玄学剪支,正好复习一下搜索
感觉搜索题的套路就是先把整体框架打出来,然后再一步一步优化剪枝
1.从maxv到sumv/2枚举长度(想一想,为什么)
2. 开一个桶,从大到小开始枚举
3. 在搜索中,枚举到长度为x的木棍,则下一步也从x开始枚举
4. 如果当前长度为0或target却无解则break掉,很玄学QAQ….
#include<cstdio>
#include<cstring>
#include<algorithm>
using namespace std;
const int maxn = 4000;
int w[maxn];
int sumv, minv, maxv;
void dfs(int nums,int cur,int target,int p)
{
if(nums == 0)
{
printf("%d",target);
exit( 0 );
}
if(cur == target)
{
dfs(nums-1,0,target,maxv);
return;
}
for(int i = p;i >= minv;--i)
if(w[i] && i + cur <= target)
{
w[i] -= 1;
dfs(nums,cur + i, target, i);
w[i] += 1;
if (cur == 0 || cur + i == target ) break;
}
return;
}
int main()
{
// freopen("input.txt","r",stdin);
int n;
scanf("%d",&n);
minv = maxn, maxv = -1;
for(int i=1;i <= n; ++i)
{
int tmp;
scanf("%d",&tmp);
if(tmp > 50) continue;
w[tmp] += 1;
sumv += tmp;
minv = min(minv,tmp);
maxv = max(maxv,tmp);
}
for(int i = maxv;i <= sumv/2; ++i)
{
if(sumv % i != 0)continue;
dfs(sumv/i,0,i,maxv);
}
printf("%d",sumv);
return 0;
}