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I'm looking for a fast way to compute euclidean distance of all values in a array. The Result should be in a new array ordered ascending with the two used "partners" for calculation.

eg:

a = [[2,4,5],[3,2,1],[5,7,2]]

res = euclidean distance(a) ordered ascending with

format: [result, value A, value B] (result is the eu.dist. between value A and value B in array a)

e.g: (not calculated)

res = [[4, 0, 1],[6, 0, 2], [9, 1, 2]]

thin i will calculate the eu.dist in this way

def euclidean(a, b):
    dist = numpy.linalg.norm(a-b)
    return dist 
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closed as off-topic by Dalmas, tcaswell, Ophion, allprog, ppeterka Sep 7 '13 at 20:42

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2 Answers 2

up vote 1 down vote accepted

The itertools.combinations function should work to get you the various pairs of elements, then you just need to find the distance and sort them:

distances = [[euclidean(points[a], points[b]), a, b]
             for a, b in itertools.combinations(range(len(points)), 2)]
distances.sort() # distance is already first element, so no key function required

Now, with numpy values this may not be the most efficient way to go, but it works.

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works fine thanks 2 both! Praveen method = 0.00520396232605 blckknght method = 0.00202894210815 –  Linda Sep 8 '13 at 11:17

Try using scipy.spatial.distance.cdist, as given in the answer to this question. Both inputs would be your a array. The only thing is that you won't get the exact format you're looking for - you'll get a matrix with the (i,j) element giving you the required distance instead. Hope this helps.

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1  
I think pdist might be better than cdist when you just have a single list of inputs points. Alas, I don't have scipy installed on this system to test it out myself. –  Blckknght Sep 7 '13 at 13:53
1  
@Blckknght pdist will be sightly over twice as fast as cdist as it only has to calculate the upper triangular portion of the cdist array. –  Ophion Sep 7 '13 at 19:03

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