C
gcd(a+k, b+k) == gcd(a+k, b-a)
#include <bits/stdc++.h>
using namespace std;
const int maxn = 1e5+10;
typedef long long ll;
ll ans=0;
ll mn;
ll a, b;
void work(ll x){
ll k = (x-a%x)%x;
ll aa = k+a, bb = k+b;
ll temp = aa/__gcd(aa, bb)*bb;
if(temp<mn){
ans = k;
mn = temp;
}
else if(temp == mn &&ans>k){
ans = k;
}
}
int main(){
scanf("%lld%lld", &a, &b);
if(a>b) swap(a, b);
if(a == b){
printf("0
");
return 0;
}
mn = a/__gcd(a, b)*b;
ll d = b-a;
for(int i=1; i*i<=d; ++i){
if(d%i==0){
work(1ll*i), work(1ll*d/i);
}
}
printf("%lld
", ans);
return 0;
}
D
题意
括号串形成的trie树的最大的匹配(选择的两条边不能有公共的节点)。
记忆化dp
奇数层必定有孩子,因此只能取得一个边
#include <bits/stdc++.h>
using namespace std;
const int maxn = 2e3+10;
typedef long long ll;
const int mod = 1e9+7;
int dp[maxn][maxn];
//奇数层一定有孩子
int dfs(int n, int now){
if(n == 0){
if(now == 0) return dp[n][now] = 0;
else return dp[n][now] = -2;
}
if(dp[n][now]!=-1) return dp[n][now];
if(n<now||now<0) return dp[n][now] = -2;
ll temp = 0;
bool has = false;
if(dfs(n-1, now+1)>=0){
temp += dp[n-1][now+1]+(n%2==0);
has = true;
}
if(dfs(n-1, now-1)>=0){
temp += dp[n-1][now-1]+(n%2==0);
has = true;
}
if(has){
return dp[n][now] = temp%mod;
}
else return dp[n][now] = -2;
}
int main(){
int n;
scanf("%d", &n);
memset(dp, -1, sizeof(dp));
dfs(2*n, 0);
printf("%d
", dp[2*n][0]);
return 0;
}