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I know how to delete one element of a list but if i'm trying to delete many elements i get a syntax error but don't know why.

a=[[00],[01],[10],[11]]
b=[0,3]

[[del a[x]] for x in b]

so the result should looks like:

a = [[01],[10]]

Well thank you...i understand the problem...del changes the index of array a so i would be out of bounds! :)

Now another question refer to the question... if i got a,c and i want to create b

a=[[00],[01],[10],[11]]
c=[[1],[2,3,4],[5,6],[7]]

i go in that way.

b = [i for i,el in enumerate(c) for item in el if len(el)<2]

and then i do this

a = [x for i, x in enumerate(a) if i not in b]

is there a simple way to do that? creating b and then "deleting" the elements of b in a ?

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4 Answers 4

up vote 3 down vote accepted

Using list comprehension:

>>> a=[[00],[01],[10],[11]]
>>> b=[0,3]
>>> # b = set(b)
>>> a = [x for i, x in enumerate(a) if i not in b]
>>> a
[[1], [10]]
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if you need to delete items inplace, you can do this:

map(lambda i: a.pop(i), sorted(b, key=lambda i: -i))

or

for i in sorted(b, key=lambda x: -x):
    del a[i]

or

for i in sorted(b)[::-1]:
    del a[i]

You have to sort items in b before deletion, so you won't have out of range exception

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numpy has a pretty convenient way of deleting elements:

>>> import numpy as np
>>> a = np.array([[00],[01],[10],[11]])
>>> b = np.array([0,3])
>>> a
array([[ 0],
       [ 1],
       [10],
       [11]])
>>> b
array([0, 3])
>>> np.delete(a, b, axis=0)
array([[ 1],
       [10]])
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If you remove elements from the end of the list, you will not get the Exception IndexError: list assignment index out of range, because when you delete an element, only those elements after it are affected :

>>> a=[[00],[01],[10],[11]]
>>> b=[0,3]
>>> for i in sorted(b, reverse=True):
...     del a[i]
...
>>> a
[[1], [10]]
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