24

I am trying to filter out records whose field_A is null or empty string in the data frame like below:

my_df[my_df.editions is not None]
my_df.shape

This gives me error:

---------------------------------------------------------------------------
KeyError                                  Traceback (most recent call last)
<ipython-input-40-e1969e0af259> in <module>()
      1 my_df['editions'] = my['editions'].astype(str)
----> 2 my_df = my_df[my_df.editions is not None]
      3 my_df.shape

/home/edamame/anaconda2/lib/python2.7/site-packages/pandas/core/frame.pyc in __getitem__(self, key)
   1995             return self._getitem_multilevel(key)
   1996         else:
-> 1997             return self._getitem_column(key)
   1998 
   1999     def _getitem_column(self, key):

/home/edamame/anaconda2/lib/python2.7/site-packages/pandas/core/frame.pyc in _getitem_column(self, key)
   2002         # get column
   2003         if self.columns.is_unique:
-> 2004             return self._get_item_cache(key)
   2005 
   2006         # duplicate columns & possible reduce dimensionality

/home/edamame/anaconda2/lib/python2.7/site-packages/pandas/core/generic.pyc in _get_item_cache(self, item)
   1348         res = cache.get(item)
   1349         if res is None:
-> 1350             values = self._data.get(item)
   1351             res = self._box_item_values(item, values)
   1352             cache[item] = res

/home/edamame/anaconda2/lib/python2.7/site-packages/pandas/core/internals.pyc in get(self, item, fastpath)
   3288 
   3289             if not isnull(item):
-> 3290                 loc = self.items.get_loc(item)
   3291             else:
   3292                 indexer = np.arange(len(self.items))[isnull(self.items)]

/home/edamame/anaconda2/lib/python2.7/site-packages/pandas/indexes/base.pyc in get_loc(self, key, method, tolerance)
   1945                 return self._engine.get_loc(key)
   1946             except KeyError:
-> 1947                 return self._engine.get_loc(self._maybe_cast_indexer(key))
   1948 
   1949         indexer = self.get_indexer([key], method=method, tolerance=tolerance)

pandas/index.pyx in pandas.index.IndexEngine.get_loc (pandas/index.c:4154)()

pandas/index.pyx in pandas.index.IndexEngine.get_loc (pandas/index.c:4018)()

pandas/hashtable.pyx in pandas.hashtable.PyObjectHashTable.get_item (pandas/hashtable.c:12368)()

pandas/hashtable.pyx in pandas.hashtable.PyObjectHashTable.get_item (pandas/hashtable.c:12322)()

KeyError: True

or

my_df[my_df.editions != None]
my_df.shape

This one gave no error but didn't filter out any None values.

I also tried:

my_df = my_df[my_df.editions.notnull()]

This one doesn't give error but doesn't filter out any None values either.

Could anyone please advise how to solve this problem? Thanks!

1

4 Answers 4

21

You can negativize a condition while filtering using ~.

So in your case you should do:

my_df = my_df[~my_df.editions.isnull()]
18

You can filter out empty strings in your dataframe like this:

df = df[df['str_field'].str.len() > 0]
2
  • Does this work if the strings has a number of blanks? Apr 15 at 3:27
  • Have a try and report back, with code
    – StackG
    Jun 24 at 16:16
5

Can you create a new dataframe from the filtering?

Dataframe before:

a     b
1     9
2    10
3    11
4    12
5    13
6    14
7    15
8  null

Example:

import pandas

my_df = pandas.DataFrame({"a":[1,2,3,4,5,6,7,8],"b":[9,10,11,12,13,14,15,"null"]})

my_df2= my_df[(my_df['b']!="null")]
print(my_df2)

dataframe after:

a   b
1   9
2  10
3  11
4  12
5  13
6  14
7  15

What it is doing is looking for "null" and excluding it. You could do the same thing with empty strings.

1
  • Ok. I figured it out that the None in my data frame is not null. It was actually "None". Thanks for the hint!
    – Edamame
    Sep 13, 2016 at 17:56
-1

In case we want to filter out based on both Null and Empty string we can use

df = df[ (df['str_field'].isnull()) | (df['str_field'].str.len() == 0) ]

Use logical operator ('|' , '&', '~') for mixing two conditions

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.