1

In R there is a function called assign which assigns a value to a name in the environment.

EG:

assign("Hello", 2)
> Hello
[1] 2

In python I can't seem to do the same. I initially tried:

import numpy as np
import pandas as pd
import os

for file in os.listdir('C:\\Users\\Olivia\\Documents'):
    if file.endswith(".csv"):
        os.path.splitext(file)[0] = pd.read_csv('C:\\Users\\Olivia\\Documents\\' + file)

But I can see this is trying to make a string equal to a file which doesn't work.

I managed to get all the files in a list by doing:

import glob

dl = glob.glob(r'C:\Users\Olivia\Documents\*.csv')
nl = []
for i in dl:
    pl = i.split(os.sep)
    name = pl[5][:-4]
    nl.append(name)

ddict = {}

 for k, v in zip(nl,dl):
    ddict[k] = ddict.get(k,"") + v

 dfl = []

 for k, v in ddict.items():
    dfl.append(read_csv(v))

But now how do I get each data frame out of the list and named as the file without the extension. There must be a way to assign each data frame in the list as a name from the file list

3

Honestly, you were on the right track with your first method. Unfortunately, python doesn't give you the option to create a "variable number of variables" dynamically, as you have tried and realised already. However! You can create a dictionary and assign dataframes to string keys as you like. Here's how.

root = 'C:\\Users\\Olivia\\Documents'

ddict = {}
for file in os.listdir(root):
    if file.endswith(".csv"):
        name = os.path.splitext(file)[0]
        ddict[name] = pd.read_csv(os.path.join(root, file))

Another way of building this dictionary is using a dict comprehension:

ddict = {os.path.splitext(file)[0] : pd.read_csv(os.path.join(root, file)) 
                for file in os.listdir(root) if file.endswith('csv')
}

Now, referring to a single dataframe is as easy as

ddict['your_file_name']

Another thing to note, the safest way to join files is using os.path.join. It's just safer than a plain +.


References

  • Brilliant, and then with the final dictionary is there a way to take everything out as individual objects? I know this would be less efficient and unnecessary, but im curious if its easy to do. – Olivia Oct 26 '17 at 9:22
  • @Olivia Really it's not recommended, but it is possible. You use: globals().update(ddict) but this leads to code smell, it's better to just leave it inside a dictionary. – cs95 Oct 26 '17 at 9:23
  • 1
    @Olivia os.path.join will automatically take care of adding the separator if it does not exist. If you really want to concat to strings (as opposed to joining file sub paths), then use +. Otherwise, to join subpaths, it's considered good practice to use os.path.join, and it is portable too. – cs95 Oct 26 '17 at 9:37

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