这次div3比上次多一道, 也加了半小时, 说区分不出1600以上的水平。(我也不清楚)。
题意:给你一个数组,删除这个数组中相同的元素, 并且保留右边的元素。
代码:
1 #include<bits/stdc++.h> 2 using namespace std; 3 #define Fopen freopen("_in.txt","r",stdin); freopen("_out.txt","w",stdout); 4 #define LL long long 5 #define ULL unsigned LL 6 #define fi first 7 #define se second 8 #define pb push_back 9 #define lson l,m,rt<<1 10 #define rson m+1,r,rt<<1|1 11 #define max3(a,b,c) max(a,max(b,c)) 12 #define min3(a,b,c) min(a,min(b,c)) 13 typedef pair<int,int> pll; 14 const int INF = 0x3f3f3f3f; 15 const LL mod = 1e9+7; 16 const int N = 1e5+10; 17 int vis[N]; 18 int a[N]; 19 int main(){ 20 ///Fopen; 21 int n; 22 int t = 0; 23 scanf("%d", &n); 24 for(int i = 1; i <= n; i++){ 25 scanf("%d", &a[i]); 26 if(vis[a[i]] == 0) t++; 27 vis[a[i]] = i; 28 } 29 printf("%d\n", t); 30 for(int i = 1; i <= n; i++){ 31 if(vis[a[i]] == i){ 32 printf("%d ", a[i]); 33 } 34 } 35 return 0; 36 }
题意:不能有3个或以上的x连续出现,求删除几个x之后,不会有3个连续的x出现。
代码:
1 #include<bits/stdc++.h> 2 using namespace std; 3 #define Fopen freopen("_in.txt","r",stdin); freopen("_out.txt","w",stdout); 4 #define LL long long 5 #define ULL unsigned LL 6 #define fi first 7 #define se second 8 #define pb push_back 9 #define lson l,m,rt<<1 10 #define rson m+1,r,rt<<1|1 11 #define max3(a,b,c) max(a,max(b,c)) 12 #define min3(a,b,c) min(a,min(b,c)) 13 typedef pair<int,int> pll; 14 const int INF = 0x3f3f3f3f; 15 const LL mod = 1e9+7; 16 const int N = 1e5+10; 17 char str[N]; 18 int main(){ 19 ///Fopen; 20 int n; 21 scanf("%d", &n); 22 scanf("%s", str); 23 str[n] = '.'; 24 int cnt = 0; 25 int ans = 0; 26 for(int i = 0; i <= n; i++){ 27 if(str[i] == 'x') cnt++; 28 else { 29 if(cnt >= 3) ans += cnt - 2; 30 cnt = 0; 31 } 32 } 33 printf("%d", ans); 34 return 0; 35 }
题意:这里有n个宿舍(楼),每个宿舍有a[i]个人,现在有m封信要寄过来,没有名字, 只有从第一个宿舍开始计数的第a[i]个人的信息, 求每封信对应的宿舍和第几个人。
题解:前缀和, 然后lowbound查找一下编号为b[i]的人, 转化信息一下就好了。
代码:
1 #include<bits/stdc++.h> 2 using namespace std; 3 #define Fopen freopen("_in.txt","r",stdin); freopen("_out.txt","w",stdout); 4 #define LL long long 5 #define ULL unsigned LL 6 #define fi first 7 #define se second 8 #define pb push_back 9 #define lson l,m,rt<<1 10 #define rson m+1,r,rt<<1|1 11 #define max3(a,b,c) max(a,max(b,c)) 12 #define min3(a,b,c) min(a,min(b,c)) 13 typedef pair<int,int> pll; 14 const int INF = 0x3f3f3f3f; 15 const LL mod = 1e9+7; 16 const int N = 2e5+10; 17 int n, m; 18 LL a[N]; 19 LL sum[N]; 20 int main(){ 21 ///Fopen; 22 scanf("%d%d", &n, &m); 23 for(int i = 1; i <= n; i++){ 24 scanf("%I64d", &a[i]); 25 sum[i] = sum[i-1] + a[i]; 26 } 27 while(m--){ 28 LL tmp; 29 scanf("%I64d", &tmp); 30 int pos = lower_bound(sum+1,sum+1+n,tmp) - sum; 31 printf("%d %I64d\n",pos, tmp - sum[pos-1]); 32 } 33 return 0; 34 }
D. Almost Arithmetic Progression
题意:给你一个数列, 可以将这将这个数列的任意一个元素加一,减一或者不改变, 求形成等差数列之后改变元素的次数最小, 如果没有办法形成等差数列, 就输出-1。
题解:看着很复杂, 但是如果第1个元素和第2个元素定下来了之后, 那么后面的元素都定下来了, 所以暴力枚举9种情况, 然后check一遍, 找到答案。
题解:
1 #include<bits/stdc++.h> 2 using namespace std; 3 #define Fopen freopen("_in.txt","r",stdin); freopen("_out.txt","w",stdout); 4 #define LL long long 5 #define ULL unsigned LL 6 #define fi first 7 #define se second 8 #define pb push_back 9 #define lson l,m,rt<<1 10 #define rson m+1,r,rt<<1|1 11 #define max3(a,b,c) max(a,max(b,c)) 12 #define min3(a,b,c) min(a,min(b,c)) 13 typedef pair<int,int> pll; 14 const int INF = 0x3f3f3f3f; 15 const LL mod = 1e9+7; 16 const int N = 1e5+10; 17 int a[N]; 18 int b[N]; int n; 19 int ans = INF; 20 int check(int u){ 21 int cnt = 0; 22 for(int i = 3; i <= n; i++){ 23 b[i] = b[i-1] + u; 24 if(abs(a[i]-b[i]) > 1) return -1; 25 if(abs(a[i]-b[i]) == 1) cnt++; 26 } 27 return cnt; 28 } 29 int d1[3]={1,0,-1}; 30 int d2[3]={1,0,-1}; 31 int main(){ 32 ///Fopen; 33 34 scanf("%d", &n); 35 for(int i = 1; i <= n; i++) 36 scanf("%d", &a[i]); 37 if(n == 1 || n == 2){ 38 printf("0"); 39 return 0; 40 } 41 for(int i = 0; i < 3; i++) 42 for(int j = 0; j < 3; j++){ 43 b[1] = a[1] + d1[i]; 44 b[2] = a[2] + d2[j]; 45 int tmp = check(b[2]-b[1]); 46 if(tmp != -1){ 47 ans = min(ans, tmp+(i!=1)+(j!=1)); 48 } 49 } 50 if(ans == INF) printf("-1"); 51 else printf("%d", ans); 52 return 0; 53 }
题意:这里有一辆bus, 然后有n个站, 最多容纳m个人,每一个站都会有人上车下车,求始发点人数可能的情况数, 如果没办法就矛盾就输出0。
题解:记录下这辆车在车上最多多少人, 最少的时候多少人。 然后 通过最多人数 算出始发点 最多能有多少人, 通过最少的人数算出始发点最少多少人。 然后就得出答案了。
代码:
1 #include<bits/stdc++.h> 2 using namespace std; 3 #define Fopen freopen("_in.txt","r",stdin); freopen("_out.txt","w",stdout); 4 #define LL long long 5 #define ULL unsigned LL 6 #define fi first 7 #define se second 8 #define pb push_back 9 #define lson l,m,rt<<1 10 #define rson m+1,r,rt<<1|1 11 #define max3(a,b,c) max(a,max(b,c)) 12 #define min3(a,b,c) min(a,min(b,c)) 13 typedef pair<int,int> pll; 14 const int INF = 0x3f3f3f3f; 15 const LL mod = 1e9+7; 16 const int N = 1e5+10; 17 int n, m; 18 int main(){ 19 ///Fopen; 20 scanf("%d%d", &n, &m); 21 int l = 0, r = 0; 22 int tmp = 0, t; 23 while(n--){ 24 scanf("%d", &t); 25 tmp += t; 26 r = min(r, tmp); 27 l = max(l, tmp); 28 } 29 int maxn = m - l; 30 int minn = -r; 31 int ans = maxn-minn+1; 32 if(ans <= 0) ans = 0; 33 printf("%d\n", ans); 34 return 0; 35 }
题意:有n个人, 每一个人有一个能力值, 然后求这个能力值高的人能当能力值低的人的导师,然后又m对人在吵架, 如果2个人吵架, 他们2个人就不能组成导师关系, 现在求每个人可以当多少个人的导师数目。
题解:map记录一下能力值, 然后 在用另一个map 对第一个map求前缀和, 然后映射出每个人可以当多少个人的导师数目, 然后对于吵架的人, 2方谁能力值高谁的数目就-1, 就可以得到答案了。
代码:
1 #include<bits/stdc++.h> 2 using namespace std; 3 #define Fopen freopen("_in.txt","r",stdin); freopen("_out.txt","w",stdout); 4 #define LL long long 5 #define ULL unsigned LL 6 #define fi first 7 #define se second 8 #define pb push_back 9 #define lson l,m,rt<<1 10 #define rson m+1,r,rt<<1|1 11 #define max3(a,b,c) max(a,max(b,c)) 12 #define min3(a,b,c) min(a,min(b,c)) 13 typedef pair<int,int> pll; 14 const int INF = 0x3f3f3f3f; 15 const LL mod = 1e9+7; 16 const int N = 2e5+10; 17 int n, k; 18 int a[N]; 19 int cnt[N]; 20 map<int,int> mp; 21 map<int,int> mmp; 22 int main(){ 23 ///Fopen; 24 scanf("%d%d", &n, &k); 25 for(int i = 1; i <= n; i++){ 26 scanf("%d", &a[i]); 27 mp[a[i]]++; 28 } 29 int tmp = 0; 30 map<int,int>::iterator it = mp.begin(); 31 while(it!=mp.end()){ 32 mmp[it->fi] = tmp; 33 tmp += it->second; 34 it++; 35 } 36 for(int i = 1; i <= n; i++){ 37 cnt[i] = mmp[a[i]]; 38 } 39 int u, v; 40 while(k--){ 41 scanf("%d%d", &u, &v); 42 if(a[u] > a[v])cnt[u]--; 43 else if(a[u] < a[v]) cnt[v]--; 44 } 45 for(int i = 1; i <= n; i++){ 46 printf("%d%c",cnt[i]," \n"[i==n]); 47 } 48 return 0; 49 }
题意: Petyas有n门考试, 每一门考试有个s,d, c, 他只能在s,d-1之间复习这门科目并且要复习c天, 然后第d天要开始, Petays一天只能干一件事情, 求怎么样安排Petyas的时间使得Petya能通过所有考试的时间安排, 如果不行输出-1。
题解:贪心, 先安排考试时间早的, 如果有一门考试安排不下了, 就输出-1.
代码:
1 #include<bits/stdc++.h> 2 using namespace std; 3 #define Fopen freopen("_in.txt","r",stdin); freopen("_out.txt","w",stdout); 4 #define LL long long 5 #define ULL unsigned LL 6 #define fi first 7 #define se second 8 #define pb push_back 9 #define lson l,m,rt<<1 10 #define rson m+1,r,rt<<1|1 11 #define max3(a,b,c) max(a,max(b,c)) 12 #define min3(a,b,c) min(a,min(b,c)) 13 typedef pair<int,int> pll; 14 const int INF = 0x3f3f3f3f; 15 const LL mod = 1e9+7; 16 const int N = 1e3+10; 17 int n, m; 18 struct Node{ 19 int s, d, c; 20 int id; 21 22 }A[N]; 23 int vis[N]; 24 bool cmp(Node x, Node y){ 25 return x.d < y.d; 26 } 27 int main(){ 28 ///Fopen; 29 scanf("%d%d", &n, &m); 30 for(int i = 1; i <= m; i++){ 31 scanf("%d%d%d", &A[i].s, &A[i].d, &A[i].c); 32 vis[A[i].d] = m+1; 33 A[i].id = i; 34 } 35 sort(A+1, A+1+m, cmp); 36 for(int i = 1; i <= m; i++){ 37 int cnt = 0; 38 for(int j = A[i].s; j < A[i].d; j++){ 39 if(!vis[j]){ 40 cnt++; 41 vis[j] = A[i].id; 42 if(cnt == A[i].c) break; 43 } 44 } 45 if(cnt != A[i].c) {printf("-1"); return 0;} 46 } 47 for(int i = 1; i <= n; i++) 48 printf("%d%c", vis[i], " \n"[i==n]); 49 return 0; 50 }