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I have the following string:

"It was in 1990. Then it was in 1992. Then it was in 2000. Then it was in 2005. Then it was in 2010."

I have the following regexp to match a year in the string:

\d{4}

It matches all years present in the string. What I want is to limit the regexp to only the first match, so that it should give me only '1990'. I am using the following code in pytho:

import re
s =  "It was in 1990. Then it was in 1992. Then it was in 2000. Then it was in 2005.      Then it was in 2010."
print re.findall(r"\d{4}", s)
['1990', '1992', '2000', '2005', '2010'] # output

I know that I can get the the first one by adding [0] as in the following:

print re.findall(r"\d{4}", s)[0]
1990 # output

But I am specially looking for a regex pattern to get this output.

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3 Answers 3

up vote 1 down vote accepted

Use re.search:

>>> import re
>>> s =  "It was in 1990. Then it was in 1992. Then it was in 2000. Then it was in 2005.      Then it was in 2010."
>>> re.search("\d{4}", s)
<_sre.SRE_Match object at 0x01939AA0>
>>> re.search("\d{4}", s).group()
'1990'
>>>
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thanks for pointing out it is a typing mistake. I edited –  Coddy Dec 28 '13 at 1:21

Also you can use re.finditer(r"\d{4}", s)

In [38]: import re

In [39]: s =  "It was in 1990. Then it was in 1992. Then it was in 2000. Then it was in 2005.      Then it was in 2010."

In [40]: ret = re.finditer(r"\d{4}", s)

In [41]: ret.next().group()
Out[41]: '1990'
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you can use re.search instead. It returns a MatchObject or null. you can get the matched text from the MatchObject by calling group(0) on it.

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