leetcode_303. 区域和检索 - 数组不可变

给定一个整数数组  nums,求出数组从索引 i 到 j(i ≤ j)范围内元素的总和,包含 i、j 两点。

实现 NumArray 类:

NumArray(int[] nums) 使用数组 nums 初始化对象
int sumRange(int i, int j) 返回数组 nums 从索引 i 到 j(i ≤ j)范围内元素的总和,包含 i、j 两点(也就是 sum(nums[i], nums[i + 1], ... , nums[j]))
 

示例:

输入:
["NumArray", "sumRange", "sumRange", "sumRange"]
[[[-2, 0, 3, -5, 2, -1]], [0, 2], [2, 5], [0, 5]]
输出:
[null, 1, -1, -3]

解释:
NumArray numArray = new NumArray([-2, 0, 3, -5, 2, -1]);
numArray.sumRange(0, 2); // return 1 ((-2) + 0 + 3)
numArray.sumRange(2, 5); // return -1 (3 + (-5) + 2 + (-1)) 
numArray.sumRange(0, 5); // return -3 ((-2) + 0 + 3 + (-5) + 2 + (-1))
 

提示:

0 <= nums.length <= 104
-105 <= nums[i] <= 105
0 <= i <= j < nums.length
最多调用 104 次 sumRange 方法

来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/range-sum-query-immutable
著作权归领扣网络所有。商业转载请联系官方授权,非商业转载请注明出处。
class NumArray:

    def __init__(self, nums: List[int]):
        self.nums=nums


    def sumRange(self, i: int, j: int) -> int:
        t=0
        for x in range(i,j+1):
            t+=self.nums[x]
        return t

#前缀加0
class NumArray:

    def __init__(self, nums: List[int]):
        self.s=[0]
        t=0
        for x in nums:
            t+=x
            self.s.append(t)



    def sumRange(self, i: int, j: int) -> int:
        #print(self.s)
        return self.s[j+1]-self.s[i]



# Your NumArray object will be instantiated and called as such:
# obj = NumArray(nums)
# param_1 = obj.sumRange(i,j)
posted @ 2021-02-18 16:28  hqzxwm  阅读(38)  评论(0编辑  收藏  举报