leetcode------Count and Say
标题: | Count and Say |
通过率: | 25.8% |
难度: | 简单 |
The count-and-say sequence is the sequence of integers beginning as follows:1, 11, 21, 1211, 111221, ...
1
is read off as "one 1"
or 11
.11
is read off as "two 1s"
or 21
.21
is read off as "one 2
, then one 1"
or 1211
.
Given an integer n, generate the nth sequence.
Note: The sequence of integers will be represented as a string.
我感觉这个题目没有描述清楚,看了白天,查了半天我才明白,他给的例子应该到第六个这样就清楚了。
n=1时,由于没有n=0 输出1;
n=2时,看n=1,只有一个1所以输出11,意思就是一个1
n=3时,看n=2,两个1所以输出21,意思就是两个1,
一次类推。
根据n数量去更新字符串就行了,从位置1开始每次比较前一个位置的元素,相同则计数器叠加,不同则存入。字符串又支持覆盖操作,比数组操作简单多了。直接看代码:
1 public class Solution { 2 public String countAndSay(int n) { 3 if(n==1)return "1"; 4 String result="1"; 5 int count=1,level=1; 6 while(level<n){ 7 StringBuffer tmp=new StringBuffer(); 8 count=1; 9 for(int i=1;i<result.length();i++){ 10 if(result.charAt(i)==result.charAt(i-1))count++; 11 else{ 12 tmp.append(count); 13 tmp.append(result.charAt(i-1)); 14 count=1; 15 } 16 } 17 tmp.append(count); 18 tmp.append(result.charAt(result.length()-1)); 19 result=tmp.toString(); 20 level++; 21 } 22 return result; 23 } 24 }