102 条题解

  • -2
    @ 2023-10-21 16:20:43

    终于可以写一份A+B这么难的题的题解了。

    咦?竟然没有人写LCT的题解?

    Link-Cut Tree 会很伤心的!

    ORZ为了不让LCT伤心于是我来一份LCT的A+B题解吧!

    送上代码:`

    #include <cstring>
    #include <cstdio>
    #include <cstring>
    using namespace std;
    struct node
    {
    int data,rev,sum;
    node *son[2],*pre;
    bool judge();
    bool isroot();
    void pushdown();
    void update();
    void setson(node *child,int lr);
    }lct[233];
    int top,a,b;
    node *getnew(int x)
    {
    node *now=lct+ ++top;
    now->data=x;
    now->pre=now->son[1]=now->son[0]=lct;
    now->sum=0;
    now->rev=0;
    return now;
    }
    bool node::judge(){return pre->son[1]==this;}
    bool node::isroot()
    {
    if(pre==lct)return true;
    return !(pre->son[1]==this||pre->son[0]==this);
    }
    void node::pushdown()
    {
    if(this==lct||!rev)return;
    swap(son[0],son[1]);
    son[0]->rev^=1;
    son[1]->rev^=1;
    rev=0;
    }
    void node::update(){sum=son[1]->sum+son[0]->sum+data;}
    void node::setson(node *child,int lr)
    {
    this->pushdown();
    child->pre=this;
    son[lr]=child;
    this->update();
    }
    void rotate(node *now)
    {
    node *father=now->pre,*grandfa=father->pre;
    if(!father->isroot()) grandfa->pushdown();
    father->pushdown();now->pushdown();
    int lr=now->judge();
    father->setson(now->son[lr^1],lr);
    if(father->isroot()) now->pre=grandfa;
    else grandfa->setson(now,father->judge());
    now->setson(father,lr^1);
    father->update();now->update();
    if(grandfa!=lct) grandfa->update();
    }
    void splay(node *now)
    {
    if(now->isroot())return;
    for(;!now->isroot();rotate(now))
    if(!now->pre->isroot())
    now->judge()==now->pre->judge()?rotate(now->pre):rotate(now);
    }
    node *access(node *now)
    {
    node *last=lct;
    for(;now!=lct;last=now,now=now->pre)
    {
    splay(now);
    now->setson(last,1);
    }
    return last;
    }
    void changeroot(node *now)
    {
    access(now)->rev^=1;
    splay(now);
    }
    void connect(node *x,node *y)
    {
    changeroot(x);
    x->pre=y;
    access(x);
    }
    void cut(node *x,node *y)
    {
    changeroot(x);
    access(y);
    splay(x);
    x->pushdown();
    x->son[1]=y->pre=lct;
    x->update();
    }
    int query(node *x,node *y)
    {
    changeroot(x);
    node *now=access(y);
    return now->sum;
    }
    int main()
    {
    scanf("%d%d",&a,&b);
    node *A=getnew(a);
    node *B=getnew(b);
    //连边 Link
    connect(A,B);
    //断边 Cut
    cut(A,B);
    //再连边orz Link again
    connect(A,B);
    printf("%d\n",query(A,B));
    return 0;
    }
    
    
    

    信息

    ID
    1
    时间
    1000ms
    内存
    256MiB
    难度
    10
    标签
    递交数
    843
    已通过
    300
    上传者