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I have these functions:

vector<int> foo1() {
    vector<int> v;
    return v;
}

void foo2( vector<int>& parameter ) {
    // Do something
}

void foo3( vector<int> par ) {
    foo2( par );
}
...
foo2(foo1());   // Doesn't work (1)
foo3(foo1());   // Works (2)

Is there a way to keep function foo2 as it is, as it is the optimal way to pass vectors as parameters, and maybe overload it to make (1) work? Or is there a better way to do this?

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1  
You can't bind a non-const reference to a temporary. Anyway, what would be the point of modifying the temporary return value of the function call if it just gets destroyed right after? –  chris Oct 26 '12 at 21:21
    
@Sval Never pass vector by value. It is hugely unoptimal. –  sashoalm Oct 26 '12 at 21:24
3  
@satuon, Unless you need to copy it anyway. –  chris Oct 26 '12 at 21:24
2  
If you don't need to modify the contents of the vector, foo2 should take it as a const vector<int>&. Then there's no problem with passing a temporary. –  Pete Becker Oct 26 '12 at 21:27
1  
@Svalorzen: Check this out cpp-next.com/archive/2009/08/want-speed-pass-by-value , and that is C++03 with no move-semantics. –  K-ballo Oct 26 '12 at 21:33

1 Answer 1

up vote 2 down vote accepted

Passing by reference is typically use for 'out parameters', parameters used to return a value to the caller:

void bar(int &i, int &j);

int i, j;
bar(i, j); // sets i and j
// use i and j values here

C++ happens to disallow binding temporaries to non-const lvalues. So this does not work:

bar(1,2);

However, there is a need to allow passing temporaries without copying them, and prior to C++11 this need was filled by allowing temporaries to bind to const lvalue references. This is a special rule which still prevents mistakenly using a temporary as an out parameter, but allows copying to be avoided.

Since you're using the vector as an input parameter and not an output parameter, that would be the appropriate way to avoid copying:

void foo2(vector<int> const &parameter) {
    // Do something
}

If the 'Do something' code does eventually make a copy of the vector then you'd be better off doing this:

void foo2(vector<int> parameter) {
    // Do something
}

Because this allows the compiler to optimize the copying for you in specific cases of calling foo2, perhaps eliminating the copy.

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I already tried to put const after vector<int>, and it didn't work ( I tried again now, and it still doesn't work ). If I put the const before it the program compiles though. –  Svalorzen Oct 26 '12 at 21:45
    
@Svalorzen vector<int> const & and const vector<int> & are identical types. I just prefer placing const after. If there's another problem it's because you haven't described some aspect of the problem, because this works fine. –  bames53 Oct 26 '12 at 21:53
    
I think I forgot some const here and there, and putting const before it made the compiler ignore them in some way. Now it works both ways, thanks! I'll accept this as soon as I can. –  Svalorzen Oct 26 '12 at 22:00

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