[LeetCode] 2460. Apply Operations to an Array
You are given a 0-indexed array nums
of size n
consisting of non-negative integers.
You need to apply n - 1
operations to this array where, in the ith
operation (0-indexed), you will apply the following on the ith
element of nums
:
- If
nums[i] == nums[i + 1]
, then multiplynums[i]
by2
and setnums[i + 1]
to0
. Otherwise, you skip this operation.
After performing all the operations, shift all the 0
's to the end of the array.
- For example, the array
[1,0,2,0,0,1]
after shifting all its0
's to the end, is[1,2,1,0,0,0]
.
Return the resulting array.
Note that the operations are applied sequentially, not all at once.
Example 1:
Input: nums = [1,2,2,1,1,0] Output: [1,4,2,0,0,0] Explanation: We do the following operations: - i = 0: nums[0] and nums[1] are not equal, so we skip this operation. - i = 1: nums[1] and nums[2] are equal, we multiply nums[1] by 2 and change nums[2] to 0. The array becomes [1,4,0,1,1,0]. - i = 2: nums[2] and nums[3] are not equal, so we skip this operation. - i = 3: nums[3] and nums[4] are equal, we multiply nums[3] by 2 and change nums[4] to 0. The array becomes [1,4,0,2,0,0]. - i = 4: nums[4] and nums[5] are equal, we multiply nums[4] by 2 and change nums[5] to 0. The array becomes [1,4,0,2,0,0]. After that, we shift the 0's to the end, which gives the array [1,4,2,0,0,0].
Example 2:
Input: nums = [0,1] Output: [1,0] Explanation: No operation can be applied, we just shift the 0 to the end.
Constraints:
2 <= nums.length <= 2000
0 <= nums[i] <= 1000
对数组执行操作。
给你一个下标从 0 开始的数组 nums ,数组大小为 n ,且由 非负 整数组成。
你需要对数组执行 n - 1 步操作,其中第 i 步操作(从 0 开始计数)要求对 nums 中第 i 个元素执行下述指令:
如果 nums[i] == nums[i + 1] ,则 nums[i] 的值变成原来的 2 倍,nums[i + 1] 的值变成 0 。否则,跳过这步操作。
在执行完 全部 操作后,将所有 0 移动 到数组的 末尾 。例如,数组 [1,0,2,0,0,1] 将所有 0 移动到末尾后变为 [1,2,1,0,0,0] 。
返回结果数组。注意 操作应当 依次有序 执行,而不是一次性全部执行。
来源:力扣(LeetCode)
链接:https://leetcode.cn/problems/apply-operations-to-an-array
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思路是追击型双指针,如果没有做过283题,建议先做一下,本题跟283题几乎一样。
时间O(n)
空间O(n)
Java实现
1 class Solution { 2 public int[] applyOperations(int[] nums) { 3 int n = nums.length; 4 for (int i = 0; i < n - 1; i++) { 5 if (nums[i] == nums[i + 1]) { 6 nums[i] = nums[i] * 2; 7 nums[i + 1] = 0; 8 } 9 } 10 11 int cur = 0; 12 for (int i = 0; i < n; i++) { 13 if (nums[i] != 0) { 14 nums[cur] = nums[i]; 15 cur++; 16 } 17 } 18 while (cur < n) { 19 nums[cur] = 0; 20 cur++; 21 } 22 return nums; 23 } 24 }
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