为什么在 C++ 中存在从指针到 bool 的隐式类型转换?
考虑类 foo 有两个这样定义的构造函数:
Consider the class foo with two constructors defined like this:
class foo
{
public:
foo(const std::string& filename) {std::cout << "ctor 1" << std::endl;}
foo(const bool some_flag = false) {std::cout << "ctor 2" << std::endl;}
};
用字符串字面量实例化类,猜猜调用的是哪个构造函数?
Instantiate the class with a string literal, and guess which constructor is called?
foo a ("/path/to/file");
输出:
构造函数 2
我不了解您,但我不认为这是编程史上最直观的行为.不过,我敢打赌它有一些巧妙的理由,我想知道那可能是什么?
I don't know about you, but I don't find that the most intuitive behavior in programming history. I bet there is some clever reason for it, though, and I'd like to know what that might be?
推荐答案
在 C 中写这个很常见
It's very common in C to write this
void f(T* ptr) {
if (ptr) {
// ptr is not NULL
}
}
你应该创建一个 const char* 构造函数.
You should make a const char* constructor.
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