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I'm currently writing a regular expression to find the units and size (or it could work as dimensions) in a string. For example: "Product: A, 2 x 3.5 gallon bottles"

For simplicity, I'm removing all whitespace, so this becomes:

"Product:A,2x3.5gallonbottles"

My regex is as follows:

numAndSize = re.compile(r'\d+[xX]\d+(\.\d+)?')

But when I try to use findall, this happens:

In [47]: numAndSize.findall("Product:A,2x3.5gallonbottles")
Out[47]: ['.5']

I -only- get the '.5' in this string, instead of the entire expression

Using search and group, however, works as expected:

In [50]: numAndSize.search("Product:A,2x3.5gallonbottles").group(0)
Out[50]: '2x3.5'

From there, I tried changing my regex to not include the optional decimal, and ran findall on that.

In [51]: numAndSize = re.compile(r'\d+[xX]\d+')
In [52]: numAndSize.findall("Product:A,2x3.5gallonbottles")
Out[52]: ['2x3']

Is there a reason behind this behavior? For my purposes I can certainly use .search().group(), but I personally like findall since the output gives back a lot more information in a clean format.

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Nothing odd about it; this is documented behaviour. Use a non-capturing group instead. –  Martijn Pieters May 23 '13 at 18:37
    
Martijin: It does look to be a duplicate now that I see it. I didn't know what to look for when I made this question, so that passed by me. –  limasxgoesto0 May 23 '13 at 18:45
    
That's fine; that's why duplicate questions are usually not deleted; they act as signposts on the way to the correct question and answer. –  Martijn Pieters May 23 '13 at 18:46
    
Yeah, I didn't expect it to be too much of a problem. And as to why I thought it was odd, most of my regular expressions in the past have been written in Java. –  limasxgoesto0 May 23 '13 at 19:00
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marked as duplicate by Martijn Pieters, Steven Rumbalski, plaes, Roman C, Tommy May 24 '13 at 7:11

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2 Answers

up vote 2 down vote accepted

If the regular expression contains any capturing groups, re.findall() will return those groups instead of the entire match. To get the entire match use a non-capturing group:

>>> numAndSize = re.compile(r'\d+[xX]\d+(?:\.\d+)?')
>>> numAndSize.findall("Product:A,2x3.5gallonbottles")
['2x3.5']

Or if you could take advantage of this behavior to have it return a tuple of the dimensions (or units or whatever they are):

>>> numAndSize = re.compile(r'(\d+)[xX](\d+(?:\.\d+)?)')
>>> numAndSize.findall("Product:A,2x3.5gallonbottles")
[('2', '3.5')]
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Aha, I tried and this definitely works. I'll accept this answer in a few minutes - apparently the site isn't letting me do so yet. –  limasxgoesto0 May 23 '13 at 18:45
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You are creating a capture-group by using (). The documentation says

If one or more groups are present in the pattern, return a list of groups; this will be a list of tuples if the pattern has more than one group.

If you don't actually want to capture the fractional portion, use a non-capturing group:

numAndSize = re.compile(r'\d+[xX]\d+(?:\.\d+)?')
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