Lambda表达式是自C++11之后加入的新特性,是一种类似匿名函数的东西,看了一篇微软官网的介绍,浅显易懂,特地转载过来:
原文链接:https://msdn.microsoft.com/en-us/library/dd293608.aspx
In C++11, a lambda expression—often called a lambda—is a convenient way of defining an anonymous function object right at the location where it is invoked or passed as an argument to a function. Typically lambdas are used to encapsulate a few lines of code that are passed to algorithms or asynchronous methods. This article defines what lambdas are, compares them to other programming techniques, describes their advantages, and provides a basic example.
Parts of a Lambda Expression
The ISO C++ Standard shows a simple lambda that is passed as the third argument to the std::sort() function:
#include
#include
void abssort(float* x, unsigned n) {
std::sort(x, x + n,
// Lambda expression begins
[](float a, float b) {
return (std::abs(a) < std::abs(b));
} // end of lambda expression
);
}
This illustration shows the parts of a lambda:
A lambda can introduce new variables in its body (in C++14), and it can also access—or capture–variables from the surrounding scope. A lambda begins with the capture clause (lambda-introducer in the Standard syntax), which specifies which variables are captured, and whether the capture is by value or by reference. Variables that have the ampersand (&) prefix are accessed by reference and variables that do not have it are accessed by value.
An empty capture clause, [ ], indicates that the body of the lambda expression accesses no variables in the enclosing scope.
You can use the default capture mode (capture-default in the Standard syntax) to indicate how to capture any outside variables that are referenced in the lambda: [&] means all variables that you refer to are captured by reference, and [=] means they are captured by value. You can use a default capture mode, and then specify the opposite mode explicitly for specific variables. For example, if a lambda body accesses the external variable total by reference and the external variable factor by value, then the following capture clauses are equivalent:
[&total, factor]
[factor, &total]
[&, factor]
[factor, &]
[=, &total]
[&total, =]
Only variables that are mentioned in the lambda are captured when a capture-default is used.
If a capture clause includes a capture-default”&, then no identifier in a capture of that capture clause can have the form & identifier. Likewise, if the capture clause includes a capture-default”=, then no capture of that capture clause can have the form = identifier. An identifier or this cannot appear more than once in a capture clause. The following code snippet illustrates some examples.
struct S { void f(int i); };
void S::f(int i) {
[&, i]{}; // OK
[&, &i]{}; // ERROR: i preceded by & when & is the default
[=, this]{}; // ERROR: this when = is the default
[i, i]{}; // ERROR: i repeated
}
A capture followed by an ellipsis is a pack expansion, as shown in this variadic template example:
template<class... Args>
void f(Args... args) {
auto x = [args...] { return g(args...); };
x();
}
To use lambda expressions in the body of a class method, pass the this pointer to the capture clause to provide access to the methods and data members of the enclosing class. For an example that shows how to use lambda expressions with class methods, see “Example: Using a Lambda Expression in a Method” in Examples of Lambda Expressions.
When you use the capture clause, we recommend that you keep these points in mind, particularly when you use lambdas with multithreading:
In C++14, you can introduce and initialize new variables in the capture clause, without the need to have those variables exist in the lambda function’s enclosing scope. The initialization can be expressed as any arbitrary expression; the type of the new variable is deduced from the type produced by the expression. One benefit of this feature is that in C++14 you can capture move-only variables (such as std::unique_ptr) from the surrounding scope and use them in a lambda.
pNums = make_unique<vector<int>>(nums);
//...
auto a = [ptr = move(pNums)]()
{
// use ptr
};
In addition to capturing variables, a lambda can accept input parameters. A parameter list (lambda declarator in the Standard syntax) is optional and in most aspects resembles the parameter list for a function.
int y = [] (int first, int second)
{
return first + second;
};
In C++ 14, if the parameter type is generic, you can use the auto keyword as the type specifier. This tells the compiler to create the function call operator as a template. Each instance of auto in a parameter list is equivalent to a distinct type parameter.
auto y = [] (auto first, auto second)
{
return first + second;
};
A lambda expression can take another lambda expression as its argument. For more information, see “Higher-Order Lambda Expressions” in the topic Examples of Lambda Expressions.
Because a parameter list is optional, you can omit the empty parentheses if you do not pass arguments to the lambda expression and its lambda-declarator: does not contain exception-specification, trailing-return-type, or mutable.
Typically, a lambda’s function call operator is const-by-value, but use of the mutable keyword cancels this out. It does not produce mutable data members. The mutable specification enables the body of a lambda expression to modify variables that are captured by value. Some of the examples later in this article show how to use mutable.
You can use the throw() exception specification to indicate that the lambda expression does not throw any exceptions. As with ordinary functions, the Visual C++ compiler generates warning C4297 if a lambda expression declares the throw() exception specification and the lambda body throws an exception, as shown here:
// throw_lambda_expression.cpp
// compile with: /W4 /EHsc
int main() // C4297 expected
{
[]() throw() { throw 5; }();
}
For more information, see Exception Specifications (throw).
The return type of a lambda expression is automatically deduced. You don’t have to use the auto keyword unless you specify a trailing-return-type. The trailing-return-type resembles the return-type part of an ordinary method or function. However, the return type must follow the parameter list, and you must include the trailing-return-type keyword -> before the return type.
You can omit the return-type part of a lambda expression if the lambda body contains just one return statement or the expression does not return a value. If the lambda body contains one return statement, the compiler deduces the return type from the type of the return expression. Otherwise, the compiler deduces the return type to be void. Consider the following example code snippets that illustrate this principle.
auto x1 = [](int i){ return i; }; // OK: return type is int
auto x2 = []{ return{ 1, 2 }; }; // ERROR: return type is void, deducing return type from
//braced-init-list is not valid
A lambda expression can produce another lambda expression as its return value. For more information, see “Higher-Order Lambda Expressions” in Examples of Lambda Expressions.
The lambda body (compound-statement in the Standard syntax) of a lambda expression can contain anything that the body of an ordinary method or function can contain. The body of both an ordinary function and a lambda expression can access these kinds of variables:
The following example contains a lambda expression that explicitly captures the variable n by value and implicitly captures the variable m by reference:
// captures_lambda_expression.cpp
// compile with: /W4 /EHsc
#include
using namespace std;
int main()
{
int m = 0;
int n = 0;
[&, n] (int a) mutable { m = ++n + a; }(4);
cout << m << endl << n << endl;
}
Output:
5
0
Because the variable n is captured by value, its value remains 0 after the call to the lambda expression. The mutable specification allows n to be modified within the lambda.
Although a lambda expression can only capture variables that have automatic storage duration, you can use variables that have static storage duration in the body of a lambda expression. The following example uses the generate function and a lambda expression to assign a value to each element in a vector object. The lambda expression modifies the static variable to generate the value of the next element.
void fillVector(vector<int>& v)
{
// A local static variable.
static int nextValue = 1;
// The lambda expression that appears in the following call to
// the generate function modifies and uses the local static
// variable nextValue.
generate(v.begin(), v.end(), [] { return nextValue++; });
//WARNING: this is not thread-safe and is shown for illustration only
}
For more information, see generate.
The following code example uses the function from the previous example, and adds an example of a lambda expression that uses the STL algorithm generate_n. This lambda expression assigns an element of a vector object to the sum of the previous two elements. The mutable keyword is used so that the body of the lambda expression can modify its copies of the external variables x and y, which the lambda expression captures by value. Because the lambda expression captures the original variables x and y by value, their values remain 1 after the lambda executes.
// compile with: /W4 /EHsc
#include
#include
#include
#include
using namespace std;
template <typename C> void print(const string& s, const C& c) {
cout << s;
for (const auto& e : c) {
cout << e << " ";
}
cout << endl;
}
void fillVector(vector<int>& v)
{
// A local static variable.
static int nextValue = 1;
// The lambda expression that appears in the following call to
// the generate function modifies and uses the local static
// variable nextValue.
generate(v.begin(), v.end(), [] { return nextValue++; });
//WARNING: this is not thread-safe and is shown for illustration only
}
int main()
{
// The number of elements in the vector.
const int elementCount = 9;
// Create a vector object with each element set to 1.
vector<int> v(elementCount, 1);
// These variables hold the previous two elements of the vector.
int x = 1;
int y = 1;
// Sets each element in the vector to the sum of the
// previous two elements.
generate_n(v.begin() + 2,
elementCount - 2,
[=]() mutable throw() -> int { // lambda is the 3rd parameter
// Generate current value.
int n = x + y;
// Update previous two values.
x = y;
y = n;
return n;
});
print("vector v after call to generate_n() with lambda: ", v);
// Print the local variables x and y.
// The values of x and y hold their initial values because
// they are captured by value.
cout << "x: " << x << " y: " << y << endl;
// Fill the vector with a sequence of numbers
fillVector(v);
print("vector v after 1st call to fillVector(): ", v);
// Fill the vector with the next sequence of numbers
fillVector(v);
print("vector v after 2nd call to fillVector(): ", v);
}
Output:
vector v after call to generate_n() with lambda: 1 1 2 3 5 8 13 21 34
x: 1 y: 1
vector v after 1st call to fillVector(): 1 2 3 4 5 6 7 8 9
vector v after 2nd call to fillVector(): 10 11 12 13 14 15 16 17 18
For more information, see generate_n.
Lambdas are not supported in the following common language runtime (CLR) managed entities: ref class, ref struct, value class, or value struct.
If you are using a Microsoft-specific modifier such as __declspec, you can insert it into a lambda expression immediately after the parameter-declaration-clause—for example:
auto Sqr = [](int t) __declspec(code_seg("PagedMem")) -> int { return t*t; };
To determine whether a modifier is supported by lambdas, see the article about it in the Microsoft-Specific Modifiers section of the documentation.
Visual Studio supports C++11 Standard lambda expression syntax and functionality, with these exceptions: