Created
December 11, 2013 04:12
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在C++中,Foo a = Foo()是否会调用复制构造函数。
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| #include<iostream> | |
| using namespace std; | |
| class Foo{ | |
| public: | |
| Foo(){ | |
| cout << "Foo constructor" << endl; | |
| } | |
| Foo(const Foo&){ | |
| cout << "Foo copy contructor" << endl; | |
| } | |
| }; | |
| int main(){ | |
| cout << "case a:" << endl; | |
| Foo a(); | |
| cout << "case b:" << endl; | |
| Foo b; | |
| cout << "case c:" << endl; | |
| Foo c = Foo(); | |
| return 0; | |
| } | |
| /* | |
| # 输出: | |
| case a: | |
| case b: | |
| Foo constructor | |
| case c: | |
| Foo constructor | |
| # 解释: | |
| case a什么也不会输出, | |
| 因为它只是声明了一个函数。 | |
| 函数的返回值类型是Foo,函数名是a,参数列表为空。 | |
| case b和case c输出一样, | |
| case c并没有经过复制构造函数, | |
| 查看汇编代码可以看见, | |
| 它把复制构造的过程优化掉了。 | |
| */ |
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