7

I have a dataframe:

df = pd.DataFrame(
    {'number': ['10', '20' , '30', '40'], 'condition': ['A', 'B', 'A', 'B']})

df = 
    number    condition
0    10         A
1    20         B
2    30         A
3    40         B

I want to apply a function to each element within the number column, as follows:

 df['number'] = df['number'].apply(lambda x: func(x))

BUT, even though I apply the function to the number column, I want the function to also make reference to the condition column i.e. in pseudo code:

func(n):
    #if the value in corresponding condition column is equal to some set of values:
        # do some stuff to n using the value in condition
        # return new value for n

For a single number, and an example function I would write:

number = 10
condition = A
def func(num, condition):
    if condition == A:
        return num*3
    if condition == B:
        return num*4

func(number,condition) = 15

How can I incorporate the same function to my apply statement written above? i.e. making reference to the value within the condition column, while acting on the value within the number column?

Note: I have read through the docs on np.where(), pandas.loc() and pandas.index() but I just cannot figure out how to put it into practice.

I am struggling with the syntax for referencing the other column from within the function, as I need access to both the values in the number and condition column.

As such, my expected output is:

df = 
    number    condition
0    30         A
1    80         B
2    90         A
3    160         B

UPDATE: The above was far too vague. Please see the following:

df1 = pd.DataFrame({'Entries':['man','guy','boy','girl'],'Conflict':['Yes','Yes','Yes','No']})


    Entries    Conflict
0    "man"    "Yes"
1    "guy"    "Yes"
2    "boy"    "Yes"
3    "girl"   "No

def funcA(d):
    d = d + 'aaa'
    return d
def funcB(d):
    d = d + 'bbb'
    return d

df1['Entries'] = np.where(df1['Conflict'] == 'Yes', funcA, funcB)

Output:
{'Conflict': ['Yes', 'Yes', 'Yes', 'Np'],
 'Entries': array(<function funcB at 0x7f4acbc5a500>, dtype=object)}

How can I apply the above np.where statement to take a pandas series as mentioned in the comments, and produce the desired output shown below:

Desired Output:

    Entries    Conflict
0    "manaaa"    "Yes"
1    "guyaaa"    "Yes"
2    "boyaaa"    "Yes"
3    "girlbbb"   "No
  • 3
    Firstly your code to create the df has an error, secondly you need df.apply(lambda row: func(row['number'], row['condition']), axis=1) this will apply row-wise so you can reference the other column. Also one should not resort to apply when a vectorised method exists. You could've done np.where(df['condition'] == 'A', df['num'] * 3, df['num']*4) but your setup code is passing strings for the number column – EdChum Jan 31 '17 at 16:12
  • @EdChum Apologies, error checked. I agree - the code is a garbled horrible mess, I'm genuinely surprised it works half the time! Ok, so I could write df['number'] = np.where(df[condition'] == 'A', functionA, functionB) and define functionA and functionB elsewhere (say above that line)? – Chuck Jan 31 '17 at 16:19
  • You'd need to craft those functions to accept a Series or DataFrame and return either a boolean array or an array that is the same length as the orig df but you've defined this so I can't speculate on non-existent code – EdChum Jan 31 '17 at 16:20
  • @EdChum the np.where solution is fine with very few conditions to check, but would need to be improved in the case of many conditions. – blacksite Jan 31 '17 at 16:23
  • @not_a_robot my point here is that the OP hasn't fully fleshed their requirements so it's speculative to me, I can only answer with the information presented here – EdChum Jan 31 '17 at 16:25
5

I don't know about using pandas.DataFrame.apply, but you could define a certain condition:multiplier key-value mapping (seen in multiplier below), and pass that into your function. Then you can use a list comprehension to calculate the new number output based on those conditions:

import pandas as pd
df = pd.DataFrame({'number': [10, 20 , 30, 40], 'condition': ['A', 'B', 'A', 'B']})

multiplier = {'A': 2, 'B': 4}

def func(num, condition, multiplier):
    return num * multiplier[condition]

df['new_number'] = [func(df.loc[idx, 'number'], df.loc[idx, 'condition'], 
                     multiplier) for idx in range(len(df))]

Here's the result:

df
Out[24]: 
  condition  number  new_number
0         A      10          30
1         B      20          80
2         A      30          90
3         B      40         160

There is likely a vectorized, pure-pandas solution that's more "ideal." But this works, too, in a pinch.

5

As the question was in regard to the apply function to a dataframe column for the same row, it seems more accurate to use the pandas apply funtion in combination with lambda:

import pandas as pd
df = pd.DataFrame({'number': [10, 20 , 30, 40], 'condition': ['A', 'B', 'A', 'B']})

def func(number,condition):
    multiplier = {'A': 2, 'B': 4}
    return number * multiplier[condition]

df['new_number'] = df.apply(lambda x: func(x['number'], x['condition']), axis=1)

In this example, lambda takes the columns 'number' and 'condition' of the dataframe df and applies these columns of the same row to the function func with apply.

This returns the following result:

df
Out[10]: 
 condition  number  new_number
0   A   10  20
1   B   20  80
2   A   30  60
3   B   40  160

For the UPDATE case its also possible to use the pandas apply function:

df1 = pd.DataFrame({'Entries':['man','guy','boy','girl'],'Conflict':['Yes','Yes','Yes','No']})

def funcA(d):
    d = d + 'aaa'
    return d
def funcB(d):
    d = d + 'bbb'
    return d

df1['Entries'] = df1.apply(lambda x: funcA(x['Entries']) if x['Conflict'] == 'Yes' else funcB(x['Entries']), axis=1)

In this example, lambda takes the columns 'Entries' and 'Conflict' of the dataframe df and applies these columns either to funcA or funcB of the same row with apply. The condition if funcA or funcB will be applied is done with an if-else clause in lambda.

This returns the following result:

df
Out[12]:


    Conflict    Entries
0   Yes     manaaa
1   Yes     guyaaa
2   Yes     boyaaa
3   No  girlbbb

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