345

I have a 20 x 4000 dataframe in python using pandas. Two of these columns are named Year and quarter. I'd like to create a variable called period that makes Year = 2000 and quarter= q2 into 2000q2

Can anyone help with that?

19 Answers 19

333
dataframe["period"] = dataframe["Year"].map(str) + dataframe["quarter"]
  • 11
    Is it possible to add multiple columns together without typing out all the columns? Let's say add(dataframe.iloc[:, 0:10]) for example? – Heisenberg May 9 '15 at 19:15
  • 4
    @Heisenberg That should be possible with the Python builtin sum. – silvado May 11 '15 at 11:06
  • 5
    @silvado could you please make an example for adding multiple columns? Thank you – c1c1c1 Oct 25 '16 at 16:45
  • 4
    Be careful, you need to apply map(str) to all columns that are not string in the first place. if quarter was a number you would do dataframe["period"] = dataframe["Year"].map(str) + dataframe["quarter"].map(str) map is just applying string conversion to all entries. – Ozgur Ozturk Feb 1 '17 at 21:17
  • 6
    This solution can create problems iy you have nan values, e careful – Javier Dec 27 '17 at 17:14
221
df = pd.DataFrame({'Year': ['2014', '2015'], 'quarter': ['q1', 'q2']})
df['period'] = df[['Year', 'quarter']].apply(lambda x: ''.join(x), axis=1)

Yields this dataframe

   Year quarter  period
0  2014      q1  2014q1
1  2015      q2  2015q2

This method generalizes to an arbitrary number of string columns by replacing df[['Year', 'quarter']] with any column slice of your dataframe, e.g. df.iloc[:,0:2].apply(lambda x: ''.join(x), axis=1).

You can check more information about apply() method here

  • 17
    lambda x: ''.join(x) is just ''.join, no? – DSM Sep 19 '16 at 11:54
  • 3
    @OzgurOzturk: the point is that the lambda part of the lambda x: ''.join(x) construction doesn't do anything; it's like using lambda x: sum(x) instead of just sum. – DSM Feb 1 '17 at 21:07
  • 2
    Confirmed same result when using ''.join, i.e.: df['period'] = df[['Year', 'quarter']].apply(''.join, axis=1). – Max Ghenis Oct 10 '17 at 5:30
  • 1
    @Archie join takes only str instances in an iterable. Use a map to convert them all into str and then use join. – John Strood Mar 27 '18 at 12:51
  • 11
    '-'.join(x.map(str)) – Manjul Sep 3 '18 at 8:23
198

Small data-sets (< 150rows)

[''.join(i) for i in zip(df["Year"].map(str),df["quarter"])]

or slightly slower but more compact:

df.Year.str.cat(df.quarter)

Larger data sets (> 150rows)

df['Year'].astype(str) + df['quarter']

UPDATE: Timing graph Pandas 0.23.4

enter image description here

Let's test it on 200K rows DF:

In [250]: df
Out[250]:
   Year quarter
0  2014      q1
1  2015      q2

In [251]: df = pd.concat([df] * 10**5)

In [252]: df.shape
Out[252]: (200000, 2)

UPDATE: new timings using Pandas 0.19.0

Timing without CPU/GPU optimization (sorted from fastest to slowest):

In [107]: %timeit df['Year'].astype(str) + df['quarter']
10 loops, best of 3: 131 ms per loop

In [106]: %timeit df['Year'].map(str) + df['quarter']
10 loops, best of 3: 161 ms per loop

In [108]: %timeit df.Year.str.cat(df.quarter)
10 loops, best of 3: 189 ms per loop

In [109]: %timeit df.loc[:, ['Year','quarter']].astype(str).sum(axis=1)
1 loop, best of 3: 567 ms per loop

In [110]: %timeit df[['Year','quarter']].astype(str).sum(axis=1)
1 loop, best of 3: 584 ms per loop

In [111]: %timeit df[['Year','quarter']].apply(lambda x : '{}{}'.format(x[0],x[1]), axis=1)
1 loop, best of 3: 24.7 s per loop

Timing using CPU/GPU optimization:

In [113]: %timeit df['Year'].astype(str) + df['quarter']
10 loops, best of 3: 53.3 ms per loop

In [114]: %timeit df['Year'].map(str) + df['quarter']
10 loops, best of 3: 65.5 ms per loop

In [115]: %timeit df.Year.str.cat(df.quarter)
10 loops, best of 3: 79.9 ms per loop

In [116]: %timeit df.loc[:, ['Year','quarter']].astype(str).sum(axis=1)
1 loop, best of 3: 230 ms per loop

In [117]: %timeit df[['Year','quarter']].astype(str).sum(axis=1)
1 loop, best of 3: 230 ms per loop

In [118]: %timeit df[['Year','quarter']].apply(lambda x : '{}{}'.format(x[0],x[1]), axis=1)
1 loop, best of 3: 9.38 s per loop

Answer contribution by @anton-vbr

  • What difference between 261 and 264 in your timing? – Anton Protopopov May 21 '16 at 19:57
  • @AntonProtopopov apparently 100ms out of nowhere :) – Dennis Golomazov Oct 10 '16 at 17:30
  • @AntonProtopopov, i guess it's a mixture of two timings - one used CPU/GPU optimization, another one didn't. I've updated my answer and put both timing sets there... – MaxU Oct 10 '16 at 17:45
  • This use of .sum() fails If all columns look like they could be integers (ie are string forms of integers). Instead, it seems pandas converts them back to numeric before summing! – CPBL May 25 '17 at 13:06
  • @CPBL, try this approach: df.T.apply(lambda x: x.str.cat(sep='')) – MaxU May 26 '17 at 7:38
136

The method cat() of the .str accessor works really well for this:

>>> import pandas as pd
>>> df = pd.DataFrame([["2014", "q1"], 
...                    ["2015", "q3"]],
...                   columns=('Year', 'Quarter'))
>>> print(df)
   Year Quarter
0  2014      q1
1  2015      q3
>>> df['Period'] = df.Year.str.cat(df.Quarter)
>>> print(df)
   Year Quarter  Period
0  2014      q1  2014q1
1  2015      q3  2015q3

cat() even allows you to add a separator so, for example, suppose you only have integers for year and period, you can do this:

>>> import pandas as pd
>>> df = pd.DataFrame([[2014, 1],
...                    [2015, 3]],
...                   columns=('Year', 'Quarter'))
>>> print(df)
   Year Quarter
0  2014       1
1  2015       3
>>> df['Period'] = df.Year.astype(str).str.cat(df.Quarter.astype(str), sep='q')
>>> print(df)
   Year Quarter  Period
0  2014       1  2014q1
1  2015       3  2015q3

Joining multiple columns is just a matter of passing either a list of series or a dataframe containing all but the first column as a parameter to str.cat() invoked on the first column (Series):

>>> df = pd.DataFrame(
...     [['USA', 'Nevada', 'Las Vegas'],
...      ['Brazil', 'Pernambuco', 'Recife']],
...     columns=['Country', 'State', 'City'],
... )
>>> df['AllTogether'] = df['Country'].str.cat(df[['State', 'City']], sep=' - ')
>>> print(df)
  Country       State       City                   AllTogether
0     USA      Nevada  Las Vegas      USA - Nevada - Las Vegas
1  Brazil  Pernambuco     Recife  Brazil - Pernambuco - Recife

Do note that if your pandas dataframe/series has null values, you need to include the parameter na_rep to replace the NaN values with a string, otherwise the combined column will default to NaN.

  • 11
    This seems way better (maybe more efficient, too) than lambda or map; also it just reads most cleanly. – dwanderson May 22 '16 at 20:31
  • @LeoRochael how would this extend to many columns? – ZakS Jul 23 '18 at 9:16
  • 1
    @ZakS, by passing the remaining columns as a dataframe instead of a series as the first parameter to str.cat(). I'll amend the answer – LeoRochael Jul 23 '18 at 21:42
  • Which version of pandas are you using? I get ValueError: Did you mean to supply a sep keyword? in pandas-0.23.4. Thanks! – Qinqing Liu Dec 5 '18 at 20:56
  • @QinqingLiu, I retested these with pandas-0.23.4 and they seem work. The sep parameter is only necessary if you intend to separate the parts of the concatenated string. If you get an error, please show us your failing example. – LeoRochael Dec 10 '18 at 19:34
27

Use of a lamba function this time with string.format().

import pandas as pd
df = pd.DataFrame({'Year': ['2014', '2015'], 'Quarter': ['q1', 'q2']})
print df
df['YearQuarter'] = df[['Year','Quarter']].apply(lambda x : '{}{}'.format(x[0],x[1]), axis=1)
print df

  Quarter  Year
0      q1  2014
1      q2  2015
  Quarter  Year YearQuarter
0      q1  2014      2014q1
1      q2  2015      2015q2

This allows you to work with non-strings and reformat values as needed.

import pandas as pd
df = pd.DataFrame({'Year': ['2014', '2015'], 'Quarter': [1, 2]})
print df.dtypes
print df

df['YearQuarter'] = df[['Year','Quarter']].apply(lambda x : '{}q{}'.format(x[0],x[1]), axis=1)
print df

Quarter     int64
Year       object
dtype: object
   Quarter  Year
0        1  2014
1        2  2015
   Quarter  Year YearQuarter
0        1  2014      2014q1
1        2  2015      2015q2
  • Much quicker: .apply(''.join(x), axis=1) – Ghanem Jul 8 at 10:31
12

Although the @silvado answer is good if you change df.map(str) to df.astype(str) it will be faster:

import pandas as pd
df = pd.DataFrame({'Year': ['2014', '2015'], 'quarter': ['q1', 'q2']})

In [131]: %timeit df["Year"].map(str)
10000 loops, best of 3: 132 us per loop

In [132]: %timeit df["Year"].astype(str)
10000 loops, best of 3: 82.2 us per loop
11

As your data are inserted to a dataframe, this command should solve your problem:

df['period'] = df[['Year', 'quarter']].apply(lambda x: ' '.join(x.astype(str)), axis=1)
11

Let us suppose your dataframe is df with columns Year and Quarter.

import pandas as pd
df = pd.DataFrame({'Quarter':'q1 q2 q3 q4'.split(), 'Year':'2000'})

Suppose we want to see the dataframe;

df
>>>  Quarter    Year
   0    q1      2000
   1    q2      2000
   2    q3      2000
   3    q4      2000

Finally, concatenate the Year and the Quarter as follows.

df['Period'] = df['Year'] + ' ' + df['Quarter']

You can now print df to see the resulting dataframe.

df
>>>  Quarter    Year    Period
    0   q1      2000    2000 q1
    1   q2      2000    2000 q2
    2   q3      2000    2000 q3
    3   q4      2000    2000 q4

If you do not want the space between the year and quarter, simply remove it by doing;

df['Period'] = df['Year'] + df['Quarter']
  • 2
    Specified as strings df['Period'] = df['Year'].map(str) + df['Quarter'].map(str) – Stuber Aug 7 '18 at 18:58
  • I'm getting TypeError: Series cannot perform the operation + when I run either df2['filename'] = df2['job_number'] + '.' + df2['task_number'] or df2['filename'] = df2['job_number'].map(str) + '.' + df2['task_number'].map(str). – Karl Baker Mar 3 at 6:43
  • However, df2['filename'] = df2['job_number'].astype(str) + '.' + df2['task_number'].astype(str) did work. – Karl Baker Mar 3 at 6:51
  • @KarlBaker, I think you did not have strings in your input. But I am glad you figured that out. If you look at the example dataframe that I created above, you will see that all the columns are strings. – Samuel Nde Mar 3 at 17:31
10

Here is an implementation that I find very versatile:

In [1]: import pandas as pd 

In [2]: df = pd.DataFrame([[0, 'the', 'quick', 'brown'],
   ...:                    [1, 'fox', 'jumps', 'over'], 
   ...:                    [2, 'the', 'lazy', 'dog']],
   ...:                   columns=['c0', 'c1', 'c2', 'c3'])

In [3]: def str_join(df, sep, *cols):
   ...:     from functools import reduce
   ...:     return reduce(lambda x, y: x.astype(str).str.cat(y.astype(str), sep=sep), 
   ...:                   [df[col] for col in cols])
   ...: 

In [4]: df['cat'] = str_join(df, '-', 'c0', 'c1', 'c2', 'c3')

In [5]: df
Out[5]: 
   c0   c1     c2     c3                cat
0   0  the  quick  brown  0-the-quick-brown
1   1  fox  jumps   over   1-fox-jumps-over
2   2  the   lazy    dog     2-the-lazy-dog
  • FYI: This method works great with Python 3, but gives me trouble in Python 2. – Alex P. Miller Jul 31 '17 at 19:40
9

more efficient is

def concat_df_str1(df):
    """ run time: 1.3416s """
    return pd.Series([''.join(row.astype(str)) for row in df.values], index=df.index)

and here is a time test:

import numpy as np
import pandas as pd

from time import time


def concat_df_str1(df):
    """ run time: 1.3416s """
    return pd.Series([''.join(row.astype(str)) for row in df.values], index=df.index)


def concat_df_str2(df):
    """ run time: 5.2758s """
    return df.astype(str).sum(axis=1)


def concat_df_str3(df):
    """ run time: 5.0076s """
    df = df.astype(str)
    return df[0] + df[1] + df[2] + df[3] + df[4] + \
           df[5] + df[6] + df[7] + df[8] + df[9]


def concat_df_str4(df):
    """ run time: 7.8624s """
    return df.astype(str).apply(lambda x: ''.join(x), axis=1)


def main():
    df = pd.DataFrame(np.zeros(1000000).reshape(100000, 10))
    df = df.astype(int)

    time1 = time()
    df_en = concat_df_str4(df)
    print('run time: %.4fs' % (time() - time1))
    print(df_en.head(10))


if __name__ == '__main__':
    main()

final, when sum(concat_df_str2) is used, the result is not simply concat, it will trans to integer.

  • +1 Neat solution, this also allows us to specify the columns: e.g. df.values[:, 0:3] or df.values[:, [0,2]]. – Snow bunting Feb 9 '18 at 9:51
4

Using zip could be even quicker:

df["period"] = [''.join(i) for i in zip(df["Year"].map(str),df["quarter"])]

Graph:

enter image description here

import pandas as pd
import numpy as np
import timeit
import matplotlib.pyplot as plt
from collections import defaultdict

df = pd.DataFrame({'Year': ['2014', '2015'], 'quarter': ['q1', 'q2']})

myfuncs = {
"df['Year'].astype(str) + df['quarter']":
    lambda: df['Year'].astype(str) + df['quarter'],
"df['Year'].map(str) + df['quarter']":
    lambda: df['Year'].map(str) + df['quarter'],
"df.Year.str.cat(df.quarter)":
    lambda: df.Year.str.cat(df.quarter),
"df.loc[:, ['Year','quarter']].astype(str).sum(axis=1)":
    lambda: df.loc[:, ['Year','quarter']].astype(str).sum(axis=1),
"df[['Year','quarter']].astype(str).sum(axis=1)":
    lambda: df[['Year','quarter']].astype(str).sum(axis=1),
    "df[['Year','quarter']].apply(lambda x : '{}{}'.format(x[0],x[1]), axis=1)":
    lambda: df[['Year','quarter']].apply(lambda x : '{}{}'.format(x[0],x[1]), axis=1),
    "[''.join(i) for i in zip(dataframe['Year'].map(str),dataframe['quarter'])]":
    lambda: [''.join(i) for i in zip(df["Year"].map(str),df["quarter"])]
}

d = defaultdict(dict)
step = 10
cont = True
while cont:
    lendf = len(df); print(lendf)
    for k,v in myfuncs.items():
        iters = 1
        t = 0
        while t < 0.2:
            ts = timeit.repeat(v, number=iters, repeat=3)
            t = min(ts)
            iters *= 10
        d[k][lendf] = t/iters
        if t > 2: cont = False
    df = pd.concat([df]*step)

pd.DataFrame(d).plot().legend(loc='upper center', bbox_to_anchor=(0.5, -0.15))
plt.yscale('log'); plt.xscale('log'); plt.ylabel('seconds'); plt.xlabel('df rows')
plt.show()
3

This solution uses an intermediate step compressing two columns of the DataFrame to a single column containing a list of the values. This works not only for strings but for all kind of column-dtypes

import pandas as pd
df = pd.DataFrame({'Year': ['2014', '2015'], 'quarter': ['q1', 'q2']})
df['list']=df[['Year','quarter']].values.tolist()
df['period']=df['list'].apply(''.join)
print(df)

Result:

   Year quarter        list  period
0  2014      q1  [2014, q1]  2014q1
1  2015      q2  [2015, q2]  2015q2
  • looks like other dtypes won't work. I got a TypeError: sequence item 1: expected str instance, float found – Prometheus Apr 10 at 9:08
  • apply first a cast to string. The join operation works only for strings – Markus Dutschke Apr 10 at 10:58
  • This solution won't work to combine two columns with different dtype, see my answer for the correct solution for such case. – Good Will May 16 at 13:21
2

As many have mentioned previously, you must convert each column to string and then use the plus operator to combine two string columns. You can get a large performance improvement by using NumPy.

%timeit df['Year'].values.astype(str) + df.quarter
71.1 ms ± 3.76 ms per loop (mean ± std. dev. of 7 runs, 10 loops each)

%timeit df['Year'].astype(str) + df['quarter']
565 ms ± 22.3 ms per loop (mean ± std. dev. of 7 runs, 1 loop each)
  • I'd like to use the numpyified version but I'm getting an error: Input: df2['filename'] = df2['job_number'].values.astype(str) + '.' + df2['task_number'].values.astype(str) --> Output: TypeError: ufunc 'add' did not contain a loop with signature matching types dtype('<U21') dtype('<U21') dtype('<U21'). Both job_number and task_number are ints. – Karl Baker Mar 3 at 6:56
2

Use .combine_first.

df['Period'] = df['Year'].combine_first(df['Quarter'])
  • This is not correct. .combine_first will result in either the value from 'Year' being stored in 'Period', or, if it is Null, the value from 'Quarter'. It will not concatenate the two strings and store them in 'Period'. – Steve G Jan 29 at 20:48
2

I think the best way to combine the columns in pandas is by converting both the columns to integer and then to str.

df[['Year', 'quarter']] = df[['Year', 'quarter']].astype(int).astype(str)
df['Period']= df['Year'] + 'q' + df['quarter']
1

One can use assign method of DataFrame:

df= (pd.DataFrame({'Year': ['2014', '2015'], 'quarter': ['q1', 'q2']}).
  assign(period=lambda x: x.Year+x.quarter ))
1

Here is my summary of the above solutions to concatenate / combine two columns with int and str value into a new column, using a separator between the values of columns. Three solutions work for this purpose.

# be cautious about the separator, some symbols may cause "SyntaxError: EOL while scanning string literal".
# e.g. ";;" as separator would raise the SyntaxError

separator = "&&" 

# pd.Series.str.cat() method does not work to concatenate / combine two columns with int value and str value. This would raise "AttributeError: Can only use .cat accessor with a 'category' dtype"

df["period"] = df["Year"].map(str) + separator + df["quarter"]
df["period"] = df[['Year','quarter']].apply(lambda x : '{} && {}'.format(x[0],x[1]), axis=1)
df["period"] = df.apply(lambda x: f'{x["Year"]} && {x["quarter"]}', axis=1)
0
def madd(x):
    """Performs element-wise string concatenation with multiple input arrays.

    Args:
        x: iterable of np.array.

    Returns: np.array.
    """
    for i, arr in enumerate(x):
        if type(arr.item(0)) is not str:
            x[i] = x[i].astype(str)
    return reduce(np.core.defchararray.add, x)

For example:

data = list(zip([2000]*4, ['q1', 'q2', 'q3', 'q4']))
df = pd.DataFrame(data=data, columns=['Year', 'quarter'])
df['period'] = madd([df[col].values for col in ['Year', 'quarter']])

df

    Year    quarter period
0   2000    q1  2000q1
1   2000    q2  2000q2
2   2000    q3  2000q3
3   2000    q4  2000q4
0
dataframe["period"] = dataframe["Year"].astype(str).add(dataframe["quarter"])

or if values are like [2000] [4] and want to make [2000q4]

dataframe["period"] = dataframe["Year"].astype(str).add('q').add(dataframe["quarter"]).astype(str)

substituting .astype(str) with .map(str) works too.

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