102

I'm trying to replace the values in one column of a dataframe. The column ('female') only contains the values 'female' and 'male'.

I have tried the following:

w['female']['female']='1'
w['female']['male']='0' 

But receive the exact same copy of the previous results.

I would ideally like to get some output which resembles the following loop element-wise.

if w['female'] =='female':
    w['female'] = '1';
else:
    w['female'] = '0';

I've looked through the gotchas documentation (http://pandas.pydata.org/pandas-docs/stable/gotchas.html) but cannot figure out why nothing happens.

Any help will be appreciated.

  • 1
    Where is the loop? – theharshest Apr 26 '14 at 6:07

10 Answers 10

195

If I understand right, you want something like this:

w['female'] = w['female'].map({'female': 1, 'male': 0})

(Here I convert the values to numbers instead of strings containing numbers. You can convert them to "1" and "0", if you really want, but I'm not sure why you'd want that.)

The reason your code doesn't work is because using ['female'] on a column (the second 'female' in your w['female']['female']) doesn't mean "select rows where the value is 'female'". It means to select rows where the index is 'female', of which there may not be any in your DataFrame.

  • 4
    Thanks. Exactly what I was looking for. If I were to map 'female' to 1 and anything else to '0'. How would that work? – Black Apr 26 '14 at 7:47
  • 10
    use this only, if all values in column are given in map function.Column values not specified in map function will be replaced by nan. – Chandra Mar 22 '17 at 18:56
  • I would also recommend using the .loc syntax to avoid SettingWithCopyWarning: pandas.pydata.org/pandas-docs/stable/… – NickBraunagel Mar 8 '18 at 20:15
  • 1
    instead of .map I used .replace – JS noob Sep 25 '18 at 15:48
95

You can edit a subset of a dataframe by using loc:

df.loc[<row selection>, <column selection>]

In this case:

w.loc[w.female != 'female', 'female'] = 0
w.loc[w.female == 'female', 'female'] = 1
  • 1
    How would I adapt it so I don't need to select specific rows via a condition, just all rows in a particular column? So change all cells in a column to a particular value. – Dhruv Ghulati Sep 8 '16 at 15:20
  • 3
    @DhruvGhulati, you would use df.loc[:, <column selection>] – user4322543 Dec 18 '16 at 23:41
30
w.female.replace(to_replace=dict(female=1, male=0), inplace=True)

See pandas.DataFrame.replace() docs.

29

Slight variation:

w.female.replace(['male', 'female'], [1, 0], inplace=True)
18

This should also work:

w.female[w.female == 'female'] = 1 
w.female[w.female == 'male']   = 0
10

You can also use apply with .get i.e.

w['female'] = w['female'].apply({'male':0, 'female':1}.get):

w = pd.DataFrame({'female':['female','male','female']})
print(w)

Dataframe w:

   female
0  female
1    male
2  female

Using apply to replace values from the dictionary:

w['female'] = w['female'].apply({'male':0, 'female':1}.get)
print(w)

Result:

   female
0       1
1       0
2       1 

Note: apply with dictionary should be used if all the possible values of the columns in the dataframe are defined in the dictionary else, it will have empty for those not defined in dictionary.

7

Alternatively there is the built-in function pd.get_dummies for these kinds of assignments:

w['female'] = pd.get_dummies(w['female'],drop_first = True)

This gives you a data frame with two columns, one for each value that occurs in w['female'], of which you drop the first (because you can infer it from the one that is left). The new column is automatically named as the string that you replaced.

This is especially useful if you have categorical variables with more than two possible values. This function creates as many dummy variables needed to distinguish between all cases. Be careful then that you don't assign the entire data frame to a single column, but instead, if w['female'] could be 'male', 'female' or 'neutral', do something like this:

w = pd.concat([w, pd.get_dummies(w['female'], drop_first = True)], axis = 1])
w.drop('female', axis = 1, inplace = True)

Then you are left with two new columns giving you the dummy coding of 'female' and you got rid of the column with the strings.

6

This is very compact:

w['female'][w['female'] == 'female']=1
w['female'][w['female'] == 'male']=0

Another good one:

w['female'] = w['female'].replace(regex='female', value=1)
w['female'] = w['female'].replace(regex='male', value=0)
  • The first example is chained indexing and is warned against as it cannot guarantee whether the resulting df is a copy or a view. See chained-indexing – Nordle Jul 24 '18 at 11:00
1

There is also a function in pandas called factorize which you can use to automatically do this type of work. It converts labels to numbers: ['male', 'female', 'male'] -> [0, 1, 0]. See this answer for more information.

0

I think that in answer should be pointed which type of object do you get in all methods suggested above: is it Series or DataFrame.

When you get column by w.female. or w[[2]] (where, suppose, 2 is number of your column) you'll get back DataFrame. So in this case you can use DataFrame methods like .replace.

When you use .loc or iloc you get back Series, and Series don't have .replace method, so you should use methods like apply, map and so on.

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