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I'm trying to analyze the contents of a string. If it has a punctuation mixed in the word I want to replace them with spaces.

For example, If Johnny.Appleseed!is:a*good&farmer is entered as an input then it should say there are 6 words, but my code only sees it as 0 words. I'm not sure how to remove an incorrect character.

FYI: I'm using python 3, also I can't import any libraries

string = input("type something")
stringss = string.split()

    for c in range(len(stringss)):
        for d in stringss[c]:
            if(stringss[c][d].isalnum != True):
                #something that removes stringss[c][d]
                total+=1
print("words: "+ str(total))
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3  
You are over-complicating this. You can iterate a string using a normal for loop. –  squiguy Jul 6 '13 at 23:06
    
d is an individual character of a string, not and index. And you are not calling the .isalnum() method, just referencing it. And use if not to test for negative, not != True. –  Martijn Pieters Jul 6 '13 at 23:07
    
And why can't you import any libraries...? –  Markus Meskanen Jul 6 '13 at 23:08
    
I was told not to use it. What's wrong with using != True? –  Harry Harry Jul 6 '13 at 23:10
2  
@HarryHarry It's not Pythonic. And just because you are using Python 3, does not mean you cannot import any libraries. If that were true, Python 3 would probably not have been released. –  Rushy Panchal Jul 6 '13 at 23:36

5 Answers 5

up vote 8 down vote accepted

Simple loop based solution:

strs = "Johnny.Appleseed!is:a*good&farmer"
lis = []
for c in strs:
    if c.isalnum() or c.isspace():
        lis.append(c)
    else:
        lis.append(' ')

new_strs = "".join(lis)
print new_strs           #print 'Johnny Appleseed is a good farmer'
new_strs.split()         #prints ['Johnny', 'Appleseed', 'is', 'a', 'good', 'farmer']

Better solution:

Using regex:

>>> import re
>>> from string import punctuation
>>> strs = "Johnny.Appleseed!is:a*good&farmer"
>>> r = re.compile(r'[{}]'.format(punctuation))
>>> new_strs = r.sub(' ',strs)
>>> len(new_strs.split())
6
#using `re.split`:
>>> strs = "Johnny.Appleseed!is:a*good&farmer"
>>> re.split(r'[^0-9A-Za-z]+',strs)
['Johnny', 'Appleseed', 'is', 'a', 'good', 'farmer']
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How's regex a better solution, is it faster? –  Markus Meskanen Jul 6 '13 at 23:31
    
@MarkusMeskanen Of course, almost twice as fast. –  Ashwini Chaudhary Jul 6 '13 at 23:37
    
That's not even the good regex solution :P –  Ignacio Vazquez-Abrams Jul 6 '13 at 23:43
    
@IgnacioVazquez-Abrams You're right about that(re.sub and then str.split eh!!), I guess re.split is a better alternative. –  Ashwini Chaudhary Jul 7 '13 at 0:05
5  
>>> len(re.findall(r'\b\w+\b', 'Johnny.Appleseed!is:a*good&farmer')) 6 –  Ignacio Vazquez-Abrams Jul 7 '13 at 0:05

Here's a one-line solution that doesn't require importing any libraries.
It replaces non-alphanumeric characters (like punctuation) with spaces, and then splits the string.

Inspired from "Python strings split with multiple separators"

>>> s = 'Johnny.Appleseed!is:a*good&farmer'
>>> words = ''.join(c if c.isalnum() else ' ' for c in s).split()
>>> words
['Johnny', 'Appleseed', 'is', 'a', 'good', 'farmer']
>>> len(words)
6
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try this: it parses the word_list using re, then creates a dictionary of word:appearances

import re
word_list = re.findall(r"[\w']+", string)
print {word:word_list.count(word) for word in word_list}
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for ltr in ('!', '.', ...) # insert rest of punctuation
     stringss = strings.replace(ltr, ' ')
return len(stringss.split(' '))
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I know that this is an old question but...How about this?

string = "If Johnny.Appleseed!is:a*good&farmer"

a = ["*",":",".","!",",","&"," "]
new_string = ""

for i in string:
   if i not in a:
      new_string += i
   else:
      new_string = new_string  + " "

print(len(new_string.split(" ")))
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