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I was wondering about the logic in this function declaration:

CMyException (const std::string & Libelle = std::string(),...

What is the point of using a variable by reference? Usually you pass a variable by reference whenever it may be modified inside... so if you use the keyword const this means it'll never be modified.

This is contradictory.

May someone explain this to me?

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@iammilind: passing numbers by const reference is a bit heavy-handed, much simpler to copy them... – Matthieu M. Feb 13 '12 at 8:49
up vote 5 down vote accepted

Actually reference is used to avoid unnecessary copy of the object.

Now, to understand why const is used, try this:

std::string & x= std::string(); //error

It will give compilation error. It is because the expression std::string() creates a temporary object which cannot be bound to non-const reference. However, a temporary can be bound to const reference, that is why const is needed:

const std::string & x = std::string(); //ok

Now coming back to the constructor in your code:

CMyException (const std::string & Libelle = std::string());

It sets a default value for the parameter. The default value is created out of a temporary object. Hence you need const (if you use reference).

There is also an advantage in using const reference : if you've such a constructor, then you can raise exception like this:

throw CMyException("error"); 

It creates a temporary object of type std::string out of the string literal "error", and that temporary is bound to the const reference.

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+1 for pointing out why a 'const' is required to bound a temporary object – Sanish Feb 13 '12 at 9:31

Some arguments might use quite some memory. If you pass an argument as value it will be copied and the copy will be passed to the method.

Passing them as reference will only pass the pointer to the method which is faster and saves the memory for the copy.

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  • Pass by Reference: Does not create copy of object, does not need more memory for temporary object, does not call constructor, does not call destructor, and is faster.
  • Not having const qualifier means object may be modified by function.
  • When you need to pass object that shouldn't be modified, you add const attribute to it.
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Whether pass by reference is faster or not depends on the type involved. For basic types like int, pass by value is typically faster. The usual rule is to pass class types by const reference, other types by value. And the const doesn't only mean that the object can't be modified; it means that you can pass a temporary (where as a non-const reference requires an lvalue). – James Kanze Feb 13 '12 at 9:03
    
At first, would agree. But, in reality, references, pointers of any value type would take 32-bit or 64-bits depending on bit-ness of program compiled. So, a bool would not occupy less bytes than bool* or bool& - both would need 8 bytes on stack on x64! – Ajay Feb 13 '12 at 9:07
    
It's not just on the stack. There's the extra memory needed for the object, if you pass a temporary. (Anytime you pass a temporary, call by reference will require more memory, and be less efficient, than call by value.) And the extra memory for the extra code to handle the extra level of indirection. – James Kanze Feb 13 '12 at 10:50
    
Well, yes, I can accept it for string-classes, but not for others. – Ajay Feb 13 '12 at 11:08
    
If you need to make a copy in the called function, pass by reference is never more efficient than pass by copy. And if the caller passes a temporary, pass by reference is never more efficient than pass by copy. And there are a lot of small classes where the issue is questionable, even if those two criteria aren't met: if you're using a complex on a lot of elements in a matrix, the additional indirections could easily outweigh the small additional cost of pass by value. In the end, the argument is convention, not performance. – James Kanze Feb 13 '12 at 11:18

For example you can only do this with const reference argumernt:

CMyException("foo");

Think about it and then it will become clear.

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1  
C++11's rvalue references would like a word with you. :) – Xeo Feb 13 '12 at 8:36
    
@Xeo still haven't managed to get into that. But yes, you are right. – Anycorn Feb 13 '12 at 9:04

Passing primitive types (int, char,..) by const reference doesn't make sense. Even for std::string I would argue it's not needed.

However, larger structures or classes require a copy when passing by value, so there's overhead there. A const reference simulates the behavior of passing by value (the outside variable isn't modified), but also prevents the extra copy.

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3  
For std::string it is very much recommnded, so that CTOR and DTOR are not called unnecessarily. – Ajay Feb 13 '12 at 8:27
    
I'm actually wondering: will passing a primitive by reference ever be slower or more cumbersome than passing it by value? It seems 'redundant' to do so, but there is also something to be said for fixed calling conventions. – KillianDS Feb 13 '12 at 9:04
    
Passing anything by const reference could be considered premature optimization. Never the less, the rule "pass class types by const reference, other types by value" seems to be ubiquitous. Which is a valid reason for following it. – James Kanze Feb 13 '12 at 9:08
    
@Ajay And passing it by reference means an extra level of indirection in the called function. Something which may be more expensive than calling the copy constructor and the destructor. Not to mention the case where a non-const copy is needed inside the function. A performance gain is not systematic---the justification for using const reference for std::string is just that everybody does it. – James Kanze Feb 13 '12 at 9:10
    
How a simple indirection can be costlier than CCTOR and DTOR call, at the assembly level? Most often CTOR and DTOR won't be inlined/optimized, and would incur jump instructions to them - too costly compared to `referencing – Ajay Feb 13 '12 at 9:16

No. It is not always necessary that whenever you pass any variable as reference it is only so that it may be modified inside. If the variable is passed by value then a copy of the variable is made whenever that function is called.

A reference variable on the other hand, uses the same object and essentially passes only the memory address (same as using std::string*, but with the exception that you cannot use a null memory address). So, when you do something like const std::string& x, what you're saying is:

1. The passed argument will not be copied. The same object will be used as in memory.
2. The function will absolutely not modify the object that it is handling.

If you think about it, using const makes sense when you're working with references and not otherwise. If you are making a copy of a variable that I pass and then modifying it, I couldn't really care less. However, it would be really nice to know for a fact that if you're not going to modify the very object I pass (as you will be using the very same object), I can strictly further define the process of my application under this guarantee.

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I generally pass everything as const - I never modify the parameters, by value for primitive types, by reference for custom types. Passing by value for primitive types is more efficient in most of the cases - consider an unsigned short - by value 2 bytes, by reference 4-8 bytes depending on the pointer size.

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