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# How to write a lambda function that is conditional on two variables (columns) in python

I have a data set, df, with two variables, x and y. I want to write a function that does the following:

x if x>100 and y<50 else y

I am used to doing data analysis in STATA so I'm relatively new to pandas for data analysis. If it helps, in stata it would look like:

replace x = cond(x>100 & y<50, x, y)

In other words, the function is conditional on two columns in df and will return a value from one variable or the other in each row depending on whether the condition is met.

So far I have been creating new variables through new functions like:

df.dummyVar = df.x.apply(lambda x: 1 if x>100 else 0)

Using StackOverflow and the documentation I have only been able to find how to apply a function dependent on a single variable to more than one column (using the axis option). Please help.

-

Use `where`:

``````df['dummyVar '] = df['x'].where((df['x'] > 100) & (df['y'] < 50), df['y'])
``````

This will be much faster than performing an apply operation as it is vectorised.

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This is exactly what I needed. And this is great because I can already see how I can expand it to conditionals on 3 or more variables. Thank you! – seeiespi Jul 17 '14 at 22:43
@seeiespi you're welcome, you can accept this as answer, there will be a tick mark underneath the voting buttons. Using apply and iterating should always be the last choice, if possible find a method that operates on the whole dataframe – EdChum Jul 17 '14 at 22:53

Like this:

``````f = lambda x, y: x if x>100 and y<50 else y
``````

Lambda(s) in Python are equivalent to a normal function definition.

``````def f(x, y):
return x if x>100 and y<50 else y
``````

NB: The body of a Lambda must be a valid expression. This means you cannot use things like: `return` for example; a Lambda will return the last expression evaluated.