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Let's say I am having a list as:

a = ['no', 'no', 'no', 'yes', 'no', 'yes', 'no']

Here I want to remove every 'no' which is preceded by every 'yes'. So my resultant list should be like:

['no', 'no', 'yes', 'yes', 'no']

I've found that in order to remove an element from a list by its value, we may use list.remove(..) as:

a = ['no', 'no', 'no', 'yes', 'no', 'yes', 'no']
a.remove('no')
print a

But it gives me result with only removing first occurrence of 'no' as:

['no', 'no', 'yes', 'no', 'yes', 'no']

How can I achieve the desired result by removing all the occurrence of 'no' which are preceded by all 'yes' in my list?

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5 Answers 5

Reset to default
12

For removing all the occurrence of 'no' which are present just before the 'yes' in your list, you may use list comprehension with itertools.zip_longest(...) in Python 3.x (which is equivalent of iterools.izip_longest(..) in Python 2.x) (having default fillvalue as None) to achieve this as :

>>> a = ['no', 'no', 'no', 'yes', 'no', 'yes', 'no']

# Python 3.x solution
>>> from itertools import zip_longest
>>> [x for x, y in zip_longest(a, a[1:]) if not(x=='no' and y=='yes')]
['no', 'no', 'yes', 'yes', 'no']

# Python 2.x solution
>>> from itertools import izip_longest
>>> [x for x, y in izip_longest(a, a[1:]) if not(x=='no' and y=='yes')]
['no', 'no', 'yes', 'yes', 'no']

You might be interested in taking a look at the zip_longest document which says:

Make an iterator that aggregates elements from each of the iterables. If the iterables are of uneven length, missing values are filled-in with fillvalue. Iteration continues until the longest iterable is exhausted.

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4

Try this:

a = ['no', 'no', 'no', 'yes', 'no', 'yes', 'no']
a = ' '.join(a)  
print(a.replace('no yes', 'yes').split(' '))

What it is doing is: 1. merging the list into a string with ' '.join() 2. replacing all the occurrencies of 'no yes' with 'yes' by a.replace() 3. splitting it back into a list with a.split(' ')

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  • 8
    I see 3 problems with this: 1) It only works with strings. 2) It breaks if any of the strings contains a space. 3) It breaks if an element ends with "no" (e.g. "anno") or starts with "yes" (e.g. "yesterday"). That said, it's still better than that regex answer up there.
    – Aran-Fey
    Jan 20, 2018 at 10:27
4

Iterate with the condition and append last item:

[i for i, j in zip(a, a[1:]) if (i == 'yes' or j == 'no')] + a[-1:]
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  • @MoinuddinQuadri I disagree. Could you provide a non-working example?
    – grovina
    Jan 21, 2018 at 18:45
  • sorry, my bad, you've my +1
    – Moinuddin Quadri
    Jan 21, 2018 at 20:39
3

An interestingly roundabout way, using regex with a look-ahead:

>>> import re
>>> s = ' '.join(a)                          # convert it into string
>>> out = re.sub('no (?=yes)', '', s)        # remove
>>> out.split()                              # get back the list
=> ['no', 'no', 'yes', 'yes', 'no']
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  • Obligatory disclaimer: This approach doesn't work if any of the elements contain a space.
    – Aran-Fey
    Jan 20, 2018 at 10:18
  • 1
    @Rawing : ofcourse. Its assuming that the list only contains elements with values yes and no
    – Kaushik NP
    Jan 20, 2018 at 10:19
0

Try this code !

I've also attached the screenshot of the output!

a = ['no', 'no', 'no', 'yes', 'no', 'yes', 'no']
for i in range (1,5):
  if a[i]=='yes':
    j=i-1
    a.pop(j)

print(a)

The output:

enter image description here

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