34

I have a large dataframe. When it was created 'None' was used as the value where a number could not be calculated (instead of 'nan')

How can I delete all rows that have 'None' in any of it's columns? I though I could use df.dropna and set the value of na, but I can't seem to be able to.

Thanks

I think this is a good representation of the dataframe:

temp = pd.DataFrame(data=[['str1','str2',2,3,5,6,76,8],['str3','str4',2,3,'None',6,76,8]])
4
  • Is it "None" (a string) or None?
    – DYZ
    Aug 4 '17 at 17:49
  • Now you ask, I'm not sure. I think it's None, not a string
    – jlt199
    Aug 4 '17 at 17:53
  • 1
    None is automatically replaced by np.nan. It's probably "None" that you have. Please check. The answer depends on what you have.
    – DYZ
    Aug 4 '17 at 17:59
  • Paste some relevant row of your dataframe into your question.
    – DYZ
    Aug 4 '17 at 18:00
34

Setup
Borrowed @MaxU's df

df = pd.DataFrame([
    [1, 2, 3],
    [4, None, 6],
    [None, 7, 8],
    [9, 10, 11]
], dtype=object)

Solution
You can just use pd.DataFrame.dropna as is

df.dropna()

   0   1   2
0  1   2   3
3  9  10  11

Supposing you have None strings like in this df

df = pd.DataFrame([
    [1, 2, 3],
    [4, 'None', 6],
    ['None', 7, 8],
    [9, 10, 11]
], dtype=object)

Then combine dropna with mask

df.mask(df.eq('None')).dropna()

   0   1   2
0  1   2   3
3  9  10  11

You can ensure that the entire dataframe is object when you compare with.

df.mask(df.astype(object).eq('None')).dropna()

   0   1   2
0  1   2   3
3  9  10  11
1
  • I get the error TypeError: Could not compare ['None'] with block values with the strings solution and a dataframe of the same size as before with the first solution
    – jlt199
    Aug 4 '17 at 18:26
18

Thanks for all your help. In the end I was able to get

df = df.replace(to_replace='None', value=np.nan).dropna()

to work. I'm not sure why your suggestions didn't work for me.

10

UPDATE:

In [70]: temp[temp.astype(str).ne('None').all(1)]
Out[70]:
      0     1  2  3  4  5   6  7
0  str1  str2  2  3  5  6  76  8

Old answer:

In [35]: x
Out[35]:
      a     b   c
0     1     2   3
1     4  None   6
2  None     7   8
3     9    10  11

In [36]: x = x[~x.astype(str).eq('None').any(1)]

In [37]: x
Out[37]:
   a   b   c
0  1   2   3
3  9  10  11

or bit nicer variant from @roganjosh:

In [47]: x = x[x.astype(str).ne('None').all(1)]

In [48]: x
Out[48]:
   a   b   c
0  1   2   3
3  9  10  11
6
  • 1
    Slight aside; is there a reason for ~ + eq instead of just ne? I can't test atm but it seems from a quick search that ne would do the trick? I'm very much in the learning phase with pandas.
    – roganjosh
    Aug 4 '17 at 18:07
  • @jlt199, could you post (in your question) a small reproducible data set and your desired data set?
    – MaxU
    Aug 4 '17 at 18:11
  • Working on getting a small dataset, but struggling. Please bare with me..
    – jlt199
    Aug 4 '17 at 18:15
  • 1
    Did you know about pd.DataFrame.as_blocks? Wow! df.as_blocks()['object']
    – piRSquared
    Aug 4 '17 at 18:37
  • @piRSquared, wow! i've never seen it before! I'm going to dig into it...
    – MaxU
    Aug 4 '17 at 18:38

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