Note: exec was just a Simple statement in Python 2.x, whereas it is a function in Python 3.x.
Python 2.7
Let us check the changes made by executing a.
class Test:
def __init__(self):
l, g = locals().copy(), globals().copy()
exec a # NOT a function call but a statement
print locals() == l, globals() == g
x()
t = Test()
Output
False True
42
It means that, it has changed something in the locals dictionary. If you print locals().keys() before and after the exec, you will see x, after exec. As per the documentation of exex,
In all cases, if the optional parts are omitted, the code is executed in the current scope.
So, it does exactly what the documentation says.
Python 3.x:
When we execute the same in Python 3.x, we get similar result, except we get that error.
class Test:
def __init__(self):
l, g = locals().copy(), globals().copy()
exec(a) # Function call, NOT a statement
print(locals() == l, globals() == g)
x()
Output
False True
NameError: name 'x' is not defined
Even the documentation of exec function says,
In all cases, if the optional parts are omitted, the code is executed in the current scope.
But it also includes a note at the bottom,
Note: The default locals act as described for function
locals()below: modifications to the default locals dictionary should not be attempted. Pass an explicit locals dictionary if you need to see effects of the code on locals after functionexec()returns.
So, we curiously check the locals() documentation and find
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.
So, interpreter doesn’t honor the changes made to the locals() object. That is why it is not recognizing x as defined in the local scope.
But when we do
def __init__(self):
exec(a, globals())
x()
it works, because we add it to the globals dictionary. Python tries to find x in local scope first and then in class scope and then in global scope and it finds it there. So it executes it without any problem.