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Is there any difference in performance - or otherwise - between:

ptr->a();

and

(*ptr).a(); 

?

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3 Answers 3

up vote 12 down vote accepted

Since you are asking for it in the comments. What you are probably looking for can be found in the Standard (5.2.5 Class member access):

3 If E1 has the type “pointer to class X,” then the expression E1->E2 is converted to the equivalent form (*(E1)).E2;

The compiler will produce the exact same instructions and it will be just as efficient. Your machine will not know if you wrote "->" or "*.".

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Yep. That's what I was looking for - whether or not they are the same underneath. –  Rachel Mar 18 '10 at 15:20

[Edit]

If the variable is defined as T* (where T is some type) then both -> and * are the same (unless ptr is null).

If the variable is an instance of a class (by value or by reference) then -> and * should behave the same (per best practice) but this requires the class to overload them the same way.

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1  
-> and * don't operate on the type themselves T, but on a type of T*, which is a pointer. –  Brian R. Bondy Mar 18 '10 at 13:56
8  
If the underlying class does overload -> or * it should overload both so that it is still the same. Otherwise it is badly designed. –  Tadeusz Kopec Mar 18 '10 at 13:59
1  
@Tadeusz Kopec: Read the answer by Jeremy Bell: operator-> has special behavior that makes x->y inconsistent with (*x).y in some cases, and the behavior cannot be simulated with operator* –  David Rodríguez - dribeas Mar 18 '10 at 14:52
2  
Rachel: I know people have heard this over and over again but: Why? Who cares? Use the readable one, performance is a second concern. Your first concern is writing your application in an easy to manage way. Only when you find performance lacking should you even care about performance. That said, you have to profile: time the code and see which is faster. However in this case, they are the same thing. There should be no difference. You are new-ish to programming in C++, I'm guessing, so worry about C++, not speed. –  GManNickG Mar 18 '10 at 14:53
3  
@Tadeusz: You can overload -> But it will apply to the class not the pointers of the class. For example Cat c; c->f(), it will not apply to Cat *p = &c; p->f(); I'm not sure why this is so highly voted up because it is wrong. –  Brian R. Bondy Mar 18 '10 at 14:59

The -> operator is special in that in most cases it "drills-down" recursively until the result of the expression is no longer something that has an overloaded -> operator defined for it. The (*subxpression).x expression only does one dereference on subexpression, so if the result of (*subexpression) is another pointer, then this wouldn't compile (you would need to write (*(*subexpression)).x. See the following code for a better illustration:

#include <iostream>
using namespace std;

class MyClass
{
public:
    MyClass() : x(0) {}
    int x;
};

class MyPtr
{
private:
    MyClass* mObj;
public:
    MyPtr(MyClass* obj) : mObj(obj) {}
    MyClass* operator->() 
    {
        return mObj;
    }
};

int main() 
{
    MyClass obj;
    MyClass* objCPtr = &obj;
    MyClass** objCHandle = &objCPtr;
    MyPtr ptr(&obj);
    cout << ptr->x << endl;
    cout << (*(*objCHandle)).x << endl;
}

Note however, that this would not compile:

cout << objCHandle->x << endl;

Because the drill down behavior of -> only occurs when the left hand side of the expression is a class, struct, union, or generic type. In this case, objCHandle is a MyClass**, so it doesn't qualify.

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1  
@Jeremy: I added a number of backticks, to stop the asterisks from being interpreted as formatting commands :). –  Andrew Aylett Mar 18 '10 at 15:50
    
@Andrew: thanks! –  Jeremy Bell Mar 18 '10 at 18:24

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