69

I have a list 'abc' and a dataframe 'df':

abc = ['foo', 'bar']
df =
    A  B
0  12  NaN
1  23  NaN

I want to insert the list into cell 1B, so I want this result:

    A  B
0  12  NaN
1  23  ['foo', 'bar']

Ho can I do that?

1) If I use this:

df.ix[1,'B'] = abc

I get the following error message:

ValueError: Must have equal len keys and value when setting with an iterable

because it tries to insert the list (that has two elements) into a row / column but not into a cell.

2) If I use this:

df.ix[1,'B'] = [abc]

then it inserts a list that has only one element that is the 'abc' list ( [['foo', 'bar']] ).

3) If I use this:

df.ix[1,'B'] = ', '.join(abc)

then it inserts a string: ( foo, bar ) but not a list.

4) If I use this:

df.ix[1,'B'] = [', '.join(abc)]

then it inserts a list but it has only one element ( ['foo, bar'] ) but not two as I want ( ['foo', 'bar'] ).

Thanks for help!


EDIT

My new dataframe and the old list:

abc = ['foo', 'bar']
df2 =
    A    B         C
0  12  NaN      'bla'
1  23  NaN  'bla bla'

Another dataframe:

df3 =
    A    B         C                    D
0  12  NaN      'bla'  ['item1', 'item2']
1  23  NaN  'bla bla'        [11, 12, 13]

I want insert the 'abc' list into df2.loc[1,'B'] and/or df3.loc[1,'B'].

If the dataframe has columns only with integer values and/or NaN values and/or list values then inserting a list into a cell works perfectly. If the dataframe has columns only with string values and/or NaN values and/or list values then inserting a list into a cell works perfectly. But if the dataframe has columns with integer and string values and other columns then the error message appears if I use this: df2.loc[1,'B'] = abc or df3.loc[1,'B'] = abc.

Another dataframe:

df4 =
          A     B
0      'bla'  NaN
1  'bla bla'  NaN

These inserts work perfectly: df.loc[1,'B'] = abc or df4.loc[1,'B'] = abc.

  • 1
    What version pandas are you using? the following worked using pandas 0.15.0: df.loc[1,'b'] = ['foo','bar'] – EdChum Oct 21 '14 at 9:30
  • Thank you! I use Python 2.7 and I tried pandas 0.14.0 and 0.15.0 and it worked with the test data above. But what if I have a 'C' column as well with some integer values? 'A' has strings. Having an integer column and a srting column I get the same error: ValueError: Must have equal len keys and value when setting with an iterable – ragesz Oct 21 '14 at 16:43
  • You're going to have to post data and code to explain and show what you mean – EdChum Oct 21 '14 at 17:47
  • You can do this with df.at, df.iat, and df.loc. See this answer. – cs95 Jan 28 at 10:31
77

Since set_value has been deprecated since version 0.21.0, you should now use at. It can insert a list into a cell without raising a ValueError as loc does. I think this is because at always refers to a single value, while loc can refer to values as well as rows and columns.

df = pd.DataFrame(data={'A': [1, 2, 3], 'B': ['x', 'y', 'z']})

df.at[1, 'B'] = ['m', 'n']

df =
    A   B
0   1   x
1   2   [m, n]
2   3   z
  • 2
    I had to make sure the original dataframe dtype was set to object for this to work: df = pd.DataFrame(data, dtype=object) – Takver Mar 8 at 16:04
  • at needs an index. How do I refer to the row using another attribute value match; eg: for the row with A=2 in the above example? – bikashg Apr 5 at 14:17
  • 1
    This returns another error ValueError: setting an array element with a sequence.; see an answer by @cs95 if you get the error. – Blaszard Jul 5 at 15:07
35

df3.set_value(1, 'B', abc) works for any dataframe. Take care of the data type of column 'B'. Eg. a list can not be inserted into a float column, at that case df['B'] = df['B'].astype(object) can help.

  • 5
    Note that this command has been deprecated. There is an update right below. – Thomas Mar 27 '18 at 11:25
12

v0.23+, set_value has been deprecated.
You can now use DataFrame.at to set by label, and DataFrame.iat to set by integer position.


Setting Cell Values with at/iat

# Setup
df = pd.DataFrame({'A': [12, 23], 'B': [['a', 'b'], ['c', 'd']]})
df

    A       B
0  12  [a, b]
1  23  [c, d]

df.dtypes

A     int64
B    object
dtype: object

If you want to set a value in second row of the "B" to some new list, use DataFrane.at:

df.at[1, 'B'] = ['m', 'n']
df

    A       B
0  12  [a, b]
1  23  [m, n]

You can also set by integer position using DataFrame.iat

df.iat[1, df.columns.get_loc('B')] = ['m', 'n']
df

    A       B
0  12  [a, b]
1  23  [m, n]

What if I get ValueError: setting an array element with a sequence?

I'll try to reproduce this with:

df

    A   B
0  12 NaN
1  23 NaN

df.dtypes

A      int64
B    float64
dtype: object

df.at[1, 'B'] = ['m', 'n']
# ValueError: setting an array element with a sequence.

This is because of a your object is of float64 dtype, whereas lists are objects, so there's a mismatch there. What you would have to do in this situation is to convert the column to object first.

df['B'] = df['B'].astype(object)
df.dtypes

A     int64
B    object
dtype: object

Then, it works:

df.at[1, 'B'] = ['m', 'n']
df

    A       B
0  12     NaN
1  23  [m, n]

Possible, But Hacky

Even more wacky, I've found you can hack through DataFrame.loc to achieve something similar if you pass nested lists.

df.loc[1, 'B'] = [['m'], ['n'], ['o'], ['p']]
df

    A             B
0  12        [a, b]
1  23  [m, n, o, p]

You can read more about why this works here.

2

As mentionned in this post pandas: how to store a list in a dataframe?; the dtypes in the dataframe may influence the results, as well as calling a dataframe or not to be assigned to.

0

Quick work around

Simply enclose the list within a new list, as done for col2 in the data frame below. The reason it works is that python takes the outer list (of lists) and converts it into a column as if it were containing normal scalar items, which is lists in our case and not normal scalars.

mydict={'col1':[1,2,3],'col2':[[1, 4], [2, 5], [3, 6]]}
data=pd.DataFrame(mydict)
data


   col1     col2
0   1       [1, 4]
1   2       [2, 5]
2   3       [3, 6]

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