1140 Look-and-say Sequence (20 分)
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1140 Look-and-say Sequence (20 分)
Look-and-say sequence is a sequence of integers as the following:
D, D1, D111, D113, D11231, D112213111, ...
where D
is in [0, 9] except 1. The (n+1)st number is a kind of description of the nth number. For example, the 2nd number means that there is one D
in the 1st number, and hence it is D1
; the 2nd number consists of one D
(corresponding to D1
) and one 1 (corresponding to 11), therefore the 3rd number is D111
; or since the 4th number is D113
, it consists of one D
, two 1's, and one 3, so the next number must be D11231
. This definition works for D
= 1 as well. Now you are supposed to calculate the Nth number in a look-and-say sequence of a given digit D
.
Input Specification:
Each input file contains one test case, which gives D
(in [0, 9]) and a positive integer N (≤ 40), separated by a space.
Output Specification:
Print in a line the Nth number in a look-and-say sequence of D
.
Sample Input:
1 8
Sample Output:
1123123111
题目大意:给两个数字D和n,第一个序列是D,后一个序列描述前一个序列的所有数字以及这个数字出现的次数,
比如D出现了1次,那么第二个序列就是D1,对于第二个序列D1,
第三个序列这样描述:D出现1次,1出现1次,所以是D111……以此类推,输出第n个序列~
分析: 用string s接收所需变幻的数字,每次遍历s,从当前位置i开始,
看后面有多少个与s[i]相同,设j处开始不相同,
那么临时字符串 t += s[i] + to_string(j – i);然后再将t赋值给s,
cnt只要没达到n次就继续加油循环下一次,最后输出s的值~
#include <iostream>
using namespace std;
int main() {
string s;
int n, j;
cin >> s >> n;
for (int cnt = 1; cnt < n; cnt++) {
string t;
for (int i = 0; i < s.length(); i = j) {
for (j = i; j < s.length() && s[j] == s[i]; j++);
t += s[i] + to_string(j - i);
}
s = t;
}
cout << s;
return 0;
}
标签:1140,20,Look,sequence,number,say,序列,D1,string 来源: https://blog.csdn.net/S_999999/article/details/98876501