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Is it possible to create a local variables with Python code, given only the variable's name (a string), so that subsequent calls to "'xxx' in locals()" will return True?

Here's a visual :

>>> 'iWantAVariableWithThisName' in locals()
False
>>> junkVar = 'iWantAVariableWithThisName'
>>> (...some magical code...)
>>> 'iWantAVariableWithThisName' in locals()
True

For what purpose I require this trickery is another topic entirely...

Thanks for the help.

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marked as duplicate by Martijn Pieters May 26 at 11:56

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It is warned against but it can be done in python 2.x using the exec function - but not in 3.0: stackoverflow.com/questions/1450275/modifying-locals-in-python –  philofinfinitejest Jan 10 '12 at 6:49
3  
"For what purpose I require this trickery is another topic entirely..." - and is infinitely more important. Ask the question that pertains to what you really want to do, not the question that pertains to how you think you want to do it. –  Karl Knechtel Jan 10 '12 at 11:16
    
Karl: MitchellSalad notes in a comment below that he's using a dictionary instead- a good choice. –  David Robinson Jan 10 '12 at 17:10
    
You rarely want to do this; usually a dictionary holding your 'variables' as keys is much more practical. –  Martijn Pieters Jan 28 at 21:29

3 Answers 3

up vote 7 down vote accepted

If you really want to do this, you could use exec:

print 'iWantAVariableWithThisName' in locals()
junkVar = 'iWantAVariableWithThisName'
exec(junkVar + " = 1")
print 'iWantAVariableWithThisName' in locals()

Of course, anyone will tell you how dangerous and hackish using exec is, but then so will be any implementation of this "trickery."

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1  
Heh. We even used very similar sentences -- even down to the use of italics! -- to indicate that the OP probably shouldn't be doing this. I guess there really should be one obvious way to (explain why you shouldn't) do it.. –  DSM Jan 10 '12 at 6:46
    
Yes, but yours sets junkVar to None, and mine sets it to 1. That makes all the difference. :) +1 to yours –  David Robinson Jan 10 '12 at 6:50
    
This would only work in Python 2, as it disables the locals optimisation. Your function will run slower when you do this. It won't work at all in Python 3. –  Martijn Pieters May 26 at 11:55

You can play games and update locals() manually, which will sometimes work, but you shouldn't. It's specifically warned against in the docs. If I had to do this, I'd probably use exec:

>>> 'iWantAVariableWithThisName' in locals()
False
>>> junkVar = 'iWantAVariableWithThisName'
>>> exec(junkVar + '= None')
>>> 'iWantAVariableWithThisName' in locals()
True
>>> print iWantAVariableWithThisName
None

But ninety-three times out of one hundred you really want to use a dictionary instead.

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Thanks for the response. For this specific instance, the exec call is looking a lot more tasty than managing a dictionary, because of the huge number of variable names my code produces. Can you perhaps elaborate a little more on what you mean by exec "sometimes" working? EDIT: A dictionary will work fine. No need to elaborate. :) –  MitchellSalad Jan 10 '12 at 6:52
    
What "sometimes" works is updating the locals dictionary, not using exec. For example: locals()["myvar"] = 1. The docs say: "Note: The contents of this dictionary should not be modified; changes may not affect the values of local and free variables used by the interpreter." –  David Robinson Jan 10 '12 at 6:56
1  
@MitchellSalad: no, I meant that updating locals() -- i.e. locals()['junkVar'] = 99 -- is slightly dangerous, and anti-recommended.. exec should work, security problems notwithstanding. I'm not sure I share your tastes, though: the more variables I had, the more likely I'd be to wrap them into a dictionary. –  DSM Jan 10 '12 at 6:57
2  
If there are a huge number of variable names, that is all the more reason to use a dictionary, so you're not cluttering up your namespace. What possible reason could you have to use locals? ETA: Aha- now I see you've come to the same conclusion. And I've seen that DSM continues to be my doppelganger. –  David Robinson Jan 10 '12 at 6:57
1  
Okay, I'm done. Clearly @DavidRobinson can channel my views perfectly on this subject. :^) –  DSM Jan 10 '12 at 6:58

No need to use exec, but locals()[string], or vars() or globals() also work.

test1="Inited"

if not "test1" in locals(): locals()["test1"] = "Changed"
if not "test1" in locals(): locals()["test2"] = "Changed"

print " test1= ",test1,"\n test2=",test2
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Try that in a function and it won't work. –  pyrospade Oct 25 '13 at 15:13

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