<i and j<i.

    To find such indexes, run a loop that increases j from 1 to i, and decreases k from i to 0 at the same time, until they meet. Increase j if a[j]+a[k] < a[i], and decrease k if the sum is greater than a[i]. If the sum is equal, that's one of the answers, print it, and shift both indexes.

    This takes O(i) operations.

  3. Repeat step 2 for each index i. This way you'll need totally O(n2) operations, which will be the final estimate.
share|improve this answer
    
Thanks Pavel. I thought of a similar solution. I wanted a more efficient solution. –  Supriya Sane Jan 9 '10 at 20:40
1  
something to note: at the time you determine the triples, the solution i, j, k no longer correspond to the i, j, k of the problem statement (due to the sorting). Can get around this storing an array of (i, a[i]^2) and sorting THAT on the a[i]^2 values. Then you have instant access to the indices from the original array once the solution triples are found. –  Ian Durkan Jun 4 '11 at 19:13
    
This is good, but if you're allowed to use O(n) memory you can use a hashtable to optimize it a bit. It would still be O(n^2). –  gsingh2011 Mar 23 '13 at 20:20

No one knows how to do significantly better than quadratic for the closely related 3SUM problem ( http://en.wikipedia.org/wiki/3SUM ). I'd rate the possibility of a fast solution to your problem as unlikely.


The 3SUM problem is finding a + b + c = 0. Let PYTHTRIP be the problem of finding a^2 + b^2 = c^2 when the inputs are real algebraic numbers. Here is the O(n log n)-time reduction from 3SUM to PYTHTRIP. As ShreevatsaR points out, this doesn't exclude the possibility of a number-theoretic trick (or a solution to 3SUM!).

First we reduce 3SUM to a problem I'll call 3SUM-ALT. In 3SUM-ALT, we want to find a + b = c where all array entries are nonnegative. The finishing reduction from 3SUM-ALT to PYTHTRIP is just taking square roots.

To solve 3SUM using 3SUM-ALT, first eliminate the possibility of triples where one of a, b, c is zero (O(n log n)). Now, any satisfying triple has two positive numbers and one negative, or two negative and one positive. Let w be a number greater than three times the absolute value of any input number. Solve two instances of 3SUM-ALT: one where all negative x are mapped to w - x and all positive x are mapped to 2w + x; one where all negative x are mapped to 2w - x and all positive x are mapped to w + x. The rest of the proof is straightforward.

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2  
I was wondering about whether this problem is related to 3SUM, actually. I tried to find a reduction from 3SUM, but couldn't (even for the problem "find three numbers in an array, one of which is the sum of other two"). Do you have one? (And even if we prove that that problem is 3SUM-hard, it is still conceivable, though unlikely, that this problem can be done by exploiting some number-theoretic properties of Pythagorean triplets.) Thanks, –  ShreevatsaR Apr 12 '10 at 14:09
1  
3SUM-ALT to PYTHTRIP is just taking square roots? Please elaborate. (I know it is late, so sorry about that). Note that we are looking at integer input to PYTHTRIP. –  Aryabhatta Apr 28 '11 at 21:08
    
@ShreevatsaR: wouldn't a + b = c (the pythagorean problem) be the same as a + b - c = 0 (equivalent to the 3SUM problem)? –  John Gietzen Oct 25 at 17:25
    
@JohnGietzen: My comment was posted when this answer had only its first paragraph. But to your comment: a+b=c and a+b-c=0 are obviously the same. But the Pythagorean problem is not a+b=c; it is: "given an array of N nonnegative integers, say whether it contains (a,b,c) such that a^2+b^2=c^2". The 3SUM-ALT problem (proved equivalent to 3SUM above) is "given an array of N nonnegative integers, say whether it contains (a,b,c) such that a+b=c". (If you wish, you can rewrite the PYTHTRIP as "given an array of N nonnegative square integers, find (a,b,c) such that a+b=c". Still different.) –  ShreevatsaR Oct 25 at 18:40
    
@JohnGietzen: To put it differently: consider the following problem, which we can call PYTHTRIP-REAL: "given an array of N nonnegative real numbers, say whether it contains (a,b,c) such that a^2+b^2=c^2". What this answer shows that PYTHTRIP-REAL is as hard as (is equivalent to) 3SUM-ALT, which is as hard as 3SUM. But is the OP's problem (PYTHTRIP-INT) as hard as PYTHTRIP-REAL? Couldn't it be easier? –  ShreevatsaR Oct 25 at 18:48

Not sure if this is any better but you can compute them in time proportional to the maximum value in the list by just computing all possible triples less than or equal to it. The following Perl code does. The time complexity of the algorithm is proportional to the maximum value since the sum of inverse squares 1 + 1/2^2 + 1/3^3 .... is equal to Pi^2/6, a constant.

I just used the formula from the Wikipedia page for generating none unique triples.

my $list = [9, 2, 3, 4, 8, 5, 6, 10];
pythagoreanTriplets ($list);

sub pythagoreanTriplets
{
  my $list = $_[0];
  my %hash;
  my $max = 0;
  foreach my $value (@$list)
  {
    $hash{$value} = 1;
    $max = $value if ($value > $max);
  }
  my $sqrtMax = 1 + int sqrt $max;

  for (my $n = 1; $n <= $sqrtMax; $n++)
  {
    my $n2 = $n * $n;
    for (my $m = $n + 1; $m <= $sqrtMax; $m++)
    {
      my $m2 = $m * $m;
      my $maxK = 1 + int ($max / ($m2 + $n2));
      for (my $k = 1; $k <= $maxK; $k++)
      {
        my $a = $k * ($m2 - $n2);
        my $b = $k * (2 * $m * $n);
        my $c = $k * ($m2 + $n2);
        print "$a $b $c\n" if (exists ($hash{$a}) && exists ($hash{$b}) && exists ($hash{$c}));
      }
    }
  }
}
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I have one more solution,

//sort the array in ascending order 
//find the square of each element in the array

//let 'a' be the array containing square of each element in ascending order 

for(i->0 to (a.length-1))
  for (j->i+1 to  (a.length-1))
    //search the a[i]+a[j] ahead in the array from j+1 to the end of array
      //if found get the triplet according to sqrt(a[i]),sqrt(a[j]) & sqrt(a[i]+a[j])
  endfor
endfor
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It can be done in O(n) time. first hash the elements in map for existence check. after that apply the below algorithm

Scan the array and if element is even number, (n,n^2/2 +1, n^2/2 -1) is triplet to be found. just check for that's existence using hash map lookup. if all elements in triplet exists, print the triplet.

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Here's a solution which might scale better for large lists of small numbers. At least it's different ;v) .

According to http://en.wikipedia.org/wiki/Pythagorean_triple#Generating_a_triple,

a = m^2 - n^2, b = 2mn, c = m^2 + n^2 

b looks nice, eh?

  • Sort the array in O(N log N) time.
  • For each element b, find the prime factorization. Naively using a table of primes up to the square root of the largest input value M would take O(sqrt M/log M) time and space* per element.
  • For each pair (m,n), m > n, b = 2mn (skip odd b), search for m^2-n^2 and m^2+n^2 in the sorted array. O(log N) per pair, O(2^(Ω(M))) = O(log M)** pairs per element, O(N (log N) (log M)) total.

Final analysis: O( N ( (sqrt M/log M) + (log N * log M) ) ), N = array size, M = magnitude of values.

(* To accept 64-bit input, there are about 203M 32-bit primes, but we can use a table of differences at one byte per prime, since the differences are all even, and perhaps also generate large primes in sequence on demand. To accept 32-bit input, a table of 16-bit primes is needed, which is small enough to fit in L1 cache. Time here is an overestimate assuming all prime factors are just less than the square root.)

(** Actual bound lower because of duplicate prime factors.)

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One problem is that non-primitive triples generally don't have that form. You'd need to write a = d*(m^2 - n^2), b = d*2mn, c = d*(m^2 + n^2). I'm not sure what that would do to the complexity. –  Daniel Fischer Jan 6 '13 at 15:56
    
@DanielFischer Just rereading this, I don't think that affects the complexity at all. You have a pair (m,n), m > n, b = 2dmn, and O(3^Ω(M))` such pairs. But O(3^Ω(M)) = O(2^Ω(m)). –  Potatoswatter Jan 7 '13 at 0:58

A few of my co-workers were asked this very same problem in a java cert course they were taking the solution we came up with was O(N^2). We shaved off as much of the problem space as we could but we could not find a way to drop the complexity to N Log N or better.

    public static List<int[]> pythagoreanTripplets(int[] input) {
    List<int[]> answers = new ArrayList<int[]>();
    Map<Long, Integer> map = new HashMap<Long, Integer>();

    for (int i = 0; i < input.length; i++) {
        map.put((long)input[i] * (long)input[i], input[i]);
    }

    Long[] unique = (Long[]) map.keySet().toArray(new Long[0]);
    Arrays.sort(unique);
    long comps =0;
    for(int i =  1 ; i < unique.length;i++)
    {
        Long halfC = unique[i]/2;
        for(int j = i-1 ; j>= 0 ; j--)
        {

            if(unique[j] < halfC) break;
            if(map.containsKey(unique[i] - unique[j]))
            {
                answers.add(new int[]{map.get(unique[i] - unique[j]),map.get(unique[j]),map.get(unique[i])});
            }
        }
    }
    return answers;
}
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This is the one i had implemented ...

import java.util.ArrayList;
import java.util.HashMap;
import java.util.HashSet;
import java.util.List;
import java.util.Map;
import java.util.Set;


/**
 * 
 * @author Pranali Choudhari (pranali_choudhari@persistent.co.in)
 */
public class PythagoreanTriple {

/
    //I hope this is optimized



    public static void main(String[] args) {

        Map<Long,Set<Long>> triples = new HashMap<Long,Set<Long>>();
        List<Long> l1 = new ArrayList<Long>();
        addValuesToArrayList(l1);
        long n =0;        
        for(long i : l1){
            //if its side a.
             n = (i-1L)/2L;
             if (n!=0 && n > 0){
                  putInMap(triples,n,i);
                  n=0;
             }
             //if its side b 

             n = ((-1 + Math.round(Math.sqrt(2*i+1)))/2);
             if (n != 0 && n > 0){
                 putInMap(triples,n,i);
                  n=0;
             }
             n=  ((-1 - Math.round(Math.sqrt(2*i+1)))/2);
             if (n != 0 && n > 0){
                 putInMap(triples,n,i);
                  n=0;
             }
             //if its side c

             n = ((-1 + Math.round(Math.sqrt(2*i-1)))/2);
             if (n != 0 && n > 0){
                 putInMap(triples,n,i);
                  n=0;
             }
             n=  ((-1 - Math.round(Math.sqrt(2*i-1)))/2);
             if (n != 0 && n > 0){
                 putInMap(triples,n,i);
                  n=0;
             }


        }
        for(Map.Entry<Long, Set<Long>> e : triples.entrySet()){
            if(e.getValue().size() == 3){
                System.out.println("Tripples" + e.getValue());
            }
            //need to handle scenario when size() > 3 
            //even those are tripples but we need to filter the wrong ones
        }


    }

    private static void putInMap( Map<Long,Set<Long>> triples, long n,  Long i) {
        Set<Long> set = triples.get(n);
        if(set == null){
            set = new HashSet<Long>();
            triples.put(n, set);
        }
        set.add(i);
    }

    //add values here 
    private static void addValuesToArrayList(List<Long> l1) {
        l1.add(1L);
        l1.add(2L);
        l1.add(3L);
        l1.add(4L);
        l1.add(5L);
        l1.add(12L);
        l1.add(13L);

    }
}
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If (a, b, c) is a Pythagorean triple, then so is (ka, kb, kc) for any positive integer.

so simply find one value for a, b, and c and then you can calculate as many new ones as you want.

Pseudo code:

a = 3
b = 4
c = 5
for k in 1..N:
  P[k] = (ka, kb, kc)

Let me know if this is not exactly what you're looking for.

share|improve this answer
    
@Mitch Wheat: Picture an existing right triangle and then scale it. Or take (kc)^2 = (ka)^2 + (kb)^2 and then divide both sides by k^2. What do you think you get? –  jamesdlin Jan 9 '10 at 3:43
    
sorry guys, I need to wake up!! –  Mitch Wheat Jan 9 '10 at 3:47

Here's the implementation in Java:

/**
 * Step1: Square each of the elements in the array [O(n)]
 * Step2: Sort the array [O(n logn)]
 * Step3: For each element in the array, find all the pairs in the array whose sum is equal to that element [O(n2)]
 * 
 * Time Complexity: O(n2) 
 */
public static Set<Set<Integer>> findAllPythogoreanTriplets(int [] unsortedData) {

    // O(n) - Square all the elements in the array
    for (int i = 0; i < unsortedData.length; i++)
        unsortedData[i] *= unsortedData[i];

    // O(n logn) - Sort
    int [] sortedSquareData = QuickSort.sort(unsortedData);

    // O(n2)
    Set<Set<Integer>> triplets = new HashSet<Set<Integer>>();

    for (int i = 0; i < sortedSquareData.length; i++) {

        Set<Set<Integer>> pairs = findAllPairsThatSumToAConstant(sortedSquareData, sortedSquareData[i]);

        for (Set<Integer> pair : pairs) {
            Set<Integer> triplet = new HashSet<Integer>();
            for (Integer n : pair) {
                triplet.add((int)Math.sqrt(n));
            }
            triplet.add((int)Math.sqrt(sortedSquareData[i])); // adding the third element to the pair to make it a triplet
            triplets.add(triplet);
        }
    }

    return triplets;
}


public static Set<Set<Integer>> findAllPairsThatSumToAConstant(int [] sortedData, int constant) {

    // O(n)
    Set<Set<Integer>> pairs = new HashSet<Set<Integer>>();
    int p1 = 0; // pointing to the first element
    int p2 = sortedData.length - 1; // pointing to the last element
    while (p1 < p2) {
        int pointersSum = sortedData[p1] + sortedData[p2];
        if (pointersSum > constant)
            p2--;
        else if (pointersSum < constant)
            p1++;
        else {
            Set<Integer> set = new HashSet<Integer>();
            set.add(sortedData[p1]);
            set.add(sortedData[p2]);
            pairs.add(set);
            p1++;
            p2--;
        }
    }
    return pairs;
}
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if the problem is the one "For an Array of integers find all triples such that a^2+b^2 = c^2

Sort the array into ascending order

Set three pointers p1,p2,p3 at entries 0,1,2 set pEnd to past the last entry in the array

while (p2 < pend-2) {

sum = (*p1 * *p1 + *p2 * *p2)


while ((*p3 * *p3) < sum && p3 < pEnd -1)
   p3++;

if ( *p3 == sum) 
   output_triple(*p1, *p2, *p3);

p1++;
p2++;

}

it's moving 3 pointers up the array so it O(sort(n) + n) it's not n2 because the next pass starts at the next largest number and doesn't reset. if the last number was too small for the triple, it's still to small when you go to the next bigger a and b

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