1sting
Time Limit: 5000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 4020 Accepted Submission(s): 1493
Problem Description
You will be given a string which only contains ‘1’; You can merge two adjacent ‘1’ to be ‘2’,or leave the ‘1’ there. Surly,you may get many different results. For example,given 1111,you can get 1111,121,112,211,22. Now,your work is to find the total number of result you can get.
Input
The first line is a number n refers to the number of test cases. Then n lines follows,each line has a string made up of ‘1’ . The maximum length of the sequence is 200.
Output
The output contain n lines,each line output the number of result you can get .
Sample Input
3
1
11
11111
Sample Output
1
2
8
//斐波那契数列加大数 正常的斐波那契秩只需一维数组,由于位数太多只能用二维数组来模拟 #include <stdio.h> #include <string.h> int str1[210][300]={{0}}; int main() { int n; scanf("%d",&n); getchar(); while(n--) { char str[300]; gets(str); int len=strlen(str); str1[0][0]=1; str1[1][0]=2; for(int i=2;i<len;i++) { int c=0,k; for(k=0;k<300;k++) { int s=str1[i-1][k]+str1[i-2][k]+c; str1[i][k]=s%10; c=s/10; } while(c) { str1[i][k++]=c%10; c/=10; } } int i; for(i=299;i>=0;i--) //判断是否为零 if(str1[len-1][i]) break; for(int j=i;j>=0;j--) printf("%d",str1[len-1][j]); printf("\n"); } return 0; }