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what is the bes way tho check if two words are ordered in sentence and how many times it occurs in python. For example: I like to eat maki sushi and the best sushi is in Japan. words are: [maki, sushi]

Thanks.

The code

import re

x="I like to eat maki sushi and the best sushi is in Japan"
x1 = re.split('\W+',x)
l1 = [i for i,m in enumerate(x1) if m == "maki"]
l2 = [i for i,m in enumerate(x1) if m == "sushi"]


ordered = []
for i in l1:
    for j in l2: 
        if j == i+1:
            ordered.append((i,j))

print ordered
  • 5
    any code attempt you could provide yourself? – steabert Aug 29 '11 at 18:57
  • 1
    added, but not efficient – gizmo Aug 29 '11 at 19:17
  • So you want "every pair of indices (x, y) such that x < y and the x'th word is 'maki' and the y'th word is 'sushi'"? Or do you want the words to be consecutive? Or just what? – Karl Knechtel Aug 30 '11 at 4:46
  • As you can see in my example they have to be consecutive - y= x+1 – gizmo Aug 30 '11 at 6:33
1

According to the added code, you mean that words are adjacent?

Why not just put them together:

print len(re.findall(r'\bmaki sushi\b', sent)) 
  • No the OP means in order so this answer is useless. – Jakob Bowyer Aug 29 '11 at 19:34
  • @gizmo says "if j == i+1" – eph Aug 29 '11 at 19:38
  • @jakob - thx this actually solved my problem :) (I also allowed "-" between two words) – gizmo Aug 31 '11 at 16:23
1
def ordered(string, words):
    pos = [string.index(word) for word in words]
    return pos == sorted(pos)

s = "I like to eat maki sushi and the best sushi is in Japan"
w =  ["maki", "sushi"]
ordered(s, w) #Returns True.

Not exactly the most efficient way of doing it but simpler to understand.

  • 1
    why using 'assert' if ordered already returns a bool? – Remi Aug 29 '11 at 19:31
  • just to prove it works fine as the example given SHOULD return True. The assert is just to show it doesn't fail – Jakob Bowyer Aug 29 '11 at 19:35
  • OK. I liked that you made function for it by the way. But see our discussion about my answer: I think you do need to split the sentence... – Remi Aug 29 '11 at 20:00
  • 1
    That is a pretty inappropriate use of assert. Just use a comment. – wim Aug 30 '11 at 1:17
  • 1
    Fine. Ill change it – Jakob Bowyer Aug 30 '11 at 8:39
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s = 'I like to eat maki sushi and the best sushi is in Japan'

check order

indices = [s.split().index(w) for w in ['maki', 'sushi']]
sorted(indices) == indices

how to count

s.split().count('maki')

Note (based on discussion below):

suppose the sentence is 'I like makim more than sushi or maki'. Realizing that makim is another word than maki, the word maki is placed after sushi and occurs only once in the sentence. To detect this and count correctly, the sentence must be split over the spaces into the actual words.

  • That's over complicated? – Jakob Bowyer Aug 29 '11 at 19:09
  • edited: just saw I put a sorted() where it did not belong... – Remi Aug 29 '11 at 19:12
  • Your doing s.split().index(w). You don't need to. – Jakob Bowyer Aug 29 '11 at 19:13
  • yes you do need to split: suppose the sentence was 'I like makimore and maki'. the word 'maki' appears only once. Not using split() would count it twice – Remi Aug 29 '11 at 19:30
  • 1
    .index takes ONLY the first instance – Jakob Bowyer Aug 29 '11 at 19:42
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if res > 0: words are sorted in the sentence

words = ["sushi", "maki", "xxx"]
sorted_words = sorted(words)
sen = " I like to eat maki sushi and the best sushi is in Japan xxx";
ind = map(lambda x : sen.index(x), sorted_words)
res = reduce(lambda a, b: b-a, ind)
0

A regex solution :)

import re
sent = 'I like to eat maki sushi and the best sushi is in Japan'
words = sorted(['maki', 'sushi'])
assert re.search(r'\b%s\b' % r'\b.*\b'.join(words), sent)
  • Bah the world needs less re – Jakob Bowyer Aug 29 '11 at 19:19
  • %s formatting is less future proof considering the newer string.format() method – Remi Aug 29 '11 at 19:33
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Just and idea, it might need some more work

(sentence.index('maki') <= sentence.index('sushi')) == ('maki' <= 'sushi')
  • What about multiple words? – Jakob Bowyer Aug 29 '11 at 19:33
  • index() would give you the lowest index. It would also raise ValueError if the word is not in the string. This would work only for the simplest cases. – Facundo Casco Aug 29 '11 at 19:50

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