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This is actually an extension of this question. The answers of that question did not keep the "order" of the list after removing duplicates. http://stackoverflow.com/questions/1534736/how-to-remove-these-duplicates-in-a-list-python

biglist = 

[ 

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

]

In this case, the 2nd element should be removed because a previous "u2.com" element already exists. However, the order should be kept.

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8 Answers 8

up vote 17 down vote accepted

My answer to your other question, which you completely ignored!, shows you're wrong in claiming that

The answers of that question did not keep the "order"

  • my answer did keep order, and it clearly said it did. Here it is again, with added emphasis to see if you can just keep ignoring it...:

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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1  
Hey Alex, out of curiosity why do you put the [:] on the left hand side of the assignment? I've usually seen it on the RHS. Is it just personal preference? Looking at it at first I wasn't even sure what it would do, haha. –  xitrium Sep 8 '11 at 3:07

Generators are great.

def unique( seq ):
    seen = set()
    for item in seq:
        if item not in seen:
            seen.add( item )
            yield item

biglist[:] = unique( biglist )
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This page discusses different methods and their speeds: http://www.peterbe.com/plog/uniqifiers-benchmark

The recommended* method:

def f5(seq, idfun=None):  
    # order preserving 
    if idfun is None: 
        def idfun(x): return x 
    seen = {} 
    result = [] 
    for item in seq: 
        marker = idfun(item) 
        # in old Python versions: 
        # if seen.has_key(marker) 
        # but in new ones: 
        if marker in seen: continue 
        seen[marker] = 1 
        result.append(item) 
    return result

f5(biglist,lambda x: x['link'])

*by that page

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dups = {}
newlist = []
for x in biglist:
    if x['link'] not in dups:
      newlist.append(x)
      dups[x['link']] = None

print newlist

produces

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

Note that here I used a dictionary. This makes the test not in dups much more efficient than using a list.

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1  
You're wrong about checking in a dict being faster than in a set (lists are a completely different matter). –  Alex Martelli Oct 11 '09 at 1:07
    
ok, fixed, thanks. I guess set is probably implemented with a hash. –  Peter Oct 11 '09 at 1:08
list = ['aaa','aba','aaa','aea','baa','aaa','aac','aaa',]

uniq = []

for i in list:
               if i not in uniq:
                   uniq.append(i)

print list

print uniq

output will be:

['aaa', 'aba', 'aaa', 'aea', 'baa', 'aaa', 'aac', 'aaa']

['aaa', 'aba', 'aea', 'baa', 'aac']

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This is an elegant and compact way, with list comprehension (but not as efficient as with dictionary):

mylist = ['aaa','aba','aaa','aea','baa','aaa','aac','aaa',]

[ v for (i,v) in enumerate(mylist) if v not in mylist[0:i] ]

And in the context of the answer:

[ v for (i,v) in enumerate(biglist) if v['link'] not in map(lambda d: d['link'], biglist[0:i]) ]
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A super easy way to do this is:

def uniq(a):
    if len(a) == 0:
        return []
    else:
        return [a[0]] + uniq([x for x in a if x != a[0]])

This is not the most efficient way, because:

  • it searches through the whole list for every element in the list, so it's O(n^2)
  • it's recursive so uses a stack depth equal to the length of the list

However, for simple uses (no more than a few hundred items, not performance critical) it is sufficient.

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Can anyone come up with a way that is scalable? –  TIMEX Oct 11 '09 at 0:59
    
Kalmi's answer points to a number of good solutions. –  Greg Hewgill Oct 11 '09 at 1:01

I think using a set should be pretty efficent.

seen_links = set()
for index in len(biglist):
    link = biglist[index]['link']
    if link in seen_links:
        del(biglist[index])
    seen_links.add(link)

I think this should come in at O(nlog(n))

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1  
in fact it is O(n^2) because del on a list is O(n) –  Xavier Combelle Apr 1 '11 at 14:33
    
So it is. Thanks! –  ABentSpoon Apr 4 '11 at 21:11

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