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I have two lists:

ordered = ['salat', 'baguette', 'burger', 'pizza']
unordered = ['pizza', 'burger']

Now I want to remove all entries from the ordered list, that are not in the unordered list while preserving the ordering.

How can I do this?

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1  
Do you care about preserving the order of ordered? – DSM Feb 11 '12 at 23:00
    
Yes, I need the ordering – Martin Feb 11 '12 at 23:01
    
can you give example sizes of unordered and ordered and how big the overlap is. Are there possibly also other items in unordered? – Johan Lundberg Feb 11 '12 at 23:10
    
The lists are under 20 items and overlap by around 80%. – Martin Feb 11 '12 at 23:14
up vote 9 down vote accepted
ordered = [item for item in ordered if item in unordered]

This method creates a new list based on the old ones using Python's list comprehension.

For large amounts of data, turning the unordered list into a set first, as people suggested in comments, makes a huge difference in performance, e.g.:

unordered = set(unordered)

Benchmark!

ordered: 5000 items, unordered: 1000 items
0.09561s without set
0.00042s with set

For 10/2 items the time is almost the same, so it's good to always use a set, no matter what the data size is.

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3  
This is probably what I'd do, although if the lists were long I'd probably make a set version of unordered to speed up membership testing. – DSM Feb 11 '12 at 23:03
    
@DSM: Yes, that's a good idea! – Oleh Prypin Feb 11 '12 at 23:04
    
+1 This is the most idiomatic solution. I wouldn't try to speed it up, either, unless performance became a concern. – Todd Owen Feb 11 '12 at 23:06
    
Would make sense to turn unordered into a set to improve the runtime efficiency – inspectorG4dget Feb 11 '12 at 23:09
1  
@inspectorG4dget: In the case of 4 and 2 (for which I get timeit results of 0.473s without a set to 0.696 with) the set construction overhead is simply too large. Of course, in this trivial case it takes so little time anyway there's little reason to worry about performance at all.. – DSM Feb 11 '12 at 23:37

Better use a set for testing membership, like this:

ordered = ['salat', 'baguette', 'burger', 'pizza']
unordered = ['pizza', 'burger']

unord = set(unordered)
ordered = [e for e in ordered if e in unord]
share|improve this answer

Something like this:

ordered = list(filter(lambda x: x not in unordered, ordered))

The list function is unnecessary if using Python < 3.

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1  
I have to say, this is quite ugly. – Oleh Prypin Feb 11 '12 at 23:01
    
Yes, you're right. I didn't think of list comprehensions until I saw your answer. – Anthony Nguyen Feb 11 '12 at 23:03

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