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What is the difference between globals(), locals(), and vars()? What do they return? Are updates to the results useful?

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1 Answer

up vote 33 down vote accepted

Each of these return a dictionary:

  • globals() always returns the dictionary of the module namespace
  • locals() always returns a dictionary of the current namespace
  • vars() returns either a dictionary of the current namespace (if called with no argument) or the dictionary of the argument.

locals and vars could use some more explanation. if locals() is called inside a function it constructs a dictionary of the function namespace as of that moment and returns it -- any further name assignments are not reflected in the returned dictionary, and any assignments to the dictionary are not reflected in the actual local namespace:

def test():
    a = 1
    b = 2
    huh = locals()
    c = 3
    print(huh)
    huh['d'] = 4
    print(d)

gives us:

{'a': 1, 'b': 2}
Traceback (most recent call last):
  File "test.py", line 30, in <module>
    test()
  File "test.py", line 26, in test
    print(d)
NameError: global name 'd' is not defined

Two notes:

  1. This behavior is CPython specific -- other Pythons may allow the updates to make it back to the local namespace
  2. In CPython 2.x it is possible to make this work by putting an exec "pass" line in the function.

If locals() is called outside a function it returns the actual dictionary that is the current namespace. Further changes to the namespace are reflected in the dictionary, and changes to the dictionary are reflected in the namespace:

class Test(object):
    a = 'one'
    b = 'two'
    huh = locals()
    c = 'three'
    huh['d'] = 'four'
    print huh

gives us:

{
  'a': 'one',
  'b': 'two',
  'c': 'three',
  'd': 'four',
  'huh': {...},
  '__module__': '__main__',
}

So far, everything I've said about locals() is also true for vars()... here's the difference: vars() accepts a single object as its argument, and if you give it an object it returns the __dict__ of that object. If that object was not a function the __dict__ returned is that object's namespace:

class Test(object):
    a = 'one'
    b = 'two'
    def frobber(self):
        print self.c
t = Test()
huh = vars(t)
huh['c'] = 'three'
t.frobber()

which gives us:

three

If the object was a function, you still get its __dict__, but unless you're doing fun and interesting stuff its probably not very useful:

def test():
    a = 1
    b = 2
    print test.c
huh = vars(test)       # these two lines are the same as 'test.c = 3'
huh['c'] = 3
test()

which gives us:

3
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3  
The part "and any assignments to the dictionary are not reflected in the actual local namespace" might be worded a bit to definite. –  Sven Marnach Nov 1 '11 at 17:18
1  
@SvenMarnach: Thanks, learned something new! Answer updated. –  Ethan Furman Nov 1 '11 at 17:38
    
Oddly enough, you can access variables added to to a vars() or locals() dictionary called within a function if you use eval(). EG: def test(): huh = locals(); huh['d'] = 4; print eval('d') prints 4 when test() is executed! –  Mark Mikofski Aug 7 '13 at 17:37
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