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Can anyone tell me the equivalent to the following code in python 3?

file_list = range(1, 20)

for x in file_list:
    exec "f_%s = open(file_path + '/%s.txt', 'w')" % (x, x)

I need to open 19 files. All having variable names associated with them.

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closed as not a real question by TerryA, squiguy, Andy Hayden, hjpotter92, Stony Jun 10 '13 at 7:13

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

1  
using exec is always a bad idea, and there's always another better way to do it! –  zmo Jun 9 '13 at 23:59

4 Answers 4

up vote 2 down vote accepted

Might I recommend a better code that doesn't require exec?

import os
file_list = range(1, 20)

f = {}
for x in file_list:
    f[x] = open(os.path.join(file_path, '{0}.txt'.format(x)), 'w')
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I recommend you to use a dictionary instead of creating different names of variables using exec:

f = {x:open('{}/{}.txt'.format(file_path, x), 'w') for x in range(1, 20)}
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exec is now a function in Python 3. And you should use .format()

exec("f_{0} = open(file_path + '/{0}.txt', 'w')".format(x))

Besides, there is no reason to use this. As others have pointed out, a simple dictionary should work:

d = {}
for i in range(1,20):
    d['f_'+str(i)] = open(file_path + '/{}.txt'.format(i), 'w')
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That's a bad way to open a list of files. Use a list:

import os
file_path = '.'
files = [open(os.path.join(file_path,'{}.txt'.format(i)),'w') for i in range(1,20)]
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