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#!/usr/bin/python
#this looks for words in dictionary that begin with 'in' and the suffix is a real word
wordlist = [line.strip() for line in open('/usr/share/dict/words')]
newlist = []
for word in wordlist:
    if word.startswith("in"):
        newlist.append(word)
for word in newlist:
    word = word.split('in')
print newlist

how would I get the program to remove the string "in" from all the words that it starts with? right now it does not work

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If you are looking only for words whose opposites are prefixed by "in", note that not all words starting with "in" are opposites of any other words. For example: "intestine", "inject", etc. –  BoltClock Jan 15 '11 at 4:08
    
@BoltClock: Well, in those cases, it helps that "testine" and "ject" aren't words (assuming he adds a test for that). "inquest", however, would be a problem. –  David German Jan 15 '11 at 4:19
    
@David German: Exactly. –  BoltClock Jan 15 '11 at 4:19
    
i added a test for that don't worry –  tekknolagi Jan 15 '11 at 6:31
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4 Answers

up vote 1 down vote accepted

split() returns a list of the segments obtained by splitting. Furthermore,

word = word.split('in')

doesn't modify your list, it just modifies the variable being iterated.

Try replacing your second loop with this:

for i in range(len(newlist)):
    word = newlist[i].split('in', 1)
    newlist[i] = word[1]
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thank you - this worked MARVELOUSLY –  tekknolagi Jan 15 '11 at 3:42
    
This will have problems with words that include the substring "in" non-prefixally, such as "infinite". –  David German Jan 15 '11 at 4:04
1  
@David German: Passing 1 should take care of that. –  BoltClock Jan 15 '11 at 4:06
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Suppose that wordlist is the list of words. Following code should do the trick:

for i in range(len(wordlist)):
    if wordlist[i].startswith("in"):
        wordlist[i] = wordlist[i][2:]

It is better to use while loop if the number of words in the list is quite big.

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do i have to import a module? ltrim does not seem to be an acceptable attribute –  tekknolagi Jan 15 '11 at 3:41
    
@tekknolagi: I think that's supposed to be lstrip() –  BoltClock Jan 15 '11 at 3:44
    
oh that would solve some things.... –  tekknolagi Jan 15 '11 at 3:46
    
yeah, it must be strip sry. Writing in few languages at the same time and messing up method' names sometimes :) –  Elalfer Jan 15 '11 at 3:47
    
There is no string.ltrim() method; and if you meant string.lstrip(), it does not do what you think: "abaabbcc".lstrip("ab") -> "cc" –  Hugh Bothwell Jan 15 '11 at 3:49
show 2 more comments

It's difficult to tell from your question what you want in newlist if you just want words that start with "in" but with "in" removed then you can use a slice:

newlist = [word[2:] for word in wordlist if word.startswith('in')]

If you want words that start with "in" are still in wordlist once they've had "in" removed (is that what you meant by "real" in your comment?) then you need something a little different:

newlist = [word for word in wordlist if word.startswith('in') and word[2:] in wordlist

Note that in Python we use a list, not an "array".

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1  
This is a great answer. That second list comprehension will be O(N^2) in length of wordlist, though. If that's the behavior you want, and wordlist is big, consider a trie: en.wikipedia.org/wiki/Trie –  David German Jan 15 '11 at 4:10
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#!/usr/bin/env python

# Look for all words beginning with 'in'
# such that the rest of the word is also
# a valid word.

# load the dictionary:
with open('/usr/share/dict/word') as inf:
    allWords = set(word.strip() for word in inf)  # one word per line
  1. using 'with' ensures the file is always properly closed;
  2. I make allWords a set; this makes searching it an O(1) operation

then we can do

# get the remainder of all words beginning with 'in'
inWords = [word[2:] for word in allWords if word.startswith("in")]
# filter to get just those which are valid words
inWords = [word for word in inWords if word in allWords]

or run it into a single statement, like

inWords = [word for word in (word[2:] for word in allWords if word.startswith("in")) if word in allWords]

Doing it the second way also lets us use a generator for the inside loop, reducing memory requirements.

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1  
Your last list comprehension statement is one heck of a tongue twister. –  BoltClock Jan 15 '11 at 6:13
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