题目:
Given an integer array nums, return the number of range sums that lie in [lower, upper] inclusive.
Range sum S(i, j) is defined as the sum of the elements in nums between indices i and j (i ≤ j), inclusive.
Note:
A naive algorithm of O(n2) is trivial. You MUST do better than that.
Example:
Given nums = [-2, 5, -1], lower = -2, upper = 2, Return 3. The three ranges are : [0, 0], [2, 2], [0, 2] and their respective sums are: -2, -1, 2.
提示:
这道题最直观的一个想法就是枚举出所有的子数组,然后检查他们是否在要求的取值范围内,这种方法的时间复杂度是O(n^2)的,显然会超时。
看到这种题目最容易想到的是什么呢?Two Pointers!对,但是在这道题上仅仅使用Two Pointers肯定是不够的,在Two Pointers的思想基础上,融合归并排序,就能找到一个比较好的解决方案。
这里我们的排序对象是前缀求和数组,在归并排序的合并阶段,我们有左数组和右数组,且左和右数组都是排好序的,所以我们可以用i遍历左数组,j,k两个指针分别取在右数组搜索,使得:
- sums[j] - sums[i] < upper
- sums[k] - sums[i] >= lower
那么此时,我们就找到了j-k个符合要求的子数组。
由于左右数组都是排好序的,所以当i递增之后,j和k的位置不用从头开始扫描。
最后还有一点需要注意的就是,为了防止溢出,我们的vector容纳的是long long型元素。
代码:
class Solution {
public:
int countRangeSum(vector<int>& nums, int lower, int upper) {
int n = nums.size();
if (n <= ) {
return ;
}
vector<long long> sums(n + , );
for (int i = ; i < n; ++i) {
sums[i+] = sums[i] + nums[i];
}
return merge(sums, , n, lower, upper);
}
int merge(vector<long long>& sums, int start, int end, int lower, int upper) {
if (start >= end) {
return ;
}
int mid = start + (end - start) / ;
int count = merge(sums, start, mid, lower, upper) + merge(sums, mid + , end, lower, upper);
vector<long long> tmp(end - start + , );
int j = mid + , k = mid + , t = mid + , i = start, r = ;
for (; i <= mid; ++i, ++r) {
while (j <= end && sums[j] - sums[i] <= upper) ++j;
while (k <= end && sums[k] - sums[i] < lower) ++k;
count += j - k;
while (t <= end && sums[t] <= sums[i]) tmp[r++] = sums[t++];
tmp[r] = sums[i];
}
for (int i = ; i < r; ++i) {
sums[start + i] = tmp[i];
}
return count;
}
};