13

I have a list that contains nested lists and I need to know the most efficient way to search within those nested lists.

e.g., if I have

[['a','b','c'],
['d','e','f']]

and I have to search the entire list above, what is the most efficient way to find 'd'?

5 Answers 5

13
>>> lis=[['a','b','c'],['d','e','f']]
>>> any('d' in x for x in lis)
True

generator expression using any

$ python -m timeit -s "lis=[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]" "any('d' in x for x in lis)" 
1000000 loops, best of 3: 1.32 usec per loop

generator expression

$ python -m timeit -s "lis=[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]" "'d' in (y for x in lis for y in x)"
100000 loops, best of 3: 1.56 usec per loop

list comprehension

$ python -m timeit -s "lis=[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]" "'d' in [y for x in lis for y in x]"
100000 loops, best of 3: 3.23 usec per loop

How about if the item is near the end, or not present at all? any is faster than the list comprehension

$ python -m timeit -s "lis=[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]"
    "'NOT THERE' in [y for x in lis for y in x]"
100000 loops, best of 3: 4.4 usec per loop

$ python -m timeit -s "lis=[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]" 
    "any('NOT THERE' in x for x in lis)"
100000 loops, best of 3: 3.06 usec per loop

Perhaps if the list is 1000 times longer? any is still faster

$ python -m timeit -s "lis=1000*[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]"
    "'NOT THERE' in [y for x in lis for y in x]"
100 loops, best of 3: 3.74 msec per loop
$ python -m timeit -s "lis=1000*[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]" 
    "any('NOT THERE' in x for x in lis)"
100 loops, best of 3: 2.48 msec per loop

We know that generators take a while to set up, so the best chance for the LC to win is a very short list

$ python -m timeit -s "lis=[['a','b','c']]"
    "any('c' in x for x in lis)"
1000000 loops, best of 3: 1.12 usec per loop
$ python -m timeit -s "lis=[['a','b','c']]"
    "'c' in [y for x in lis for y in x]"
1000000 loops, best of 3: 0.611 usec per loop

And any uses less memory too

6
  • I would be cautious generalizing about this based on searching for 'd' (ie something relatively close to the front of the list). If you look at the discussion @Ashwini and I had (below his answer) you'll see that the choice of the "target" in the list makes a significant difference. In our trials LC beat the generator with targets in the middle and at the end. Generator "won" if the target was near the front. I think in the end it's all very dependent on the specific dataset and target sought after.
    – Levon
    Aug 15, 2012 at 4:53
  • @Levon, I'm well aware of the tradeoffs. However in this case, any is still faster than the LC even if the item is not present at all. Aug 15, 2012 at 4:58
  • I didn't mean to imply you weren't .. and the use of any didn't even occur to me until you brought it up, so that's something for me to keep in mind for future use.
    – Levon
    Aug 15, 2012 at 5:01
  • 1
    @gnibbler how to identify which one of these to be used gen,LC or any()? coz In this case any() was faster and on the other link I posted gen was faster than any(). I was completely aware of any() but didn't used it here because of the results I saw on that question and this time any() came up with faster solution. Aug 15, 2012 at 5:11
  • 1
    @AshwiniChaudhary, I think the only way to know for sure is to try. Also to furthur complicate things, the relative timings may change between different implementations/versions of Python. In general I won't use a list comprehension unless I need a list (for slicing, reversing, etc). generator expressions are a good 1st choice, although in some cases they can be beaten by using of itertools etc. Aug 15, 2012 at 5:22
7

Using list comprehension, given:

mylist = [['a','b','c'],['d','e','f']]
'd' in [j for i in mylist for j in i]

yields:

True

and this could also be done with a generator (as shown by @AshwiniChaudhary)

Update based on comment below:

Here is the same list comprehension, but using more descriptive variable names:

'd' in [elem for sublist in mylist for elem in sublist]

The looping constructs in the list comprehension part is equivalent to

for sublist in mylist:
   for elem in sublist

and generates a list that where 'd' can be tested against with the in operator.

7
  • 1
    Just so I can understand what is going on can you clarify what j and i are?
    – fdsa
    Aug 15, 2012 at 3:34
  • @fdsa I'll update my answer by adding a "verbose" version (more descriptive variable names)
    – Levon
    Aug 15, 2012 at 3:36
  • Thanks for taking the time, I appreciate it
    – fdsa
    Aug 15, 2012 at 3:38
  • @Downvoter .. could I get an explanation please? This is a functional solution to OP's problem. A downvote without explanation helps no one (OP, SO, or me). If it's because I didn't use a generator, you can see from the discussion with Ashwini that the generator solution isn't always necessarily faster.
    – Levon
    Aug 15, 2012 at 4:13
  • I expect the downvote was for generating the whole list every time. I expect that you'd have to have a fairly small list for the list comprehension to be faster or use less memory.
    – Gabe
    Aug 15, 2012 at 5:09
4

Use a generator expression, here the whole list will not be traversed as generator generate results one by one:

>>> lis = [['a','b','c'],['d','e','f']]
>>> 'd' in (y for x in lis for y in x)
True
>>> gen = (y for x in lis for y in x)
>>> 'd' in gen
True
>>> list(gen)
['e', 'f']

~$ python -m timeit -s "lis=[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]" "'d' in (y for x in lis for y in x)"
    100000 loops, best of 3: 2.96 usec per loop

~$ python -m timeit -s "lis=[['a','b','c'],['d','e','f'],[1,2,3],[4,5,6],[7,8,9],[10,11,12],[13,14,15],[16,17,18]]" "'d' in [y for x in lis for y in x]"
    100000 loops, best of 3: 7.4 usec per loop
11
  • What do you mean by "the whole list will not be traversed"? .. you don't terminate early, you have to generate all of the values at some point, no? The wording seems to imply the opposite.
    – Levon
    Aug 15, 2012 at 3:31
  • @Levon but it doesn't generate e and f. Aug 15, 2012 at 3:36
  • 1
    So it acts like a short-circuited Boolean expression? I didn't know that .. neat. Thanks, I learned something new.
    – Levon
    Aug 15, 2012 at 3:42
  • 1
    @Levon this time I searched 11 and this time LC was much faster than generator. o.O Aug 15, 2012 at 3:57
  • 1
    We got the same results this time, I searched for 10 :-) and also 18, and LC beat the generator each time, though LC was slower for 'd'.
    – Levon
    Aug 15, 2012 at 4:00
2

If your arrays are always sorted as you show, so that a[i][j] <= a[i][j+1] and a[i][-1] <= a[i+1][0] (the last element of one array is always less than or equal to the first element in the next array), then you can eliminate a lot of comparisons by doing something like:

a = # your big array

previous = None
for subarray in a:
   # In this case, since the subarrays are sorted, we know it's not in
   # the current subarray, and must be in the previous one
   if a[0] > theValue:
      break
   # Otherwise, we keep track of the last array we looked at
   else:
      previous = subarray

return (theValue in previous) if previous else False

This kind of optimization is only worthwhile if you have a lot of arrays and they all have a lot of elements though.

3
  • Thank you for this - I hadn't considered sorting them but they will be used quite often so I will consider sorting
    – fdsa
    Aug 15, 2012 at 3:39
  • No problem - I don't know how much data you're going to have or what your exact use-case is, but if you do have a lot of data it might be worth looking into python's collections module, which has high-performance data structures suited to specific tasks. Aug 15, 2012 at 3:49
  • 2
    It they are always sorted, you would be better to use the bisect module Aug 15, 2012 at 4:44
1

if you just want to know that your element is there in the list or not then you can do this by converting list to string and check it. you can extend this of more nested list . like [[1],'a','b','d',['a','b',['c',1]]] this method is helpful iff you dont know that level of nested list and want to know that is the searchable item is there or not.

    search='d'
    lis = [['a',['b'],'c'],[['d'],'e','f']]
    print(search in str(lis)) 

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