10

I have a list of sentences like:

lst = ['A B C D','E F G H I J','K L M N']

What i did is

l = []
for i in lst:
    for j in i.split():
        print(j)
        l.append(j) 

first = l[::2]
second = l[1::2]

[m+' '+str(n) for m,n in zip(first,second)]

The Output i got is

lst = ['A B', 'C D', 'E F', 'G H', 'I J', 'K L', 'M N']

The Output i want is:

lst = ['A B', 'B C','C D','E F','F G','G H','H I','I J','K L','L M','M N']

I am struggling to think how to achieve this.

  • [i for x in map(lambda x: x.split(' '), lst) for i in map(' '.join, zip(x[:-1], x[1:]))] – Mstaino Jul 23 at 15:43
  • Did you try my answer? It's shorter than the accepted one – Rob Kwasowski Jul 23 at 20:09
  • Your solution is already correct if you replace ::2 with : in both places – Eric Jul 24 at 16:56
10

First format your list of string into a list of list, then do a mapping by zip.

i = [i.split() for i in lst]

f = [f"{x} {y}" for item in i for x,y in zip(item,item[1::])]

print (f)

#['A B', 'B C', 'C D', 'E F', 'F G', 'G H', 'H I', 'I J', 'K L', 'L M', 'M N']
  • +1. Can also condense into a one-liner if you replace i with the first list comprehension itself (current code is more readable though) – meowgoesthedog Jul 23 at 15:28
  • the [x for x in i.split(" ")] could be just i.split()... Nice solution +1 – Tomerikoo Jul 23 at 15:30
  • @Tomerikoo You are right. Force of habit to always write what I split on :) – Henry Yik Jul 23 at 15:31
  • 1
    I was referring to the whole list comprehension as split already returns a list and not a generator or something... I believe it makes it a bit more readable – Tomerikoo Jul 23 at 15:32
  • Cool, if I could, would be +2 :) – Tomerikoo Jul 23 at 15:42
3

Your problem is that you're flattening the whole list and dividing to couples when you want to divide to subsequent couples only the inner elements. So for that we will perform the operation on each element separatly:

lst = ['A B C D','E F G H I J','K L M N']

res = []
for s in lst:
    sub_l = s.split()
    for i in range(len(sub_l)-1):
        res.append("{} {}".format(sub_l[i], sub_l[i+1]))
print(res)

Gives:

['A B', 'B C', 'C D', 'E F', 'F G', 'G H', 'H I', 'I J', 'K L', 'L M', 'M N']
  • Thanks I got it.. I ran the code line by line.. Thx for explanation.. – james joyce Jul 23 at 15:49
2
nested = []
for item in lst:
    item = (' '.join(item).split())
    for ix in range(len(item) - 1):
        nested.append(' '.join(item[ix:ix + 2]))

print (nested)

output:

['A B', 'B C', 'C D', 'E F', 'F G', 'G H', 'H I', 'I J', 'K L', 'L M', 'M N']
  • @Tomerikoo is correct, the output is slightly different, I was doing the same as @ncica. You'll probably need to add some if condition to not append a few elements – Lucas Wieloch Jul 23 at 15:26
  • I edit my post ;) – ncica Jul 23 at 15:29
1

Here is a method using Regex:

import re
lst = ['A B C D','E F G H I J','K L M N']
result = re.findall(r'(?=(\b\w+?\b \b\w+?\b))', str(lst))
print(result)

Output:

['A B', 'B C', 'C D', 'E F', 'F G', 'G H', 'H I', 'I J', 'K L', 'L M', 'M N']
  • Thnks for the answer...Yes i have already tried it and its not working it gives only the last and first value of both words....every words in list is actual word not an alphabet. – james joyce Jul 24 at 9:36
  • @jamesjoyce I've edited it so now it will work for words. And please be more specific in your questions in future because you didn't mention that it would be words and not just letters. – Rob Kwasowski Jul 24 at 9:51

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