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71 lines
2.8 KiB
Markdown
71 lines
2.8 KiB
Markdown
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# [313. Super Ugly Number](https://leetcode.com/problems/super-ugly-number/)
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# 思路
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此题要求第n个超级丑陋的数, 与[264. Ugly Number II.md](https://leetcode.com/problems/ugly-number-ii/)是类似的, 只是这里质数可以任意给定,
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加大了难度, 但本质是一样的. 大致思路就是直接从给定的质数构造ugly数, 可参见[264 题解](https://github.com/ShusenTang/LeetCode/blob/master/solutions/264.%20Ugly%20Number%20II.md).
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# 思路一
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在求k个候选值的最小值时, 可以采用直接遍历一遍的思路, 这样总的复杂度就是O(kn).
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> STL中`min_element`和`max_element`可以求一个vector的最小/大值, 返回的是迭代器.
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# 思路二
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当k比较大时候思路一就显得可优化了, 我们可以维护一个大小为k的候选值最小堆, 每个元素包含两个域: value和idx, 分别代表值和由哪一个质数得来, 可以用pair实现.
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每当我们从堆顶pop出一个元素, 这个元素的value就是下一个丑陋的数(注意可能重复), 这个元素的idx就代表从哪一个质数得来, 应该将该质数的idx加一, 再向堆中插入下一个候选值.
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由于向堆中插入和pop都是对数级别的, 所以总的时间复杂度就是O(nlogk). (但是实测比方法一慢, 猜想可能是由于测试样例k不是很大)
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> 注意学习`pair`以及`priority_queue`的用法.
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# C++
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## 思路一
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``` C++
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class Solution {
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public:
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int nthSuperUglyNumber(int n, vector<int>& primes) {
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vector<int>nums(n, INT_MAX), candidate(primes.begin(), primes.end()), idx(n, 0);
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nums[0] = 1;
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for(int i = 1; i < n; i++){
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// nums[i] = *min_element(candidate.begin(), candidate.end());
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for(int &c: candidate) nums[i] = min(nums[i], c);
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for(int j = 0; j < primes.size(); j++)
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if(candidate[j] == nums[i])
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candidate[j] = nums[++idx[j]] * primes[j];
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}
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return nums.back();
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}
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};
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```
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## 思路二
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``` C++
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class Solution {
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public:
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int nthSuperUglyNumber(int n, vector<int>& primes) {
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vector<int> nums(n, INT_MAX), idx(prime_n, 0);
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nums[0] = 1;
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int prime_n = primes.size();
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// value, produce_by_which_prime
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priority_queue<pair<int, int>, vector<pair<int, int>>, greater<pair<int,int>>> minheap;
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for(int i = 0; i < prime_n; i++)
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minheap.push({primes[i], i});
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int count = 1;
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while(count < n){
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pair<int, int>next = minheap.top();
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minheap.pop();
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if(nums[count - 1] != next.first){
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nums[count] = next.first;
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count++;
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} // 避免重复
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idx[next.second]++;
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minheap.push({nums[idx[next.second]] * primes[next.second], next.second});
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}
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return nums.back();
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}
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};
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```
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