194 - 150 逆波兰表达式求值

题目

根据逆波兰表示法,求表达式的值。

有效的运算符包括 +, -, *, / 。每个运算对象可以是整数,也可以是另一个逆波兰表达式。

说明:

  • 整数除法只保留整数部分。

  • 给定逆波兰表达式总是有效的。换句话说,表达式总会得出有效数值且不存在除数为 0 的情况。

示例 1:

输入: ["2", "1", "+", "3", ""] 输出: 9 解释: ((2 + 1) 3) = 9

示例 2:

输入: ["4", "13", "5", "/", "+"] 输出: 6 解释: (4 + (13 / 5)) = 6

示例 3:

输入: ["10", "6", "9", "3", "+", "-11", "", "/", "", "17", "+", "5", "+"] 输出: 22 解释: ((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

解答

感觉这题,应该放在那个基本计算机前面的。。。

应该就是,遇到数字就压入堆栈,遇到符号就弹出顶端的两个,运算,再塞回去。

https://leetcode-cn.com/problems/evaluate-reverse-polish-notation/solution/java-yi-dong-yi-jie-xiao-lu-gao-by-spirit-9-19/

class Solution:
    def evalRPN(self, tokens: List[str]) -> int:
        stack = []
        for t in tokens:
            if t == "+":
                stack.append(stack.pop()+stack.pop())
            elif t == "-":
                stack.append(-stack.pop()+stack.pop())
            elif t == "*":
                stack.append(stack.pop()*stack.pop())
            elif t == "/":
                num = stack.pop()
                stack.append(int(stack.pop()/num))
            else:
                stack.append(int(t))
        return stack.pop()

Runtime: 68 ms, faster than 62.94% of Python3 online submissions for Evaluate Reverse Polish Notation.

Memory Usage: 13 MB, less than 100.00% of Python3 online submissions for Evaluate Reverse Polish Notation.

关键除法有点搞。。

题解的这个减法,非常巧妙,就不用再依靠变量交换位置了。

Previous164 - 72 编辑距离Next115 - 665 非递减数列

Last updated

Was this helpful?