125

When selecting a single column from a pandas DataFrame(say df.iloc[:, 0], df['A'], or df.A, etc), the resulting vector is automatically converted to a Series instead of a single-column DataFrame. However, I am writing some functions that takes a DataFrame as an input argument. Therefore, I prefer to deal with single-column DataFrame instead of Series so that the function can assume say df.columns is accessible. Right now I have to explicitly convert the Series into a DataFrame by using something like pd.DataFrame(df.iloc[:, 0]). This doesn't seem like the most clean method. Is there a more elegant way to index from a DataFrame directly so that the result is a single-column DataFrame instead of Series?

1
  • 7
    df.iloc[:,[0]] or df[['A']]; df.A only will give back a series however
    – Jeff
    May 28, 2013 at 0:55

5 Answers 5

127

As @Jeff mentions there are a few ways to do this, but I recommend using loc/iloc to be more explicit (and raise errors early if you're trying something ambiguous):

In [10]: df = pd.DataFrame([[1, 2], [3, 4]], columns=['A', 'B'])

In [11]: df
Out[11]:
   A  B
0  1  2
1  3  4

In [12]: df[['A']]

In [13]: df[[0]]

In [14]: df.loc[:, ['A']]

In [15]: df.iloc[:, [0]]

Out[12-15]:  # they all return the same thing:
   A
0  1
1  3

The latter two choices remove ambiguity in the case of integer column names (precisely why loc/iloc were created). For example:

In [16]: df = pd.DataFrame([[1, 2], [3, 4]], columns=['A', 0])

In [17]: df
Out[17]:
   A  0
0  1  2
1  3  4

In [18]: df[[0]]  # ambiguous
Out[18]:
   A
0  1
1  3
4
  • 3
    Sorry to bother you, but just a really quick question around this. I see how the extra [] makes the result a DataFrame instead of a Series, but where in the pandas docs is this kind of indexing syntax discussed? I'm just trying to get the "official" name for this technique of indexing so that I really understand it. Thx! Jan 17, 2017 at 16:36
  • 4
    @sparc_spread pandas.pydata.org/pandas-docs/stable/indexing.html#basics "You can pass a list of columns to [] to select columns in that order." I'm unsure if this has a name! Jan 17, 2017 at 17:45
  • Yeah it looks like it doesn't have one - but I'll keep using it from now. Amazing how much stuff is buried in both the API and the docs. Thx! Jan 17, 2017 at 17:48
  • This distinction has been useful for me, because sometimes I want a single column DataFrame so I could use DataFrame methods on the data that were unavailable on Series. (ISTR the plot method behaved differently). It was an epiphany for me when I realized I could use a single-element list!
    – RufusVS
    Oct 3, 2018 at 15:57
11

As Andy Hayden recommends, utilizing .iloc/.loc to index out (single-columned) dataframe is the way to go; another point to note is how to express the index positions. Use a listed Index labels/positions whilst specifying the argument values to index out as Dataframe; failure to do so will return a 'pandas.core.series.Series'

Input:

    A_1 = train_data.loc[:,'Fraudster']
    print('A_1 is of type', type(A_1))
    A_2 = train_data.loc[:, ['Fraudster']]
    print('A_2 is of type', type(A_2))
    A_3 = train_data.iloc[:,12]
    print('A_3 is of type', type(A_3))
    A_4 = train_data.iloc[:,[12]]
    print('A_4 is of type', type(A_4))

Output:

    A_1 is of type <class 'pandas.core.series.Series'>
    A_2 is of type <class 'pandas.core.frame.DataFrame'>
    A_3 is of type <class 'pandas.core.series.Series'>
    A_4 is of type <class 'pandas.core.frame.DataFrame'>
5

These three approaches have been mentioned:

pd.DataFrame(df.loc[:, 'A'])  # Approach of the original post
df.loc[:,[['A']]              # Approach 2 (note: use iloc for positional indexing)
df[['A']]                     # Approach 3

pd.Series.to_frame() is another approach.

Because it is a method, it can be used in situations where the second and third approaches above do not apply. In particular, it is useful when applying some method to a column in your dataframe and you want to convert the output into a dataframe instead of a series. For instance, in a Jupyter Notebook a series will not have pretty output, but a dataframe will.

# Basic use case: 
df['A'].to_frame()

# Use case 2 (this will give you pretty output in a Jupyter Notebook): 
df['A'].describe().to_frame()

# Use case 3: 
df['A'].str.strip().to_frame()

# Use case 4: 
def some_function(num): 
    ...

df['A'].apply(some_function).to_frame()
3

You can use df.iloc[:, 0:1], in this case the resulting vector will be a DataFrame and not series.

As you can see:

enter image description here

0

(Talking about pandas 1.3.4)

I'd like to add a little more context to the answers involving .to_frame(). If you select a single row of a data frame and execute .to_frame() on that, then the index will be made up of the original column names and you'll get numeric column names. You can just tack on a .T to the end to transpose that back into the original data frame's format (see below).

import pandas as pd
print(pd.__version__)  #1.3.4


df = pd.DataFrame({
    "col1": ["a", "b", "c"],
    "col2": [1, 2, 3]
})

# series
df.loc[0, ["col1", "col2"]]

# dataframe (column names are along the index; not what I wanted)
df.loc[0, ["col1", "col2"]].to_frame()
    #       0
    # col1  a
    # col2  1

# looks like an actual single-row dataframe.
# To me, this is the true answer to the question
# because the output matches the format of the
# original dataframe.
df.loc[0, ["col1", "col2"]].to_frame().T
    #   col1 col2
    # 0    a    1

# this works really well with .to_dict(orient="records") which is 
# what I'm ultimately after by selecting a single row
df.loc[0, ["col1", "col2"]].to_frame().T.to_dict(orient="records")
    # [{'col1': 'a', 'col2': 1}]

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