46

In a column risklevels I want to replace Small with 1, Medium with 5 and High with 15. I tried:

dfm.replace({'risk':{'Small': '1'}},
            {'risk':{'Medium': '5'}},
            {'risk':{'High': '15'}})

But only the medium were replaced. What is wrong ?

7 Answers 7

77

Your replace format is off

In [21]: df = pd.DataFrame({'a':['Small', 'Medium', 'High']})

In [22]: df
Out[22]: 
        a
0   Small
1  Medium
2    High

[3 rows x 1 columns]

In [23]: df.replace({'a' : { 'Medium' : 2, 'Small' : 1, 'High' : 3 }})
Out[23]: 
   a
0  1
1  2
2  3

[3 rows x 1 columns]
1
  • 3
    I wasn't sure what was wrong with the replace format line so I suggested using map instead. +1 for spotting OP error
    – EdChum
    Feb 28, 2014 at 16:34
21
In [123]: import pandas as pd                                                                                                                                

In [124]: state_df = pd.DataFrame({'state':['Small', 'Medium', 'High', 'Small', 'High']})                                                                    

In [125]: state_df
Out[125]: 
    state
0   Small
1  Medium
2    High
3   Small
4    High

In [126]: replace_values = {'Small' : 1, 'Medium' : 2, 'High' : 3 }                                                                                          

In [127]: state_df = state_df.replace({"state": replace_values})                                                                                             

In [128]: state_df
Out[128]: 
   state
0      1
1      2
2      3
3      1
4      3
10

You could define a dict and call map

In [256]:

df = pd.DataFrame({'a':['Small', 'Medium', 'High']})
df
Out[256]:
        a
0   Small
1  Medium
2    High

[3 rows x 1 columns]
In [258]:

vals_to_replace = {'Small':'1', 'Medium':'5', 'High':'15'}
df['a'] = df['a'].map(vals_to_replace)
df
Out[258]:
    a
0   1
1   5
2  15

[3 rows x 1 columns]


In [279]:

val1 = [1,5,15]
df['risk'].update(pd.Series(val1))
df
Out[279]:
  risk
0    1
1    5
2   15

[3 rows x 1 columns]
2
  • @Jeff not familiar with that method, am I using it correctly?
    – EdChum
    Feb 28, 2014 at 16:16
  • yes that is correct (but I realize that the issue is that the OP replace format is wrong)
    – Jeff
    Feb 28, 2014 at 16:25
7

Looks like OP may have been looking for a one-liner to solve this through consecutive calls to .str.replace:

dfm.column = dfm.column.str.replace('Small', '1') \
    .str.replace('Medium', '5') \
        .str.replace('High', '15')

OP, you were close but just needed to replace your commas with .str.replace and the column call ('risk') in a dictionary format isn't necessary. Just pass the pattern-to-match and replacement-value as arguments to replace.

3
  • 7
    Welcome to Stack Overflow. Please could you add some explanation to your answer? (What changes did you make, and why? Why did the OPs original code not work?) Without the explanation, the answer isn't so useful to future visitors. Aug 31, 2018 at 17:47
  • 3
    What does this answer add that the other answers lack?
    – NickD
    Aug 31, 2018 at 18:31
  • 1
    This answer is useful if you want to replace a piece of the string and not the entire string. I found this answer when trying to understand if you could put together multiple .str.replace in a statement. That said, if the match is desired to the total string (OPs question), and not a piece of the string, the preferred answer is best. May 27, 2020 at 22:38
4

I had to turn on the "regex" flag to make it work:

 df.replace({'a' : {'Medium':2, 'Small':1, 'High':3 }}, regex=True)
2

String replace each string (Small, Medium, High) for the new string (1,5,15)\

If dfm is the dataframe name, column is the column name.

dfm.column = dfm.column.str.replace('Small', '1')
dfm.column = dfm.column.str.replace('Medium', '5')
dfm.column = dfm.column.str.replace('High', '15')
0

Use series.replace with lists of before and after values for greater ease:

df.risklevels = df.risklevels.replace( ['Small','Medium','High'], [1,2,3] )

See here.

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