Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In some languages you can pass a parameter by reference or value by using a special reserved word like ref or val. When you pass a parameter to a Python function it never alters the value of the parameter on leaving the function.The only way to do this is by using the global reserved word (or as i understand it currently).

Example 1:

k = 2

def foo (n):
     n = n * n     #clarity regarding comment below
     square = n
     return square

j = foo(k)
print j
print k

would show

>>4
>>2

showing k to be unchanges

In this example the variable n is never changed

Example 2:

n = 0
def foo():
    global n
    n = n * n
    return n

In this example the variable n is changed

Is there any way in Python to call a function and tell Python that the parameter is either a value or reference parameter instead of using global?

Secondly , in the A level Cambridge exams they now say a function returns a single value whereas a procedure returns more than one value. I was taught a function has a return statement and procedure does not, during the 80s. Why is this now incorrect?

share|improve this question
2  
The best resource I've found for understanding python's calling model is this article on effbot: effbot.org/zone/call-by-object.htm –  Wilduck Nov 8 '12 at 23:04
    
you should read about Python variables, mutable and inmutable objects. Also in your first example why would n be changed, you are using a new variable square to store the result of your calculation. –  F.C. Nov 8 '12 at 23:07
2  
Please don't post two unrelated questions in one. The definition of function vs. procedure is a matter of definition, and it seems your definition is biased toward Pascal. There's no such thing as a procedure in Python jargon. –  larsmans Nov 8 '12 at 23:13
    
That as maybe but it is an A level Cambridge question "what is the difference between a procedure and function in any language? –  pythonMan Nov 8 '12 at 23:37
    
Also, have a look at this previous StackOverflow answer. stackoverflow.com/a/10262945/173292 It explains the call by object reference model fairly intuitively. –  Wilduck Nov 8 '12 at 23:41

6 Answers 6

You can not pass a simple primitive by reference in Python, but you can do things like:

def foo(y):
  y[0] = y[0]**2

x = [5]
foo(x)
print x[0]

That is a weird way to go about it, however. Note that in Python, you can also return more than one value, making some of the use cases for pass by reference less important:

def foo(x, y):
   return x**2, y**2

a = 1
b = 2
a, b = foo(a, b)

When you return values like that, they are being returned as a Tuple which is in turn unpacked.

edit: Another way to think about this is that, while you can't explicitly pass variables by reference in Python, you can modify the properties of objects that were passed in. In my example (and others) you can modify members of the list that was passed in. You would not, however, be able to reassign the passed in variable entirely. For instance, see the following two pieces of code look like they might do something similar, but end up with different results:

def clear_a(x):
  x = []

def clear_b(x):
  while x: x.pop()

z = [1,2,3]
clear_a(z) # z will not be changed
clear_b(z) # z will be emptied
share|improve this answer

OK, I'll take a stab at this. Python passes by object reference, which is different from what you'd normally think of as "by reference" or "by value". Take this example:

def foo(x):
    print x

bar = 'some value'
foo(bar)

So you're creating a string object with value 'some value' and "binding" it to a variable named bar. In C, that would be similar to bar being a pointer to 'some value'.

When you call foo(bar), you're not passing in bar itself. You're passing in bar's value: a pointer to 'some value'. At that point, there are two "pointers" to the same string object.

Now compare that to:

def foo(x):
    x = 'another value'
    print x

bar = 'some value'
foo(bar)

Here's where the difference lies. In the line:

x = 'another value'

you're not actually altering the contents of x. In fact, that's not even possible. Instead, you're creating a new string object with value 'another value'. That assignment operator? It isn't saying "overwrite the thing x is pointing at with the new value". It's saying "update x to point at the new object instead". After that line, there are two string objects: 'some value' (with bar pointing at it) and 'another value' (with x pointing at it).

This isn't clumsy. When you understand how it works, it's a beautifully elegant, efficient system.

share|improve this answer

So this is a little bit of a subtle point, because while Python only passes variables by value, every variable in Python is a reference. If you want to be able to change your values with a function call, what you need is a mutable object. For example:

l = [0]

def set_3(x):
    x[0] = 3

set_3(l)
print(l[0])

In the above code, the function modifies the contents of a List object (which is mutable), and so the output is 3 instead of 0.

I write this answer only to illustrate what 'by value' means in Python. The above code is bad style, and if you really want to mutate your values you should write a class and call methods within that class, as MPX suggests.

share|improve this answer
    
this answers half the question so how would i write the same set_3(x) function so that it does not change the value of l but returns a new list that has been changed? –  pythonMan Nov 8 '12 at 23:31
    
Just make a new list and modify it: y = [a for a in x]; y[0] = 3; return y –  Isaac Nov 8 '12 at 23:35
    
the whole thing involves lists and copying lists which goes in some ways to answer, but how can i do it with out having to convert an int to a list or is this the best we have? –  pythonMan Nov 8 '12 at 23:47
    
You can't modify a primitive argument like an int. You have to put it in some sort of container. My example put it in a list. You could also put it in a class or a dictionary. Really though, you should just reassign it outside a function with something like x = foo(x). –  Isaac Nov 8 '12 at 23:51

Hope the following description sums it up well:

There are two things to consider here - variables and objects.

1.) If you are passing a variable, then it's pass by value, which means the changes made to the variable within the function are local to that function and hence won't be reflected globally. This is more of a 'C' like behavior.

Example:

def changeval( myvar ):
   myvar = 20; 
   print "values inside the function: ", myvar
   return

myvar = 10;
changeval( myvar );
print "values outside the function: ", myvar

O/P:
values inside the function: 20
values outside the function: 10

2a.) If you are passing the variables packed inside a mutable object, like a list, then the changes made to the object are reflected globally as long as the object is not re-assigned.

Example:

def changelist( mylist ):
   mylist2=['a'];
   mylist.append(mylist2);
   print "values inside the function: ", mylist
   return

mylist = [1,2,3];
changelist( mylist );
print "values outside the function: ", mylist

O/P:
values inside the function: [1, 2, 3, ['a']]
values outside the function: [1, 2, 3, ['a']]

2b.) Now consider the case where the object is re-assigned. In this case, the object refers to a new memory location which is local to the function in which this happens and hence not reflected globally.

Example:

def changelist( mylist ):
   mylist=['a'];
   print "values inside the function: ", mylist
   return

mylist = [1,2,3];
changelist( mylist );
print "values outside the function: ", mylist

O/P:
values inside the function: ['a']
values outside the function: [1, 2, 3]

share|improve this answer

The answer given is

def set_4(x):
   y = []
   for i in x:
       y.append(i)
   y[0] = 4
   return y

and

l = [0]

def set_3(x):
     x[0] = 3

set_3(l)
print(l[0])

which is the best answer so far as it does what it says in the question. However,it does seem a very clumsy way compared to VB or Pascal.Is it the best method we have?

Not only is it clumsy, it involves mutating the original parameter in some way manually eg by changing the original parameter to a list: or copying it to another list rather than just saying: "use this parameter as a value " or "use this one as a reference". Could the simple answer be there is no reserved word for this but these are great work arounds?

share|improve this answer

In Python the passing by reference or by value has to do with what are the actual objects you are passing.So,if you are passing a list for example,then you actually make this pass by reference,since the list is a mutable object.Thus,you are passing a pointer to the function and you can modify the object (list) in the function body.

When you are passing a string,this passing is done by value,so a new string object is being created and when the function terminates it is destroyed. So it all has to do with mutable and immutable objects.

share|improve this answer
    
That's completely incorrect. Python always passes by "object reference" (which is different from variable reference). –  Kirk Strauser Nov 9 '12 at 0:20
    
i meant the analogy mutable objects--pass by reference and immutable objects--pass by value.It is perfect valid what i am saying.You probably did not catch what i was saying –  jkalivas Nov 9 '12 at 20:56
    
I caught it and it's wrong. It has nothing to do with whether an object is mutable or immutable; it's always done the same way. –  Kirk Strauser Nov 9 '12 at 21:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.