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#include <array>
#include <iostream>

using namespace std;

struct SimpleDebugger
{
    SimpleDebugger(int val = 0) : x(val) {
        cout << "created" << endl;
    }

    SimpleDebugger(const SimpleDebugger &that) : x(that.x) {
        cout << "copied" << endl;
    }

    ~SimpleDebugger() {
        cout << "killed!" << endl;
    }

    int getX() const {
        return x;
    }

    void setX(int val) {
        x = val;
    }

private:
    int x;
};

array<SimpleDebugger, 3> getInts(int i)
{
    array<SimpleDebugger, 3> a;
    a[0].setX(i);
    a[1].setX(i + 1);
    a[2].setX(i + 2);
    cout << "closing getInts" << endl;
    return a;
}

SimpleDebugger (*getIntsArray(int i)) [3] {
    typedef SimpleDebugger SimpleDebugger3ElemArray [3];
    SimpleDebugger3ElemArray *sd = new SimpleDebugger3ElemArray[1];
    (*sd)[0].setX(i);
    (*sd)[1].setX(i + 1);
    (*sd)[2].setX(i + 2);
    cout << "closing getIntsArray" << endl;
    return sd;
}

ostream& operator << (ostream& os, const SimpleDebugger &sd) {
    return (cout << sd.getX());
}

int main() {
    auto x = getInts(5);
    cout << "std::array = " << x[0] << x[1] << x[2] << endl;
    auto y = getIntsArray(8);
    cout << "Raw array = " << (*y)[0] << (*y)[1] << (*y)[2] << endl;
    delete [] y;
}

Output

created
created
created
closing getInts
std::array = 567
created
created
created
closing getIntsArray
Raw array = 8910
killed!
killed!
killed!
killed!
killed!
killed!

I tried this above program to see how convenient it is to use std::array over raw arrays, I know that avoiding old-style arrays is good style and even better is to use std::vector.

I'd like to know what happens under the hood in case of std::array, when the function getInts() returns. In case of the raw arrays, I know that it's a pointer copy and the onus of cleaning it up falls on the callee. In std::array this doesn't happen, but how does it internally store the data and how does the copy happen?

share|improve this question
1  
If you are using g++, try the test again with -fno-elide-constructors for another possible output. –  Robᵩ Jan 24 '13 at 19:35
    
@Robᵩ Wow, shows 6 "copied", thanks for the flag! –  legends2k Jan 24 '13 at 19:38

1 Answer 1

up vote 4 down vote accepted

std::array is an aggregate, containing an array as its only data member. Copying or moving one will copy or move each element of the array into the new array.

In your case the copy is being elided when it's returned from the function; under the hood, the array is created in automatic storage in main, and the function fills in that array.

share|improve this answer
    
+1 Doesn't this property of std::array make it less performant that old-style arrays? –  legends2k Jan 24 '13 at 19:39
2  
@legends2k: It's exactly as perfomant as a built-in array for everything a built-in array can do. It's also copyable and movable. –  Mike Seymour Jan 24 '13 at 19:41
    
I think I get it, one would never return a built-in array, or simply one can't rather, and just becasue std::array can be returned, returning it would make it less preformant as would be the case with any container type. Am I right in inferring this? –  legends2k Jan 24 '13 at 19:43
1  
@legends2k: Indeed, move semantics and copy/move elision (or RVO if you prefer) are two different phenomena. Values returned from a function will be moved if possible, so there's no need to use std::move; and the compiler should elide the copy/move whenever it can. –  Mike Seymour Jan 24 '13 at 23:17
1  
Clarified now, and thanks for replying to all my comments patiently :) –  legends2k Jan 25 '13 at 5:00

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