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In c++ there are multiple ways of passing an object as parameter to a function. I have been reading up on passing by value and reference.

These links were very useful:

http://www.yoda.arachsys.com/java/passing.html http://www.yoda.arachsys.com/csharp/parameters.html

And in the case of c++, which I am wondering about now, I saw this article as well:

http://www.learncpp.com/cpp-tutorial/73-passing-arguments-by-reference/

These go into the differences between passing by value and reference. And this last article also depicts a few pros and cons on the matter. I would like to know though the pros and cons of passing a parameter as a value in the case the object is not modified in the function.

int f(sockaddr_in s) {
// Don't change anything about s
}

int f(sockaddr_in *s) {
// Don't change anything about s
}

Both allow me to access the variables it has. But I would like to know which one I should use, and why.

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In the second example do you mean int f(sockaddr_in &s) { to pass by reference and not *s?, otherwise you are passing a pointer, its not quite the same. –  code_fodder Oct 28 '13 at 14:07
1  
There's no pass-by-reference here. Apart from that, a pointer (or a reference) is often passed so that copying the entire object can be avoided. –  user529758 Oct 28 '13 at 14:08
3  
possible duplicate of How to pass objects to functions in C++? –  stijn Oct 28 '13 at 14:08
    
@stijn that is a really helpful link. To bad I didn't find that earlier. –  Oxidator Oct 28 '13 at 14:13
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2 Answers

up vote 1 down vote accepted

In the first example f() obtains a copy of the original object and hence cannot possibly change the latter. However, the copy constructor is invoked, which may be quite expensive and is therefore not advisable as a general method.

In the second example f() either obtains a pointer or (for f(obj&x)) a reference to the original object and is allowed to modify it. If the function only takes a const pointer or reference, as in f(const object&x), it cannot legally change the object. Here, no copy is made. Therefore, passing by const reference is the standard approach for parameter that shall not be modified.

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You are ignoring a fundamental thing of c++: const correctness: The declaration 'int f(sockaddr_in *s)' violates that. The 'int f(sockaddr_in s)' does not and might be reasonable (sockaddr_in is small or copied anyway). Hence, both 'int f(const sockaddr_in& s)' and 'int f(sockaddr_in s)' might be a good choice.

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