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Also I need to make the program show the words that DO have digits in thee digits in them SEPERATELY

f = open("lolpa.txt", "r")

list1 = (f)
temp = []

for item in list1:
    if "1" "2" "3" "4" "5" "6" "7" "8" "9" "0"  in item:
        temp.append(item)
    else:
        print(item)

is what i have so far, but it for some reason shows all the words.

EDIT: The lolpa.txt is just a file for comparison

EDIT: If that would change anything , I'm using python 3.2.

share|improve this question
    
if in item: looks wrong. Are you sure that's what you have? Also, someone fixed your formatting but you changed it back. –  Joel Cornett Aug 8 '12 at 1:53
    
Well, earlier, between those two there were "1", "2", "3", "4" and until 9. I guess i messed it up while copypasting, thanks for telling, ill check it. –  Kichrootra Aug 8 '12 at 2:01
    
Python automatically concatenates strings that are right next to each other, so "1" "2" "3" "4" "5" "6" "7" "8" "9" "0" is interpreted as "1234567890". –  Joel Cornett Aug 8 '12 at 3:03

3 Answers 3

up vote 3 down vote accepted

Something like this will get you started, question isn't very clear.

with open("lolpa.txt") as f:
    for word in f.readline().split(): # assuming all words are on the first line
        digits = [c for c in word if c.isdigit()]
        if digits: # digits list is not empty
            print(' '.join(digits)) # shows digits with space in between
        else:
            print(word) # prints word normally
share|improve this answer
    
Thanks jamylak, it now shows the digits only, without the words though :c –  Kichrootra Aug 8 '12 at 2:08
    
@Kichrootra What does your file look like? This example file works fine for me: pastebin.com/aUYKqyHj –  jamylak Aug 8 '12 at 2:14
    
the file is .txt and what's in there is artur artu4 i5 is awes0me awesome. what your script does is only show the digits. –  Kichrootra Aug 8 '12 at 2:16
    
@Kichrootra is that all on the one line? –  jamylak Aug 8 '12 at 2:16
    
yes it is in one line –  Kichrootra Aug 8 '12 at 2:17

The following will put whole words having numbers in them in one file and without numbers in another.

f = open('lolpa.txt', 'r')
d = open('lolpa_with_digit.txt', 'w')
nd = open('lolpa_without_digit.txt', 'w')
rowlist = (f)
temp = []

for line in rowlist:
    words = line.split(' ')
    for word in words:
        word = word.strip()
        has_digit = False
        for char in word:
            if char.isdigit():
                has_digit = True
        if has_digit:
            d.write(word + '\n')
        else:
            nd.write(word +'\n')
share|improve this answer

I'm no regular expression expert but this should work(of course you'd have to loop over each line yadayada):

import re
prog = re.comile(r'\b[a-zA-Z]+\b')
result = prog.findall(your_line_here)

result would then be a list of all the words

share|improve this answer
    
Why not directly re.findall(), without prog = …? –  EOL Aug 8 '12 at 2:35
    
@EOL re.findall(pattern,string) is equivalent to what I have. the prog saves you from compiling each time(so you are more efficient). but yes, it hardly matters in this case –  IamAlexAlright Aug 8 '12 at 2:54
    
You're right about compiling. If you really care about efficiency, then it is even more efficient to do prog = re.compile(…).findall. That said, I always argue to my students that prog = … unnecessarily increases the cognitive burden of reading the program: it actually means that prog will be reused and that people must keep this variable somewhere in their mind. So, while your code is functionally equivalent to not using an intermediate variable, I never encourages people to create unnecessary variables. –  EOL Aug 8 '12 at 7:17

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