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I am trying to find out how to get the length of every list that is held within a particular list. For example:

a = []
a.append([])
a[0].append([1,2,3,4,5])
a[0].append([1,2,3,4])
a[0].append([1,2,3])

I'd like to run a command like:

len(a[0][:]) 

which would output the answer I want which is a list of the lengths [5,4,3]. That command obviously does not work, and neither do a few others that I've tried. Please help!

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Is it possible that a list inside a[0] also contains lists? –  danben Jan 9 '10 at 0:58
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6 Answers

up vote 11 down vote accepted

[len(x) for x in a[0]] ?

>>> a = []
>>> a.append([])
>>> a[0].append([1,2,3,4,5])
>>> a[0].append([1,2,3,4])
>>> a[0].append([1,2,3])
>>> [len(x) for x in a[0]]
[5, 4, 3]
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Depending on the size of your a[0] you may want to opt for Matthew Iselin's solution using map. In some cases (where lambda is not needed) map may be marginally faster. But that would only be for a very large a[0] –  sberry Jan 9 '10 at 1:06
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map(len, a[0])

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[len(x) for x in a[0]]
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This is known as List comprehension (click for more info and a description).

[len(l) for l in a[0]]
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def lens(listoflists):
  return [len(x) for x in listoflists]

now, just call lens(a[0]) instead of your desired len(a[0][:]) (you can, if you insist, add that redundant [:], but that's just doing a copy for no purpose whatsoever -- waste not, want not;-).

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using the usual "old school" way

t=[]
for item in a[0]:
    t.append(len(item))
print t
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