标签:io ar 使用 for on art bs html ad
这个还是一开始没读懂题目,题目如下:
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"
or11
.
11
is read off as"two 1s"
or21
.
21
is read off as"one 2
, thenone 1"
or1211
.Given an integer n, generate the nth sequence.
Note: The sequence of integers will be represented as a string.
这样的规律依次向下,第一个是"1",然后第二个"11"代表一个1,依次递推,然后给一个数,然后返回在这个规律下的第n个数。【我之前看成了返回这种表达方式的n】【泪目】
因为考虑了递归的低效性,所以我打算用迭代来做,噢,对了,顺便说个坑,我在把int转string的时候用到了itoa这个工具函数,然后VS告诉我itoa不是安全函数请使用_itoa,在我改了后又给我弹出error说_itoa也不是安全的了,请使用_itoa_s,当我在VS中调试正常后,结果发现leetcode的OJ不支持_itoa_s。。。。。
所以我就手写了一个itoa,虽然不算太高效,但是还是能用的。这个题目的题解如下:
class Solution { public: string itoa_better(int n) { string tmp = ""; while (n != 0) { tmp += (n % 10 + ‘0‘); n = n / 10; } reverse(tmp.begin(), tmp.end()); return tmp; } string Say(string n) { char word[1] = { n[0] }; int sum = 1; string Say = ""; string Sum = ""; for (string::iterator i = n.begin() + 1; i != n.end(); i++) { if (*i != word[0]) { Say += itoa_better(sum) + word[0]; sum = 0; word[0] = *i; } sum += 1; } Say += itoa_better(sum) + word[0]; return Say; } string countAndSay(int n) { string tmp = "1"; for (int i = 0; i < n - 1; i++) { tmp = Say(tmp); } return tmp; } };
标签:io ar 使用 for on art bs html ad
原文地址:http://www.cnblogs.com/TinyBox/p/4122266.html