Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I would like to know if it is possible to create an actual functor object from a lambda expression. I don't think so, but if not, why?

To illustrate, given the code below, which sorts points using various policies for x and y coordinates:

#include <vector>
#include <functional>
#include <algorithm>
#include <iostream>

struct Point 
{ 
    Point(int x, int y) : x(x), y(y) {}
    int x, y; 
};

template <class XOrder, class YOrder> 
struct SortXY : 
    std::binary_function<const Point&, const Point&, bool>
{
    bool operator()(const Point& lhs, const Point& rhs) const 
    {
        if (XOrder()(lhs.x, rhs.x))
            return true;
        else if (XOrder()(rhs.x, lhs.x))
            return false;
        else
            return YOrder()(lhs.y, rhs.y);
    }          
};

struct Ascending  { bool operator()(int l, int r) const { return l<r; } };
struct Descending { bool operator()(int l, int r) const { return l>r; } };

int main()
{
    // fill vector with data
    std::vector<Point> pts;
    pts.push_back(Point(10, 20));
    pts.push_back(Point(20,  5));
    pts.push_back(Point( 5,  0));
    pts.push_back(Point(10, 30));

    // sort array
    std::sort(pts.begin(), pts.end(), SortXY<Descending, Ascending>());

    // dump content
    std::for_each(pts.begin(), pts.end(), 
                  [](const Point& p) 
                  {
                     std::cout << p.x << "," << p.y << "\n"; 
                  });
}

The expression std::sort(pts.begin(), pts.end(), SortXY<Descending, Ascending>()); sorts according to descending x values, and then to ascending y values. It's easily understandable, and I'm not sure I really want to make use of lambda expressions here.

But if I wanted to replace Ascending / Descending by lambda expressions, how would you do it? The following isn't valid:

std::sort(pts.begin(), pts.end(), SortXY<
    [](int l, int r) { return l>r; }, 
    [](int l, int r) { return l<r; }
>());
share|improve this question
2  
Possibly you need a make_sortXY function to deduce the template arguments? See make_pair. This is assuming that C++0x permits the nameless type of a lambda to be a template argument at all, I don't know. –  Steve Jessop Jan 26 '11 at 10:40
1  
Also a lambda expression results in an object with an operator(). In general it requires the instance, because that's where any captured variables are kept, and I'm not sure whether a no-capture lambda is defined as a special case in any way. In particular, does its type have an accessible no-args constructor, that you've used? –  Steve Jessop Jan 26 '11 at 10:44
    
@Steve: thank's for your comments. I understand what you mean, except the last sentence in your 2nd comment. What are you referring to? –  Daniel Gehriger Jan 26 '11 at 12:16
    
when you write XOrder()(lhs.x, rhs.x), you are calling the no-args constructor of XOrder (well, or another constructor whose parameters are all optional), and then calling operator() on the resulting temporary object. I don't know, because I haven't looked it up, whether you can just instantiate a lambda like that from its type. –  Steve Jessop Jan 26 '11 at 13:40
    
@Steve: I guess not, since you can't get the type of a lambda. –  Daniel Gehriger Jan 26 '11 at 14:00

1 Answer 1

up vote 1 down vote accepted

This problem arises because SortXY only takes types, whereas lambdas are objects. You need to re-write it so that it takes objects, not just types. This is basic use of functional objects- see how std::for_each doesn't take a type, it takes an object.

share|improve this answer
    
Yes, I realize that. I would have to change SortXY and add a constructor, and then use it as SortXY(Descending(), Ascending()). This blows up the code quiet a lot (constructor, member variables in SortXY, ...). I'd rather use a `typeof(/* lambda expression */)... –  Daniel Gehriger Jan 26 '11 at 10:46
1  
You can't. Lambdas have totally undefined types- you can't even decltype a lambda expression. There's no way to get template the type of a lambda without using type deduction on that exact lambda- identical definitions not acceptable. Frankly, I admit that your current code is easier, but it's just bad practice- as soon as you want any state in there then you're screwed. You only write SortXY once, but you may call it dozens of times. –  Puppy Jan 26 '11 at 11:02

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.