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(Optional) C++ - Lambda Expressions

Authors: Benjamin Qi, Dong Liu, Justin Ji

Defining anonymous function objects.

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Introduction

Resources
CPP
Lambda expressions

reference

UMich
Using C++ Lambdas
SO
What is a lambda expression in C++11?
Microsoft
Lambda Expressions in C++
Resources: FAQ
SO
Type of a lambda function using auto?
SO
What is meant by 'retain state' in c++?

Why Use Lambdas?

Lambdas allow us to write simple and anonymous functions inline. This allows us to write smaller functions while keeping code local and organized. In addition, lambdas can capture their surrounding variables, which is often convenient when writing helper functions.

The C++ standard library has good support for lambdas, with functions like std::sort and std::lower_bound allowing you to pass custom functions to act as a comparator of objects. This is often more convenient than the alternative of writing a dedicated function to act as a comparator.

General Form

Lambdas have the following form:

[capture_list](parameters) -> trailing_return_type {
	// function body
}

The parameters, return type, and function body are all pretty straightforward. In competitive programming contexts, we typically use the following capture types:

[]: Does not capture anything in the local scope.

[&]: Captures everything in the local scope by reference.

[=]: Captures everything in the local scope by copy.

The lambda's local scope is the scope where it is defined, not the scope where it is used.

You can also specify what variables to capture, but this typically is not necessary.

For an example of a lambda, say we want to write a function returns the square of a given number. We can write the following lambda expression:

auto square = [](int x) -> long long { return (long long)x * x; };

Then, you can call the lambda like a normal function.

cout << square(10) << '\n';  // prints out 100

As mentioned in the custom comparator module module, lambdas can also be used as comparators.

Recursive Lambdas

Let's say we want to write a recursive GCD function. With a lambda, the most straightfoward way to write it would be like this:

auto gcd = [](int a, int b) -> int { return b == 0 ? a : gcd(b, a % b); };

Unfortunately, this does not work, because a lambda cannot directly reference itself in its definition. However, there are workarounds to this issue.

With y_combinator

Resources
open-std
Y Combinator Proposal
RIP Tutorial
Recursive Lambdas

If we add the following from the link above in C++14:

namespace std {


template <class Fun> class y_combinator_result {
	Fun fun_;


  public:
	template <class T>
	explicit y_combinator_result(T &&fun) : fun_(std::forward<T>(fun)) {}


	template <class... Args> decltype(auto) operator()(Args &&...args) {

Then we can have code like the following:

int main() {
	cout << y_combinator([](auto gcd, int a, int b) -> int {
		return b == 0 ? a : gcd(b, a % b);
	})(20, 30)
	     << "\n";  // outputs 10
}

With std::function

Instead of auto, use function<return_type(param)>.

int main() {
	function<int(int, int)> gcd = [&](int a, int b) {
		return b == 0 ? a : gcd(b, a % b);
	};
	cout << gcd(20, 30) << '\n';  // outputs 10
}

With Generic Lambdas

To remedy the issue of the lambda being unable to access itself, we pass it into itself.

int main() {
	auto gcd = [&](int a, int b, auto &&gcd) -> int {
		return b == 0 ? a : gcd(b, a % b, gcd);
	};
	cout << gcd(20, 30, gcd) << '\n';  // outputs 10
}

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