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Im wondering something.

I have class Polygon, which composes a vector of Line (another class here)

class Polygon
  std::vector<Line> lines;

  const_iterator begin() const;

  const_iterator end() const;


On the other hand, I have a function, that calculates a vector of pointers to lines, and based on those lines, should return a pointer to a Polygon.

 Polygon* foo(Polygon& p){

  std::vector<Line> lines = bar (p.begin(),p.end());

  return new Polygon(lines);


Here's the question:

I can always add a Polygon (vector

Is there a better way that dereferencing each element of the vector and assigning it to the existing vector container?

//for line in vector<Line*> v
//vcopy is an instance of vector<Line>

I think not, but I dont really like that approach.

Hopefully, I will be able to convince the author of the class to change it, but I cant base my coding right now to that fact (and i'm scared of a performance hit).

Thanks in advance.

share|improve this question
possible duplicate of… – Nathan Fellman Apr 10 '10 at 5:08
@Nathan: this is the original. – Potatoswatter Apr 10 '10 at 5:10
@Potatocorn: no, there's even an earlier one – Eli Bendersky Apr 10 '10 at 5:13
possible duplicate of… – Ben Voigt Apr 10 '10 at 5:14
@Rahul: Those questions got closed, but the links probably still worked when Nathan and Ben posted their comments. – sbi Apr 10 '10 at 9:40

2 Answers 2

up vote 3 down vote accepted

You can transform() the container:

struct deref { // NO! I don't want to derive, LEAVE ME ALONE!
    template<typename P>
    const P& operator()(const P* const p) const { return *p; }

// ...
    vector<Line*> orig; // assume full ...
    vector<Line> cp(orig.size());
    transform(orig.begin(), orig.end(), cp.begin(), deref());
share|improve this answer
This looks much better. Thanks, i was looking for something like this. – Tom Apr 10 '10 at 7:15
should be transform (..., ....,...., deref<Line>()) ? – Tom Apr 10 '10 at 7:19
If it's expensive to create a default Line object then don't pass orig.size() to the ctor of cp. Rather, construct cp empty and then call cp.reserve(orig.size()). This will result in an extra line of code but will avoid initializing each Line object (through the default ctor of Line, supposedly an expensive operation) in cp. – wilhelmtell Apr 10 '10 at 7:19
@Tom no, deref isn't a template. It's a regular struct that has a template member function. The transform() algorithm doesn't need to instantiate the template deref::operator()() (i.e. It Just Works(tm)) because the compiler can deduce the template arguments through the function's arguments. – wilhelmtell Apr 10 '10 at 7:22
@Tom the reason I didn't derive from std::unary_function (apart from the verbosity of this ritual, which I don't like) is that I'd then have to template deref in order to pass the template arguments which operator()() uses to std::unary_function(). Then, when you use deref you'd have to instantiate the template (which is the most annoying side-effect!) as you did in your comment above. All this work, for a couple of typedefs, isn't worth it IMHO. – wilhelmtell Apr 10 '10 at 7:28

It depends how often you need to do that and how specifically. There is such a thing as a transforming iterator, and you could make one such that

vcopy( deref_iter( v.begin() ), deref_iter( v.end() ) );

would do what you want. However, that's not that much easier than what you have, and a straightforward function taking a pointer-vector and returning an object-vector would be easier to implement and to use.

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