5

Passing on new application of information I learned that was part of another question: Unable to query a local variable in pandas 0.14.0

Credit and thanks to user @choldgraf. I'm applying his answer from the above link differently.

Objective: To use a variable as the column name in a query

Failed examples:

import pandas as pd
fooframe = pd.DataFrame({'Size':['Large', 'Medium', 'Small', 'Tiny'], 'Color':[1, 2, 3, 4]})
myvar = 'Size'
subframe = fooframe.query("myvar == 'Large'")

The code above returns a key error for 'myvar'.

import pandas as pd
fooframe = pd.DataFrame({'Size':['Large', 'Medium', 'Small', 'Tiny'], 'Color':[1, 2, 3, 4]})
myvar = 'Size'
subframe = fooframe.query("@myvar == 'Large'")

The code above adds "@" before myvar in the query to reference myvar as a local variable. However, the code still returns an error.

3
  • 1
    Is this a bug with pandas, or intended to not work? As of March 2019, I also cannot reference to columns by variables... – Thomas Mar 29 '19 at 13:04
  • Hi @Thomas, did you see my answer below? Is that still not working for you? The question demonstrates two techniques that I couldn't get to work. – TempleGuard527 Apr 4 '19 at 18:27
  • 1
    Hi @TempleGuard527, I saw the answer and upvoted it because it works, but was wondering whether any future visitors to this question find a way to make it work with "@variable" instead since this is the intended (and less cluttered) method – Thomas Apr 5 '19 at 11:56
11

Credit and thanks to user @choldgraf. I used the technique he mentioned in another post (Unable to query a local variable in pandas 0.14.0) not for the value in the column but for the column name.

A variable can be used as the column name in a pandas query by inserting it into the query string like so:

import pandas as pd
fooframe = pd.DataFrame({'Size':['Large', 'Medium', 'Small', 'Tiny'], 'Color':[1, 2, 3, 4]})
myvar = 'Size'
subframe = fooframe.query("{0} == 'Large'".format(myvar))
1
  • 1
    The answer is perfect. It will only create an issue if the column name has space in it, you can use backtick to overcome subframe = fooframe.query("{0} == 'Large'".format(myvar)) – Harsh Gupta Aug 28 '20 at 8:16

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.