I think this will do it
In [3]: df = DataFrame(dict(A = 'foo', B = 'bar', value = 1),index=range(5)).set_index(['A','B'])
In [4]: df
Out[4]:
value
A B
foo bar 1
bar 1
bar 1
bar 1
bar 1
In [5]: df.to_csv('test.csv')
In [6]: !cat test.csv
A,B,value
foo,bar,1
foo,bar,1
foo,bar,1
foo,bar,1
foo,bar,1
In [7]: pd.read_csv('test.csv',index_col=[0,1])
Out[7]:
value
A B
foo bar 1
bar 1
bar 1
bar 1
bar 1
To write with the index duplication (kind of a hack though)
In [27]: x = df.reset_index()
In [28]: mask = df.index.to_series().duplicated()
In [29]: mask
Out[29]:?
A ? ?B ?
foo ?bar ? ?False
? ? ?bar ? ? True
? ? ?bar ? ? True
? ? ?bar ? ? True
? ? ?bar ? ? True
dtype: bool
In [30]: x.loc[mask.values,['A','B']] = ''
In [31]: x
Out[31]:?
? ? ?A ? ?B ?value
0 ?foo ?bar ? ? ?1
1 ? ? ? ? ? ? ? ?1
2 ? ? ? ? ? ? ? ?1
3 ? ? ? ? ? ? ? ?1
4 ? ? ? ? ? ? ? ?1
In [32]: x.to_csv('test.csv')
In [33]: !cat test.csv
,A,B,value
0,foo,bar,1
1,,,1
2,,,1
3,,,1
4,,,1
Read back is a bit tricky actually
In [37]: pd.read_csv('test.csv',index_col=0).ffill().set_index(['A','B'])
Out[37]:
value
A B
foo bar 1
bar 1
bar 1
bar 1
bar 1
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