1. Evaluate Reverse Polish Notation

Evaluate the value of an arithmetic expression in Reverse Polish Notation.

Valid operators are +, -, *, /. Each operand may be an integer or another expression.

Note:

• Division between two integers should truncate toward zero.
• The given RPN expression is always valid. That means the expression would always evaluate to a result and there won't be any divide by zero operation.

Example 1:

Input: ["2", "1", "+", "3", "*"]

Output: 9

Explanation: ((2 + 1) * 3) = 9

Example 2:

Input: ["4", "13", "5", "/", "+"]

Output: 6

Explanation: (4 + (13 / 5)) = 6

Example 3:

Input: ["10", "6", "9", "3", "+", "-11", "*", "/", "*", "17", "+", "5", "+"]

Output: 22

Explanation:

  ((10 * (6 / ((9 + 3) * -11))) + 17) + 5

= ((10 * (6 / (12 * -11))) + 17) + 5

= ((10 * (6 / -132)) + 17) + 5

= ((10 * 0) + 17) + 5

= (0 + 17) + 5

= 17 + 5

= 22

解 逆波兰表达式中，两个操作数紧跟一个运算符

class Solution {

public:

    int evalRPN(vector<string>& tokens) {

        stack<int>s1;

        for(int i = 0; i < tokens.size(); ++i){

            if(tokens[i].size() == 1 && !isdigit(tokens[i][0])){

                int x1 = s1.top();

                s1.pop();

                int x2 = s1.top();

                s1.pop();

                s1.push(compute(x2, x1, tokens[i]));

            }else{

                s1.push(stoi(tokens[i]));

            }

        }

        return s1.top();

    }

    int compute(int &x1, int &x2, string &op){

        if(op == "+"){

            return x1 + x2;

        }else if(op == "-"){

            return x1 - x2;

        }else if(op == "*"){

            return x1 * x2;

        }else if(op == "/"){

            return x1 / x2;

        }

        return -1;

    }

};

Note : 影响代码速度

1. for循环中直接枚举会慢一些
2. 函数传参时，传值会慢一些，尽量使用传引用