要求
根据 逆波兰表示法,求表达式的值。
有效的算符包括 +、-、*、/ 。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:tokens = ["2","1","+","3","*"]
输出:9
解释:该算式转化为常见的中缀算术表达式为:((2 + 1) * 3) = 9
示例 2:
输入:tokens = ["4","13","5","/","+"]
输出:6
解释:该算式转化为常见的中缀算术表达式为:(4 + (13 / 5)) = 6
示例 3:
输入:tokens = ["10","6","9","3","+","-11","*","/","*","17","+","5","+"]
输出:22
解释:
该算式转化为常见的中缀算术表达式为:
((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
核心代码
class Solution:
def evalRPN(self, tokens: List[str]) -> int:
stack = []
for item in tokens:
if item in ["+","-","*","/"]:
if item == "+":
temp = int(stack[-2]) + int(stack[-1])
elif item == "-":
temp = int(stack[-2]) - int(stack[-1])
elif item == "*":
temp = int(stack[-2]) * int(stack[-1])
elif item == "/":
temp = int(float(stack[-2]) / float(stack[-1]))
stack.pop()
stack.pop()
stack.append(temp)
else:
stack.append(item)
return int(stack[0])
解题思路:水题,按照题目的意思使用栈完成加减乘除即可,学会了 if A elif B elif C elif D 可以写成 if i in [A,B,C,D]的形式.
