pta 1140 Look-and-say Sequence (20 分)
阿新 • • 發佈:2018-12-07
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
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 DInput 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
題意:
例:D, D1--(1個D), D111--(1個D 1個1), D113--(1個D 3個1), D11231--(1個D 2個1 1個3)
給出D和N
輸出第n個數
測試得出 1 40
的長度為16138;可以確定範圍
程式碼如下:思路清晰就好做很多,我剛開始一直在一些細節上出問題,導致輸出的很奇怪;注意int轉char時+'0';
1 #include<bits/stdc++.h> 2 using namespace std; 3 #define ll long long 4 char a[100000],b[100000]; 5 6 int main() 7 { 8 int d,n; 9 cin >> d >> n; 10 a[0] = d + '0'; 11 int co = 0; 12 char st; 13 if(n == 1) 14 { 15 cout << a[0] << endl; 16 return 0; 17 } 18 else 19 for(int i = 1;i < n;i++) 20 { 21 st = d + '0';//第一個數一直不會改變 22 int num = 0;//記錄個數 23 int len = strlen(a); 24 for(int j = 0;j < len;j++) 25 { 26 if(a[j] == st) 27 num++; 28 else 29 { 30 b[co++] = st; 31 st = a[j];//更新st 32 b[co++] = num + '0'; 33 num = 1;//更新num 34 } 35 } 36 b[co++] = st;//最後一個在迴圈裡無法錄入,所以單獨記錄 37 b[co++] = num + '0'; 38 for(int i1 = 0;i1 < co;i1++) 39 a[i1] = b[i1]; 40 co = 0; 41 } 42 cout << a << endl; 43 return 0; 44 }