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
题意:
若干个1,可以选择相邻两个合并成2。问有多少种可能的结果。
分析:递推加大数~
递推公式为db[i] = db[i-1] + db[i-2],斐波那契数列。
怎么推导出来的呢~~~我能说我是看出来的麽~
设有n个1,可以构成f(n)种。则加一个1的时候,前面n种仍然成立 f(n+1)=f(n)+*;
第n+1个1和第n个1相加构成2,前面n-1个1可以组合的个数。 f(n+1)=f(n)+f(n-1);
大数~用java很好过的~c的话,只能用数组模拟了。
import java.math.BigInteger;
import java.util.Scanner;
public class Main{
static BigInteger db[] = new BigInteger[201];
public static void main(String[] args) {
dabiao();
Scanner sc = new Scanner(System.in);
int t=sc.nextInt();
while(t-->0){
String str =sc.next();
int n =str.length();
System.out.println(db[n]);
}
}
private static void dabiao() {
db[1]=new BigInteger("1");
db[2]=new BigInteger("2");
for(int i=3;i<db.length;i++){
db[i]=db[i-1].add(db[i-2]);
}
}
}
