I have a question about flattening or collapsing a dataframe from several columns in one row with information about a key to several rows each with the same key column and the appropriate data. Suppose a dataframe is something like this:

df = pd.DataFrame({'CODE': ['AA', 'BB', 'CC'],
              'START_1': ['1990-01-01', '2000-01-01', '2005-01-01'],
              'END_1': ['1990-02-14', '2000-03-01', '2005-12-31'],
              'MEANING_1': ['SOMETHING', 'OR', 'OTHER'],
              'START_2': ['1990-02-15', None, '2006-01-01'],
              'END_2': ['1990-06-14', None, '2006-12-31'],
              'MEANING_2': ['ELSE', None, 'ANOTHER']})
  CODE     START_1       END_1  MEANING_1     START_2       END_2 MEANING_2
0   AA  1990-01-01  1990-02-14  SOMETHING  1990-02-15  1990-06-14      ELSE
1   BB  2000-01-01  2000-03-01         OR        None        None      None
2   CC  2005-01-01  2005-12-31      OTHER  2006-01-01  2006-12-31   ANOTHER

and I need to get it into a form somewhat like this:

  CODE       START         END    MEANING
0   AA  1990-01-01  1990-02-14  SOMETHING
1   AA  1990-02-15  1990-06-14       ELSE
2   BB  2000-01-01  2000-03-01         OR
3   CC  2005-01-01  2005-12-31      OTHER
4   CC  2006-01-01  2006-12-31    ANOTHER

I have a solution as follows:

df_a = df[['CODE', 'START_1', 'END_1', 'MEANING_1']]
df_b = df[['CODE', 'START_2', 'END_2', 'MEANING_2']]
df_a = df_a.rename(index=str, columns={'CODE': 'CODE',
                                'START_1': 'START',
                                'END_1': 'END',
                                'MEANING_1': 'MEANING'})
df_b = df_b.rename(index=str, columns={'CODE': 'CODE',
                                'START_2': 'START',
                                'END_2': 'END',
                                'MEANING_2': 'MEANING'})
df = pd.concat([df_a, df_b], ignore_index=True)
df = df.dropna(axis=0, how='any')

Which yields the desired result. Of course this doesn't seem very pythonic and is clearly not ideal if you have more than 2 column groups which need to be collapsed (I actually have 6 in my real code). I've examined the groupby(), melt() and stack() methods but haven't really found them to be very useful yet. Any suggestions would be appreciated.

  • 3
    There are actually some convenience functions for this called lreshape and wide_to_long but neither of them is well supported. lreshape is still "experimental" and wide_to_long has horrible argument names and has very specific input requirements. – user2285236 Feb 4 at 1:29
up vote 4 down vote accepted

Use pd.wide_to_long:

pd.wide_to_long(df, stubnames=['END', 'MEANING', 'START'],
                i='CODE', j='Number', sep='_', suffix='*')

Output:

                    END    MEANING       START
CODE Number                                   
AA   1       1990-02-14  SOMETHING  1990-01-01
BB   1       2000-03-01         OR  2000-01-01
CC   1       2005-12-31      OTHER  2005-01-01
AA   2       1990-06-14       ELSE  1990-02-15
BB   2             None       None        None
CC   2       2006-12-31    ANOTHER  2006-01-01

Then, we can drop Number column/index and dropna's if you wish, e.g. df.reset_index().drop('Number', 1).

  • Upvoted, never knew this existed, i'd also add df.reset_index().drop('Number', 1). – jpp Feb 4 at 1:31
  • @jp_data_analysis Great addition! Thank you. Yeah, pd.wide_to_long is great for 'simultaneous' melt situations. – Scott Boston Feb 4 at 1:32
  • This is what I was looking for in the pandas docs. It seems to use melt under the hood so I was close but couldn't get it working. Do you know how I would accomplish the same thing with melt? – DrPiranoid Feb 4 at 1:34
  • 1
    @DrPiranoid adding the melt way :-) – Wen Feb 4 at 3:38

This is what melt will achieve this

df1=df.melt('CODE')

df1[['New','New2']]=df1.variable.str.split('_',expand=True)
df1.set_index(['CODE','New2','New']).value.unstack()
Out[492]: 
New               END    MEANING       START
CODE New2                                   
AA   1     1990-02-14  SOMETHING  1990-01-01
     2     1990-06-14       ELSE  1990-02-15
BB   1     2000-03-01         OR  2000-01-01
     2           None       None        None
CC   1     2005-12-31      OTHER  2005-01-01
     2     2006-12-31    ANOTHER  2006-01-01
  • Awesome Wen! I forgot about this method, I've seen MaxU use that method also. +1 – Scott Boston Feb 4 at 3:40
  • @ScottBoston yep, but pd_wide to Long is the right way for this type of question , I still remember I learn it from Ted Petrou :-) – Wen Feb 4 at 3:42

Here is one way. This is similar to your logic, I have just optimised a little and cleaned up the code so you only have to maintain common_cols, var_cols, data_count.

common_cols = ['CODE']
var_cols = ['START', 'END', 'MEANING']
data_count = 2

dfs = {i: df[common_cols + [k+'_'+str(int(i)) for k in var_cols]].\
          rename(columns=lambda x: x.split('_')[0]) for i in range(1, data_count+1)}

pd.concat(list(dfs.values()), ignore_index=True)

#   CODE       START         END    MEANING
# 0   AA  1990-01-01  1990-02-14  SOMETHING
# 1   BB  2000-01-01  2000-03-01         OR
# 2   CC  2005-01-01  2005-12-31      OTHER
# 3   AA  1990-02-15  1990-06-14       ELSE
# 4   BB        None        None       None
# 5   CC  2006-01-01  2006-12-31    ANOTHER
  • This solution worked for me! I am surprised that there wasn't a pandas method appropriate for the task. I'm also curious how I could have phrased my question differently. It's fairly obvious what I'm asking with an example but searching for solutions was very difficult without the right vocabulary. – DrPiranoid Feb 4 at 1:14
  • @DrPiranoid, I actually thought your question was very well phrased. The reproducible code helps us easily test solutions. – jpp Feb 4 at 1:19

Here is another way:

df.columns = [i[0] for i in df.columns.str.split('_')]
df = df.T
cond = df.index.duplicated()
concat_df = pd.concat([df[~cond],df[cond]],axis=1).T
sort_df = concat_df.sort_values('START').iloc[:-1]
sort_df.CO = sort_df.CO.ffill()

This should also work.

# the following line get rid of _x suffix 
df = df.set_index("CODE")
df.columns = pd.Index(map(lambda x : str(x)[:-2], df.columns)
pd.concat([df.iloc[:, range(len(df.columns))[i::2]] for i in range(2)])

The method to remove suffix is taken from Remove last two characters from column names of all the columns in Dataframe - Pandas

It should be easy to extend the method to more than 2 columns per group. Say 6 as OP had.

pd.concat([df.iloc[:, range(len(df.columns))[i::6]] for i in range(6)])
  • 1
    @jp_data_analysis modified to be more general now. – Tai Feb 4 at 1:25

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