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Taken from the documentation, the following is a snippet showing how the regex method findall works, and confirms that it does return a list.

re.findall(r"\w+ly", text)
['carefully', 'quickly']

However the following code fragment generates an out of bounds error (IndexError: list index out of range)when trying to access the zeroth element of the list returned by findall.

Relevant Code Fragment:

population = re.findall(",([0-9]*),",line)
x = population[0]
thelist.append([city,x])

Why does this happen?

For some more background, here's how that fragment fits into my entire script:

import re

thelist = list()
with open('Raw.txt','r') as f:
    for line in f:
        if line[1].isdigit():
            city = re.findall("\"(.*?)\s*\(",line)
            population = re.findall(",([0-9]*),",line)
            x = population[0]
            thelist.append([city,x])

with open('Sorted.txt','w') as g:
    for item in thelist:
        string = item[0], ', '.join(map(str, item[1:]))
        print string

EDIT: Read comment below for some background on why this happened. My quick fix was:

if population: 
        x = population[0]
        thelist.append([city,x])
share|improve this question
3  
The regex will not always match and return an empty list sometimes –  JBernardo Feb 21 '13 at 0:53
    
Running that fragment independently on the Python shell indicates that it does. The same input file is used as well. –  Louis93 Feb 21 '13 at 0:54
1  
obviously not for all lines. –  Karoly Horvath Feb 21 '13 at 0:55
    
In your script, you should do print population to ensure that you are, in fact, getting at least one match. –  Joel Cornett Feb 21 '13 at 0:55
    
@Louis93: did you take empty lines into account? –  nneonneo Feb 21 '13 at 0:55

2 Answers 2

up vote 3 down vote accepted

re.findall will return an empty list if there are no matches:

>>> re.findall(r'\w+ly', 'this does not work')
[]
share|improve this answer

re.findall can return you an empty list in the case where there was no match. If you try to access [][0] you will see that IndexError.

To take into account no matches, you should use something along the lines of:

match = re.findall(...)
if match:
  # potato potato
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