难度:简单
给你一个日志数组 logs。每条日志都是以空格分隔的字串,其第一个字为字母与数字混合的 标识符 。
有两种不同类型的日志:
- 字母日志:除标识符之外,所有字均由小写字母组成
- 数字日志:除标识符之外,所有字均由数字组成
请按下述规则将日志重新排序:
- 所有 字母日志 都排在 数字日志 之前。
- 字母日志 在内容不同时,忽略标识符后,按内容字母顺序排序;在内容相同时,按标识符排序。
- 数字日志 应该保留原来的相对顺序。
返回日志的最终顺序。
输入:logs = ["dig1 8 1 5 1","let1 art can","dig2 3 6","let2 own kit dig","let3 art zero"]
输出:["let1 art can","let3 art zero","let2 own kit dig","dig1 8 1 5 1","dig2 3 6"]
解释:
字母日志的内容都不同,所以顺序为 "art can", "art zero", "own kit dig" 。
数字日志保留原来的相对顺序 "dig1 8 1 5 1", "dig2 3 6" 。
输入:logs = ["a1 9 2 3 1","g1 act car","zo4 4 7","ab1 off key dog","a8 act zoo"]
输出:["g1 act car","a8 act zoo","ab1 off key dog","a1 9 2 3 1","zo4 4 7"]
/**
* 自定义排序
* @desc 时间复杂度 O(NlogN) 空间复杂度 O(N)
* @param logs
* @returns
*/
export function reorderLogFiles(logs: string[]): string[] {
return logs
.map<[string, number]>((log, i) => [log, i])
.sort((a, b) => logCompare(a, b))
.map(item => item[0])
function logCompare(a: [string, number], b: [string, number]): number {
const log1 = split(a[0])
const log2 = split(b[0])
const isDigit1 = !isNaN(Number(log1[1][0]))
const isDigit2 = !isNaN(Number(log2[1][0]))
if (isDigit1 && isDigit2)
return a[1] - b[1]
if (!isDigit1 && !isDigit2) {
const sc = compareTo(log1[1], log2[1])
if (sc !== 0) return sc
return compareTo(log1[0], log2[0])
}
return isDigit1 ? 1 : -1
}
function split(str: string, separator = ' '): string[] {
const arr = str.split(separator)
return [arr.shift()!, arr.join(separator)]
}
function compareTo(left: string, right: string): -1 | 0 | 1 {
let diff: number
for (let i = 0; i < Math.min(left.length, right.length); i++) {
diff = left[i].charCodeAt(0) - right[i].charCodeAt(0)
if (diff !== 0)
return diff < 0 ? -1 : 1
}
diff = left.length - right.length
return diff === 0
? 0
: diff < 0
? -1
: 1
}
}