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What is the quickest way to find matching 2-tuples in another list of 2-tuples?

The following codes looks extremely inefficient. loc1 and loc2 are list of tuples of (x,y) coordinates.

loc3=[]
for loc in loc1:
    if loc in loc2:
        loc3.append(loc)

I think hashing is the key but not sure how to do it on Python. Please teach me an elegant code. Thanks.

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2  
You should really consider improving your accept rate –  inspectorG4dget Jan 8 '13 at 1:10
    
@mgilson: "great minds…" lol –  inspectorG4dget Jan 8 '13 at 1:10
    
@inspectorG4dget -- but perhaps my comment was a little more self-serving :) –  mgilson Jan 8 '13 at 1:12
    
You are completely right that a hashing is the key. And fortunately, Python makes that easy with the built-in set and dict classes, built around hash tables. So, mgilson's answer is exactly what you're looking for. –  abarnert Jan 8 '13 at 1:40

1 Answer 1

up vote 8 down vote accepted

You can use sets and intersection:

loc3 = set(loc1).intersection(loc2)

This gives you a set which is unordered and won't contain duplicates (and enforces that the items are hashable). If that's a problem, see the other answer by Phil Frost. However, this should be significantly more efficient where order and duplicates are unnecessary.

A order preserving solution which can contain duplicates, but requires hashability of the items (in loc2) is as follows:

sloc2 = set(loc2)
loc3 = [ item for item in loc1 if item in sloc2 ]  #still O(m)

In python, a set is simply a hash table. Checking to see if an item is contained in that set is an (approximately) O(1) operation because the position of the item is found via hashing.

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2  
+1 - you can also use this: loc3 = list(set(loc1) & set(loc2)). –  Tadeck Jan 8 '13 at 0:49
    
@Tadeck -- Yeah, that's completely correct, but that requires building an extra set :). And I prefer intersection as it feels more explicit to me. –  mgilson Jan 8 '13 at 0:50
    
Generator expressions / generators are another solution with different time / space costs. –  Phil Frost Jan 8 '13 at 1:06
    
+1. I didn't realize you had the second version in your answer now, and wasted time writing the same answer… Anyway, it might be worth explaining that a set is a hash table, and checking item in sloc2 just requires hashing item, so it's exactly what the OP knew he wanted but didn't know how to do in Python. –  abarnert Jan 8 '13 at 1:46
    
@abarnert -- Good suggestion. I've added a short explanation. –  mgilson Jan 8 '13 at 1:51

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