TreeNode.cpp 11 KB

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  1. /*
  2. * Copyright (c) 2021, Jan de Visser <jan@de-visser.net>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <AK/Debug.h>
  7. #include <AK/Format.h>
  8. #include <AK/NonnullOwnPtr.h>
  9. #include <AK/StringBuilder.h>
  10. #include <LibSQL/BTree.h>
  11. #include <LibSQL/Serializer.h>
  12. namespace SQL {
  13. DownPointer::DownPointer(TreeNode* owner, u32 pointer)
  14. : m_owner(owner)
  15. , m_pointer(pointer)
  16. , m_node(nullptr)
  17. {
  18. }
  19. DownPointer::DownPointer(TreeNode* owner, TreeNode* node)
  20. : m_owner(owner)
  21. , m_pointer((node) ? node->pointer() : 0)
  22. , m_node(adopt_own_if_nonnull(node))
  23. {
  24. }
  25. DownPointer::DownPointer(TreeNode* owner, DownPointer& down)
  26. : m_owner(owner)
  27. , m_pointer(down.m_pointer)
  28. , m_node(move(down.m_node))
  29. {
  30. }
  31. DownPointer::DownPointer(DownPointer&& other)
  32. : m_owner(other.m_owner)
  33. , m_pointer(other.pointer())
  34. , m_node(other.m_node ? move(other.m_node) : nullptr)
  35. {
  36. }
  37. TreeNode* DownPointer::node()
  38. {
  39. if (!m_node)
  40. deserialize(m_owner->tree().serializer());
  41. return m_node;
  42. }
  43. void DownPointer::deserialize(Serializer& serializer)
  44. {
  45. if (m_node || !m_pointer)
  46. return;
  47. serializer.get_block(m_pointer);
  48. m_node = serializer.make_and_deserialize<TreeNode>(m_owner->tree(), m_owner, m_pointer);
  49. }
  50. TreeNode::TreeNode(BTree& tree, u32 pointer)
  51. : IndexNode(pointer)
  52. , m_tree(tree)
  53. , m_up(nullptr)
  54. , m_entries()
  55. , m_down()
  56. {
  57. }
  58. TreeNode::TreeNode(BTree& tree, TreeNode* up, u32 pointer)
  59. : IndexNode(pointer)
  60. , m_tree(tree)
  61. , m_up(up)
  62. , m_entries()
  63. , m_down()
  64. {
  65. m_down.append(DownPointer(this, nullptr));
  66. m_is_leaf = true;
  67. }
  68. TreeNode::TreeNode(BTree& tree, TreeNode* up, DownPointer& left, u32 pointer)
  69. : IndexNode(pointer)
  70. , m_tree(tree)
  71. , m_up(up)
  72. , m_entries()
  73. , m_down()
  74. {
  75. if (left.m_node != nullptr)
  76. left.m_node->m_up = this;
  77. m_down.append(DownPointer(this, left));
  78. m_is_leaf = left.pointer() == 0;
  79. if (!pointer)
  80. set_pointer(m_tree.new_record_pointer());
  81. }
  82. TreeNode::TreeNode(BTree& tree, TreeNode* up, TreeNode* left, u32 pointer)
  83. : IndexNode(pointer)
  84. , m_tree(tree)
  85. , m_up(up)
  86. , m_entries()
  87. , m_down()
  88. {
  89. m_down.append(DownPointer(this, left));
  90. m_is_leaf = left->pointer() == 0;
  91. }
  92. void TreeNode::deserialize(Serializer& serializer)
  93. {
  94. auto nodes = serializer.deserialize<u32>();
  95. dbgln_if(SQL_DEBUG, "Deserializing node. Size {}", nodes);
  96. if (nodes > 0) {
  97. for (u32 i = 0; i < nodes; i++) {
  98. auto left = serializer.deserialize<u32>();
  99. dbgln_if(SQL_DEBUG, "Down[{}] {}", i, left);
  100. if (!m_down.is_empty())
  101. VERIFY((left == 0) == m_is_leaf);
  102. else
  103. m_is_leaf = (left == 0);
  104. m_entries.append(serializer.deserialize<Key>(m_tree.descriptor()));
  105. m_down.empend(this, left);
  106. }
  107. auto right = serializer.deserialize<u32>();
  108. dbgln_if(SQL_DEBUG, "Right {}", right);
  109. VERIFY((right == 0) == m_is_leaf);
  110. m_down.empend(this, right);
  111. }
  112. }
  113. void TreeNode::serialize(Serializer& serializer) const
  114. {
  115. u32 sz = size();
  116. serializer.serialize<u32>(sz);
  117. if (sz > 0) {
  118. for (auto ix = 0u; ix < size(); ix++) {
  119. auto& entry = m_entries[ix];
  120. dbgln_if(SQL_DEBUG, "Serializing Left[{}] = {}", ix, m_down[ix].pointer());
  121. serializer.serialize<u32>(is_leaf() ? 0u : m_down[ix].pointer());
  122. serializer.serialize<Key>(entry);
  123. }
  124. dbgln_if(SQL_DEBUG, "Serializing Right = {}", m_down[size()].pointer());
  125. serializer.serialize<u32>(is_leaf() ? 0u : m_down[size()].pointer());
  126. }
  127. }
  128. size_t TreeNode::length() const
  129. {
  130. if (!size())
  131. return 0;
  132. size_t len = sizeof(u32);
  133. for (auto& key : m_entries) {
  134. len += sizeof(u32) + key.length();
  135. }
  136. return len;
  137. }
  138. bool TreeNode::insert(Key const& key)
  139. {
  140. dbgln_if(SQL_DEBUG, "[#{}] INSERT({})", pointer(), key.to_string());
  141. if (!is_leaf())
  142. return node_for(key)->insert_in_leaf(key);
  143. return insert_in_leaf(key);
  144. }
  145. bool TreeNode::update_key_pointer(Key const& key)
  146. {
  147. dbgln_if(SQL_DEBUG, "[#{}] UPDATE({}, {})", pointer(), key.to_string(), key.pointer());
  148. if (!is_leaf())
  149. return node_for(key)->update_key_pointer(key);
  150. for (auto ix = 0u; ix < size(); ix++) {
  151. if (key == m_entries[ix]) {
  152. dbgln_if(SQL_DEBUG, "[#{}] {} == {}",
  153. pointer(), key.to_string(), m_entries[ix].to_string());
  154. if (m_entries[ix].pointer() != key.pointer()) {
  155. m_entries[ix].set_pointer(key.pointer());
  156. dump_if(SQL_DEBUG, "To WAL");
  157. tree().serializer().serialize_and_write<TreeNode>(*this, pointer());
  158. }
  159. return true;
  160. }
  161. }
  162. return false;
  163. }
  164. bool TreeNode::insert_in_leaf(Key const& key)
  165. {
  166. VERIFY(is_leaf());
  167. if (!m_tree.duplicates_allowed()) {
  168. for (auto& entry : m_entries) {
  169. if (key == entry) {
  170. dbgln_if(SQL_DEBUG, "[#{}] duplicate key {}", pointer(), key.to_string());
  171. return false;
  172. }
  173. }
  174. }
  175. dbgln_if(SQL_DEBUG, "[#{}] insert_in_leaf({})", pointer(), key.to_string());
  176. just_insert(key, nullptr);
  177. return true;
  178. }
  179. Key const& TreeNode::operator[](size_t ix) const
  180. {
  181. VERIFY(ix < size());
  182. return m_entries[ix];
  183. }
  184. u32 TreeNode::down_pointer(size_t ix) const
  185. {
  186. VERIFY(ix < m_down.size());
  187. return m_down[ix].pointer();
  188. }
  189. TreeNode* TreeNode::down_node(size_t ix)
  190. {
  191. VERIFY(ix < m_down.size());
  192. return m_down[ix].node();
  193. }
  194. TreeNode* TreeNode::node_for(Key const& key)
  195. {
  196. dump_if(SQL_DEBUG, String::formatted("node_for(Key {})", key.to_string()));
  197. if (is_leaf())
  198. return this;
  199. for (size_t ix = 0; ix < size(); ix++) {
  200. if (key < m_entries[ix]) {
  201. dbgln_if(SQL_DEBUG, "[{}] {} < {} v{}",
  202. pointer(), (String)key, (String)m_entries[ix], m_down[ix].pointer());
  203. return down_node(ix)->node_for(key);
  204. }
  205. }
  206. dbgln_if(SQL_DEBUG, "[#{}] {} >= {} v{}",
  207. pointer(), key.to_string(), (String)m_entries[size() - 1], m_down[size()].pointer());
  208. return down_node(size())->node_for(key);
  209. }
  210. Optional<u32> TreeNode::get(Key& key)
  211. {
  212. dump_if(SQL_DEBUG, String::formatted("get({})", key.to_string()));
  213. for (auto ix = 0u; ix < size(); ix++) {
  214. if (key < m_entries[ix]) {
  215. if (is_leaf()) {
  216. dbgln_if(SQL_DEBUG, "[#{}] {} < {} -> 0",
  217. pointer(), key.to_string(), (String)m_entries[ix]);
  218. return {};
  219. } else {
  220. dbgln_if(SQL_DEBUG, "[{}] {} < {} ({} -> {})",
  221. pointer(), key.to_string(), (String)m_entries[ix],
  222. ix, m_down[ix].pointer());
  223. return down_node(ix)->get(key);
  224. }
  225. }
  226. if (key == m_entries[ix]) {
  227. dbgln_if(SQL_DEBUG, "[#{}] {} == {} -> {}",
  228. pointer(), key.to_string(), (String)m_entries[ix],
  229. m_entries[ix].pointer());
  230. key.set_pointer(m_entries[ix].pointer());
  231. return m_entries[ix].pointer();
  232. }
  233. }
  234. if (m_entries.is_empty()) {
  235. dbgln_if(SQL_DEBUG, "[#{}] {} Empty node??", pointer(), key.to_string());
  236. VERIFY_NOT_REACHED();
  237. }
  238. if (is_leaf()) {
  239. dbgln_if(SQL_DEBUG, "[#{}] {} > {} -> 0",
  240. pointer(), key.to_string(), (String)m_entries[size() - 1]);
  241. return {};
  242. }
  243. dbgln_if(SQL_DEBUG, "[#{}] {} > {} ({} -> {})",
  244. pointer(), key.to_string(), (String)m_entries[size() - 1],
  245. size(), m_down[size()].pointer());
  246. return down_node(size())->get(key);
  247. }
  248. void TreeNode::just_insert(Key const& key, TreeNode* right)
  249. {
  250. dbgln_if(SQL_DEBUG, "[#{}] just_insert({}, right = {})",
  251. pointer(), (String)key, (right) ? right->pointer() : 0);
  252. dump_if(SQL_DEBUG, "Before");
  253. for (auto ix = 0u; ix < size(); ix++) {
  254. if (key < m_entries[ix]) {
  255. m_entries.insert(ix, key);
  256. VERIFY(is_leaf() == (right == nullptr));
  257. m_down.insert(ix + 1, DownPointer(this, right));
  258. if (length() > BLOCKSIZE) {
  259. split();
  260. } else {
  261. dump_if(SQL_DEBUG, "To WAL");
  262. tree().serializer().serialize_and_write(*this, pointer());
  263. }
  264. return;
  265. }
  266. }
  267. m_entries.append(key);
  268. m_down.empend(this, right);
  269. if (length() > BLOCKSIZE) {
  270. split();
  271. } else {
  272. dump_if(SQL_DEBUG, "To WAL");
  273. tree().serializer().serialize_and_write(*this, pointer());
  274. }
  275. }
  276. void TreeNode::split()
  277. {
  278. dump_if(SQL_DEBUG, "Splitting node");
  279. if (!m_up)
  280. // Make new m_up. This is the new root node.
  281. m_up = m_tree.new_root();
  282. // Take the left pointer for the new node:
  283. auto median_index = size() / 2;
  284. if (!(size() % 2))
  285. ++median_index;
  286. DownPointer left = m_down.take(median_index);
  287. // Create the new right node:
  288. auto* new_node = new TreeNode(tree(), m_up, left);
  289. // Move the rightmost keys from this node to the new right node:
  290. while (m_entries.size() > median_index) {
  291. auto entry = m_entries.take(median_index);
  292. auto down = m_down.take(median_index);
  293. // Reparent to new right node:
  294. if (down.m_node != nullptr) {
  295. down.m_node->m_up = new_node;
  296. }
  297. new_node->m_entries.append(entry);
  298. new_node->m_down.append(move(down));
  299. }
  300. // Move the median key in the node one level up. Its right node will
  301. // be the new node:
  302. auto median = m_entries.take_last();
  303. dump_if(SQL_DEBUG, "Split Left To WAL");
  304. tree().serializer().serialize_and_write(*this, pointer());
  305. new_node->dump_if(SQL_DEBUG, "Split Right to WAL");
  306. tree().serializer().serialize_and_write(*new_node, pointer());
  307. m_up->just_insert(median, new_node);
  308. }
  309. void TreeNode::dump_if(int flag, String&& msg)
  310. {
  311. if (!flag)
  312. return;
  313. StringBuilder builder;
  314. builder.appendff("[#{}] ", pointer());
  315. if (!msg.is_empty())
  316. builder.appendff("{}", msg);
  317. builder.append(": "sv);
  318. if (m_up)
  319. builder.appendff("[^{}] -> ", m_up->pointer());
  320. else
  321. builder.append("* -> "sv);
  322. for (size_t ix = 0; ix < m_entries.size(); ix++) {
  323. if (!is_leaf())
  324. builder.appendff("[v{}] ", m_down[ix].pointer());
  325. else
  326. VERIFY(m_down[ix].pointer() == 0);
  327. builder.appendff("'{}' ", (String)m_entries[ix]);
  328. }
  329. if (!is_leaf()) {
  330. builder.appendff("[v{}]", m_down[size()].pointer());
  331. } else {
  332. VERIFY(m_down[size()].pointer() == 0);
  333. }
  334. builder.appendff(" (size {}", (int)size());
  335. if (is_leaf()) {
  336. builder.append(", leaf"sv);
  337. }
  338. builder.append(')');
  339. dbgln(builder.build());
  340. }
  341. void TreeNode::list_node(int indent)
  342. {
  343. auto do_indent = [&]() {
  344. for (int i = 0; i < indent; ++i) {
  345. warn(" ");
  346. }
  347. };
  348. do_indent();
  349. warnln("--> #{}", pointer());
  350. for (auto ix = 0u; ix < size(); ix++) {
  351. if (!is_leaf()) {
  352. down_node(ix)->list_node(indent + 2);
  353. }
  354. do_indent();
  355. warnln("{}", m_entries[ix].to_string());
  356. }
  357. if (!is_leaf()) {
  358. down_node(size())->list_node(indent + 2);
  359. }
  360. }
  361. }