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Is there anything wrong with writing a reference declaration and assignment in one statement. I have tried it using gcc and it seems to work.

int x = 10;
cout << "x = " << x << "\n";

int &y = x = 11;
cout << "x = " << x << "\n";
cout << "y = " << y << "\n";

gives me the expected output

x = 10
x = 11
y = 11

Is this expected to work on most compilers or will there be a portability issue?

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better you avoid it if possible even though it works fine in most of the modern systems. but why take unnecessary risk when you have other secure paths –  Rohit Mar 14 '12 at 11:51
    
@Rohit - yes I decided to avoid it but wanted to check whether it should work and if there might be any other issues anyway. –  DanS Mar 14 '12 at 13:11

1 Answer 1

up vote 5 down vote accepted

In C++, there is an assignment operator, which can be used (at least in principle) in any expression. Note that in:

int& y = x = 11;

The first = is not an operator; it is part of the syntax of the data definition. What follows this = is an expression, which must result in an lvalue of type int. Since x is an int, x = 11 has type int. And the result of the built-in assignment operator is an lvalue, referring to the object which was the target of the assignment, so you've met the necessary conditions.

Of course, that doesn't mean that it's good code.

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