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I have a dictionary of synonyms:

synonym = {"this": ["this", "same"],
           "all": ["all", "any", "*"],
           "alluptolastyear": ["alluptolastyear", "uptolastyear"],
           "dekadbefore": ["dekadbefore", "lastdekad", "formerdekad", "precedingdekad"],
           "dekadafter": ["dekadafter", "nextdekad", "followingdekad"],
           "yearbefore": ["yearbefore", "lastyear", "formeryear"],
           "monthbefore": ["monthbefore", "lastmonth", "precedingmonth"]}

Each array stores synonyms, referenced through the keys. I read two strings from an XML file, and try to compare them.

For example:

  • "this" and "same" are equal (synonyms)
  • '"lastyear"' and '"formeryear"' are equal (synonyms)
  • "all" and "nextdekad" are different
  • of course, each key value is found in its corresponding array, so each key is a synonym of its array's strings.

Could some help me to write a pythonic comparison of those strings using the synonym dictionary?

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In your example, is lastyear a synonym for formeryear? –  sloth Oct 12 '12 at 8:25
    
Yes, it is. All values inside an array are synonyms, they are referenced through the dictionary key. –  Bruno von Paris Oct 12 '12 at 9:15

5 Answers 5

up vote 5 down vote accepted

Try this:

def are_sinonims(a, b):
    return a in synonym.get(b,[]) or b in synonym.get(a,[]) or any(a in synonym[k] and b in synonym[k] for k in synonym)

Also, we can rewrite the part a in synonym[k] and b in synonym[k] for k in synonym to a in words and b in words for words in synonym.values() such that:

def are_sinonims(a, b):
    return a in synonym.get(b,[]) \
           or b in synonym.get(a,[]) \
           or any(a in words and b in words for words in synonym.values())
share|improve this answer
    
@defuz, thanks for the correction. –  Marcus Oct 12 '12 at 8:40
    
How about a in words and b in words for words in synonym.values()? –  defuz Oct 12 '12 at 8:44
    
@defuz, seems good, I will update my answer. –  Marcus Oct 12 '12 at 8:48

Why not just:

def are_sinonims(a, b):
    return b in synonym.get(a, []) or a in synonym.get(b, [])

Edited after comment with fault.

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2  
will not work correctly if a=="lastmonth" and b=="precedingmonth" –  Marcus Oct 12 '12 at 8:25
1  
this solution doesn't work for "formeryear" and "last year" –  defuz Oct 12 '12 at 8:25
    
but are we sure that's what we want ? –  Bogdan Oct 12 '12 at 8:52

You can convert each word into "synonyms hash" (something that is equal if two words are synonyms and different otherwise):

def sym_hash(word):
    for w, s in synonym.items():
        if word == w or word in s:
            return w
    return word

And then compare words using their "hashes":

def phrases_equal(p1, p2):
    return all(sym_hash(a) == sym_hash(b) for a, b in zip(p1, p2))

p1 = "all your base this dekadbefore are formeryear".split()
p2 = "any your base same lastdekad are yearbefore".split()

print phrases_equal(p1, p2) # True

Actually, the proper data structure for the synonyms database appears to be a list of sets, not a dict:

synonym = [
    {"this", "same"},
    {"all", "any", "*"},
    {"alluptolastyear", "uptolastyear"},
    {"dekadbefore", "lastdekad", "formerdekad", "precedingdekad"},
    {"dekadafter", "nextdekad", "followingdekad"},
    {"yearbefore", "lastyear", "formeryear"},
    {"monthbefore", "lastmonth", "precedingmonth"}
]

in which case we can code sym_hash more efficiently as

def sym_hash(word):
    return next((s for s in synonym if word in s), word)
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Firstly, make new dict for every synonyms as a key:

word_to_word = {}    
for syns in synonym.values():
    for word in syns:
        word_to_word[word] = syns

Function compare strings:

def are_sinomic(a, b):    
    words_a, words_b = a.split(), b.split()
    if len(words_a) != len(words_b):
        return False
    for word_a, word_b in zip(words_a, words_b):
       if word_a != word_b and word_b not in word_to_word.get(word_a, []):
           return False
    return True
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If you're only concerned that something is a synonym, then you can just build a set of 2-tuples from the permutations of the dict's values...:

synonym = {"this": ["this", "same"], 
           "all": ["all", "any", "*"], 
           "alluptolastyear": ["alluptolastyear", "uptolastyear"], 
           "dekadbefore": ["dekadbefore", "lastdekad", "formerdekad", "precedingdekad"], 
           "dekadafter": ["dekadafter", "nextdekad", "followingdekad"], 
           "yearbefore": ["yearbefore", "lastyear", "formeryear"], 
           "monthbefore": ["monthbefore", "lastmonth", "precedingmonth"]} 

from itertools import chain, permutations
synonym_set = set(chain.from_iterable(permutations(val, 2) for val in synonym.values()))

def are_synonyms(a, b):
    return (a, b) in synonym_set
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