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I have read everywhere that a reference has to be initialized then and there and can't be re-initialized again.

To test my understanding, I have written the following small program. It seems as if I have actually succeeded in reassigning a reference. Can someone explain to me what is actually going on in my program?

#include <iostream>
#include <stdio.h>
#include <conio.h>

using namespace std;

int main()
{
    int i = 5, j = 9;

    int &ri = i;
    cout << " ri is : " << ri  <<"\n";

    i = 10;
    cout << " ri is : " << ri  << "\n";

    ri = j; // >>> Is this not reassigning the reference? <<<
    cout << " ri is : " << ri  <<"\n";

    getch();
    return 0;
}

The code compiles fine and the output is as I expect:

ri is : 5
ri is : 10
ri is : 9
74

ri = j; // >>> Is this not reassigning the reference? <<<

No, ri is still a reference to i - you can prove this by printing &ri and &i and seeing they're the same address.

What you did is modify i through the reference ri. Print i after, and you'll see this.

Also, for comparison, if you create a const int &cri = i; it won't let you assign to that.

  • Why is const int &cri = i not allowed? On which line you can't write that? Cause for me compiler allows to insert such line in any place. Apart from that, it's a clear and concise answer! – mercury0114 Apr 22 '16 at 5:30
  • I didn't say that isn't allowed - as you observed, taking a const ref to a non-const variable is fine. I said it won't let you assign to that, meaning you can't change the original variable via a const ref, like OP did with ri. – Useless Apr 22 '16 at 8:22
  • 3
    I "cri" everytime – Sameer Puri Sep 21 '16 at 14:25
10

It seems as if I have actually succeeded in reassigning a reference. Is that true?

No, you haven't. You are actually reassigning the value, and you are not rebinding the reference.

In your example, when you do int &ri = i;, ri is bound to i for its lifetime. When you do ri = j;, you are simply assigning the value of j to ri. ri still remains a reference to i! And it results in the same outcome as if you had instead written i = j;

If you understand pointers well, then always think of the reference as an analogical interpretation of T* const where T is any type.

4

When you assign something to a reference you actually assign the value to the object the reference is bound to. So this:

ri=j;

has the same effect as

i = j;

would have because ri is bound to i. So any action on ri is executed on i.

3

You are not reassigning the reference when executing ri = j;. You're actually assigning j to i. Try printing i after the line and you'll see that i changed value.

1

OP asked for altering the referenced object through assignment to the reference and was very correctly told that this changed the reference object, not the reference. Now I did a more poignant attempt at really changing the reference and found potentially nasty stuff. First the code. It attempts to reassign to the reference var a newly created object, then alters the reference aka referenced object, finds that this is not reflected in the apparently referenced objects and concludes that we may have a case of a dangling pointer in C++. Sorry for the hastily composed code.

using namespace std;
vector<int>myints;

auto &i = myints.emplace_back();   // allocate and reference new int in vector
auto myintsaddr = &myints; auto myintfrontaddr = &myints.front(); // for future reference
i = 1;                             // assign a value to the new int through reference
cout << hex << "address of i: 0x" << &i << " equals " << "address of 
myints.back(): 0x" << &myints.back() << '.' << endl;  // check reference as expected
i = myints.emplace_back();     // allocate new int in vector and assign to old reference variable
i = 2;                         // give another value to i
cout << "i=" << i << ", myints={" << myints[0] << ", "<< myints[1] << '}' << endl; // any change to potentially referenced objects?
cout << hex << "&i: 0x" << &i << " unequal to " << "&myints.back(): 0x" << &myints.back() << " as well as &myints.front(): 0x" << &myints.front() << endl;
cout << "Myints " << (myintsaddr== &myints?"not ":"") << "relocated from " << myintsaddr << " to " << &myints << endl;
cout << "Myints front() " << (myintfrontaddr == &myints.front() ? "not " : "") << "relocated from " << myintfrontaddr << " to " << &myints.front() << endl;

Output:

address of i: 0x0063C1A0 equals address of myints.back(): 0x0063C1A0.
i=2, myints={1, 0}
&i: 0x0063C1A0 unequal to &myints.back(): 0x0063F00C as well as &myints.front(): 0x0063F008
Myints not relocated from 0039FE48 to 0039FE48
Myints front() relocated from 0063C1A0 to 0063F008

Conclusion: at least in my case (VS2017) the reference has kept the exact same address in memory, but the referenced values (part of the vector) have been reallocated elsewhere. Reference i may be dangling.

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