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#it's python 3.2.3
class point:
    def __init__(self, x, y):
        self.x = x
        self.y = y

    def __eq__(self, point):
        return self.x == point.x and self.y == point.y

    def __str__(self):
        return 'point(%s, %s)' % (self.x, self.y)

def someFunc(point):
    if point.x > 14: point.x = 14
    elif point.x < 0: point.x = 0

    if point.y > 14: point.y = 14
    elif point.y < 0: point.y = 0

    return point

somePoint = point(-1, -1)
print('ONE: %s' % somePoint)
if somePoint == someFunc(somePoint):
    print('TWO: %s' % somePoint)

I see that there is no somePoint variable assignment after first print() but variable somePoint magically changes after if statement

Output of this program should be

ONE: point(-1, -1)

But it is

ONE: point(-1, -1)
TWO: point(0, 0)

Could anybody explain me why somePoint changes after

if somePoint == someFunc(somePoint):

condition?

p.s. sorry if my english is bad

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1  
You are changing the mutable variable inside somePoint. What would you expect? –  JBernardo May 25 '12 at 16:22
1  
Rather than modifying somePoint inside someFunc, you should just create a new point object and return that for comparison. –  Joel Cornett May 25 '12 at 16:25
    
@JBernardo Mutability (here) is related to objects, not variables.. the variable just happens to name the (same) object that is being mutated. –  user166390 May 25 '12 at 16:32
    
@pst One thing is the name of the variable (point) the other is the content (the point instance or object) which is the variable per se. –  JBernardo May 25 '12 at 16:38

2 Answers 2

up vote 4 down vote accepted

You change the value of point inside function someFunc when you call it in your if-statement, so I would expect the value to be (0,0) at the end. The reason is that you are passing a reference (or "Pass By Object Sharing") to the function and any changes to it are reflected later on. This is unlike the pass-by-value method were a local copy is automatically produced.

To avoid changing the original point being passed in you could create a local variable inside someFunc.

Something like this:

def someFunc(a_point): # note new parameter name

    loc_point = point(a_point.x, a_point.y)  # new local point

    if loc_point.x > 14: loc_point.x = 14
    elif loc_point.x < 0: loc_point.x = 0

    if loc_point.y > 14: loc_point.y = 14
    elif loc_point.y < 0: loc_point.y = 0

    return loc_point

Also, it's probably best not to use point to both refer to your class and your parameter.

share|improve this answer
    
I should return point(otherpoint.x, otherpoint.y) ? –  foxneSs May 25 '12 at 16:25
2  
I think the critical point here is that in Python, objects are passed by reference, not by value. In C++, with a similar signature, we would expect a copy of the point to be made when the function is called. But in Python, no such copy is made. –  Edward Loper May 25 '12 at 16:33
    
GRR. NO. STOP WITH "PASS BY REFERENCE". This phrase is confusing and overloaded. The semantics are better and unambiguously called "Call By Object Sharing". (End rant.) –  user166390 May 25 '12 at 16:34
    
@pst I don't think 'pass by reference' is confusing, but I added your term to my answer too if it helps make the meaning clear. Personally I have come across the former much more frequently (perhaps that dates me :) –  Levon May 25 '12 at 16:37
    
@Levon: I think what pst means is that Python is neither exactly pass-by-reference nor pass-by-value. Pass by reference implies (to some programmers, at least) that you can do things like C-style out parameters. –  Thomas K May 25 '12 at 16:45

Calling someFunc() uses by-reference semantics, so that the object it modifies is exactly the object you called it with. It seems you were expecting by-value semantics, where the function gets a copy of the object it was passed.

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