Description
您需要写一种数据结构(可参考题目标题),来维护一个有序数列,其中需要提供以下操作:翻转一个区间,例如原有序序列是5 4 3 2 1,翻转区间是[2,4]的话,结果是5 2 3 4 1
Input
第一行为n,m n表示初始序列有n个数,这个序列依次是(1,2……n-1,n) m表示翻转操作次数
接下来m行每行两个数[l,r] 数据保证 1<=l<=r<=n
Output
输出一行n个数字,表示原始序列经过m次变换后的结果
Sample Input
5 3
1 3
1 3
1 4
Sample Output
4 3 2 1 5
HINT N,M<=100000
题解:
splay模板题,调了半天。。。
代码
#include <cstdio> #include <algorithm> using namespace std; struct node{int f,l,r,rev,size;}tree[100010]; int i,j,k,n,m,x,y,t,rt,num,id[100010]; void pushup(int k){tree[k].size=tree[tree[k].l].size+tree[tree[k].r].size+1;} void build(){ tree[1].f=-1;tree[1].size=n+2; for (i=2;i<=n;i++){tree[i-1].r=i;tree[i].f=i-1;tree[i].size=n-i+1;} } void pushdown(int rt){ if (tree[rt].rev){ tree[rt].rev=0;swap(tree[rt].l,tree[rt].r); tree[tree[rt].l].rev^=1;tree[tree[rt].r].rev^=1; } } void rotate(int x,int &k){ int y=tree[x].f,z=tree[y].f,l=0; if (tree[y].l==x)l=1;else l=0; if(y==k)k=x; else {if(tree[z].l==y)tree[z].l=x;else tree[z].r=x;} tree[x].f=z;tree[y].f=x; if (l==1){tree[tree[x].r].f=y;tree[y].l=tree[x].r;tree[x].r=y;} else {tree[tree[x].l].f=y;tree[y].r=tree[x].l;tree[x].l=y;} pushup(y);pushup(x); } void splay(int x,int &goal){ while (x!=goal){ int y=tree[x].f,z=tree[y].f; if (y==goal){rotate(x,goal);break;} if ((tree[z].l==y)^(tree[y].l==x))rotate(x,goal);else rotate(y,goal); rotate(x,goal); } } int find(int x,int rt){ pushdown(rt); //printf("%d %d ",x,rt); if (tree[tree[rt].l].size+1==x)return rt; if (tree[tree[rt].l].size+1>x)return find(x,tree[rt].l); else return find(x-tree[tree[rt].l].size-1,tree[rt].r); } void print(int rt){ if (rt==0)return; int now=rt; printf("%d %d %d %d ",rt,tree[now].l,tree[now].r,tree[now].size); print(tree[now].l);print(tree[now].r); } int main(){ scanf("%d%d",&n,&m);n+=2; build();rt=1; //print(rt); for (i=1;i<=m;i++){ scanf("%d%d",&x,&y); x=find(x,rt); y=find(y+2,rt); //printf("%d %d ",x,y); splay(y,rt);splay(x,tree[rt].l); tree[tree[tree[rt].l].r].rev^=1; //for (k=2;k<=n-1;k++)printf("%d ",find(k,rt)-1);printf(" "); } for (i=2;i<=n-1;i++)printf("%d ",find(i,rt)-1); return 0; }