14

Why would one write a C++ lambda with a name so it can be called from somewhere? Would that not defeat the very purpose of a lambda? Is it better to write a function instead there? If not, why? Would a function instead have any disadvantages?

1
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    Aug 10, 2018 at 7:20

5 Answers 5

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One use of this is to have a function access the enclosing scope.

In C++, we don't have nested functions as we do in some other languages. Having a named lambda solves this problem. An example:

#include <iostream>

int main ()
{
    int x;

    auto fun = [&] (int y) {
        return x + y;
    };

    std::cin >> x;

    int t;
    std::cin >> t;
    std::cout << fun (fun (t));
    return 0;
}

Here, the function fun is basically a nested function in main, able to access its local variables. We can format it so that it resembles a regular function, and use it more than once.

5
  • But in this case, as you only use the lambda one time, it could have been written and executed inline with the std::cout <<. The main advantage of not doing so is readability if the lambda is more than 1 line, and perhaps visible locality.
    – Gem Taylor
    Aug 9, 2018 at 14:22
  • Can I write it as an inline function then if it needs surrounding variable? Aug 10, 2018 at 4:48
  • @GemTaylor I've made an edit to incorporate your notions.
    – Gassa
    Aug 10, 2018 at 7:46
  • @user9639921 There are other ways to achieve similarity to nested functions. Here is a relevant question.
    – Gassa
    Aug 10, 2018 at 7:47
  • @Gassa Yes, you can use the static member of a local class. That is what we used to have to do pre-'11. lambdas are better than that, and the compiler can optimise away the "function pointer" quite easily. Unsurprisingly, the reference implementation of lambdas is exactly this.
    – Gem Taylor
    Aug 10, 2018 at 9:20
9

A good reason to use names is to express intent. Then one can check that the lambda does 'the right thing' and the reader can check the intent. Given:

std::string key;
std::map<std::string, int> v;

one can write the following:

std::find_if( v.begin(), v.end(), [&](auto const& elem){ return elem.first == key; } );

but it's hard to tell whether it does 'the right thing'. Whereas if we spell it out:

auto matches_key = [&](auto const& elem){ return elem.first == key; };

std::find_if( v.begin(), v.end(), matches_key );

it is clearer that we do want the equality comparison and the readability is improved.

1
  • This is exactly even more important, from a practical point-of-view.
    – Eric Z
    May 13, 2020 at 10:59
3

I see three things to consider when choosing between a named lamdba and a free function:

  1. Do you need variables from the surrouding scope? If yes, choose a lamdba and leverage its closure. Otherwise, go with a free function (because of 3.).
  2. Could the closure state equally well be passed as a function parameter? If yes, consider preferring a free function (because of 3.).
  3. Do you want to write a test for the callable and/or reuse it in multiple translation units? If yes, choose a free function, because you must declare it in a header file and capturing variables in a lamdba closure

    • is a bit confusing in a header file (though this is debatable, of course).

    • requires the types to be known. You can't therefore live with forward declarations of function parameters and return types to reduce compilation times.

1

This is basicly an opinion based question. It's up to you, whether you prefer functions or lambdas, they are equivalent. A lambda shines, when you need variables from the surrounding. You just can capture them instead of passing it as a parameter, that's neat.

But beside of that, there is no difference.

1

When your lambda is a recursive function by itself you have no choice but to give it a name. Also, an auto keyword won't suffice and you would HAVE to declare it using an std::function with the return type and the argument list.

Below is the example for a function that returns the Nth Fibonacci number:

std::function<int(int)> fibonacci = [&](int n) {
    if (n == 0 || n == 1) {
        return 1;
    } else {
        return fibonacci(n - 1) + fibonacci(n - 2);
    }
}

You have to give it a name in order to capture it with &. And auto won't work since lambda needs its to know its types before calling itself.

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