Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My goal is to create a Series from a Pandas DataFrame by choosing an element from different columns on each row.

For example, I have the following DataFrame:

In [171]: pred[:10]
Out[171]: 
                     0  1  2
Timestamp                   
2010-12-21 00:00:00  0  0  1
2010-12-20 00:00:00  1  1  1
2010-12-17 00:00:00  1  1  1
2010-12-16 00:00:00  0  0  1
2010-12-15 00:00:00  1  1  1
2010-12-14 00:00:00  1  1  1
2010-12-13 00:00:00  0  0  1
2010-12-10 00:00:00  1  1  1
2010-12-09 00:00:00  1  1  1
2010-12-08 00:00:00  0  0  1

And, I have the following series:

In [172]: useProb[:10]
Out[172]: 
Timestamp
2010-12-21 00:00:00    1
2010-12-20 00:00:00    2
2010-12-17 00:00:00    1
2010-12-16 00:00:00    2
2010-12-15 00:00:00    2
2010-12-14 00:00:00    2
2010-12-13 00:00:00    0
2010-12-10 00:00:00    2
2010-12-09 00:00:00    2
2010-12-08 00:00:00    0

I would like to create a new series, usePred, that takes the values from pred, based on the column information in useProb to return the following:

In [172]: usePred[:10]
Out[172]: 
Timestamp
2010-12-21 00:00:00    0
2010-12-20 00:00:00    1
2010-12-17 00:00:00    1
2010-12-16 00:00:00    1
2010-12-15 00:00:00    1
2010-12-14 00:00:00    1
2010-12-13 00:00:00    0
2010-12-10 00:00:00    1
2010-12-09 00:00:00    1
2010-12-08 00:00:00    0

This last step is where I fail. I've tried things like:

usePred = pd.DataFrame(index = pred.index)
for row in usePred:
    usePred['PREDS'].ix[row] = pred.ix[row, useProb[row]]

And, I've tried:

usePred['PREDS'] = pred.iloc[:,useProb]

I google'd and search on stackoverflow, for hours, but can't seem to solve the problem.

share|improve this question

2 Answers 2

up vote 2 down vote accepted

One solution could be to use get dummies (which should be more efficient that apply):

In [11]: (pd.get_dummies(useProb) * pred).sum(axis=1)
Out[11]:
Timestamp
2010-12-21 00:00:00    0
2010-12-20 00:00:00    1
2010-12-17 00:00:00    1
2010-12-16 00:00:00    1
2010-12-15 00:00:00    1
2010-12-14 00:00:00    1
2010-12-13 00:00:00    0
2010-12-10 00:00:00    1
2010-12-09 00:00:00    1
2010-12-08 00:00:00    0
dtype: float64

You could use an apply with a couple of locs:

In [21]: pred.apply(lambda row: row.loc[useProb.loc[row.name]], axis=1)
Out[21]:
Timestamp
2010-12-21 00:00:00    0
2010-12-20 00:00:00    1
2010-12-17 00:00:00    1
2010-12-16 00:00:00    1
2010-12-15 00:00:00    1
2010-12-14 00:00:00    1
2010-12-13 00:00:00    0
2010-12-10 00:00:00    1
2010-12-09 00:00:00    1
2010-12-08 00:00:00    0
dtype: int64

The trick being that you have access to the rows index via the name property.

share|improve this answer
    
That works! Thank you so much. –  Brian Sep 3 '13 at 10:38
    
@Brian added another solution which is a little neater. –  Andy Hayden Sep 3 '13 at 10:41
    
Rad. stackoverflow is such a wonderful resource. –  Brian Sep 3 '13 at 10:50

Here is another way to do it using DataFrame.lookup:

pred.lookup(row_labels=pred.index, 
            col_labels=pred.columns[useProb['0']])

It seems to be exactly what you need, except that care must be taken to supply values which are labels. For example, if pred.columns are strings, and useProb['0'] values are integers, then we could use

pred.columns[useProb['0']]

so that the values passed to the col_labels parameter are proper label values.


For example,

import io
import pandas as pd
content = io.BytesIO('''\
Timestamp  0  1  2
2010-12-21 00:00:00  0  0  1
2010-12-20 00:00:00  1  1  1
2010-12-17 00:00:00  1  1  1
2010-12-16 00:00:00  0  0  1
2010-12-15 00:00:00  1  1  1
2010-12-14 00:00:00  1  1  1
2010-12-13 00:00:00  0  0  1
2010-12-10 00:00:00  1  1  1
2010-12-09 00:00:00  1  1  1
2010-12-08 00:00:00  0  0  1''')
pred = pd.read_table(content, sep='\s{2,}', parse_dates=True, index_col=[0])

content = io.BytesIO('''\
Timestamp  0
2010-12-21 00:00:00    1
2010-12-20 00:00:00    2
2010-12-17 00:00:00    1
2010-12-16 00:00:00    2
2010-12-15 00:00:00    2
2010-12-14 00:00:00    2
2010-12-13 00:00:00    0
2010-12-10 00:00:00    2
2010-12-09 00:00:00    2
2010-12-08 00:00:00    0''')
useProb = pd.read_table(content, sep='\s{2,}', parse_dates=True, index_col=[0])
print(pd.Series(pred.lookup(row_labels=pred.index, 
                col_labels=pred.columns[useProb['0']]),
                index=pred.index))

yields

    Timestamp
2010-12-21    0
2010-12-20    1
2010-12-17    1
2010-12-16    1
2010-12-15    1
2010-12-14    1
2010-12-13    0
2010-12-10    1
2010-12-09    1
2010-12-08    0
dtype: int64
share|improve this answer
    
Wes really thought of everything... –  Andy Hayden Sep 3 '13 at 12:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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