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I have a string: "y, i agree with u."

And I have array dictionary [(word_will_replace, [word_will_be_replaced])]:

[('yes', ['y', 'ya', 'ye']), ('you', ['u', 'yu'])]

i want to replace 'y' with 'yes' and 'u' with 'you' according to the array dictionary.

So the result i want: "yes, i agree with you."

I want to keep the punctuation there.

share|improve this question
    
related: stackoverflow.com/questions/16516623/… – jamylak May 17 '13 at 3:17
    
regular-expressions.info/reference.html The \b meta character matches on word boundaries, as in, between a word and space or word and symbol. e.g. \by\b will match ONLY the word y on its own. – Patashu May 17 '13 at 3:17
    
Both solutions below are correct under the assumption that the replacement word is not a word to be replaced for another word. e.g. {abc <-- ab, abcd <-- abc}. If you don't have this assumption, then only jamylak's solution is correct. – nhahtdh May 17 '13 at 4:01
up vote 3 down vote accepted
import re
s="y, i agree with u. yu."
l=[('yes', ['y', 'ya', 'ye']), ('you', ['u', 'yu'])] 
d={ k : "\\b(?:" + "|".join(v) + ")\\b" for k,v in l}
for k,r in d.items(): s = re.sub(r, k, s)  
print s

Output

yes, i agree with you. you.
share|improve this answer
    
This is a good example. If you're going to do this over and over again, it might be worthwhile to store the dictionary as key:re.compile(...) – mgilson May 17 '13 at 3:24
    
how I can make d={'yes': ['y', 'ya', 'ye'],'you': ['u', 'yu']} from the array [('yes', ['y', 'ya', 'ye']), ('you', ['u', 'yu'])] ?? – Fahmi Rizal May 17 '13 at 4:13
    
@FahmiRizal, updated the answer – perreal May 17 '13 at 4:16
    
@mgilson that is superfluous, as compiling and caching regexes is already built into the re module. – wim May 17 '13 at 4:22

Extending @gnibbler's answer from Replacing substrings given a dictionary of strings-to-be-replaced as keys and replacements as values. Python with the tips implemented from Raymond Hettinger in the comments.

import re
text = "y, i agree with u."
replacements = [('yes', ['y', 'ya', 'ye']), ('you', ['u', 'yu'])]
d = {w: repl for repl, words in replacements for w in words}
def fn(match):
    return d[match.group()]

print re.sub('|'.join(r'\b{0}\b'.format(re.escape(k)) for k in d), fn, text)

>>> 
yes, i agree with you.
share|improve this answer
    
@perreal good point – jamylak May 17 '13 at 3:28
    
thank you :), so (?:) is not necessary. – perreal May 17 '13 at 3:31
    
@perreal no since those aren't captured – jamylak May 17 '13 at 3:31

That's not a dictionary -- it's a list, but it could be converted to a dict pretty easily. In this case, however, I would make it a little more explicit:

d = {}
replacements = [('yes', ['y', 'ya', 'ye']), ('you', ['u', 'yu'])]
for value,words in replacements:
    for word in words:
        d[word] = value

Now you have the dictionary mapping responses to what you want to replace them with:

{'y':'yes', 'ya':'yes', 'ye':'yes',...}

once you have that, you can pop in my answer from here using regular expressions: http://stackoverflow.com/a/15324369/748858

share|improve this answer
    
Sorry, when I want to replace: "You" there become: "Yesou" – Fahmi Rizal May 17 '13 at 4:04

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