原文:http://msdn.microsoft.com/en-us/library/dd293599.aspx
参考:http://www.cnblogs.com/zhuyp1015/archive/2012/04/08/2438176.html
http://msdn.microsoft.com/en-us/library/dd293603.aspx
C++11引入了lambda表达式,使得程序员可以定义匿名函数,该函数是一次性执行的,既方便了编程,又能防止别人的访问。
Lambda表达式的语法通过下图来介绍:
这里假设我们定义了一个如上图的lambda表达式。现在来介绍途中标有编号的各个部分是什么意思。
- Lambda表达式的引入标志,在‘[]’里面可以填入‘=’或‘&’表示该lambda表达式“捕获”(lambda表达式在一定的scope可以访问的数据)的数据时以什么方式捕获的,‘&’表示一引用的方式;‘=’表明以值传递的方式捕获,除非专门指出。
- Lambda表达式的参数列表
- Mutable 标识
- 异常标识
- 返回值
- “函数”体,也就是lambda表达式需要进行的实际操作
下面介绍Lambda几种用法:
1、可以直接给auto变量赋值
// declaring_lambda_expressions1.cpp // compile with: /EHsc /W4 #include <functional> #include <iostream> int main() { using namespace std; // Assign the lambda expression that adds two numbers to an auto variable. auto f1 = [](int x, int y) { return x + y; }; cout << f1(2, 3) << endl; // Assign the same lambda expression to a function object. function<int(int, int)> f2 = [](int x, int y) { return x + y; }; cout << f2(3, 4) << endl; }
输出结果为:5 7
2、可以使用传值或引用来“捕获”数据,i采用传值来捕获,所以再次赋值不会改变表达式的运算结果
// declaring_lambda_expressions2.cpp // compile with: /EHsc /W4 #include <functional> #include <iostream> int main() { using namespace std; int i = 3; int j = 5; // The following lambda expression captures i by value and // j by reference. function<int (void)> f = [i, &j] { return i + j; }; // Change the values of i and j. i = 22; j = 44; // Call f and print its result. cout << f() << endl; }
输出结果:67(相当于44+3);
3、通过给Lambda表达式传递参数,立即调用Lambda表达式
// calling_lambda_expressions1.cpp // compile with: /EHsc #include <iostream> int main() { using namespace std; int n = [] (int x, int y) { return x + y; }(5, 4); cout << n << endl; }
4、将Lambda表达式作为函数的参数
// calling_lambda_expressions2.cpp // compile with: /EHsc /W4 #include <list> #include <algorithm> #include <iostream> int main() { using namespace std; // Create a list of integers with a few initial elements. list<int> numbers; numbers.push_back(13); numbers.push_back(17); numbers.push_back(42); numbers.push_back(46); numbers.push_back(99); // Use the find_if function and a lambda expression to find the // first even number in the list. const list<int>::const_iterator result = find_if(numbers.begin(), numbers.end(),[](int n) { return (n % 2) == 0; }); // Print the result. if (result != numbers.end()) { cout << "The first even number in the list is " << *result << "." << endl; } else { cout << "The list contains no even numbers." << endl; } }
输出:The first even number in the list is 42.
5、支持嵌套调用
// nesting_lambda_expressions.cpp // compile with: /EHsc /W4 #include <iostream> int main() { using namespace std; // The following lambda expression contains a nested lambda // expression. int timestwoplusthree = [](int x) { return [](int y) { return y * 2; }(x) + 3; }(5); // Print the result. cout << timestwoplusthree << endl; }
输出结果:13
6、higher-order function
// higher_order_lambda_expression.cpp // compile with: /EHsc /W4 #include <iostream> #include <functional> int main() { using namespace std; // The following code declares a lambda expression that returns // another lambda expression that adds two numbers. // The returned lambda expression captures parameter x by value. auto addtwointegers = [](int x) -> function<int(int)> { return [=](int y) { return x + y; }; }; // The following code declares a lambda expression that takes another // lambda expression as its argument. // The lambda expression applies the argument z to the function f // and multiplies by 2. auto higherorder = [](const function<int(int)>& f, int z) { return f(z) * 2; }; // Call the lambda expression that is bound to higherorder. auto answer = higherorder(addtwointegers(7), 8); // Print the result, which is (7+8)*2. cout << answer << endl; }
7、在方法内使用Lambda表达式
void ApplyScale(const vector<int>& v) const { for_each(v.begin(), v.end(), [this](int n) { cout << n * _scale << endl; }); }
或者
void ApplyScale(const vector<int>& v) const { for_each(v.begin(), v.end(), [=](int n) { cout << n * _scale << endl; }); }
8、和模板一起使用
// template_lambda_expression.cpp // compile with: /EHsc #include <vector> #include <algorithm> #include <iostream> using namespace std; // Negates each element in the vector object. Assumes signed data type. template <typename T> void negate_all(vector<T>& v) { for_each(v.begin(), v.end(), [](T& n) { n = -n; }); } // Prints to the console each element in the vector object. template <typename T> void print_all(const vector<T>& v) { for_each(v.begin(), v.end(), [](const T& n) { cout << n << endl; }); } int main() { // Create a vector of signed integers with a few elements. vector<int> v; v.push_back(34); v.push_back(-43); v.push_back(56); print_all(v); negate_all(v); cout << "After negate_all():" << endl; print_all(v); }
输出结果:
34 -43 56 After negate_all(): -34 43 -56
9、处理异常
// eh_lambda_expression.cpp // compile with: /EHsc /W4 #include <vector> #include <algorithm> #include <iostream> using namespace std; int main() { // Create a vector that contains 3 elements. vector<int> elements(3); // Create another vector that contains index values. vector<int> indices(3); indices[0] = 0; indices[1] = -1; // This is not a valid subscript. It will trigger an exception. indices[2] = 2; // Use the values from the vector of index values to // fill the elements vector. This example uses a // try/catch block to handle invalid access to the // elements vector. try { for_each(indices.begin(), indices.end(), [&](int index) { elements.at(index) = index; }); } catch (const out_of_range& e) { cerr << "Caught '" << e.what() << "'." << endl; }; }
输出结果:Caught 'invalid vector<T> subscript'.