18

My List:

city=['Venango Municiplaity', 'Waterford ship','New York']

Expected Result:

city = ['Venango Municiplaity ', 'Waterford ship','New York','Venango','Waterford']

Common_words:

common_words = ['ship','municipality']

Scan all the items in My List and strip the common words and re-insert in the same list as shown in Expected Result.

I'm able to search the items which contains the common words but not sure how to replace that with blank and re-insert in My List.

My code so far:

for item in city:
    if(any(x in s.lower() for s in item.split(' ') for x in common_words)) :
  • 1
    ... why are you splitting item and using x in s.lower() for each part of item? Provided that elements in common_words do not contain a space you can simply do if any(x in item.lower() for x in common_words). In this case maybe using regexes is simpler... you just need to do a replaced = re.sub('|'.join(map(re.escape, common_words)), item, flags=re.I) if replaced != item: city.append(replaced). – Giacomo Alzetta Aug 22 '18 at 7:33
  • Btw... did you mean to misspell "Municipality" in city? – U10-Forward Oct 16 '18 at 4:38
8

I have made a small code that works as expected:

city=['Venango Municiplaity', 'Waterford ship','New York']
comwo = ['ship','municipality']
for i, c in enumerate(city):
    for ii in comwo:
        if ii in c:
            city.append(city[i].replace(ii,""))
print(city)

Output:

['Venango Municiplaity', 'Waterford ship', 'New York', 'Waterford ']

Note:

The list you have made contains incorrect spelling.
Look at list city's first element VenangoMuniciplaity and second element of common_words municipality

If you want this in one-liner:

[city.append(city[i].replace(ii,"")) for ii in comwo for i, c in enumerate(city) if ii in c]

I used list comprehension to append to the list city.


Edit:

So if you also want to replace the space (if any) behind the word then I have made a separate code:

city=['Village home', 'Villagehome','New York']
comwo = ['home']
for i, c in enumerate(city):
    for ii in comwo:
        if ii in c:
            city.append(city[i].replace(" "+ii,"")) if city[i].replace(" "+ii,"") != city[i] else city.append(city[i].replace(ii,""))
print(city)

Output:

['Village home', 'Villagehome', 'New York', 'Village', 'Village']

If you need this in one-liner as well:

[city.append(city[i].replace(" "+ii,"")) if city[i].replace(" "+ii,"") != city[i] else city.append(city[i].replace(ii,"")) for ii in comwo for i, c in enumerate(city) if ii in c]
  • 2
    @min2bro it replaces the words within the words as well, for example : Villageship to village. And it does not strip trailing whitespaces. And it is case-sensitive. – Laurent H. Aug 22 '18 at 8:10
7

I suggest you the following solution, using re.sub with flags=re.IGNORECASE to strip the common words ignoring the case:

import re

city = ['Venango Municipality', 'Waterford ship','New York']
common_words = ['ship','municipality']

toAppend = []

for c in city:
    for cw in common_words:
        if cw.lower() in c.lower().split():
            toAppend.append(re.sub(cw, "", c, flags=re.IGNORECASE).strip())

city += toAppend

print(city) # ['Venango Municipality', 'Waterford ship', 'New York', 'Venango', 'Waterford']

And here is the ONE-LINE STYLE solution using list comprehension, short but a bit less readable:

import re

city = ['Venango Municipality', 'Waterford ship','New York']
common_words = ['ship','municipality']

city += [re.sub(cw, "", c, flags=re.IGNORECASE).strip() for c in city for cw in common_words if cw.lower() in c.lower().split()]

print(city) # ['Venango Municipality', 'Waterford ship', 'New York', 'Venango', 'Waterford']
  • it replace the words within the words as well, for example : Villageship to village – min2bro Aug 22 '18 at 7:48
  • @min2bro then change if cw.lower() in c.lower(): to if cw.lower() in map(lambda x: x.lower(), c.split()): Take a look – Ev. Kounis Aug 22 '18 at 7:53
  • You're right ! I have updated my answer with if cw.lower() in c.lower().split() instead of if cw.lower() in c.lower(). Thanks a lot. – Laurent H. Aug 22 '18 at 8:00
6

You can try it, create new list to save there data should be added to your original list, and then concatenate result:

In [1]: city=['Venango Municiplaity', 'Waterford ship','New York']

In [2]: common_words = ['ship', 'municiplaity']

In [3]: list_add = []

In [4]: for item in city:
   ...:     item_words = [s.lower() for s in item.split(' ')]
   ...:     if set(common_words) & set(item_words):
   ...:         new_item = [s for s in item.split(' ') if s.lower() not in common_words]
   ...:         list_add.append(" ".join(new_item))
   ...:         

In [5]: city + list_add
Out[5]: ['Venango Municiplaity', 'Waterford ship', 'New York', 'Venango', 'Waterford']
4

This is one approach using Regex.

Demo:

import re

city=['Venango Municiplaity', 'Waterford ship','New York']
common_words = ['ship','municiplaity']
common_words = "(" + "|".join(common_words) + ")"

res = []
for i in city:
    if re.search(common_words, i, flags=re.IGNORECASE):
        res.append(i.strip().split()[0])
print(city + res)

Output:

['Venango Municiplaity', 'Waterford ship', 'New York', 'Venango', 'Waterford']
  • 1
    You should map(re.escape, common_words) to handle words containing "special characters". – Giacomo Alzetta Aug 22 '18 at 7:36
  • if there is an item villageship, it re-inserts it, I just wanted to replace a word in the city. – min2bro Aug 22 '18 at 7:51
  • part i.strip().split()[0] is what I am not a fan of. – Ev. Kounis Aug 22 '18 at 7:52
4

Put results in separate list and then use list.extend() to append contents of result list to original list

cities = ['Venango Municipality', 'Waterford ship', 'New York']

common_words = ['ship', 'municipality']

add_list = []

for city in cities:
    rl = []
    triggered = False
    for city_word in city.split():
        if city_word.lower() in common_words:
            triggered = True
        else:
            rl.append(city_word)
    if triggered:
        add_list.append(' '.join(rl))

cities.extend(add_list)
print(cities)
4

You can use a list comprehension in order to detect if an item contains something to add to the city list.

city=['Venango Municipality', 'Waterford ship','New York']

common_words = ['ship','municipality']
items_to_add = []
for item in city: 
  toAddition = [word for word in item.split() if word.lower() not in common_words]
  if ' '.join(toAddition) != item:
    items_to_add.append(' '.join(toAddition))

print(city + items_to_add)  

Output

['Venango municipality', 'Waterford ship', 'New York', 'Venango', 'Waterford']
  • fiddling with the initial list changes the problem a bit in this case. having municipality instead of municipality makes it considerably easier. – Ev. Kounis Aug 22 '18 at 7:43
0

An approach with re module:

import re

city=['Venango Municipality', 'Waterford ship','New York']
common_words = ['ship','municipality']
print(city)

for item in city:
    word_list = str(item).split(" ")
    for word in word_list:
        if word.lower() in common_words:
            word_list.remove(word)
            city.extend(word_list)
            continue

print(city)

output:

['Venango Municipality', 'Waterford ship', 'New York', 'Venango', 'Waterford']
0

Try this, using extend:

city.extend([i.split()[0] for i in city if i.split()[1].lower() in map(str.lower,common_words)])

Demo:

>>> city=['Venango Municipality', 'Waterford ship','New York']
>>> common_words = ['ship','municipality']
>>> city.extend([i.split()[0] for i in city if i.split()[1].lower() in map(str.lower,common_words)])
>>> city
['Venango Municipality', 'Waterford ship', 'New York', 'Venango', 'Waterford']
>>> 

If meant to misspell:

>>> city=['Venango Municiplaity', 'Waterford ship','New York']
>>> common_words = ['ship','municipality']
>>> from difflib import SequenceMatcher
>>> city.extend([i.split()[0] for i in city if any(SequenceMatcher(None,i.split()[1].lower(),v).ratio()>0.8 for v in map(str.lower,common_words))])
>>> city
['Venango Municiplaity', 'Waterford ship', 'New York', 'Venango', 'Waterford']
>>> 

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