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biglist = 

[ 

    {'title':'U2 Band','link':'u2.com'}, 
    {'title':'ABC Station','link':'abc.com'}, 
    {'title':'Live Concert by U2','link':'u2.com'} 

]

I would like to remove the THIRD element inside the list...because it has "u2.com" as a duplicate. I don't want duplicate "link" element. What is the most efficient code to do this so that it results in this:

biglist = 

[ 

    {'title':'U2','link':'u2.com'}, 
    {'title':'ABC','link':'abc.com'}
]

I have tried many ways, including using many nested "for ...in ...." but this is very inefficient and too long.

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5 Answers 5

up vote 2 down vote accepted

You can sort the list, using the link field of each dictionary as the sort key, then iterate through the list once and remove duplicates (or rather, create a new list with duplicates removed, as is the Python idiom), like so:

# sort the list using the 'link' item as the sort key
biglist.sort(key=lambda elt: elt['link'])

newbiglist = []
for item in biglist:
    if newbiglist == [] or item['link'] != newbiglist[-1]['link']:
        newbiglist.append(item)

This code will give you the first element (relative ordering in the original biglist) for any group of "duplicates". This is true because the .sort() algorithm used by Python is guaranteed to be a stable sort -- it does not change the order of elements determined to be equal to one another (in this case, elements with the same link).

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1  
I like this approach. One thing I would do is use for item in sorted(biglist, key=lambda elt: elt['link']) instead of sorting the biglist in place. It will (temporarily) use more memory (because of copying the biglist), but depending on your application you may not want to mutate a big data object like that. –  Daniel Pryden Oct 7 '09 at 23:26
    
Yup, great point. –  dcrosta Oct 7 '09 at 23:28
    
You can get a nice speedup if you just get rid of that newbiglist == [] inside the loop. How can you get rid of it? Simply initialize newbiglist as newbiglist = [ biglist[0] ] and then you know there is always something there for the newbiglist[-1] to reference. –  steveha Oct 7 '09 at 23:51

Probably the fastest approach, for a really big list, if you want to preserve the exact order of the items that remain, is the following...:

biglist = [ 
    {'title':'U2 Band','link':'u2.com'}, 
    {'title':'ABC Station','link':'abc.com'}, 
    {'title':'Live Concert by U2','link':'u2.com'} 
]

known_links = set()
newlist = []

for d in biglist:
  link = d['link']
  if link in known_links: continue
  newlist.append(d)
  known_links.add(link)

biglist[:] = newlist
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What is the purpose of the last line, biglist[:] = newlist ? Seems odd, usually a = b[:] is done to deep-copy a list –  dbr Oct 8 '09 at 3:35
3  
@dbr, barename = whatever re-binds barename -- but if there are any other reference extant to whatever barename used to refer to, they're unaffects. So, in this case, this would not "remove the duplicates from the list", as requested: it would make a new list object without duplicates, but leave the old list still full of dupes (if there are any other references keeping that list object alive, of course). somelist[:] = whatever is completely different: this statement is changing the body of the list object itself -- i.e, it is "removing duplicates from the list"! –  Alex Martelli Oct 8 '09 at 4:05
2  
I like this because it is stable: the items returned will be in the same order as the appeared in the original list. That is important in some applications. –  Vebjorn Ljosa Jul 22 '10 at 18:44

Make a new dictionary, with 'u2.com' and 'abc.com' as the keys, and your list elements as the values. The dictionary will enforce uniqueness. Something like this:

uniquelist = dict((element['link'], element) for element in reversed(biglist))

(The reversed is there so that the first elements in the list will be the ones that remain in the dictionary. If you take that out, then you will get the last element instead).

Then you can get elements back into a list like this:

biglist = uniquelist.values()
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You have an extra, unneeded pair of parentheses -- the parentheses for dict() are good enough, you don't need another set to introduce the generator expression. Also, you don't need parentheses around the tuple either, although it's probably a good idea. –  Daniel Pryden Oct 7 '09 at 23:31
    
BTW, +1 for using a dict. Assuming you have a real list (not just any iterable), reversed() should be O(1), building the dict should be O(n), and extracting the values should be O(n). So this seems like it should be the fastest way, especially for a large list. –  Daniel Pryden Oct 7 '09 at 23:36
    
Scratch that. reversed() of a list will be O(n), due to copying (at least in Python 2.x). It still seems like overall performance should be O(n) though, which should be faster than sorting the list. –  Daniel Pryden Oct 7 '09 at 23:37
    
How is this a reasonable answer when it outputs a dict, and the OP requested a list? What if original order is important? –  Triptych Oct 8 '09 at 1:25
    
@Daniel: I didn't realise that the parens were optional around a generator expression, as long as it's the only argument to the function, although it turns out that you do need them around the tuple to avoid ambiguity in the parser. Edited. –  Ian Clelland Oct 8 '09 at 15:06
biglist = \
[ 
    {'title':'U2 Band','link':'u2.com'}, 
    {'title':'ABC Station','link':'abc.com'}, 
    {'title':'Live Concert by U2','link':'u2.com'} 
]

def dedupe(lst):
    d = {}
    for x in lst:
        link = x["link"]
        if link in d:
            continue
        d[link] = x
    return d.values()

lst = dedupe(biglist)

dedupe() keeps the first of any duplicates.

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This is pretty much the same as Ian Clelland's answer above, except it doesn't reverse the list first. Saving the reverse is faster, but doing the link in d test for every element seems like it might be slower than simply overwriting. In any case, the speed difference is probably lost in the noise, so it really depends on what style you prefer. –  Daniel Pryden Oct 7 '09 at 23:41
1  
The link in d test should be fast, because dictionaries use hashed lookups; and this lets you avoid the sort. But most importantly, I think this approach is less tricky, and easier to extend; what happens if you sometimes want the first appearance of a dupe and sometimes you want the later appearance? With this one it would be trivial to add logic to do that; Ian Clelland's version, not so much. –  steveha Oct 7 '09 at 23:49
    
Hmmm, I think I spoke too hastily there. I think Ian Clelland's version could be pretty easily modified to allow for keeping the former or the later version. So it really does just depend on what style you prefer. –  steveha Oct 7 '09 at 23:53

You can use defaultdict to group items by link, then removed duplicates if you want to.

from collections import defaultdict

nodupes = defaultdict(list)
for d in biglist:
    nodupes[d['url']].append(d['title']

This will give you:

defaultdict(<type 'list'>, {'abc.com': ['ABC Station'], 'u2.com': ['U2 Band', 
'Live Concert by U2']})
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