Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a code like:

s = "hello this is hello this is baby baby baby baby hello"
slist = s.split()
finallist = []
for word in slist:
    if len(word) >= 4:
          final = final + [word]

Basically this code above for taking the list and only putting a list of words that have more than 4 characters.

From this list I want to be able to count the number of times that the same word appears and and save it into a new list. so it would be like [3,2,4] 3 being the times of hello, 2 being the times of this, and 4 being baby.

share|improve this question
1  
    
Looks like homework. –  Demosthenex Mar 6 '13 at 3:18
    
@squiguy thank you thats the doc's I was looking for. –  Conor Fischer Mar 7 '13 at 4:24

3 Answers 3

up vote 0 down vote accepted
from collections import Counter
import re

reg = re.compile('\S{4,}')

s = "hello this is hello this is baby baby baby baby hello"
c = Counter(ma.group() for ma in reg.finditer(s))
print c

result

Counter({'baby': 4, 'hello': 3, 'this': 2})

Also:

from collections import defaultdict
d = defaultdict(int)

s = "hello this is hello this is baby baby baby baby hello"

for w in s.split():
    if len(w)>=4:
        d[w] += 1

print d
share|improve this answer
    
@Xaphen re is the module bringing regexes to our disposal. The pattern '\S{4,}' means 'any character different of a whitespace' \S , number of such characters : 4 or more. Whitespaces are \f , \n ,\r ,\t ,\v ,\x and blank. re.finditer(s) is a generator of matches found in s that verify the pattern. A match ma holds inside itself information : ma.group() is the information consisting of the entire matching portion of s matching with the pattern –  eyquem Mar 6 '13 at 3:22
    
@Xaphen Thank you. Note that I used re.finditer() because it's a generator that yields matchings one after the other without having to create a new object before iterating in it as does re.findall(). But if the string isn't gigantic, it may be equivalent to write Counter(reg.findall(text)). If such a research has not to be repeated, and then regex object reg won't be used again, it's also possible to write directly Counter(re.findall('\S{4,}',text)) –  eyquem Mar 7 '13 at 10:31

collections.Counter is clearly your friend (unless you need the output in a specific sorted order). Combine it with a generator comprehension to generate all the length-4 words and you are golden.

from collections import Counter

Counter(w for w in s.split() if len(w) >= 4)

If you need the elements in order of their first appearance, use an ordered dictionary:

from collections import OrderedDict

wc = OrderedDict()
for w in s.split():
    if len(w) >= 4:
        wc[w] = wc.get(w, 0) + 1
share|improve this answer
    
Simple, straight, clear. –  eyquem Mar 6 '13 at 3:30

All you have to do is use the count method from the slist.

I think you may use a dict to have a better control of

s = "hello this is hello this is baby baby baby baby hello"
slist = s.split()
finaldict = {}
for word in slist:
    if len(word) >= 4 and not finaldict.get(word):
          finaldict[word] = slist.count(word)

Now, if you want the list of values, just do this: finallist = finaldict.values()

share|improve this answer
    
...this is not fast, because you use .count many times. –  nneonneo Mar 6 '13 at 3:24
    
@nneonneo Only use count once per word. –  Fernando Freitas Alves Mar 6 '13 at 3:25
    
@FernandoFreitasAlves: so if it is a list full of unique words, then it is really bad :) –  nneonneo Mar 6 '13 at 3:25

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.