122

I have following 2 data frames:

df_a =

     mukey  DI  PI
0   100000  35  14
1  1000005  44  14
2  1000006  44  14
3  1000007  43  13
4  1000008  43  13

df_b = 
    mukey  niccdcd
0  190236        4
1  190237        6
2  190238        7
3  190239        4
4  190240        7

When I try to join these 2 dataframes:

join_df = df_a.join(df_b,on='mukey',how='left')

I get the error:

*** ValueError: columns overlap but no suffix specified: Index([u'mukey'], dtype='object')

Why is this so? The dataframes do have common 'mukey' values.

  • 4
    The error is a bit cryptic, the problem here is that you have no values that are common to perform the join on, if you did this it would be fine: LS_sgo.merge(MSU_pi,on='mukey',how='left') – EdChum - Reinstate Monica Oct 30 '14 at 8:35
  • 1
    I do have common values in the 2 'mukey' columns, just not in the small part of the dataframes shown. Joining them in excel does work, but just not in pandas it seems...Is there any way I can provide more information to help pinpoint this issue? – user308827 Oct 30 '14 at 13:06
  • You'd have to post your raw data, also did you try merge? – EdChum - Reinstate Monica Oct 30 '14 at 13:07
  • You'd have to post your data in order for me to look at this and explain why join didn't work – EdChum - Reinstate Monica Oct 30 '14 at 13:17
123

Your error on the snippet of data you posted is a little cryptic, in that because there are no common values, the join operation fails because the values don't overlap it requires you to supply a suffix for the left and right hand side:

In [173]:

df_a.join(df_b, on='mukey', how='left', lsuffix='_left', rsuffix='_right')
Out[173]:
       mukey_left  DI  PI  mukey_right  niccdcd
index                                          
0          100000  35  14          NaN      NaN
1         1000005  44  14          NaN      NaN
2         1000006  44  14          NaN      NaN
3         1000007  43  13          NaN      NaN
4         1000008  43  13          NaN      NaN

merge works because it doesn't have this restriction:

In [176]:

df_a.merge(df_b, on='mukey', how='left')
Out[176]:
     mukey  DI  PI  niccdcd
0   100000  35  14      NaN
1  1000005  44  14      NaN
2  1000006  44  14      NaN
3  1000007  43  13      NaN
4  1000008  43  13      NaN
  • What argument will allow a left join to bring across only the matching right dataframe keys? For example, I have df1 with 931 records. df2 with 153,000 records. Only 21 records from df2 should match df1 and when df1 and df2 are merged I should only receive 931 records from the left dataframe (df1). However, I'm receiving 935 in my final result. – Dave Feb 18 '16 at 14:22
  • 1
    @david it probably means you have duplicate ids in df1 or df2 – EdChum - Reinstate Monica Feb 18 '16 at 14:27
  • 2
    join works on index, merge work on columns - but this can be overridden by left_index/right_index - so merge is more general than join. – Andris Birkmanis Oct 10 '16 at 1:39
23

The .join() function is using the index of the passed as argument dataset, so you should use set_index or use .merge function instead.

Please find the two examples that should work in your case:

join_df = LS_sgo.join(MSU_pi.set_index('mukey'), on='mukey', how='left')

or

join_df = df_a.merge(df_b, on='mukey', how='left')
  • 6
    hoo boy, is that deceptive of pandas. It joins via the on column in addition to the Index, not instead. – ijoseph Jul 6 '18 at 20:45
20

This error indicates that the two tables have the 1 or more column names that have the same column name. The error message translates to: "I can see the same column in both tables but you haven't told me to rename either before bringing one of them in"

You either want to delete one of the columns before bringing it in from the other on using del df['column name'], or use lsuffix to re-write the original column, or rsuffix to rename the one that is being brought it.

df_a.join(df_b, on='mukey', how='left', lsuffix='_left', rsuffix='_right')
0

Mainly join is used exclusively to join based on the index,not on the attribute names,so change the attributes names in two different dataframes,then try to join,they will be joined,else this error is raised

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