This is the code:
def test():
c = 0
exec('c = 4 + 5')
print('result', c)
The value of c is 0. What can I do to fix it, let the value of c changed in exec() function?
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1 Answer
In cpython, you can't do what you want inside a function. That's because a function's local namespace can't be easily edited by other code (editing the dictionary returned by locals() doesn't do it). If instead you call exec from the top level of your module, it will work as you want, but it is still probably a bad idea.
A better approach may be to use a namespace dictionary. You can pass it to exec and the change will appear there, rather than in the function's local namespace or the module's global namespace:
def test():
namespace = {'c': 0}
exec('c = 4 + 5', namespace)
print('result', namespace['c'])
answered Sep 7, 2018 at 7:45
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Thank You. And what mean with "If instead you call exec from the top level of your module", I can't understand it...can you show me a example?– xin chenSep 7, 2018 at 8:47
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@xinchen I mean that your code would work if the
execand other lines were not inside thetestfunction. That's because anexeccall with no namespace arguments is equivalent toexec(whatever, globals(), locals()). Inside a function, you can't usefully save values to the dictionary returned bylocals, so that doesn't do you much good. But at top level,locals()returns the same dictionary asglobals(), and you can modify that dictionary and see the results in the global namespace. Sep 7, 2018 at 18:33