templates/splay-tree.cpp
compilable
$cat templates/splay-tree
Splay Tree
Self-adjusting BST with O(log n) amortized operations via splay rotations.
#splay-tree#bst#self-adjusting#order-statistics
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$cat source_code/
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#include <bits/stdc++.h>
using namespace std;
struct SplayTree {
struct Node {
Node *ch[2], *par;
int val, sz, freq;
Node() : sz(0), freq(0) { par = ch[0] = ch[1] = this; val = INT_MIN; }
Node(int v) : val(v), sz(1), freq(1) { par = ch[0] = ch[1] = EMPTY; }
void pull() { sz = freq + ch[0]->sz + ch[1]->sz; }
};
static Node* EMPTY;
Node* root;
SplayTree() : root(EMPTY) {}
void link(Node* p, Node* c, int d) {
if (p != EMPTY) { p->ch[d] = c; p->pull(); }
if (c != EMPTY) c->par = p;
}
int dir(Node* p, Node* c) { return p->ch[1] == c; }
void rotate(Node* p, int d) {
Node* q = p->ch[d], *g = p->par;
link(p, q->ch[!d], d);
link(q, p, !d);
link(g, q, dir(g, p));
}
void splay(Node* q) {
while (q->par != EMPTY) {
Node* p = q->par, *g = p->par;
int d1 = dir(p, q), d2 = dir(g, p);
if (g == EMPTY) rotate(p, d1);
else if (d1 == d2) { rotate(g, d2); rotate(p, d1); }
else { rotate(p, d1); rotate(g, d2); }
}
root = q;
}
Node* find(Node* p, int val) {
if (p == EMPTY) return EMPTY;
Node* c = p->ch[val > p->val];
if (p->val == val || c == EMPTY) return p;
return find(c, val);
}
void insert(int val) {
if (root == EMPTY) { root = new Node(val); return; }
root = find(root, val); splay(root);
if (root->val == val) { root->freq++; root->sz++; return; }
Node* q = new Node(val);
int d = val > root->val;
if (root->ch[d] != EMPTY) {
Node* c = root->ch[d];
link(root, EMPTY, d);
link(q, c, q->val < c->val);
}
link(q, root, val > root->val ? 0 : 1);
root = q;
}
void erase(int val) {
root = find(root, val); splay(root);
if (root->val != val) return;
if (root->freq > 1) { root->freq--; root->sz--; return; }
Node* l = root->ch[0], *r = root->ch[1];
delete root;
if (l != EMPTY) l->par = EMPTY;
if (r != EMPTY) r->par = EMPTY;
if (l == EMPTY) { root = r; return; }
root = find(l, INT_MAX); splay(root);
link(root, r, 1);
}
bool search(int val) {
root = find(root, val); splay(root);
return root->val == val;
}
int kth(int k) {
Node* p = root;
while (p != EMPTY) {
int ls = p->ch[0]->sz;
if (k < ls) p = p->ch[0];
else if (k < ls + p->freq) { splay(p); return p->val; }
else { k -= ls + p->freq; p = p->ch[1]; }
}
return -1;
}
int countLess(int val) {
root = find(root, val); splay(root);
return root->ch[0]->sz + (root->val < val ? root->freq : 0);
}
int size() { return root->sz; }
};
SplayTree::Node* SplayTree::EMPTY = new SplayTree::Node();102 linesutf-8
$cat explanation_notes.md
notes_viewer --renderedmarkdown (math enabled)
Splay Tree
Self-adjusting BST that moves every accessed node to the root via rotations, giving amortized time.
Splay Operation — Three Cases
Operations
insert(val) — insert with duplicate counting via freqerase(val) — erase one occurrence (or decrement freq)search(val) — check existencekth(k) — -th smallest element (0-indexed)countLess(val) — number of elements split(val) / merge(a, b) — split/merge by value