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How do I accomplish variable variables in Python?

Here is an elaborative manual entry, for instance: Variable variables

I hear this is a bad idea in general though, and it is a security hole in PHP. Is that true?

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it's the maintainance and debugging aspects that cause the horror. Imagine trying to find out where variable 'foo' changed when there's no place in your code where you actually change 'foo'. Imagine further that it's someone else's code that you have to maintain... OK, you can go to your happy place now. – glenn jackman Sep 3 '09 at 14:28
The need does still arise, though. I used to think I needed to do this sort of thing all the time before I met real programming languages. Great suggestions here for transitioning to a saner mindset. – Jenn D. Sep 3 '09 at 17:42
You can do this in the SAS macro languge. Sometimes you have to, because the only data type in SAS macros is the string :-/ – John Fouhy Sep 3 '09 at 22:07
This is an excellent question to ask, if for no other reason than to help people learn how to avoid it. :) – SunSparc Jul 2 '13 at 21:32
A further pitfall that hasn't been mentioned so far is if such a dynamically-created variable has the same name as a variable used in your logic. You essentially open up your software as a hostage to the input it is given. – holdenweb Dec 19 '14 at 10:50

8 Answers 8

up vote 54 down vote accepted

Use dictionaries to accomplish this. Dictionaries are stores of keys and values.

>>> dct = {'x': 1, 'y': 2, 'z': 3}
>>> dct
{'y': 2, 'x': 1, 'z': 3}
>>> dct["y"]

You can use variable key names to achieve the effect of variable variables without the security risk.

>>> x = "spam"
>>> z = {x: "eggs"}
>>> z["spam"]

Make sense?

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I'm afraid I don't understand too well. Can you explain? – Pyornide Sep 3 '09 at 12:42
Edited my answer to explain dictionaries. – chuckharmston Sep 3 '09 at 12:49
Yeah, I understand now. Thanks. – Pyornide Sep 3 '09 at 12:54

It can be easily accomplished with the built-in getattr:

getattr(obj, 'foobar')
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That works great with a namedtuple – kap Jun 26 at 8:29

It's not a good idea. If you are accessing a global variable you can use globals()

>>> a = 10
>>> globals()['a']

If you want to access a variable in the local scope you can use locals()

A better solution is to use getattr or store your variables in a dictionary and then access them by name.

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+1 answering the question as stated (even though it's horrible) – bobince Sep 3 '09 at 16:22
Don't forget to mention that you can't modify variables through locals() ( – Glenn Maynard Sep 3 '09 at 18:43

Whenever you want to use variable variables, it's probably better to use a dictionary. So instead of writing

$foo = "bar"
$$foo = "baz"

you write

mydict = {}
foo = "bar"
mydict[foo] = "baz"

This way you won't accidentally overwrite previously existing variables (which is the security aspect) and you can have different "namespaces".

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+1, a good way to explain it. – Nadia Alramli Sep 3 '09 at 12:52
Ah. That makes sense. – Pyornide Sep 3 '09 at 12:53

You could also use exec and eval:

newvar = 'x'
newvalue = 12
exec('%s=%d') % (newvar, newvalue)
#this will print 12
print x
#this will print 12 as well
print eval(newvar)
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This is by far the worst way to do it. – Nadia Alramli Sep 3 '09 at 13:47
This is definitely true, but it depends by the context you are. It's a quick and dirty solution. I think getattr the best one. – Mauro Bianchi Sep 3 '09 at 13:51
Ugh, never use eval. – chuckharmston Sep 3 '09 at 15:49
Ugly though it might be, this response is the only one that actually answers the question. "Don't do X." is not an answer to "How do I do X?". – isomorphismes Nov 26 '11 at 5:09
Sometimes the right answer to "How do I do X?" is, "Don't do X." – Ned Batchelder Aug 5 '12 at 14:58

I had the same issue. Here's how I did it:

var = 'myvar'

locals() returns the variables defined locally in your function. This is great for testing if a value is passed to a function without having to check each one individually:

def myFunc(test1, test2, test3):
    for field in ['test1', 'test2', 'test3']:
        if not locals().get(field):
            print 'oh no!  You forgot to give a value for ' + field
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This is more proof of concept than usable and/or good practice (don't use list comprehensions for this), but works:

values = {
    'a': 1,
    'b': 2,
    'c': 3,
    'd': 4

whitelist = ['a', 'd']

[locals().update({k: v}) for k, v in (values).items() if k in whitelist]

print a # 1
print b # undefined
print c # undefined
print d # 4
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ignoring the haters for a moment - I needed to do a variable object name, because I needed to wrap ___import____ to import a list of modules.

found the answer buried in

and it works out to:

    module = 'pycurl'
    module_obj = __import__(module)
    globals()[module] = module_obj
    # and now this works
    curl = pycurl.Curl()

works with 2.6 anyway.

so the trick is to abuse globals(). :)


while reviewing this before posting it I realized Nadia provided the answer, but the example was - for me - entirely unclear.

to extend that example:

 a = 'b'
 c = 'd'
 #now define a global named 'b' containing 'd'
 globals()[a] = c
 print b

 >>> a = 'b'
 >>> c = 'd'
 >>> #now define a global named 'b' containing 'd'
 ... globals()[a] = c
 >>> print b

obviously this should work the same with locals()

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