2

ORIGINAL QUESTION:

I'm writing a while loop to loop over certain columns. In this while loop I want to create a variable of which the name partly consists of the column name it is looping over.

x=2
length=len(grouped_class.columns)
while x<length:
    x=x+1
    (grouped_class.columns[x])_largest = x+5
    ...

This is my current code (=x+5 is not actual code, but as example), but it returns a syntax error. If I run grouped_class.columns[x] in the shell it returns the name of that column, for example : "ColumnA". I want to use this "ColumnA" as first part of a variable name.

So in the variable list it would return: ColumnA_largest

In this way I can store the result for each column in a seperate variable.

How can I do this?

EDIT: QUESTION GENERALIZED

How can I use a string obtained by df.column[x] as input for a variable name?

Example df:

ColumnA    ColumnB    ColumnC
5          6          4
6          10         2

If I run df.columns[1] it returns "ColumnB"

I want to use this "ColumnB" as part of the name when assigning a variable.

Imagine I want to create the variable COLNAME_sum = x + 5 I would like to change the COLNAME to the string I obtained from df.columns[1] (="ColumnB")

Expected output: A variable named ColumnB_sum.

How can I do this?

4
  • Can you show example of input and expected output? If you need help look at how to provide minimal reproducible example.
    – zipa
    Jun 26 '19 at 11:43
  • It is a complicated dataset and I did not eleborate on that because it would possible be distracting. I also think it is not relevant for the question (perhaps I'm wrong). I would just like to know how to use a string value as part of a variable name.I can edit the question to make it more general.
    – Robvh
    Jun 26 '19 at 11:47
  • I edited the question, is it more clear now?
    – Robvh
    Jun 26 '19 at 11:56
  • 1
    @Robvh my answer below explains how it can be done explicitly, but should be avoided.
    – WiseDev
    Jun 26 '19 at 11:57
1

Right way: The right (Pythonic) way is to use dictionaries.

columns = {}
columns[some_string] = some_value

Unadvised dirty way, but answers your question: Storing a string as a variable name in your global namespace can be done simply by (example):

some_value = 100
some_string = 'var_name'
globals()[some_string] = some_value

The output is then

>>> var_name
100

On the other hand, if you want to add a variablename locally, you can use locals() instead of globals().

I trust you can take over from here!

1
  • 1
    I edited my answer to make it more compliant to general expectations.
    – WiseDev
    Jun 26 '19 at 11:55
1

You do not want to do that. Of course dirty tricks can allow it, but the Pythonic way is to use a dictionary:

largest = {}
x = 2
length = len(grouped_class.columns)
while x < length:
    x = x + 1
    largest[grouped_class.columns[x]] = x + 5
1

Looks like you are using a pandas dataFrame. You can use:

dict = {}
my_dict[grouped_class.columns[x]+'_largest'] = x+5
1

You shouldn't create variables on-the-fly as it could lead to many issues, instead, use dictionary:

largest = {}
x = 2
length = len(grouped_class.columns)
while x < length:
    x = x + 1
    column = grouped_class.columns[x]
    largest[column + '_largest'] = x + 5
    ...
3
  • Thanks, this basiscally does what I want, but I'm stumbeling upon a new problem. In my real code I've now written: largest={} x=2 length=len(grouped_class.columns)-1 while x<length: x=x+1 largest[grouped_class.columns[x]+"_largest"]=grouped_class.nlargest(5,[grouped_class.columns[x]]). So for each grouped class column I want the rows with 5 largest values. However, it now makes a dictionary with the correct keys COLNAME_largest but the values are wrong. It returns 5 values for every column and not just the selected one. Only the values of the selected one are sorted.
    – Robvh
    Jun 26 '19 at 12:14
  • for each key (= column name) I want only like the sorted values of that column name.
    – Robvh
    Jun 26 '19 at 12:16
  • 1
    @Robvh I've added part with column variable so you can use grouped_class[column].nlargest(5) or even add .tolist() at the end of it.
    – zipa
    Jun 26 '19 at 12:51

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