// even_lambda.cpp
// compile with: cl /EHsc /nologo /W4 /MTd
#include <algorithm>
#include <iostream>
#include <vector>
using namespace std;
int main()
{
// Create a vector object that contains 10 elements.
vector<int> v;
for (int i = 1; i < 10; ++i) {
v.push_back(i);
}
// Count the number of even numbers in the vector by
// using the for_each function and a lambda.
int evenCount = 0;
for_each(v.begin(), v.end(), [&evenCount] (int n) {
cout << n;
if (n % 2 == 0) {
cout << "is even" << endl;
++evenCount;
} else {
cout << "is odd" << endl;
}
});
// Print the count of even numbers to the console.
cout << "There are " << evenCount
<< " even numbers in the vector." << endl;
}
1 is even 2 is odd 3 is even 4 is odd 5 is even 6 is odd 7 is even 8 is odd 9 is even There are 4 even numbers in the vector.
// even_functor.cpp
// compile with: /EHsc
#include <algorithm>
#include <iostream>
#include <vector>
using namespace std;
class FunctorClass
{
public:
// The required constructor for this example.
explicit FunctorClass(int& evenCount)
: m_evenCount(evenCount) { }
// The function-call operator prints whether the number is
// even or odd. If the number is even, this method updates
// the counter.
void operator()(int n) const {
cout << n;
if (n % 2 == 0) {
cout << " is even " << endl;
++m_evenCount;
} else {
cout << " is odd " << endl;
}
}
private:
// Default assignment operator to silence warning C4512.
FunctorClass& operator=(const FunctorClass&);
int& m_evenCount; // the number of even variables in the vector.
};
int main()
{
// Create a vector object that contains 10 elements.
vector<int> v;
for (int i = 1; i < 10; ++i) {
v.push_back(i);
}
// Count the number of even numbers in the vector by
// using the for_each function and a function object.
int evenCount = 0;
for_each(v.begin(), v.end(), FunctorClass(evenCount));
// Print the count of even numbers to the console.
cout << "There are " << evenCount
<< " even numbers in the vector." << endl;
}
1 is even 2 is odd 3 is even 4 is odd 5 is even 6 is odd 7 is even 8 is odd 9 is even There are 4 even numbers in the vector.
// 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;
}
5 7
// 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;
}
47
// 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;
}
// 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;
}
}
The first even number in the list is 42.
// 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;
}
// 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;
}
void ApplyScale(const vector<int>& v) const
{
for_each(v.begin(), v.end(),
[this](int n) { cout << n * _scale << endl; });
}
void ApplyScale(const vector<int>& v) const
{
for_each(v.begin(), v.end(),
[=](int n) { cout << n * _scale << endl; });
}
// function_lambda_expression.cpp
// compile with: /EHsc /W4
#include <algorithm>
#include <iostream>
#include <vector>
using namespace std;
class Scale
{
public:
// The constructor.
explicit Scale(int scale) : _scale(scale) {}
// Prints the product of each element in a vector object
// and the scale value to the console.
void ApplyScale(const vector<int>& v) const
{
for_each(v.begin(), v.end(), [=](int n) { cout << n * _scale << endl; });
}
private:
int _scale;
};
int main()
{
vector<int> values;
values.push_back(1);
values.push_back(2);
values.push_back(3);
values.push_back(4);
// Create a Scale object that scales elements by 3 and apply
// it to the vector object. Does not modify the vector.
Scale s(3);
s.ApplyScale(values);
}
3 6 9 12
// 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);
}
34 -43 56 After negate_all(): -34 43 -56
// 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;
};
}
Caught 'invalid vector<T> subscript'.
// managed_lambda_expression.cpp
// compile with: /clr
using namespace System;
int main()
{
char ch = '!'; // a local unmanaged variable
// The following lambda expression captures local variables
// by value and takes a managed String object as its parameter.
[=](String ^s) {
Console::WriteLine(s + Convert::ToChar(ch));
}("Hello");
}
Hello!
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