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I am trying to find things in a string - all of them are before a number, for example:

"Diablo Lord Of Destruction 9.2"

This is an index from a file such that file[2] = "Diablo Lord Of Destruction 9.2"

how can I write code that will select only the text and leave out the numbers and any white space before those numbers (as below)?

"Diablo Lord Of Destruction"

I understand you can easily do this by doing something like this:

contents = file[2]
print contents[0:-2]

Since the values will be changing, I need a more robust solution that can handle different sized numbers and different lengths of white space.

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Please clarify your question. It's difficult to see what's being asked. –  Colin Dunklau Jul 10 '12 at 17:56
    
Have you heard about regular expression? –  Alejandro Piad Jul 10 '12 at 18:00
    
1. I have a list which I am selecting an index from. 2. The index from the file contains numbers which I want to remove. 3. The index is always in the same format "blah blah blah more blah sometimes #.#.#" 4. I want to take that index, in general, and be able to remove just the numbers in whichever method that works. –  Ferdinand Jul 10 '12 at 18:02
    
@AlejandroPiad Heard?, yes. Actually used, applied, and studied them? Nope –  Ferdinand Jul 10 '12 at 18:07

6 Answers 6

up vote 3 down vote accepted

You can utilize regular expressions and the sub() method:

Return the string obtained by replacing the leftmost non-overlapping occurrences of pattern in string by the replacement repl. If the pattern isn’t found, string is returned unchanged. repl can be a string or a function; if it is a string, any backslash escapes in it are processed.

>>> import re
>>> re.sub('[0-9.]*', '', 'Diablo Lord of Destruction 9.2')[:-1]
'Diablo Lord of Destruction'
>>> re.sub('[\d.]*', '', 'Diablo Lord of Destruction 9.2')[:-1]
'Diablo Lord of Destruction'

The code above will find all number occurrences, [0-9.] or [\d.], and replace them with ''. In addition, it trims the last character, which was a space.

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Thank you so much. This worked perfectly, and easy to understand as well, thanks for the explanation. –  Ferdinand Jul 10 '12 at 18:12
1  
@Larson A note for the future: I think you should try to learn about a regular expressions, since they are really valuable tools for many problems, the simpler of which is this one. So, now that you have your answer, go into en.wikipedia.org/wiki/Regular_expression and try to get used to them. You'll find it very useful. –  Alejandro Piad Jul 10 '12 at 21:04

This removes any digits and full stops from your string:

import re
>>> filtered = re.sub('[0-9.]*','',"Diablo Lord Of Destruction 9.2  111" )
>>> filtered
'Diablo Lord Of Destruction   '
>>> filtered.strip()           # you might want to get rid of the trailing space too!
'Diablo Lord Of Destruction'
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+1 or perhaps re.sub("[^a-zA-Z\s]", "", "String to parse") –  Cez Jul 10 '12 at 17:59

This is a perfect job for regular expressions. Specifically, you can use the following code to extract all of the text that precedes a number:

import re
s = "Diablo Lord Of Destruction 9.2"
print 'Text: ', re.match('([^0-9]+)',s).group(1)

Regular expressions are a bit of a pain to master but well worth the effort.

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re.match('([^0-9]+)',"two * 2 = four").group(1) –  Maria Zverina Jul 10 '12 at 18:02
    
@Rakis Can you explain how the ^ works here, I've never used that before. –  Ferdinand Jul 10 '12 at 18:03
    
@Maria Zverina Op stated that the string will always be in the same format "blah blah blah more blah sometimes #.#.#" –  profitehlolz Jul 10 '12 at 18:11
    
@Larson It's in the re module's documentation (highly recommended read) but when used as the first character within [], it means match everything except what's in the brackets. –  Rakis Jul 10 '12 at 18:20

If you'll always have a space before the number, you can split the string. For example:

contents = file[2].split() # Gives a list split by whitespace
contents.pop() # Dump the number
finalStr = ' '.join(contents)

From running a test:

>>> test = "Diablo Lord Of Destruction 9.2"
>>> contents = test.split()
>>> contents
['Diablo', 'Lord', 'Of', 'Destruction', '9.2']
>>> contents.pop()
'9.2'
>>> finalStr = ' '.join(contents)
>>> finalStr
'Diablo Lord Of Destruction
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How about...

filter(lambda ch: not ch.isdigit(), "Diablo Lord Of Destruction 9.2")
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Though, this will leave the dot .. –  iccthedral Jul 10 '12 at 18:02
    
means incorrect output. –  Ashwini Chaudhary Jul 10 '12 at 18:02

To get all text until the first number is encountered:

import re

s = "Diablo Lord Of Destruction 9.2"
print(re.match(r'\D*', s).group(0))
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