How Many Equations Can You Find
Time Limit:1000MS Memory Limit:32768KB 64bit IO Format:%I64d & %I64u
Description
Now give you an string which only contains 0, 1 ,2 ,3 ,4 ,5 ,6 ,7 ,8 ,9.You are asked to add the sign ‘+’ or ’-’ between the characters. Just like give you a string “12345”, you can work out a string “123+4-5”. Now give you an integer N, please tell me how many ways can you find to make the result of the string equal to N .You can only choose at most one sign between two adjacent characters.
Input
Each case contains a string s and a number N . You may be sure the length of the string will not exceed 12 and the absolute value of N will not exceed 999999999999.
Output
The output contains one line for each data set : the number of ways you can find to make the equation.
Sample Input
123456789 3 21 1
Sample Output
18 1
简单翻译:
给你两个数n,m.你需要在n的中间填上加号或减号,或者不填。让n这个部分的值等于m。问有多少种方案。
举个例子:n=12345.
你可以操作它,使它变成这样 123+4-5=122。
解题思路:
dfs,考虑已经处理的数字的个数和当前这部分的值,处理到终点时,如果等于m,结果+1.
代码:
#include<cstdio> #include<cstring> #define LL long long using namespace std; char String[120]; LL Equation; int Length,Answer; void Search_For_Answer(int Now_Position,LL Now_Value) { if(Now_Position>=Length) { if(Now_Value==Equation) Answer++; return; } LL Temp_Value=0; for(int i=1;i<=Length-Now_Position;i++) { Temp_Value=Temp_Value*10+String[i-1+Now_Position]-'0'; Search_For_Answer(Now_Position+i,Now_Value+Temp_Value); if(Now_Position) Search_For_Answer(Now_Position+i,Now_Value-Temp_Value); } } int main() { while(scanf("%s%lld",String,&Equation)!=EOF) { Answer=0; Length=strlen(String); Search_For_Answer(0,0); printf("%d ",Answer); } return 0; }