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May it's very simple question, but I'm stuck here. I have variable val as val="mandy", now i want to create a list whose name is the content of val. i.e. "mandy". so how to define mandy=[] in python. It's like "$$" equivalent of PHP.

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5 Answers 5

up vote 2 down vote accepted

You can do something like this in Python, but it's very un-Pythonic to do so (whereas it's a common PHP idiom as I gather). Don't use the language in a way it's not intended to be used.

What you're trying to do is much better done by using a dictionary, a maximally optimized datatype in Python:

>>> val = "mandy"
>>> mydict = {}
>>> mydict[val] = []
>>> mydict[val].append("Hello")
>>> mydict[val].append("Mandy")
>>> mydict
{'mandy': ['Hello', 'Mandy']}
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There is no pythonic way to create variables with variable names. Doing so is a bad practice. Instead, use a dictionary:

val = "mandy"
mynames = {}
mynames[val] = []

You can now access mynames["mandy"] to get or modify the list.

Note that you can achieve a php-like behavior in some Python implementations by modifying locals, like

>>> locals()['mandy'] = []
>>> mandy
[]

Doing so is strongly discouraged and will not work with some Python implementations though.

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No, you shouldn't modify dictionary returned by locals. –  Cat Plus Plus Aug 3 '11 at 10:45
    
e.g. Try def foo(): locals()['x']=1; return x in Python 3.x –  katrielalex Aug 3 '11 at 10:47
    
@Cat Plus Plus That's precisely what I tried to express with the last sentence. Highlighted. –  phihag Aug 3 '11 at 10:48

You can't (without hacks) and shouldn't.

Use a dictionary values = {"mandy": []} instead.

Why would you want a local variable whose name you don't know?! If you know its name at coding-time, use it in a garden-variety assignment. If not, it shouldn't be a local variable.

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Use a dict. You can create names with getattr/setattr or playing with globals(), but you more than likely don't need it.

val = 'foo'
d   = { val: [] }
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Try this:

>>> val = 'mandy'
>>> vars()[val] = []
>>> mandy
[]

See more details about vars() builtin

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3  
No, don't do this. "Note: The returned dictionary should not be modified: the effects on the corresponding symbol table are undefined. [3]" –  Cat Plus Plus Aug 3 '11 at 10:44
    
@Cat Plus Plus First of all take a look at the last sentence where is a link to python documentation and where you can see the warning about using of this dictionary. Secondly this solution works anyway, despite of the fact that it is not recommended to do so. And in the third this is only one solution that does exactly what the OP wants. –  Vader Aug 3 '11 at 10:55
    
It sometimes works, sometimes doesn't. It mostly depends on the scope — it's more likely to work in the global one than the local one. –  Cat Plus Plus Aug 3 '11 at 10:58
1  
CPython 2, CPython 3. –  Cat Plus Plus Aug 3 '11 at 11:00
    
@Vader: So if someone asks you how to shoot yourself in the foot, you show him how to pull the trigger? –  Tim Pietzcker Aug 3 '11 at 11:06

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