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Given the following C++ code:

struct foo {
  // Some definition with copy constructor.
};

const foo &getData();

const foo &alt1(getData());
const foo &alt2 = getData();

Will a reasonable compiler produce different code for alt1 and alt2? In other words, will alt1 cause the copy constructor to be run, or is the compiler allowed to optimize that away and assign the reference directly?

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This question would make more sense if alt1 and alt2 were not references. –  Mooing Duck Jan 10 '12 at 17:20

4 Answers 4

up vote 5 down vote accepted

In both cases, you initialize a reference (not an object), so no copy-constructor will be run.

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const foo &alt1(getData());
const foo &alt2 = getData();

These two are exactly the same. There are no copies here, with or without optimization.

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No. In your code,alt1 and alt2 are references to the object returned from getData(). So no object will be created to begin with, so there is no question of invocation of copy-constructor either.

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Just to complete these answer, if the signature of getData() was "foo getData();" then you would need a copy constructor to exits and be accessible even if most compiler don't generate any call to it.

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