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I am munging data which contains strings of the form:

" The little £250,000 brown fox jumped over the lazy dog" 

[Clarification]

The string to be converted to a double may have been "cleaned" already and may simply look like this:

"£250,000"

I managed to hack together a crude function, that bludgeons a string like "£250,000" into a double. However, I am at my wits end to write a regex to grok the monetary part of the string, when presented with a string like the one above. The problem is that I don't know which type of string I will encounter - i.e. either a 'cleaned' monetary value (like the 2nd example) or a 'dirty' string (like the first example). I need to write a single function that handles both types of strings and returns the monetary string as a double.

For 'dirty' strings, can someone recommend how to pattern match the monetary values (expected minimum: £1, expected maximum £99,999,999). Also, if there is a more pythonic way of writing the function below, I'd like to hear recommendations from the Pythonistas out there.

    non_numeric = re.compile(r'[^0-9\.]+')

    def string_to_decimal(s):
        try:
            s= s.decode('ascii')
        except:
            s = s[1:] # Assumption is that s begings with currency symbol

        s = str(s)  # Probably superfulous?

        s = s.replace(',','')
        s = non_numeric.sub('', str(s))
        return decimal.Decimal(s)
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s = str(s) would make sense before the try. Since decode only works on strings, and indexing doesn't work on integers, you can assume it's a string after the try/except. Otherwise, your program will throw an exception inside the except (which won't be caught). –  FakeRainBrigand Jan 12 '12 at 13:11

3 Answers 3

up vote 2 down vote accepted
r'£\d{1,3}(?:\,\d{3})+(?:\.\d{2})?'

will match monetary expressions, e.g.

>>> re.findall(r'£\d{1,3}(?:\,\d{3})+(?:\.\d{2})?',
... " The little £250,000 brown fox jumped over the lazy dog")
['\xc2\xa3250,000']

You can convert the resulting values to Decimal with

>>> Decimal('\xc2\xa3250,000'.decode('utf-8')[1:].strip(','))
Decimal('250000')

(Assuming UTF-8.)

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I'm getting the following error (when using the snippet above): SyntaxError: Non-ASCII character '\xc2' in file /path/to/myscript.py on line 140, but no encoding declared; see python.org/peps/pep-0263.html for details. I'll check the URL for details –  Homunculus Reticulli Jan 12 '12 at 13:17
    
@HomunculusReticulli: put # -*- coding: utf-8 -*- at the top of your file. That tells the Python interpreter about the source file's encoding. –  larsmans Jan 12 '12 at 13:18
    
Thanks that fixed that error. However, I need to clarify, i need to be able to match on strings like '£250,000' as well (where there is no other text surrounding the monetray value). –  Homunculus Reticulli Jan 12 '12 at 13:25
    
@HomunculusReticulli: so? re.match(r'£\d{1,3}(?:\,\d{3})+(?:\.\d{2})?', "£250,000") works, doesn't it? –  larsmans Jan 12 '12 at 13:36
    
I expected it to match - but it didn't. I must be doing something wrong at my end. I'll check and try again. –  Homunculus Reticulli Jan 12 '12 at 13:38

Try:

re.findall('£{1}[,0-9]{1,10}','The little £250,000 brown fox jumped over the lazy dog')

Then take the result of the match and strip commas out.

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+1: I used your regex expression as well in my complete solution, to match on 'dirty' strings –  Homunculus Reticulli Jan 12 '12 at 14:46

If the input text can be in various languages, you need to be afraid of the difference in punctuation for different locales.

What you call "£250,000" would be "£250.000" in some locales, and the inverse goes for fractions: "£0.50" can be written as "£0,50". There are probably more varieties.

Ignoring that, your example should be handled by a regular expression such as r"£[0-9,.]+", I guess.

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