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A pretty theoretical question...Why constant references do not behave the same way as constant pointers and I can actually change the object they are pointing to? They really seem like another plain variable declaration. Why would I ever use them? This is a short example that I run which compiles and runs with no errors:

int main (){
    int i=0;
    int y=1;    
    int&const icr=i;
    icr=y;          // Can change the object it is pointing to so it's not like a const pointer...
    icr=99;         // Can assign another value but the value is not assigned to y...
    int x=9;
    icr=x;
    cout<<"icr: "<<icr<<", y:"<<y<<endl; 
}
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2  
Look at i before and after icr=y;. –  Ben Voigt Sep 14 '11 at 17:59
    
A constant reference is... nonsense. :) –  jalf Sep 14 '11 at 18:05
1  
Does that even compile? –  Kerrek SB Sep 14 '11 at 18:07
1  
    
check the value of x at the end . its 9 . since icr which refers to i has been changed to 9. –  vivek Dec 24 '12 at 11:37

4 Answers 4

The statement icr=y; does not make the reference refer to y, it assigns the value of y to the variable that icr refers to, i.

References are inherently const, that is you can't change what they refer to. There are 'const references' which are really 'references to const', that is you can't change the value of the object they refer to. They are declared const int& or int const& rather than int& const though.

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So a reference to a const can also be seen as a constant reference to a const? That makes a lot of sense now. –  Dasaru Sep 27 '12 at 23:07

What is a constant reference (not a reference to a constant)
A Constant Reference is actually an Reference to a Constant.

A constant reference/ Reference to a constant is denoted by:

int const &i = j; //or Alternatively
const int &i = j;
i = 1;            //Compilation Error

It basically means, you cannot modify the value of type object to which the Reference Refers.
For Example:
Trying to modify value(assign 1) of variable j through const reference, i will results in error:

assignment of read-only reference ‘i’


icr=y;          // Can change the object it is pointing to so it's not like a const pointer...
icr=99;

Doesn't change the reference, it assigns the value of the type to which the reference refers. References cannot be made to refer any other variable than the one they are bound to at Initialization.

First statement assigns the value y to i
Second statement assigns the value 99 to i

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up vote 7 down vote accepted

Parashift gives the clearest answer.

[18.7] Does "Fred& const x" make any sense?

No, it is nonsense.

To find out what the above declaration means, you have to read it right-to-left. Thus "Fred& const x" means "x is a const reference to a Fred". But that is redundant, since references are always const. You can't reseat a reference. Never. With or without the const.

In other words, "Fred& const x" is functionally equivalent to "Fred& x". Since you're gaining nothing by adding the const after the &, you shouldn't add it since it will confuse people — the const will make some people think that the Fred is const, as if you had said "Fred const& x".

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By "constant reference" I am guessing you really mean "reference to constant data". Pointers on the other hand, can be a constant pointer (the pointer itself is constant, not the data it points to), a pointer to constant data, or both.

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The sample code actually refers to a constant reference (int & const icr = i;) not a reference to a constant. –  Void Sep 14 '11 at 18:07
    
I assumed the poster wasn't clear because of where the const was placed in the code. –  Poodlehat Sep 14 '11 at 19:22

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