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This may be a simple question, but couldn't figure out how to perform. I have a pandas dataframe with following columns.

df.columns = ['IP', 'Time', 'Method', 'Resource', 'Status', 'Bytes', 'Referrer', 'Agent']

I want to do some regex match to df['Resource'] column. I did it in the flowing way.


Then I need to print only the 'True' results with df['IP'], df['Time'], and df['Resource']. How to do this?

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up vote 2 down vote accepted

We have to use na=false so missing values can be considered True or False according to pandas-docs. This worked fine.

print df[df.Resource.str.contains('pdf',na=False)][['IP', 'Time', 'Resource']][0:5]
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If I'm understanding, this should work.

df[df.Resource.str.contains('pdf')][['IP', 'Time', 'Resource']]

Basically, it's using a mask to limit the rows in df to only those that return True, then it's only giving you columns: IP, Time, Resource.

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It gives "ValueError: cannot index with vector containing NA / NaN values". I tried with fillna(0)? Same Error is given. Do you have any idea? – Nilani Algiriyage Jun 30 '13 at 14:32
In your answer how do we chech for "True" values? – Nilani Algiriyage Jun 30 '13 at 14:35
df.Resource.str.contains('pdf') returns a boolean value predicated on if the string contains 'pdf'. – tshauck Jun 30 '13 at 17:52
Yes! Thanks! We have to use na=false! – Nilani Algiriyage Jul 1 '13 at 5:10
Makes sense, next time you might specify that you have nas so the person who answers knows that that's a requirement. – tshauck Jul 2 '13 at 13:15

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