cf div2 round 688 題解
阿新 • • 發佈:2020-12-05
爆零了,自閉了
小張做專案入職位元組
小李ak wf入職ms
我比賽爆零月薪3k
我們都有光明的前途
好吧,這場感覺有一點難了,昨天差點卡死在B上,要不受O爺出手相救我就boom zero了
第一題,看上去很唬人,我覺得還得記錄變數什麼的,1分鐘後發現只要查出兩個集合的交集大小就行了,連變數增量都不用,拿一血,此時rk 1k6,我人沒了
#include <bits/stdc++.h> using namespace std; #define limit (315000 + 5)//防止溢位 #define INF 0x3f3f3f3f #define inf 0x3f3f3f3f3f #definelowbit(i) i&(-i)//一步兩步 #define EPS 1e-6 #define FASTIO ios::sync_with_stdio(false);cin.tie(0); #define ff(a) printf("%d\n",a ); #define pi(a,b) pair<a,b> #define rep(i, a, b) for(ll i = a; i <= b ; ++i) #define per(i, a, b) for(ll i = b ; i >= a ; --i) #define MOD 998244353 #define traverse(u) for(int i = head[u]; ~i ; i = edge[i].next) #defineFOPEN freopen("C:\\Users\\tiany\\CLionProjects\\acm_01\\data.txt", "rt", stdin) #define FOUT freopen("C:\\Users\\tiany\\CLionProjects\\acm_01\\dabiao.txt", "wt", stdout) #define debug(x) cout<<x<<endl typedef long long ll; typedef unsigned long long ull; inline ll read(){ ll sign = 1, x = 0;char s = getchar(); while(s > '9' || s < '0' ){if(s == '-')sign = -1;s = getchar();} while(s >= '0' && s <= '9'){x = (x << 3) + (x << 1) + s - '0';s = getchar();} return x * sign; }//快讀 void write(ll x){ if(x < 0) putchar('-'),x = -x; if(x / 10) write(x / 10); putchar(x % 10 + '0'); } int kase; int n,m,k; ll a[limit]; int mp[2005][2006]; int l[2005][11],r[2005][11],up[2005][11],down[2006][11]; void solve(){ cin>>n; rep(i,0,9)a[i] = 0; rep(i,1,n){ string str; cin>>str; rep(h,0,9)l[i][h] = r[i][h] =down[i][h] =up[i][h] =0; rep(j,1,n){ mp[i][j] = str[j-1] - '0'; } } rep(i,1,n){ rep(p,0,9){ rep(j,1,n){ if(mp[i][j] == p){ r[i][p] = j; break; } } per(j,1,n){ if(mp[i][j] == p){ l[i][p] = j; break; } } } } rep(j,1,n){ rep(p,0,9){ rep(i,1,n){ if(mp[i][j] == p){ down[j][p] = i; break; } } per(i,1,n){ if(mp[i][j] == p){ up[j][p] = i; break; } } } } rep(p,0,9){ rep(i,1,n){ if(l[i][p] != r[i][p]){ int base = abs(l[i][p] - r[i][p]); a[p] = max({a[p],base * abs(1 - i), base * abs(n - i)}); base = max(abs(l[i][p] - 1), abs(l[i][p] - n)); rep(j,1,n){ if(up[j][p])a[p] = max({a[p], base * abs(up[j][p] - i), base* abs(down[j][p] - i)}); } base = max(abs(r[i][p] - 1), abs(r[i][p] - n)); rep(j,1,n){ if(up[j][p])a[p] = max({a[p], base * abs(up[j][p] - i), base* abs(down[j][p] - i)}); } }else if(l[i][p]){ int base = max(abs(1 - l[i][p]),abs(l[i][p] - n)); rep(j,1,n){ if(up[j][p])a[p] = max({a[p], base * abs(up[j][p]- i),base * abs(down[j][p] - i)}); } } if(up[i][p] != down[i][p]){ int base = abs(up[i][p] - down[i][p]); a[p] = max({a[p],base * abs(1 - i), base * abs(n - i)}); base = max(abs(up[i][p] - 1), abs(up[i][p] - n)); rep(j,1,n){ if(l[j][p])a[p] = max({a[p],base * abs(l[j][p] - i), base * abs(r[j][p] - i)}); } base = max(abs(down[i][p] - 1), abs(down[i][p] - n)); rep(j,1,n){ if(l[j][p])a[p] = max({a[p],base * abs(l[j][p] - i), base * abs(r[j][p] - i)}); } }else if(up[i][p]){ int base = max(abs(1 - up[i][p]),abs(down[i][p] - n)); rep(j,1,n){ if(l[j][p])a[p] = max({a[p], base * abs(l[j][p]- i),base * abs(r[j][p] - i)}); } } } } rep(i,0,9){ cout<<a[i]<<' '; } cout<<endl; } int main() { #ifdef LOCAL FOPEN; #endif cin>>kase; while (kase--){ solve(); } return 0; }
D題沒時間搞了,但後來和Dxtst老哥討論了下似乎是當前位上0或1,如果是1對於答案的貢獻為2^k, 其他結論今晚再搞
奧裡給!