Given following code:
def A() :
b = 1
def B() :
# I can access 'b' from here.
print( b )
# But can i modify 'b' here? 'global' and assignment will not work.
B()
A()
For the code in B() function variable b is in outer scope, but not in global scope. Is it possible to modify b variable from within B() function? Surely I can read it from here and print(), but how to modify it?
Python 3.x has the nonlocal keyword. I think this does what you want, but I'm not sure if you are running python 2 or 3.
The nonlocal statement causes the listed identifiers to refer to previously bound variables in the nearest enclosing scope. This is important because the default behavior for binding is to search the local namespace first. The statement allows encapsulated code to rebind variables outside of the local scope besides the global (module) scope.
For python 2, I usually just use a mutable object (like a list, or dict), and mutate the value instead of reassign.
example:
def foo():
a = []
def bar():
a.append(1)
bar()
bar()
print a
foo()
Outputs:
[1, 1]
You can use an empty class to hold a temporary scope. It's like the mutable but a bit prettier.
def outer_fn():
class FnScope:
b = 5
c = 6
def inner_fn():
FnScope.b += 1
FnScope.c += FnScope.b
inner_fn()
inner_fn()
inner_fn()
This yields the following interactive output:
>>> outer_fn()
8 27
>>> fs = FnScope()
NameError: name 'FnScope' is not defined
I'm a little new to Python, but I've read a bit about this. I believe the best you're going to get is similar to the Java work-around, which is to wrap your outer variable in a list.
def A():
b = [1]
def B():
b[0] = 2
B()
print(b[0])
# The output is '2'
Edit: I guess this was probably true before Python 3. Looks like nonlocal is your answer.
I created a python library for solving this specific problem. It is released under the unlisence so use it however you wish. You can install it with pip install seapie or check out the home page here https://github.com/hirsimaki-markus/SEAPIE
user@pc:home$ pip install seapie
from seapie import Seapie as seapie
def A():
b = 1
def B():
seapie(1, "b=2")
print(b)
B()
A()
outputs
2
the arguments have following meaning:
B(), 1 means parent A() and 2 would mean grandparent <module> aka globalThis is more complicated. Seapie works by editing the frames in call stack using CPython api. CPython is the de facto standard so most people don't have to worry about it.
The magic words you are probably most likely interesed in if you are reading this are the following:
frame = sys._getframe(1) # 1 stands for previous frame
parent_locals = frame.f_locals # true dictionary of parent locals
parent_globals = frame.f_globals # true dictionary of parent globals
exec(codeblock, parent_globals, parent_locals)
ctypes.pythonapi.PyFrame_LocalsToFast(ctypes.py_object(frame),ctypes.c_int(1))
# the magic value 1 stands for ability to introduce new variables. 0 for update-only
The latter will force updates to pass into local scope. local scopes are however optimized differently than global scope so intoducing new objects has some problems when you try to call them directly if they are not initialized in any way. I will copy few ways to circumvent these problems from the github page
If you are feeling that using exec() is not something you want to go with you can
emulate the behaviour by updating the the true local dictionary (not the one returned by locals()). I will copy an example from https://faster-cpython.readthedocs.io/mutable.html
import sys
import ctypes
def hack():
# Get the frame object of the caller
frame = sys._getframe(1)
frame.f_locals['x'] = "hack!"
# Force an update of locals array from locals dict
ctypes.pythonapi.PyFrame_LocalsToFast(ctypes.py_object(frame),
ctypes.c_int(0))
def func():
x = 1
hack()
print(x)
func()
Output:
hack!
I don't think you should want to do this. Functions that can alter things in their enclosing context are dangerous, as that context may be written without the knowledge of the function.
You could make it explicit, either by making B a public method and C a private method in a class (the best way probably); or by using a mutable type such as a list and passing it explicitly to C:
def A():
x = [0]
def B(var):
var[0] = 1
B(x)
print x
A()
You can, but you'll have to use the global statment (not a really good solution as always when using global variables, but it works):
def A():
global b
b = 1
def B():
global b
print( b )
b = 2
B()
A()
I don't know if there is an attribute of a function that gives the __dict__ of the outer space of the function when this outer space isn't the global space == the module, which is the case when the function is a nested function, in Python 3.
But in Python 2, as far as I know, there isn't such an attribute.
So the only possibilities to do what you want is:
1) using a mutable object, as said by others
2)
def A() :
b = 1
print 'b before B() ==', b
def B() :
b = 10
print 'b ==', b
return b
b = B()
print 'b after B() ==', b
A()
result
b before B() == 1
b == 10
b after B() == 10
.
The solution of Cédric Julien has a drawback:
def A() :
global b # N1
b = 1
print ' b in function B before executing C() :', b
def B() :
global b # N2
print ' b in function B before assigning b = 2 :', b
b = 2
print ' b in function B after assigning b = 2 :', b
B()
print ' b in function A , after execution of B()', b
b = 450
print 'global b , before execution of A() :', b
A()
print 'global b , after execution of A() :', b
result
global b , before execution of A() : 450
b in function B before executing B() : 1
b in function B before assigning b = 2 : 1
b in function B after assigning b = 2 : 2
b in function A , after execution of B() 2
global b , after execution of A() : 2
The global b after execution of A() has been modified and it may be not whished so
That's the case only if there is an object with identifier b in the global namespace
bis mutable. An assignment tobwill mask the outer scope. - JimBnonlocalhasn't been backported to 2.x. It's an intrinsic part of closure support. - Glenn Maynard