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I have a list of list created like

biglist=[['A'], ['C', 'T'], ['A', 'T']]

and I will have another list like

smalllist=[['C'], ['T'], ['A', 'T']]

So, I want to check wheter an item in small list contains in that specific index of biglist, if not append to it.

so, making

biglist=[['A','C'], ['C', 'T'], ['A', 'T']]

so, 'C' from fist sublist of smalllist was added to first sublist of biglist. but not for second and third.

I tried like

dd=zip(biglist, smalllist)
for each in dd:
    ll=each[0].extend(each[1])
    templist.append(list(set(ll)))

but get errors

templist.append(list(set(ll)))
TypeError: 'NoneType' object is not iterable

How to do it?

Thank you

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3 Answers 3

up vote 5 down vote accepted

Probably, you should try this:

// This will only work, if smalllist is shorter than biglist

SCRIPT:

biglist   = [['A'], ['C', 'T'], ['A', 'T']]
smalllist = [['C'], ['T'], ['A', 'T']]

for i, group in enumerate(smalllist):
    for item in group:
        if item not in biglist[i]:
            biglist[i].append(item)

DEMO:

print(biglist)
# [['A', 'C'], ['C', 'T'], ['A', 'T']]
share|improve this answer
    
yeah, I always go for loops in the last resort if i dont find any list comprehension, set operations. I was actually working this way before seeing your answer and you read my mind. Thanks a lot. I don't know how fast it is compared to other techniques. –  Ananta Jul 13 '13 at 21:02
1  
On Python3: mine: 1.378441910026595; ovgolovin's: 6.968630363931879; bsoist's: 5.993933744030073 –  Peter Varo Jul 13 '13 at 21:04
1  
+1 for speed - both answering and implementation @PeterVaro I'd be interested to know if that were different if we were using sets and not lists. (edit - the speed data, I mean) –  bsoist Jul 13 '13 at 21:11
1  
@Ananta if you think my answer was helpful to you, don't hesitate, to accept it! Thanks;) –  Peter Varo Jul 13 '13 at 21:29
[list(set(s+b)) for (s,b) in zip(smalllist,biglist)]
share|improve this answer
    
Thanks, How much experience does it take to think one liners like this list comprehension? –  Ananta Jul 13 '13 at 21:00
    
This solution is much much slower than the one I suggested. 5.993933744030073 vs 1.378441910026595 –  Peter Varo Jul 13 '13 at 21:01
    
That's a very difficult question to answer. I tend to think in mathematical terms, so that's how I picked up stuff like this. Just keep in mind that it is not any faster than doing loops, and can be harder to read. Peter's solution is better, but I didn't see it until after I posted. –  bsoist Jul 13 '13 at 21:02
    
and mine doesn't scale nearly as well –  bsoist Jul 13 '13 at 21:04
    
wow, peter, you answered my question on time too...may be loop is not bad. –  Ananta Jul 13 '13 at 21:04

For some reason, extend in Python doesn't return the list itself after extending. So ll in your case is None. Just put ll=each[0] on the second line in the loop, and your solution should start working.

Still, I'm not getting, why you don' keep your elements in sets in the first place. This would avoid you from having to convert from list to set and then backwards.

I would just or sets instead of appending to the list and then filtering out duplicates by resorting to set and then to list.

>>> from itertools import izip
>>> templist = []
>>> for els1,els2 in izip(biglist,smalllist):
    joined = list(set(els1) | set(els2))
    templist.append(joined)


>>> templist
[['A', 'C'], ['C', 'T'], ['A', 'T']]

Keeping elements in sets in the first place seems to be the fastest in Python 3 even for such small amount of elements in each set (see comments):

biglist=[set(['A']), set(['C', 'T']), set(['A', 'T'])]
smalllist=[set(['C']), set(['T']), set(['A', 'T'])]

for els1,els2 in zip(biglist,smalllist):
    els1.update(els2)

print(biglist)

Ouput:

[{'A', 'C'}, {'C', 'T'}, {'A', 'T'}]
share|improve this answer
    
+1 for recommendng sets and set operations –  bsoist Jul 13 '13 at 20:59
    
Thanks, yeah as you said I changed it to have set in the first place –  Ananta Jul 13 '13 at 20:59
    
This solution is much much slower than the one I suggested. 6.968630363931879 vs 1.378441910026595 –  Peter Varo Jul 13 '13 at 21:00
    
@PeterVaro You are modifying initial list in-place. In my code I created a new list for modified objects. If it's OK to modify initial list, I think it would be faster to use set in the first place. This would avoid redundant conversions and will make the solution even faster. –  ovgolovin Jul 13 '13 at 21:06
1  
@PeterVaro Thanks! I'm really surprised. Because I know that lists are very well written in Python and highly optimized. As the lists are very very small (several elements) I expected them to be faster than sets. So now I know that sets in Python 3 are also very good to be used (even for small number of elements). –  ovgolovin Jul 13 '13 at 21:39

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