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How do I find the total number of duplicates in a string? i.e., if it was j= [1,1,1,2,2,2] it would find 4 duplicates? I've only been able to find counting which shows how many times each individual number occurred.

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2 Answers 2

>>> j= [1,1,1,2,2,2]
>>> len(j) - len(set(j))
4

and btw, j is a list and not a string, although for the purpose of this exercise it doesn't really matter.

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There seems to be a popular answer already, but if you would like to maintain the individual duplicate counts as well, the new Counter() collection object in Python 2.7 is perfect for this.

>>> from collections import Counter

>>> j = [1,1,1,2,2,2]

>>> Counter(j)
Counter({1: 3, 2: 3})

>>> sum([i - 1 for i in c.values() if i > 1])
4

>>> {k: v - 1 for k, v in c.items()} # individual dupes
{1: 2, 2: 2}

There is a backport for Counter at ActiveState

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1  
Some suggestions/observations: One needs to assume that c = Counter(j) gets executed in there somewhere. With your sum thingy, you require Python 2.7 therfore you can lose the []. Secondly, the 'if' clause is redundant. Thirdly, there's no point building the list c.values(). Result: sum(i - 1 for i in c.itervalues()) or after some algebra, try sum(c.itervalues()) - len(c). Try adding a non-dupe e.g. 3 to the input. Check whether your dictionary of individual dupes is really what you intended. HTH. –  John Machin Mar 5 '10 at 13:15
    
OK… Firstly, tell me how i > 1 is "redundant"? I need to prevent i < 0 in case negative integers were to ever make their way into the dict. So the comparison happens regardless. Now consider a list of 1M items, where 999,000 are 0 and then tell me I shouldn't go ahead and prevent 0 from appending to the list also. "After some algebra" sounds like you're telling me I need to learn it, but as I just said I'd like to make certain -1000000 doesn't belong to the dict, in case something other than Counter() modifies it. –  jonwd7 Mar 5 '10 at 21:12
    
Secondly, my using Counter() doesn't necessitate 2.7 whatsoever as I've included a link to the backport. (I do use a dict comprehension but that can very quickly be changed). Therefore I may or not be able to "lose the []"... But what does that matter? Thirdly, itervalues/iteritems was useless for this simple example and harder to type, so forgive me. And lastly, I don't really have any idea what you mean about a non-dupe 3... It would print out ..., 3: 0} and that may or may not be exactly what the OP et al want to happen in that situation. i > 0 then? –  jonwd7 Mar 5 '10 at 21:18
    
… and clearly c = Counter(j) happens. It's implied and I wasn't going to waste 2 extra lines on showing it. And to answer "Check whether your dictionary of individual dupes is really what you intended." directly: It was exactly as I intended. –  jonwd7 Mar 5 '10 at 21:22
1  
Backport works back to 2.5; generator expressions (no []) introduced in 2.4; avoiding creating a large list just to sum its values matters. If your counts have gone negative, you should be chucking Exceptions like fireworks on 4 July, not covering up the problem. The i > 1 thing is as you say a problem if you have a large list; solution: DON'T USE A LIST! –  John Machin Mar 6 '10 at 0:44

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