Leetcode. 682. Baseball Game

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682. Baseball Game

Input: ["5","2","C","D","+"]
Output: 30
Explanation: 
Round 1: You could get 5 points. The sum is: 5.
Round 2: You could get 2 points. The sum is: 7.
Operation 1: The round 2's data was invalid. The sum is: 5.  
Round 3: You could get 10 points (the round 2's data has been removed). The sum is: 15.
Round 4: You could get 5 + 10 = 15 points. The sum is: 30.

Example 2:

Input:["5","-2","4","C","D","9","+","+"]
Output: 27
Explanation:
Round 1: You could get 5 points. The sum is: 5.
Round 2: You could get -2 points. The sum is: 3.
Round 3: You could get 4 points. The sum is: 7.
Operation 1: The round 3's data is invalid. The sum is: 3.  
Round 4: You could get -4 points (the round 3's data has been removed). The sum is: -1.
Round 5: You could get 9 points. The sum is: 8.
Round 6: You could get -4 + 9 = 5 points. The sum is 13.
Round 7: You could get 9 + 5 = 14 points. The sum is 27.

Note:

• The size of the input list will be between 1 and 1000.
• Every integer represented in the list will be between -30000 and 30000.

• 思路：

  用LinkedList辅助实现，并设置变量sum，记录和。
  如果是C，删掉LinkedList最后的元素，并且sum要减去最后元素的值；
  如果是D，LinkedList最后元素要乘以2，并将结果加入到LinkedList中，最后sum要加上这个结果；
  如果是+，LinkedList最后两个元素相加，并将结果加入到LinkedList中，最后sum要加上这个结果；

  class Solution {public int calPoints(String[] ops) {LinkedList<Integer> list = new LinkedList();int sum = 0;for(int i = 0; i < ops.length; i++) {if("C".equals(ops[i])) {sum -= list.removeLast();}else if("D".equals(ops[i])) {list.add(list.getLast() << 1);sum += list.getLast();}else if("+".equals(ops[i])) {int a = list.removeLast();int b = list.getLast();list.add(a);list.add(a + b);sum += a+b;}else {int n = Integer.parseInt(ops[i]);list.add(n);sum += n;}}return sum;}
  }

  

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