题目
给一非空的单词列表,返回前 k 个出现次数最多的单词。
返回的答案应该按单词出现频率由高到低排序。如果不同的单词有相同出现频率,按字母顺序排序。
示例 1:
输入: ["i", "love", "leetcode", "i", "love", "coding"], k = 2
输出: ["i", "love"]
解析: "i" 和 "love" 为出现次数最多的两个单词,均为2次。
注意,按字母顺序 "i" 在 "love" 之前。
示例 2:
输入: ["the", "day", "is", "sunny", "the", "the", "the", "sunny", "is", "is"], k = 4
输出: ["the", "is", "sunny", "day"]
解析: "the", "is", "sunny" 和 "day" 是出现次数最多的四个单词,
出现次数依次为 4, 3, 2 和 1 次。
注意:
假定 k 总为有效值, 1 ≤ k ≤ 集合元素数。 输入的单词均由小写字母组成。
题解
步骤一 遍历works获取,并通过workCount对象保存数据
步骤二
按count与字母先后顺序排序
步骤三
取出前K个workCount
步骤四
返回只有work的数组
/**
* @param {string[]} words
* @param {number} k
* @return {string[]}
*/
var topKFrequent = function(words, k) {
let workCountList = [];rs=[]
words.forEach(work => {
let workCount = workCountList.find(workCount => workCount.work === work);
if(workCount){
workCount.count += 1
}else{
workCountList.push({work,count:1});
}
})
workCountList.sort((workCountA,workCountB)=> {
if(workCountB.count === workCountA.count){
if(workCountB.work > workCountA.work){
return -1
}
}else{
return workCountB.count - workCountA.count
}
})
workCountList = workCountList.slice(0,k);
workCountList.forEach(workCount =>{
rs.push(workCount.work)
})
return rs
};
