此代码来自
https://en.cppreference.com/w/cpp/language/fold
template<typename T, typename... Args>
void push_back_vec(std::vector<T>& v, Args&&... args){
static_assert((std::is_constructible_v<T, Args&&> && ...));
(v.push_back(std::forward<Args>(args)), ...);
}
我不明白为什么静态断言检查Args&&而不检查Args?
答案 0 :(得分:1)
当只有类型声明但没有定义(std::is_constructible on incomplete types-在这种情况下,is_constructible是UB)时,这种情况适用于这种极端情况:
struct B;
struct A {
A(const A&) = default;
A(const B&) {}
A(A&&) = default;
A() = default;
};
B&& getB();
template<typename T, typename... Args>
void push_back_vec(std::vector<T>& v, Args&&... args){
static_assert((std::is_constructible_v<T, Args&&> && ...));
(v.push_back(std::forward<Args>(args)), ...);
}
template<typename T, typename... Args>
void push_back_vec2(std::vector<T>& v, Args&&... args){
static_assert((std::is_constructible_v<T, Args> && ...));
(v.push_back(std::forward<Args>(args)), ...);
}
int main(int argc, char* argv[])
{
std::vector<A> a;
push_back_vec(a, A(), A());
push_back_vec2(a, A(), A());
A aa;
push_back_vec(a, aa, aa, A());
push_back_vec2(a, aa, aa, A());
push_back_vec(a, getB());
// code below won't compile
//push_back_vec2(a, aa, A(), getB());
}