题目描述:
Evaluate the value of an arithmetic expression in Reverse Polish Notation.Valid operators are+,-,*,/. Each operand may be an integer or another expression.Some examples:
["2", "1", "+", "3", "*"] -> ((2 + 1) * 3) -> 9 ["4", "13", "5", "/", "+"] -> (4 + (13 / 5)) -> 6
思路:利用栈
解法一:
import java.util.*; public class Solution { public int evalRPN(String[] tokens) { Stack<Integer> s=new Stack<Integer>(); for(int i=0;i<tokens.length;i++){ switch(tokens[i]){ case "+": s.push(s.pop()+s.pop()); break; case "-": int num1=s.pop(); int num2=s.pop(); s.push(num2-num1); break; case "*": s.push(s.pop()*s.pop()); break; case "/": int num3=s.pop(); int num4=s.pop(); s.push(num4/num3); break; default: s.push(Integer.parseInt(tokens[i])); } } return s.pop(); } }
解法二: import java.util.*; public class Solution { public int evalRPN(String[] tokens) { Stack<Integer> stack=new Stack<Integer>(); for(int i=0;i<tokens.length;i++){ try{ int num=Integer.parseInt(tokens[i]); stack.add(num); }catch(Exception e){ int b=stack.pop(); int a=stack.pop(); stack.add(get(a,b,tokens[i])); } } return stack.pop(); } private int get(int a,int b,String operator){ switch(operator){ case "+": return a+b; case "-": return a-b; case "*": return a*b; case "/": return a/b; default: return 0; } } }