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This may seem like a really stupid question but I am confused regarding the scope rules in Python. In the following example I send two variables (x,y) with values to a function which is supposed to change their values. When I print the results the variables had not changed.

def func1(x,y):
    x=200
    y=300

x=2
y=3

func1(x,y)

print x,y #prints 2,3

Now if this were C++ I would send them by reference (&) to that function and therefore be able to change their values. So what's the equivilant in Python? and more important, what actually happens when you send objects to function? does Python make new references to these objects?

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marked as duplicate by delnan, Ashwini Chaudhary, Martijn Pieters, iCodez, Steve Jessop Jan 16 '14 at 17:49

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Also, Python: How do I pass a variable by reference?. –  delnan Jan 16 '14 at 17:47
    
All Python names are references to objects. Function arguments are merely bound to the objects passed in. You don't get a memory location, you always dereference the name when using it in expressions. Assignment is rebinding, not altering the original memory location. Thus x = 200 is creating a new object (int(200)), and storing a reference to that object in x. –  Martijn Pieters Jan 16 '14 at 17:49
    
Inner scopes have implicit permission to access variables from outer scopes, but need explicit permission to modify variables from outer scopes. That's about as succinctly as I can put it. –  roippi Jan 16 '14 at 17:50
    
(CPython may choose to reuse existing int() objects here, but that's an implementation detail). –  Martijn Pieters Jan 16 '14 at 17:50
    
So, although the local names x and y inside func1 start being bound to the same int() objects as the global x and y names in the module scope, by assigning to them inside the function you only rebound the local names. The global names still refer to their original values. –  Martijn Pieters Jan 16 '14 at 17:52

1 Answer 1

up vote 4 down vote accepted

Think of them as being part of the function. When the function ends, all its variables die too.

x=2
y=3

def func(x,y):
    x=200
    y=300

func(x,y) #inside this function, x=200 and y=300
#but by this line the function is over and those new values are discarded
print(x,y) #so this is looking at the outer scope again

If you want a function to modify a value in exactly the way you have written it, you could use a global but this is VERY bad practice.

def func(x,y):
    global x #these tell the function to look at the outer scope 
    global y #and use those references to x and y, not the inner scope
    x=200
    y=300

func(x,y)
print(x,y) #prints 200 300

The problem with this is that it makes debugging a nightmare in the best case, and utterly incomprehensibly impossible in the worst case. Things like these are commonly known as "side effects" in functions -- setting a value you don't need set and doing so without explicitly returning it is kind of a Bad Thing. Generally the only functions you should write that modify items in-place are object methods (things like [].append() modify the list because it's silly to return a new list instead!)

The RIGHT way to do something like this would be to use a return value. Try something like

def func(x,y):
    x = x+200 #this can be written x += 200
    y = y+300 #as above: y += 300
    return (x,y) #returns a tuple (x,y)

x = 2
y = 3
func(x,y) # returns (202, 303)
print(x,y) #prints 2 3

Why didn't that work? Well because you never told the program to DO anything with that tuple (202, 303), just to calculate it. Let's assign it now

#func as defined above

x=2 ; y=3
x,y = func(x,y) #this unpacks the tuple (202,303) into two values and x and y
print(x,y) #prints 202 303
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how would you change x,y with the use of a function? –  Reboot_87 Jan 16 '14 at 17:51
    
Explicitly return x, y at the end of your function then call x, y = func(x, y) –  jonrsharpe Jan 16 '14 at 17:58
    
@Reboot_87: you can't; the objects you're passing in are immutable and it's therefore impossible to change them, and you can't re-bind the names in the outer scope just based on what's passed in. (You can use the global keyword to rebind the names x and y globally, but that would happen regardless of what objects were passed in; in that case func(a, b) would just modify x and y... –  Wooble Jan 16 '14 at 17:59
    
I understand now. Thanks –  Reboot_87 Jan 16 '14 at 18:03
    
@Reboot_87 I made a sizeable edit with different approaches. Try it all. DON'T use a global if you can POSSIBLY help it -- it's awful practice and makes debugging just shy of herculean. –  Adam Smith Jan 16 '14 at 18:04

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