题目链接:HDU 2266
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
Solution
题意
给定一串只包含数字的字符串,和一个数 n,在串中任意两个相邻的字符之间加上 + 或 - 构成表达式,问表达式的值有多少种情况等于 n。
题解
DFS 水题
每个位置可以选择加入符号或者不加,用 DFS 搜索即可,计算最终表达式是否等于 n,注意开头不能放减号。
Code
#include <bits/stdc++.h>
using namespace std;
typedef long long ll;
char str[20];
ll n;
ll len;
ll cnt;
// l为插入符号的位置 sum为当前表达式的值
void dfs(ll l, ll sum) {
if(l == len && sum == n) {
// 如果没有位置可以放入符号了并且表达式值等于 n 就累加 cnt
cnt++;
return;
}
ll ans = 0;
// 搜索剩余表达式
for(ll i = l; i < len; ++i) {
ans = ans * 10 + str[i] - '0'; // 从 l 到 i 置为数字
dfs(i + 1, sum + ans); // i + 1 位置置为加号
if(l) dfs(i + 1, sum - ans); // i + 1 位置置为减号
}
}
int main() {
while(~scanf("%s %lld", str, &n)) { // 多组输入
len = strlen(str); // 字符串长度
cnt = 0; // 最终答案
dfs(0, 0);
printf("%lld
", cnt);
}
return 0;
}