811

I have data in different columns but I don't know how to extract it to save it in another variable.

index  a   b   c
1      2   3   4
2      3   4   5

How do I select 'a', 'b' and save it in to df1?

I tried

df1 = df['a':'b']
df1 = df.ix[:, 'a':'b']

None seem to work.

  • 2
    You never want to use .ix as it's ambiguous. Use .iloc or .loc if you must. – Acumenus Jul 12 '17 at 17:14
  • 1
    Is there a way it can be done without referring to the header names? like in R, I can do it like this: > csvtable_imp_1 <- csvtable_imp[0:6] and it selects the delta amount of the first columns between 0 and 6. All I had to do is to read the csv-table as delimited with the readr lib. – MichaelR Oct 19 '18 at 0:30
  • I've worked a bit more with it. Found something that worked as wanted. Default is to select numbers of char and not columns. infile_1 = largefile_stay.ix[:,0:6] – MichaelR Oct 19 '18 at 0:43
  • 1
    For those stumbling on this late, ix is now deprecated. Pandas recommends using either: loc (label-based indexing) or iloc (positional based indexing). – ZaydH Dec 4 '18 at 16:20
  • Pandas: Replacement for .ix – Connor Mar 24 at 20:18

17 Answers 17

1336

The column names (which are strings) cannot be sliced in the manner you tried.

Here you have a couple of options. If you know from context which variables you want to slice out, you can just return a view of only those columns by passing a list into the __getitem__ syntax (the []'s).

df1 = df[['a','b']]

Alternatively, if it matters to index them numerically and not by their name (say your code should automatically do this without knowing the names of the first two columns) then you can do this instead:

df1 = df.iloc[:,0:2] # Remember that Python does not slice inclusive of the ending index.

Additionally, you should familiarize yourself with the idea of a view into a Pandas object vs. a copy of that object. The first of the above methods will return a new copy in memory of the desired sub-object (the desired slices).

Sometimes, however, there are indexing conventions in Pandas that don't do this and instead give you a new variable that just refers to the same chunk of memory as the sub-object or slice in the original object. This will happen with the second way of indexing, so you can modify it with the copy() function to get a regular copy. When this happens, changing what you think is the sliced object can sometimes alter the original object. Always good to be on the look out for this.

df1 = df.iloc[0,0:2].copy() # To avoid the case where changing df1 also changes df

To use iloc, you need to know the column positions (or indices). As the column positions may change, instead of hard-coding indices, you can use iloc along with get_loc function of columns method of dataframe object to obtain column indices.

{df.columns.get_loc(c):c for idx, c in enumerate(df.columns)}

Now you can use this dictionary to access columns through names and using iloc.

  • 149
    Note: df[['a','b']] produces a copy – Wes McKinney Jul 8 '12 at 17:54
  • 1
    Yes this was implicit in my answer. The bit about the copy was only for use of ix[] if you prefer to use ix[] for any reason. – ely Jul 8 '12 at 18:09
  • 1
    ix indexes rows, not columns. I thought the OP wanted columns. – hobs Oct 31 '12 at 18:58
  • 9
    ix accepts slice arguments, so you can also get columns. For example, df.ix[0:2, 0:2] gets the upper left 2x2 sub-array just like it does for a NumPy matrix (depending on your column names of course). You can even use the slice syntax on string names of the columns, like df.ix[0, 'Col1':'Col5']. That gets all columns that happen to be ordered between Col1 and Col5 in the df.columns array. It is incorrect to say that ix indexes rows. That is just its most basic use. It also supports much more indexing than that. So, ix is perfectly general for this question. – ely Oct 31 '12 at 19:02
  • 7
    @AndrewCassidy Never use .ix again. If you want to slice with integers use .iloc which is exclusive of the last position just like Python lists. – Ted Petrou Jul 1 '17 at 13:55
95

Assuming your column names (df.columns) are ['index','a','b','c'], then the data you want is in the 3rd & 4th columns. If you don't know their names when your script runs, you can do this

newdf = df[df.columns[2:4]] # Remember, Python is 0-offset! The "3rd" entry is at slot 2.

As EMS points out in his answer, df.ix slices columns a bit more concisely, but the .columns slicing interface might be more natural because it uses the vanilla 1-D python list indexing/slicing syntax.

WARN: 'index' is a bad name for a DataFrame column. That same label is also used for the real df.index attribute, a Index array. So your column is returned by df['index'] and the real DataFrame index is returned by df.index. An Index is a special kind of Series optimized for lookup of it's elements' values. For df.index it's for looking up rows by their label. That df.columns attribute is also a pd.Index array, for looking up columns by their labels.

  • 3
    As I noted in my comment above, .ix is not just for rows. It is for general purpose slicing, and can be used for multidimensional slicing. It is basically just an interface to NumPy's usual __getitem__ syntax. That said, you can easily convert a column-slicing problem into a row-slicing problem by just applying a transpose operation, df.T. Your example uses columns[1:3], which is a little misleading. The result of columns is a Series; be careful not to just treat it like an array. Also, you should probably change it to be columns[2:3] to match up with your "3rd & 4th" comment. – ely Oct 31 '12 at 19:11
  • @Mr.F: My [2:4] is correct. Your [2:3] is wrong. And using standard python slicing notation to generate a sequence/Series is not misleading IMO. But I like your bypass of the DataFrame interface to access the underlying numpy array with ix. – hobs Feb 4 '16 at 17:26
  • You are correct in this case, but the point I was trying to make is that in general, slicing with labels in Pandas is inclusive of the slice endpoint (or at least this was the behavior in most previous Pandas versions). So if you retrieve df.columns and want to slice it by label, then you'd have different slice semantics than if you slice it by integer index position. I definitely did not explain it well in my previous comment though. – ely Feb 4 '16 at 18:05
  • Ahh, now I see your point. I forgot that columns is an immutable Series and the getter has been overridden to use labels as indices. Thanks for taking the time to clarify. – hobs Feb 5 '16 at 0:17
  • 2
    Note the Deprecation Warning: .ix is deprecated. Therefore this makes sense: newdf = df[df.columns[2:4]] – Martien Lubberink Jul 1 '17 at 23:57
92

As of version 0.11.0, columns can be sliced in the manner you tried using the .loc indexer:

df.loc[:, 'C':'E']

is equivalent of

df[['C', 'D', 'E']]  # or df.loc[:, ['C', 'D', 'E']]

and returns columns C through E.


A demo on a randomly generated DataFrame:

import pandas as pd
import numpy as np
np.random.seed(5)
df = pd.DataFrame(np.random.randint(100, size=(100, 6)), 
                  columns=list('ABCDEF'), 
                  index=['R{}'.format(i) for i in range(100)])
df.head()

Out: 
     A   B   C   D   E   F
R0  99  78  61  16  73   8
R1  62  27  30  80   7  76
R2  15  53  80  27  44  77
R3  75  65  47  30  84  86
R4  18   9  41  62   1  82

To get the columns from C to E (note that unlike integer slicing, 'E' is included in the columns):

df.loc[:, 'C':'E']

Out: 
      C   D   E
R0   61  16  73
R1   30  80   7
R2   80  27  44
R3   47  30  84
R4   41  62   1
R5    5  58   0
...

Same works for selecting rows based on labels. Get the rows 'R6' to 'R10' from those columns:

df.loc['R6':'R10', 'C':'E']

Out: 
      C   D   E
R6   51  27  31
R7   83  19  18
R8   11  67  65
R9   78  27  29
R10   7  16  94

.loc also accepts a boolean array so you can select the columns whose corresponding entry in the array is True. For example, df.columns.isin(list('BCD')) returns array([False, True, True, True, False, False], dtype=bool) - True if the column name is in the list ['B', 'C', 'D']; False, otherwise.

df.loc[:, df.columns.isin(list('BCD'))]

Out: 
      B   C   D
R0   78  61  16
R1   27  30  80
R2   53  80  27
R3   65  47  30
R4    9  41  62
R5   78   5  58
...
57
In [39]: df
Out[39]: 
   index  a  b  c
0      1  2  3  4
1      2  3  4  5

In [40]: df1 = df[['b', 'c']]

In [41]: df1
Out[41]: 
   b  c
0  3  4
1  4  5
  • 1
    What if I wanted to rename the column, for example something like: df[['b as foo', 'c as bar'] such that the output renames column b as foo and column c as bar? – kuanb Feb 14 '17 at 20:30
  • 3
    df[['b', 'c']].rename(columns = {'b' : 'foo', 'c' : 'bar'}) – Greg Aug 25 '17 at 22:48
47

I realize this question is quite old, but in the latest version of pandas there is an easy way to do exactly this. Column names (which are strings) can be sliced in whatever manner you like.

columns = ['b', 'c']
df1 = pd.DataFrame(df, columns=columns)
  • 5
    This can only be done on creation. The question is asking if you already have it in a dataframe. – Banjocat Nov 28 '17 at 7:05
20

You could provide a list of columns to be dropped and return back the DataFrame with only the columns needed using the drop() function on a Pandas DataFrame.

Just saying

colsToDrop = ['a']
df.drop(colsToDrop, axis=1)

would return a DataFrame with just the columns b and c.

The drop method is documented here.

17

I found this method to be very useful:

# iloc[row slicing, column slicing]
surveys_df.iloc [0:3, 1:4]

More details can be found here

14

just use: it will select b and c column.

df1=pd.DataFrame()
df1=df[['b','c']]

then u can just call df1:

df1
8

With pandas,

wit column names

dataframe[['column1','column2']]

with iloc, column index can be used like

dataframe[:,[1,2]]

with loc column names can be used like

dataframe[:,['column1','column2']]

hope it helps !

6

If you want to get one element by row index and column name, you can do it just like df['b'][0]. It is as simple as you can image.

Or you can use df.ix[0,'b'],mixed usage of index and label.

Note: Since v0.20 ix has been deprecated in favour of loc / iloc.

4

The different approaches discussed in above responses are based on the assumption that either the user knows column indices to drop or subset on, or the user wishes to subset a dataframe using a range of columns (for instance between 'C' : 'E'). pandas.DataFrame.drop() is certainly an option to subset data based on a list of columns defined by user (though you have to be cautious that you always use copy of dataframe and inplace parameters should not be set to True!!)

Another option is to use pandas.columns.difference(), which does a set difference on column names, and returns an index type of array containing desired columns. Following is the solution:

df = pd.DataFrame([[2,3,4],[3,4,5]],columns=['a','b','c'],index=[1,2])
columns_for_differencing = ['a']
df1 = df.copy()[df.columns.difference(columns_for_differencing)]
print(df1)

The output would be: b c 1 3 4 2 4 5

  • 1
    The copy() is not necessary. i.e: df1 = df[df.columns.difference(columns_for_differencing)] will return a new/copied dataframe. You will be able to modify df1 without altering df. Thank you, btw. This was exactly what I needed. – Bazyli Debowski Aug 8 '18 at 17:20
4

Below is my code:

import pandas as pd
df = pd.read_excel("data.xlsx", sheet_name = 2)
print df
df1 = df[['emp_id','date']]
print df1

Output:

  emp_id        date  count
0   1001   11/1/2018      3
1   1002   11/1/2018      4
2          11/2/2018      2
3          11/3/2018      4
  emp_id        date
0   1001   11/1/2018
1   1002   11/1/2018
2          11/2/2018
3          11/3/2018

First dataframe is the master one. I just copied two columns into df1.

3

You can use pandas. I create the DataFrame:

    import pandas as pd
    df = pd.DataFrame([[1, 2,5], [5,4, 5], [7,7, 8], [7,6,9]], 
                      index=['Jane', 'Peter','Alex','Ann'],
                      columns=['Test_1', 'Test_2', 'Test_3'])

The DataFrame:

           Test_1  Test_2  Test_3
    Jane        1       2       5
    Peter       5       4       5
    Alex        7       7       8
    Ann         7       6       9

To select 1 or more columns by name:

    df[['Test_1','Test_3']]

           Test_1  Test_3
    Jane        1       5
    Peter       5       5
    Alex        7       8
    Ann         7       9

You can also use:

    df.Test_2

And yo get column Test_2

    Jane     2
    Peter    4
    Alex     7
    Ann      6

You can also select columns and rows from these rows using .loc(). This is called "slicing". Notice that I take from column Test_1to Test_3

    df.loc[:,'Test_1':'Test_3']

The "Slice" is:

            Test_1  Test_2  Test_3
     Jane        1       2       5
     Peter       5       4       5
     Alex        7       7       8
     Ann         7       6       9

And if you just want Peter and Ann from columns Test_1 and Test_3:

    df.loc[['Peter', 'Ann'],['Test_1','Test_3']]

You get:

           Test_1  Test_3
    Peter       5       5
    Ann         7       9
3

One different and easy approach : iterating rows

using iterows

`df1= pd.DataFrame() #creating an empty dataframe
 for index,i in df.iterrows():
 df1.loc[index,'A']=df.loc[index,'A']
 df1.loc[index,'B']=df.loc[index,'B']
 df1.head()
2

Starting in 0.21.0, using .loc or [] with a list with one or more missing labels, is deprecated, in favor of .reindex. So, the answer to your question is:

df1 = df.reindex(columns=['b','c'])

In prior versions, using .loc[list-of-labels] would work as long as at least 1 of the keys was found (otherwise it would raise a KeyError). This behavior is deprecated and now shows a warning message. The recommended alternative is to use .reindex().

Read more at Indexing and Selecting Data

1

I've seen several answers on that, but on remained unclear to me. How would you select those columns of interest? The answer to that is that if you have them gathered in a list, you can just reference the columns using the list.

Example

print(extracted_features.shape)
print(extracted_features)

(63,)
['f000004' 'f000005' 'f000006' 'f000014' 'f000039' 'f000040' 'f000043'
 'f000047' 'f000048' 'f000049' 'f000050' 'f000051' 'f000052' 'f000053'
 'f000054' 'f000055' 'f000056' 'f000057' 'f000058' 'f000059' 'f000060'
 'f000061' 'f000062' 'f000063' 'f000064' 'f000065' 'f000066' 'f000067'
 'f000068' 'f000069' 'f000070' 'f000071' 'f000072' 'f000073' 'f000074'
 'f000075' 'f000076' 'f000077' 'f000078' 'f000079' 'f000080' 'f000081'
 'f000082' 'f000083' 'f000084' 'f000085' 'f000086' 'f000087' 'f000088'
 'f000089' 'f000090' 'f000091' 'f000092' 'f000093' 'f000094' 'f000095'
 'f000096' 'f000097' 'f000098' 'f000099' 'f000100' 'f000101' 'f000103']

I have the following list/numpy array extracted_features, specifying 63 columns. The original dataset has 103 columns, and I would like to extract exactly those, then I would use

dataset[extracted_features]

And you will end up with this

enter image description here

This something you would use quite often in Machine Learning (more specifically, in feature selection). I would like to discuss other ways too, but I think that has already been covered by other stackoverflowers. Hope this've been helpful!

0

you can also use df.pop()

>>> df = pd.DataFrame([('falcon', 'bird',    389.0),
...                    ('parrot', 'bird',     24.0),
...                    ('lion',   'mammal',   80.5),
...                    ('monkey', 'mammal', np.nan)],
...                   columns=('name', 'class', 'max_speed'))
>>> df
     name   class  max_speed
0  falcon    bird      389.0
1  parrot    bird       24.0
2    lion  mammal       80.5
3  monkey  mammal 

>>> df.pop('class')
0      bird
1      bird
2    mammal
3    mammal
Name: class, dtype: object

>>> df
     name  max_speed
0  falcon      389.0
1  parrot       24.0
2    lion       80.5
3  monkey        NaN

let me know if this helps so for you , please use df.pop(c)

protected by jezrael Jan 3 '18 at 8:01

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