Example code, try to ignore how it is seems unnecessarily overcomplicated- this is way dumbed down from the actual code, but mimics the flow exactly.

def setup():
   print("Setting up...")
   do_something()

def do_something():
   task = str(input("Enter a task to do: "))
   try:
      print("Doing {}...".format(task))
   except:
      print("Failed to do {}...".format(task))
   finally:
      return task

def choose_2(choice):
   print("You chose {}".format(choice))

def menu_1():
   choice = int(input("Choose 1 or 2: "))
   if choice == 1:
      setup()
      menu_2(task)

menu_1()

However, the program returns "UnboundLocalError: local variable 'task' referenced before assignment"

Why is do_something() not returning the variable task to the if statement within menu_1()? Once setup() (and subsequently do_something()) finishes running, shouldn't do_something()'s returned value remain inside the if statement, since it's not done yet?

  • 2
    it is, you simply discard it. A return doesn't do anything except return a value, not a variable from a function. there is no task variable defined in menu_1 – juanpa.arrivillaga Dec 6 at 18:17
  • @juanpa.arrivillaga So return returns the value of the 'task' variable, not the 'task' variable itself? – Willman Dec 6 at 18:19
  • 1
    Yes. Variables are local to functions, or can be in the global scope, or in some enclosing scope. You don't pass variables around, you pass values. Variables generally only exist for a given execution of a function. So functions that return something usually expect you to capture that value in the caller, so returned_value = some_func(), and it doesn't matter if some_func returned foo, because foo will not be defined where you called some_func, unless you do something like foo = some_func, but they are still two different variables – juanpa.arrivillaga Dec 6 at 18:20
  • You need to capture the value returned from your functions to do something with those values, or else they simply become unreachable, and will be garbage collected if no other reference exists. Every time you call a functino that returns a value, you need to capture the value in a variable in the caller. Just like you would with any built-in function, e.g. you do x = input(...) right? Why don't you just do input()? – juanpa.arrivillaga Dec 6 at 18:25
  • @juanpa.arrivillaga Since this is the real answer to my issue, you can put this in an Answer and I'll mark it, if you want. – Willman Dec 6 at 18:31

The flow is : menu_1() => menu_2(task)

task has not been defined in the scope of menu_1() so it has no way of being defined.

You may have intended to do this instead:

def setup():
   print("Setting up...")
   return do_something()
.....
# in menu_1():
menu_2(setup())

Notice that because setup now RETURNS something, it can have that return value used.

  • 1
    They call setup in menu_1, which calls do_something, which returns task. Of course, setup doesn't return anything, but the OP has a fundamental misunderstanding of what return does, and variable scope – juanpa.arrivillaga Dec 6 at 18:18
  • added some more context to that point – JacobIRR Dec 6 at 18:22
  • That won't fix it either. The problem is that they think that return will magically insert the variable into the callers scope. – juanpa.arrivillaga Dec 6 at 18:23
  • Yeah @juanpa.arrivillaga is right- I misunderstood what 'return' does. I think I just need to rethink my overall logic/flow... – Willman Dec 6 at 18:24
  • Do you think they just need to learn about how the global keyword works? – JacobIRR Dec 6 at 18:24

setup() and menu_1() function should be changed like this:

def setup():
    print("Setting up...")
    do_something()

def menu_1():
   choice = int(input("Choose 1 or 2: "))
   if choice == 1:
       task=setup()
       menu_2(task)

Explanation: menu_1() calls setup(), setup() calls do_something(). Now 'do_something()' will return the value of task but you are not returning it from 'setup()' function to menu_1() and then in menu_1() you have to store the returned value in a variable named 'task'.

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  • 'return task' will return the value of task which you will have to either store somewhere in the calling function(setup()) or return that value to the next function present in the stack i.e., 'menu_1()' – harshit Dec 6 at 18:44

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