用函数模板交换字符串问题
本帖最后由 YJSzhou 于 2022-8-6 16:18 编辑为什么用函数模板,交换函数中只是简单传字符串交换,输出结果为
交换前:s1=布丁,s2=补丁
交换后:s1=补丁,s2=布丁
template<class T>
void swap(T a, T b)
{
T temp = a;
a = b;
b = temp;
}
int main()
{
std::string s1 = "布丁";
std::string s2 = "补丁";
std::cout << "交换前:s1=" << s1 << ",s2=" << s2 << "\n";
swap(s1, s2);
std::cout << "交换后:s1=" << s1 << ",s2=" << s2 << "\n";
return 0;
}
#include <iostream>
#if 0
template <class T>
void swap(T &a, T &b) {
T temp = a;
a = b;
b = temp;
}
int main() {
std::string s1 = "布丁";
std::string s2 = "补丁";
std::cout << "交换前:s1=" << s1 << ",s2=" << s2 << "\n";
swap(s1, s2);
std::cout << "交换后:s1=" << s1 << ",s2=" << s2 << "\n";
return 0;
}
#else
template <class T>
void swap(T *a, T *b) {
T temp = *a;
*a = *b;
*b = temp;
}
int main() {
std::string s1 = "布丁";
std::string s2 = "补丁";
std::cout << "交换前:s1=" << s1 << ",s2=" << s2 << "\n";
swap(&s1, &s2);
std::cout << "交换后:s1=" << s1 << ",s2=" << s2 << "\n";
return 0;
}
#endif
1. 没明白你想说什么。
2. 你的代码输出结果应为:
交换前:s1=布丁,s2=补丁
交换后:s1=布丁,s2=补丁
3. void swap(T a, T b) 是传值,函数内的修改对函数外没影响。
该代码要实现交换的正确方式是传址(传引用) void swap(T &a, T &b) 当变量传入函数时,变为形参,接下来的事就与s1,s2无关,
加上&取地址符后,就是对原值操作
或者加上inline ,即在main内执行
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