LeetCode 1170.比较字符串最小字母出现频次
定义一个函数 f(s),统计 s 中(按字典序比较)最小字母的出现频次 ,其中 s 是一个非空字符串。
例如,若 s = “dcce”,那么 f(s) = 2,因为字典序最小字母是 “c”,它出现了 2 次。
现在,给你两个字符串数组待查表 queries 和词汇表 words 。对于每次查询 queries[i] ,需统计 words 中满足 f(queries[i]) < f(W) 的 词的数目 ,W 表示词汇表 words 中的每个词。
请你返回一个整数数组 answer 作为答案,其中每个 answer[i] 是第 i 次查询的结果。
示例 1:
输入:queries = [“cbd”], words = [“zaaaz”]
输出:[1]
解释:查询 f(“cbd”) = 1,而 f(“zaaaz”) = 3 所以 f(“cbd”) < f(“zaaaz”)。
示例 2:
输入:queries = [“bbb”,“cc”], words = [“a”,“aa”,“aaa”,“aaaa”]
输出:[1,2]
解释:第一个查询 f(“bbb”) < f(“aaaa”),第二个查询 f(“aaa”) 和 f(“aaaa”) 都 > f(“cc”)。
提示:
1 <= queries.length <= 2000
1 <= words.length <= 2000
1 <= queries[i].length, words[i].length <= 10
queries[i][j]、words[i][j] 都由小写英文字母组成
首先统计出words数组中每个字符串的最小字母出现频次,然后对频次数组排序,之后遍历queries,对于每个遍历到的查询,计算该查询字符串的最小字母出现频次q,然后二分查找words中有多少字符串的最小字母出现频次大于q:
class Solution {
public:vector<int> numSmallerByFrequency(vector<string>& queries, vector<string>& words) {vector<int> wordLeastNum(words.size());for (int i = 0; i < words.size(); ++i) {wordLeastNum[i] = getLeastNum(words[i]);}sort(wordLeastNum.begin(), wordLeastNum.end());vector<int> ans(queries.size());for (int i = 0; i < queries.size(); ++i) {int leastNum = getLeastNum(queries[i]);int curAns = wordLeastNum.size();int l = 0;int r = wordLeastNum.size() - 1;while (l <= r) {int m = l + (r - l) / 2;if (wordLeastNum[m] > leastNum) {curAns = m;r = m - 1;} else {l = m + 1;}}ans[i] = wordLeastNum.size() - curAns;}return ans;}int getLeastNum(string &s) {char least = 'z';int num = 0;for (char c : s) {if (c < least) {least = c;num = 1;} else if (least == c) {++num;}}return num;}
};
如果queries的长度为n,words的长度为m,每个字符串的平均长度为l,则此算法时间复杂度为O((m+n)(l+logm)),空间复杂度为O(m)。