Problem with persistent treap

Правка en8, от stostap, 2017-03-22 16:29:51

Hi community,

I'm big fan of treaps, but this task makes me feel stupid. https://www.e-olymp.com/en/problems/2957

There is no English translate for some reason. Task: Given N single-element lists with integers 1..10^9, perform next queries:

  • merge L R -> take two already exist lists and create a new one, equal concat(L,R)
  • head L -> create two new lists: first contains first element of L, second — the rest of L.
  • tail L -> create two new lists: first contains all L without last element, second — last element.

For every new list you need to output sum of it's elements.

I've did it with persistent treap — for every merge query: merge(root[L], root[R], root[++versions]), for head — split(root[L], root[nextV()], root[nextV()], 1) for tail — split(root[L], root[nextV()], root[nextV()], cnt[root[L]]-1);

But this fails as for every query it creates at least Log new nodes

typedef long long LL;
#define N 13000005
#define MOD 1000000007
int root[300005] , c;
struct Treap
{
    int sum[N];
    int nodecnt;
    int L[N] , R[N] , cnt[N];
    int key[N];
    void clear() {
        nodecnt = 0;
    }
    Treap () {clear();}
    bool hey(int A , int B) {
        return (LL)rand() * (cnt[A] + cnt[B]) < (LL)cnt[A] * RAND_MAX;
    }
    int newnode(int x) {
        ++ nodecnt , L[nodecnt] = R[nodecnt] = 0;
        cnt[nodecnt] = 1 , key[nodecnt] = x, sum[nodecnt] = x;
        return nodecnt;
    }
    int copynode(int A) {
        if (!A) return 0;
        ++ nodecnt , L[nodecnt] = L[A] , R[nodecnt] = R[A];
        cnt[nodecnt] = cnt[A] , key[nodecnt] = key[A], sum[nodecnt] = sum[A];
        if (nodecnt == 5000000 &mdash; 100) {
          printf("TREAP\n");
          exit(0);
        }
        return nodecnt;
    }
    void pushup(int x) {
        cnt[x] = 1;
        sum[x] = key[x];
        if (L[x]) {
          cnt[x] += cnt[L[x]];
          sum[x] = (sum[x] + sum[L[x]]) % MOD;
        }
        if (R[x]) {
          cnt[x] += cnt[R[x]];
          sum[x] = (sum[x] + sum[R[x]]) % MOD;
        }
    }
    void merge(int& p , int x , int y) {
        if (!x || !y) {
            p = 0;
            if (x) p = copynode(x);
            if (y) p = copynode(y);
        }
        else if ( hey(x , y) ) {
            p = copynode(x);
            merge(R[p] , R[x] , y) , pushup(p);
        }
        else {
            p = copynode(y);
            merge(L[p] , x , L[y]) , pushup(p);
        }
    }
    void split(int p , int& x , int& y , int size) {
        if (!size) {
             x = 0 , y = copynode(p);
             return;
        }
        if (cnt[L[p]] >= size) {
            y = copynode(p);
            split(L[p] , x , L[y] , size) , pushup(y);
        }
        else {
            x = copynode(p);
            split(R[p] , R[x] , y , size &mdash; cnt[L[p]] &mdash; 1) , pushup(x);
        }
    }
    void print(int p) {
        if (L[p]) print(L[p]);
        printf("%d ", key[p]);
        if (R[p]) print(R[p]);
    }
};
Treap T;
char s[10];

int main(void) {
  int n;
  scanf("%d", &n);
  int version = 0;
  REP(i, n) {
    int x;
    scanf("%d", &x);
    root[++version] = T.newnode(x);
  }

  int q;
  scanf("%d", &q);
  REP(i, q) {
    if (version >= 300005 &mdash; 50) {
      printf("TREAP2\n");
      exit(0);
    }
    scanf("%s", &s);
    if (s[0] == 'm') {
      int x,y;
      scanf("%d%d", &x, &y);
      T.merge(root[++version], root[x], root[y]);
      printf("%d\n", T.sum[root[version]]);
    }

    if (s[0] == 'h') {
      int x;
      scanf("%d", &x);
      int v1 = ++version;
      int v2 = ++version;
      T.split(root[x], root[v1], root[v2], 1);
      printf("%d\n%d\n", T.sum[root[v1]], T.sum[root[v2]]);
    }

    if (s[0] == 't') {
      int x;
      scanf("%d", &x);
      int v1 = ++version;
      int v2 = ++version;
      T.split(root[x], root[v1], root[v2], T.cnt[root[x]] - 1);
      printf("%d\n%d\n", T.sum[root[v1]], T.sum[root[v2]]);
    }
  }
}

Any ideas how to improve it?

Теги persistent, treap

История

 
 
 
 
Правки
 
 
  Rev. Язык Кто Когда Δ Комментарий
en9 Английский stostap 2017-03-22 18:12:24 20 Tiny change: 'his fails as for ev' -> 'his fails with "Memory Limit" as for ev'
en8 Английский stostap 2017-03-22 16:29:51 0 (published)
en7 Английский stostap 2017-03-22 16:11:05 8 Tiny change: 'queries:\n- merge ' -> 'queries:\n\n- merge ' (saved to drafts)
en6 Английский stostap 2017-03-22 12:51:31 0 (published)
en5 Английский stostap 2017-03-22 12:51:16 3198
en4 Английский stostap 2017-03-22 12:50:55 3014
en3 Английский stostap 2017-03-22 12:50:30 151
en2 Английский stostap 2017-03-22 12:50:03 171 (saved to drafts)
en1 Английский stostap 2017-03-22 12:48:36 4337 Initial revision (published)