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My list is like

l1 = [ {k1:v1} , {k2:v2}, {v1:k1} ]

Is there any better way to check if any dictionary in the list is having reverse pair?

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What do you currently have? –  Sjoerd Jun 25 '10 at 7:31
1  
What do you mean by 'reverse pair'? –  Omnifarious Jun 25 '10 at 7:35
    
@Omnifarious it means key as value and value as key @Siperd currently I'm looping over it –  shahjapan Jun 25 '10 at 7:43
    
stackoverflow.com/questions/3116249/… similar question may help you out –  shahjapan Aug 5 '10 at 19:14

2 Answers 2

up vote 1 down vote accepted

This code seems to work without loop:

k1 = 'k1'
k2 = 'k2'
v1 = 'v1'
v2 = 'v2'
l1 = [ {k1:v1} , {k2:v2}, {v1:k1} ]

kv = [e.items()[0] for e in l1]
print(kv)

vk = [(v, k) for (k, v) in kv]
print(vk)

result = [(k, v) for (k, v) in kv if (k, v) in vk]
print(result)
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yes seems to be - but good solution 1 line etration :) –  shahjapan Jun 25 '10 at 8:51
2  
I would suggest vk = set((v, k) for (k, v) in kv) to avoid an O(n^2) complexity –  Xavier Combelle Jun 25 '10 at 9:02
    
yess it worked I used like this, result = [(k, v) for (k, v) in kv if (v, k) in kv and k!=v] –  shahjapan Jun 25 '10 at 9:22
    
list comprehension is a loop. –  SilentGhost Aug 2 '10 at 15:33

I would suggest to transform the dictionaries in tuple and put the tuple in a set. And look in the set if the reverse tuple is in the set. That would have a complexity of O(n) instead of O(n^2).

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Whoops, sorry for my earlier (deleted) comment, I misunderstood the question. +1 –  Tamás Jun 25 '10 at 8:40
1  
If you just want to know whether a reverse pair exists or not, then you can test it with len(d) != len(set([frozenset(i) for i in d.items()])). I think this is what Xavier is suggesting. –  Michael Dunn Jun 25 '10 at 8:53

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