Write a program to find the nth super ugly number.
Super ugly numbers are positive numbers whose all prime factors are in the given prime list primes
of sizek
. For example, [1, 2, 4, 7, 8, 13, 14, 16, 19, 26, 28, 32]
is the sequence of the first 12 super ugly numbers given primes
= [2, 7, 13, 19]
of size 4.
Note:
(1) 1
is a super ugly number for any given primes
.
(2) The given numbers in primes
are in ascending order.
(3) 0 < k
≤ 100, 0 < n
≤ 106, 0 < primes[i]
< 1000.
Credits:
Special thanks to @dietpepsi for adding this problem and creating all test cases.
这道题让我们求超级丑陋数,是之前那两道Ugly Number 丑陋数和Ugly Number II 丑陋数之二的延伸,质数集合可以任意给定,这就增加了难度。但是本质上和Ugly Number II 丑陋数之二没有什么区别,由于我们不知道质数的个数,我们可以用一个idx数组来保存当前的位置,然后我们从每个子链中取出一个数,找出其中最小值,然后更新idx数组对应位置,注意有可能最小值不止一个,要更新所有最小值的位置,参见代码如下:
解法一:
class Solution {
public:
int nthSuperUglyNumber(int n, vector<int>& primes) {
vector<int> res(, ), idx(primes.size(), );
while (res.size() < n) {
vector<int> tmp;
int mn = INT_MAX;
for (int i = ; i < primes.size(); ++i) {
tmp.push_back(res[idx[i]] * primes[i]);
}
for (int i = ; i < primes.size(); ++i) {
mn = min(mn, tmp[i]);
}
for (int i = ; i < primes.size(); ++i) {
if (mn == tmp[i]) ++idx[i];
}
res.push_back(mn);
}
return res.back();
}
};
上述代码可以稍稍改写一下,变得更简洁一些,原理完全相同,参见代码如下:
解法二:
class Solution {
public:
int nthSuperUglyNumber(int n, vector<int>& primes) {
vector<int> dp(n, ), idx(primes.size(), );
for (int i = ; i < n; ++i) {
dp[i] = INT_MAX;
for (int j = ; j < primes.size(); ++j) {
dp[i] = min(dp[i], dp[idx[j]] * primes[j]);
}
for (int j = ; j < primes.size(); ++j) {
if (dp[i] == dp[idx[j]] * primes[j]) {
++idx[j];
}
}
}
return dp.back();
}
};
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参考资料:
https://leetcode.com/discuss/72835/108ms-easy-to-understand-java-solution