11

Sorry if the question is bit confusing. This is similar to this question

I think this the above question is close to what I want, but in Clojure.

There is another question

I need something like this but instead of '[br]' in that question, there is a list of strings that need to be searched and removed.

Hope I made myself clear.

I think that this is due to the fact that strings in python are immutable.

I have a list of noise words that need to be removed from a list of strings.

If I use the list comprehension, I end up searching the same string again and again. So, only "of" gets removed and not "the". So my modified list looks like this

places = ['New York', 'the New York City', 'at Moscow' and many more]

noise_words_list = ['of', 'the', 'in', 'for', 'at']

for place in places:
    stuff = [place.replace(w, "").strip() for w in noise_words_list if place.startswith(w)]

I would like to know as to what mistake I'm doing.

1
  • You're not making yourself clear; state your question here, and then put links to similar questions with similar answers if you think that's necessary below. Commented Aug 18, 2010 at 10:36

4 Answers 4

15

Without regexp you could do like this:

places = ['of New York', 'of the New York']

noise_words_set = {'of', 'the', 'at', 'for', 'in'}
stuff = [' '.join(w for w in place.split() if w.lower() not in noise_words_set)
         for place in places
         ]
print stuff
1
  • I came across this and had no idea whats going on here. If anyone stumbles across this and wonder what magic is happening, its called list comprehension and this is a good article explaining it carlgroner.me/Python/2011/11/09/… Commented Jul 26, 2017 at 10:53
11

Here is my stab at it. This uses regular expressions.

import re
pattern = re.compile("(of|the|in|for|at)\W", re.I)
phrases = ['of New York', 'of the New York']
map(lambda phrase: pattern.sub("", phrase),  phrases) # ['New York', 'New York']

Sans lambda:

[pattern.sub("", phrase) for phrase in phrases]

Update

Fix for the bug pointed out by gnibbler (thanks!):

pattern = re.compile("\\b(of|the|in|for|at)\\W", re.I)
phrases = ['of New York', 'of the New York', 'Spain has rain']
[pattern.sub("", phrase) for phrase in phrases] # ['New York', 'New York', 'Spain has rain']

@prabhu: the above change avoids snipping off the trailing "in" from "Spain". To verify run both versions of the regular expressions against the phrase "Spain has rain".

4
  • Thanks. It works this way. I was able to understand the concept of lambda more clearly now as I got a chance to implement this.
    – prabhu
    Commented Aug 18, 2010 at 10:17
  • 1
    This doesn't work properly for the phrase "Spain has rain". It's easy to fix though Commented Aug 18, 2010 at 10:29
  • @Gnibbler: thanks for pointing it out. Am changing my answer accordingly. Commented Aug 18, 2010 at 10:47
  • I added the word "max" in to the pattern, and in some cases it removed the word, in other cases it didn't. It is weird, someone should test it to see if they're getting the same results. Commented Jan 8, 2017 at 7:14
4
>>> import re
>>> noise_words_list = ['of', 'the', 'in', 'for', 'at']
>>> phrases = ['of New York', 'of the New York']
>>> noise_re = re.compile('\\b(%s)\\W'%('|'.join(map(re.escape,noise_words_list))),re.I)
>>> [noise_re.sub('',p) for p in phrases]
['New York', 'New York']
3
  • Wow! That is a real cool way of doing, though I strained my brain. :-)
    – prabhu
    Commented Aug 18, 2010 at 10:21
  • This does not seem to get every instance of words. For example, "of New York of" becomes "New York of".
    – Namey
    Commented May 5, 2014 at 0:38
  • 1
    @Namey, you could use something like'\\W?\\b(%s)\\W?'. Without the OP providing a comprehensive set of testcases, it's a bit of a whack-a-mole Commented May 5, 2014 at 1:12
1

Since you would like to know what you are doing wrong, this line:

stuff = [place.replace(w, "").strip() for w in noise_words_list if place.startswith(w)]

takes place, and then begins to loop over words. First it checks for "of". Your place (e.g. "of the New York") is checked to see if it starts with "of". It is transformed (call to replace and strip) and added to the result list. The crucial thing here is that result is never examined again. For every word you iterate over in the comprehension, a new result is added to the result list. So the next word is "the" and your place ("of the New York") doesn't start with "the", so no new result is added.

I assume the result you got eventually is the concatenation of your place variables. A simpler to read and understand procedural version would be (untested):

results = []
for place in places:
    for word in words:
        if place.startswith(word):
            place = place.replace(word, "").strip()
    results.append(place)

Keep in mind that replace() will remove the word anywhere in the string, even if it occurs as a simple substring. You can avoid this by using regexes with a pattern something like ^the\b.

0

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