package y2019.Algorithm.array;
/**
* @ProjectName: cutter-point
* @Package: y2019.Algorithm.array
* @ClassName: ArrayPairSum
* @Author: xiaof
* @Description: 561. Array Partition I
* Given an array of 2n integers, your task is to group these integers into n pairs of integer,
* say (a1, b1), (a2, b2), ..., (an, bn) which makes sum of min(ai, bi) for all i from 1 to n as large as possible.
*
* Input: [1,4,3,2]
*
* Output: 4
* Explanation: n is 2, and the maximum sum of pairs is 4 = min(1, 2) + min(3, 4).
*
* 给定一个长度为2n(偶数)的数组,分成n个小组,返回每组中较小值的和sum,使sum尽量大
* @Date: 2019/7/2 17:24
* @Version: 1.0
*/
public class ArrayPairSum {
public int solution(int[] nums) {
//这个题的求每组中小的值,最后求和,尽量大,那就是说相近的数据最好放一组,不然差距很大,会导致最后值相差很大
quikSort(nums, 0, nums.length);
//排完序之后,叉开获取数据和即可
int result = 0;
for(int i = 0; i < nums.length; i += 2) {
result += nums[i];
}
return result;
}
private void quikSort(int[] array, int left, int right) {
if(left < right) {
int mid = partitionSort(array, left, right);
quikSort(array, left, mid);
quikSort(array, mid + 1, right);
}
}
private int partitionSort(int[] array, int left, int right) {
// if(left == right || left > right) {
// return left;
// }
int midValue = array[left];
int start = left;
int end = right;
//分区排序
do {
do { ++ start; } while(start < right && array[start] < midValue);
do {
--end;
} while(left < end && array[end] > midValue);
//交换
if(start < end) {
int temp = array[start];
array[start] = array[end];
array[end] = temp;
}
} while(start < end);
//交换完毕之后,最后吧坑填上,这个时候left和right错开一位,所以right再left的左边
array[left] = array[end];
array[end] = midValue;
return end;
}
public static void main(String args[]) {
int A1[] = {1,4,3,2};
ArrayPairSum fuc = new ArrayPairSum();
System.out.println(fuc.solution(A1));
}
}
浙公网安备 33010602011771号