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Say I have a string

"3434.35353"

and another string

"3593"

How do I make a single regular expression that is able to match both without me having to set the pattern to something else if the other fails? I know \d+ would match the 3593, but it would not do anything for the 3434.35353, but (\d+\.\d+) would only match the one with the decimal and return no matches found for the 3593.

I expect m.group(1) to return:

"3434.35353"

or

"3593"
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4 Answers 4

up vote 10 down vote accepted

You can put a ? after a group of characters to make it optional.

You want a dot followed by any number of digits \.\d+, grouped together (\.\d+), optionally (\.\d+)?. Stick that in your pattern:

import re
print re.match("(\d+(\.\d+)?)", "3434.35353").group(1)
3434.35353
print re.match("(\d+(\.\d+)?)", "3434").group(1)
3434
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+1 for actually testing in a Python interpreter. –  Li-aung Yip Mar 27 '12 at 14:48

Use the "one or zero" quantifier, ?. Your regex becomes: (\d+(\.\d+)?).

See Chapter 8 of the TextWrangler manual for more details about the different quantifiers available, and how to use them.

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This regex should work:

\d+(\.\d+)?

It matches one ore more digits (\d+) optionally followed by a dot and one or more digits ((\.\d+)?).

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Read up on the Python RegEx library. The link answers your question and explains why.

However, to match a digit followed by more digits with an optional decimal, you can use

re.compile("(\d+(\.\d+)?)")

In this example, the ? after the .\d+ capture group specifies that this portion is optional.

Example

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