package y2019.Algorithm.array; /** * @ProjectName: cutter-point * @Package: y2019.Algorithm.array * @ClassName: SumEvenAfterQueries * @Author: xiaof * @Description: 985. Sum of Even Numbers After Queries * * We have an array A of integers, and an array queries of queries. * For the i-th query val = queries[i][0], index = queries[i][1], we add val to A[index]. * Then, the answer to the i-th query is the sum of the even values of A. * (Here, the given index = queries[i][1] is a 0-based index, and each query permanently modifies the array A.) * Return the answer to all queries. Your answer array should have answer[i] as the answer to the i-th query. * * Input: A = [1,2,3,4], queries = [[1,0],[-3,1],[-4,0],[2,3]] * Output: [8,6,2,4] * Explanation: * At the beginning, the array is [1,2,3,4]. * After adding 1 to A[0], the array is [2,2,3,4], and the sum of even values is 2 + 2 + 4 = 8. * After adding -3 to A[1], the array is [2,-1,3,4], and the sum of even values is 2 + 4 = 6. * After adding -4 to A[0], the array is [-2,-1,3,4], and the sum of even values is -2 + 4 = 2. * After adding 2 to A[3], the array is [-2,-1,3,6], and the sum of even values is -2 + 6 = 4. * * @Date: 2019/7/4 16:35 * @Version: 1.0 */ public class SumEvenAfterQueries { public int[] solution(int[] A, int[][] queries) { int[] result = new int[queries.length]; for(int i = 0; i < queries.length; ++i) { //计算操作 int[] temp = queries[i]; A[temp[1]] = A[temp[1]] + temp[0]; //计算相应位置的数据 int tempResult = 0; for(int j = 0; j < A.length; ++j) { if((A[j] & 1) == 0) { tempResult += A[j]; } } result[i] = tempResult; } return result; } public static void main(String args[]) { int[] A = {1,2,3,4}; int[][] queries = {{1,0},{-3,1},{-4,0},{2,3}}; SumEvenAfterQueries fuc = new SumEvenAfterQueries(); System.out.println(fuc.solution(A, queries)); } }