jmem_multi_hashmap.h 83 KB

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  1. /**
  2. * Tencent is pleased to support the open source community by making Tars available.
  3. *
  4. * Copyright (C) 2016THL A29 Limited, a Tencent company. All rights reserved.
  5. *
  6. * Licensed under the BSD 3-Clause License (the "License"); you may not use this file except
  7. * in compliance with the License. You may obtain a copy of the License at
  8. *
  9. * https://opensource.org/licenses/BSD-3-Clause
  10. *
  11. * Unless required by applicable law or agreed to in writing, software distributed
  12. * under the License is distributed on an "AS IS" BASIS, WITHOUT WARRANTIES OR
  13. * CONDITIONS OF ANY KIND, either express or implied. See the License for the
  14. * specific language governing permissions and limitations under the License.
  15. */
  16. #ifndef _JMEM_MULTI_HASHMAP_H
  17. #define _JMEM_MULTI_HASHMAP_H
  18. #include "util/tc_multi_hashmap.h"
  19. #include "util/tc_autoptr.h"
  20. #include "jmem/jmem_policy.h"
  21. #include "tup/Tars.h"
  22. namespace tars
  23. {
  24. /************************************************************************
  25. 基本说明如下:
  26. 基于Tars协议的支持多key的内存hashmap
  27. 编解码出错则抛出TarsDecodeException和TarsEncodeException
  28. 可以对锁策略和存储策略进行组合, 例如:
  29. 基于信号量锁, 文件存储的多key hashmap:
  30. TarsMultiHashMap<Test::QueueElement, SemLockPolicy, FileStorePolicy>
  31. 基于信号量锁, 共享内存存储的多key hashmap
  32. TarsMultiHashMap<Test::QueueElement, SemLockPolicy, ShmStorePolicy>
  33. 基于线程锁, 内存存储的多key hashmap
  34. TarsMultiHashMap<Test::QueueElement, ThreadLockPolicy, MemStorePolicy>
  35. 使用上, 不同的组合, 初始化函数不完全一样
  36. 初始化函数有:
  37. SemLockPolicy::initLock(key_t)
  38. ShmStorePolicy::initStore(key_t, size_t)
  39. FileStorePolicy::initStore(const char *file, size_t)
  40. 等, 具体参见jmem_policy.h
  41. ***********************************************************************
  42. 基本特性说明:
  43. > 内存数据的map, 根据最后Get时间的顺序淘汰数据;
  44. > 支持缓写/dump到文件/在线备份;
  45. > 支持不同大小内存块的配置, 提供内存的使用率;
  46. > 支持回收到指定空闲比率的空间;
  47. > 支持仅设置Key的操作, 即数据无value, 只有Key, 类似与stl::set;
  48. > 支持自定义hash算法;
  49. > hash数可以根据内存块比率设置, 并优化有素数, 提高hash的散列性;
  50. > 支持几种方式的遍历, 通常遍历时需要对map加锁;
  51. > 对于hash方式的遍历, 遍历时可以不需要对map加锁, 推荐使用;
  52. > 支持自定义操作对象设置, 可以非常快速实现相关的接口;
  53. > 支持自动编解码, Key和Value的结构都通过tars2cpp生成;
  54. > tars协议支持自动扩展字段, 因此该hashmap支持自动扩展字段(Key和Value都必须是通过tars编码的);
  55. > map支持只读模式, 只读模式下set/erase/del等修改数据的操作不能使用, get/回写/在线备份正常使用
  56. > 支持自动淘汰, set时, 内存满则自动淘汰, 在非自动淘汰时, 内存满直接返回RT_READONLY
  57. > 对于mmap文件, 支持自动扩展文件, 即内存不够了, 可以自动扩展文件大小(注意hash的数量不变, 因此开始就需要考虑hash的数量), 而且不能跨JHashmap对象(即两个hashmap对象访问同一块文件,通知一个hashmap扩展以后,另外一个对象并不知道扩展了)
  58. ***********************************************************************
  59. hashmap链说明:
  60. hashmap链一共包括了如下几种链表:
  61. > Set时间链: 任何Set操作都会修改该链表, Set后数据被设置为脏数据, 且移动到Set链表头部;
  62. > Get时间链: 任何Get操作都会修改该链表, 除非链表只读, 注意Set链同时也会修改Get链
  63. > Dirty时间链: dirty链是Set链的一部分, 用于回写数据用
  64. > Backup链:备份链是Get链的一部分, 当备份数据时, 顺着Get链从尾部到头部开始备份;
  65. ***********************************************************************
  66. 相关操作说明:
  67. > 可以设置map只读, 则所有写操作返回RT_READONLY, 此时Get操作不修改链表
  68. > 可以设置知否自动淘汰, 默认是自动淘汰的.如果不自动淘汰,则set时,无内存空间返回:RT_NO_MEMORY
  69. > 可以更改hash的算法, 调用setHashFunctor即可
  70. > 可以将某条数据设置为干净, 此时移出到Dirty链表指Dirty尾部的下一个元素;
  71. > 可以将某条数据设置为脏, 此时会移动到Set链表头部;
  72. > 每个数据都有一个上次回写时间(SyncTime), 如果启动回写操作, 则在一定时间内会回写;
  73. > 可以dump到文件或者从文件中load, 这个时候会对map加锁
  74. > 可以调用erase批量淘汰数据直到内存空闲率到一定比例
  75. > 可以调用sync进行数据回写, 保证一定时间内没有回写的数据会回写, map回写时间通过setSyncTime设置, 默认10分钟
  76. > 可以setToDoFunctor设置操作类, 以下是操作触发的情况:
  77. ***********************************************************************
  78. ToDoFunctor的函数说明:
  79. > 通常继承ToDoFunctor, 实现相关函数就可以了, 可以实现以下功能:Get数据, 淘汰数据, 删除数据, 回写数据, 备份数据
  80. > ToDoFunctor::erase, 当调用map.erase时, 该函数会被调用
  81. > ToDoFunctor::del, 当调用map.del时, 该函数会被调用, 注意删除时数据可能都不在cache中;
  82. > ToDoFunctor::sync, 当调用map.sync时, 会触发每条需要回写的数据该函数都被调用一次, 在该函数中处理回写请求;
  83. > ToDoFunctor::backup, 当调用map.backup时, 会触发需要备份的数据该函数会被调用一次, 在该函数中处理备份请求;
  84. > ToDoFunctor::get, 当调用map.get时, 如果map中无数据, 则该函数被调用, 该函数从db中获取数据, 并返回RT_OK, 如果db无数据则返回RT_NO_DATA;
  85. > ToDoFunctor所有接口被调用时, 都不会对map加锁, 因此可以操作map
  86. ***********************************************************************
  87. map的重要函数说明:
  88. > set, 设置数据到map中, 会更新set链表
  89. 如果满了, 且可以自动淘汰, 则根据Get链淘汰数据, 此时ToDoFunctor的sync会被调用
  90. 如果满了, 且可以不能自动淘汰, 则返回RT_NO_MEMORY
  91. > get, 从map获取数据, 如果有数据, 则直接从map获取数据并返回RT_OK;
  92. 如果没有数据, 则调用ToDoFunctor::get函数, 此时get函数需要返回RT_OK, 同时会设置到map中, 并返回数据;
  93. 如果没有数据, 则ToDoFunctor::get函数也无数据, 则需要返回RT_NO_DATA, 此时只会把Key设置到map中, 并返回RT_ONLY_KEY;
  94. 在上面情况下, 如果再有get请求, 则不再调用ToDoFunctor::get, 直接返回RT_ONLY_KEY;
  95. > del, 删除数据, 无论cache是否有数据, ToDoFunctor::del都会被调用;
  96. 如果只有Key, 则该数据也会被删除;
  97. > erase, 淘汰数据, 只有cache存在数据, ToDoFunctor::erase才会被调用
  98. 如果只有Key, 则该数据也会被淘汰, 但是ToDoFunctor::erase不会被调用;
  99. > erase(int ratio), 批量淘汰数据, 直到空闲块比率到达ratio;
  100. ToDoFunctor::erase会被调用;
  101. 只有Key的记录也会被淘汰, 但是ToDoFunctor::erase不会被调用;
  102. > sync: 缓写数据, 超时没有回写且是脏数据需要回写, 回写完毕后, 数据会自动设置为干净数据;
  103. 可以多个线程或进程同时缓写;
  104. ToDoFunctor::sync会被调用;
  105. 只有Key的记录, ToDoFunctor::sync不会被调用;
  106. > backup: 备份数据, 顺着顺着Get链从尾部到头部开始备份;
  107. ToDoFunctor::backup会被调用;
  108. 只有Key的记录, ToDoFunctor::backup不会被调用;
  109. 由于备份游标只有一个, 因此多个进程同时备份的时候数据可能会每个进程有一部分
  110. 如果备份程序备份到一半down了, 则下次启动备份时会接着上次的备份进行, 除非将backup(true)调用备份
  111. ***********************************************************************
  112. 返回值说明:
  113. > 注意函数所有int的返回值, 如无特别说明, 请参见TC_Multi_HashMap::RT_
  114. ***********************************************************************
  115. 遍历说明:
  116. > 可以用lock_iterator对map进行以下几种遍历, 在遍历过程中其实对map加锁处理了
  117. > end(): 迭代器尾部
  118. > begin(): 按照block区块遍历
  119. > rbegin():按照block区块逆序遍历
  120. > beginSetTime(): 按照Set时间顺序遍历
  121. > rbeginSetTime(): 按照Set时间顺序遍历
  122. > beginGetTime(): 按照Get时间顺序遍历
  123. > rbeginGetTime(): 按照Get时间逆序遍历
  124. > beginDirty(): 按时间逆序遍历脏数据链(如果setClean, 则也可能在脏链表上)
  125. > 其实回写数据链是脏数据量的子集
  126. > 注意:lock_iterator一旦获取, 就对map加锁了, 直到lock_iterator析够为止
  127. >
  128. > 可以用hash_iterator对map进行遍历, 遍历过程中对map没有加锁, 推荐使用
  129. > hashBegin(): 获取hash遍历迭代器
  130. > hashEnd(): hash遍历尾部迭代器
  131. > 注意:hash_iterator对应的其实是一个hash桶链, 每次获取数据其实会获取桶链上面的所有数据
  132. */
  133. template<typename MK,
  134. typename UK,
  135. typename V,
  136. typename LockPolicy,
  137. template<class, class> class StorePolicy>
  138. class TarsMultiHashMap : public StorePolicy<TC_Multi_HashMap, LockPolicy>
  139. {
  140. public:
  141. /**
  142. * 返回数据结构
  143. */
  144. struct Value
  145. {
  146. MK _mkey;
  147. UK _ukey;
  148. V _value;
  149. bool _dirty;
  150. uint8_t _iVersion; // 取值范围为1-255,0为特殊值,表示不检查版本。循环使用
  151. time_t _iSyncTime;
  152. Value() : _dirty(true), _iVersion(1), _iSyncTime(0)
  153. {
  154. }
  155. };
  156. /**
  157. * 定义数据操作基类
  158. * 获取,遍历,删除,淘汰时都可以使用该操作类
  159. */
  160. class ToDoFunctor
  161. {
  162. public:
  163. /**
  164. * 数据记录
  165. */
  166. typedef Value DataRecord; // 兼容老版本的名字
  167. /**
  168. * 析够
  169. */
  170. virtual ~ToDoFunctor(){};
  171. /**
  172. * 淘汰数据
  173. * @param stDataRecord: 被淘汰的数据
  174. */
  175. virtual void erase(const DataRecord &stDataRecord){};
  176. /**
  177. * 删除数据
  178. * @param bExists: 是否存在数据
  179. * @param stDataRecord: 数据, bExists==true时有效, 否则只有key有效
  180. */
  181. virtual void del(bool bExists, const DataRecord &stDataRecord){};
  182. /**
  183. * 回写数据
  184. * @param stDataRecord: 数据
  185. */
  186. virtual void sync(const DataRecord &stDataRecord){};
  187. /**
  188. * 备份数据
  189. * @param stDataRecord: 数据
  190. */
  191. virtual void backup(const DataRecord &stDataRecord){};
  192. /**
  193. * 获取数据, 默认返回RT_NO_GET
  194. * stDataRecord中_key有效, 其他数据需要返回
  195. * @param stDataRecord: 需要获取的数据
  196. *
  197. * @return int, 获取到数据, 返回:TC_Multi_HashMap::RT_OK
  198. * 没有数据,返回:TC_Multi_HashMap::RT_NO_DATA,
  199. * 系统默认GET,返回:TC_Multi_HashMap::RT_NO_GET
  200. * 其他,则返回:TC_Multi_HashMap::RT_LOAD_DATA_ERR
  201. */
  202. virtual int get(DataRecord &stDataRecord)
  203. {
  204. return TC_Multi_HashMap::RT_NO_GET;
  205. }
  206. /**
  207. * 根据主key获取数据,默认返回RT_NO_GET
  208. * mk,需要获取数据的主key
  209. * vtRecords,返回的数据
  210. */
  211. virtual int get(MK mk, vector<DataRecord>& vtRecords)
  212. {
  213. return TC_Multi_HashMap::RT_NO_GET;
  214. }
  215. };
  216. ///////////////////////////////////////////////////////////////////
  217. /**
  218. * 自动锁, 用于迭代器
  219. */
  220. class JhmAutoLock : public TC_HandleBase
  221. {
  222. public:
  223. /**
  224. * 构造
  225. * @param mutex
  226. */
  227. JhmAutoLock(typename LockPolicy::Mutex &mutex) : _lock(mutex)
  228. {
  229. }
  230. protected:
  231. //不实现
  232. JhmAutoLock(const JhmAutoLock &al);
  233. JhmAutoLock &operator=(const JhmAutoLock &al);
  234. protected:
  235. /**
  236. * 锁
  237. */
  238. TC_LockT<typename LockPolicy::Mutex> _lock;
  239. };
  240. typedef TC_AutoPtr<JhmAutoLock> JhmAutoLockPtr;
  241. ///////////////////////////////////////////////////////////////////
  242. /**
  243. * 数据项
  244. */
  245. class JhmLockItem
  246. {
  247. public:
  248. /**
  249. * 构造函数
  250. * @param item
  251. */
  252. JhmLockItem(const TC_Multi_HashMap::HashMapLockItem &item)
  253. : _item(item)
  254. {
  255. }
  256. /**
  257. * 拷贝构造
  258. * @param it
  259. */
  260. JhmLockItem(const JhmLockItem &item)
  261. : _item(item._item)
  262. {
  263. }
  264. /**
  265. * 复制
  266. * @param it
  267. *
  268. * @return JhmLockItem&
  269. */
  270. JhmLockItem& operator=(const JhmLockItem &item)
  271. {
  272. if(this != &item)
  273. {
  274. _item = item._item;
  275. }
  276. return (*this);
  277. }
  278. /**
  279. *
  280. * @param item
  281. *
  282. * @return bool
  283. */
  284. bool operator==(const JhmLockItem& item)
  285. {
  286. return (_item == item._item);
  287. }
  288. /**
  289. *
  290. * @param item
  291. *
  292. * @return bool
  293. */
  294. bool operator!=(const JhmLockItem& item)
  295. {
  296. return !((*this) == item);
  297. }
  298. /**
  299. * 是否是脏数据
  300. *
  301. * @return bool
  302. */
  303. bool isDirty() { return _item.isDirty(); }
  304. /**
  305. * 是否只有Key
  306. *
  307. * @return bool
  308. */
  309. bool isOnlyKey() { return _item.isOnlyKey(); }
  310. /**
  311. * 最后回写时间
  312. *
  313. * @return time_t
  314. */
  315. time_t getSyncTime() { return _item.getSyncTime(); }
  316. /**
  317. * 获取当前item的key
  318. * @param mk, 主key
  319. * @param uk, 除主key外的联合主键
  320. * @return int
  321. * TC_Multi_HashMap::RT_OK:数据获取OK
  322. * 其他值, 异常
  323. */
  324. int get(MK &mk, UK &uk)
  325. {
  326. string smk, suk;
  327. int ret = _item.get(smk, suk);
  328. if(ret != TC_Multi_HashMap::RT_OK)
  329. {
  330. return ret;
  331. }
  332. tars::TarsInputStream<BufferReader> is;
  333. is.setBuffer(smk.c_str(), smk.length());
  334. mk.readFrom(is);
  335. is.setBuffer(suk.c_str(), suk.length());
  336. uk.readFrom(is);
  337. return ret;
  338. }
  339. /**
  340. * 获取值当前item的value(含key)
  341. * @param v
  342. * @return int
  343. * TC_Multi_HashMap::RT_OK:数据获取OK
  344. * TC_Multi_HashMap::RT_ONLY_KEY: key有效, v无效为空
  345. * 其他值, 异常
  346. */
  347. int get(Value &v)
  348. {
  349. TC_Multi_HashMap::Value hv;
  350. int ret = _item.get(hv);
  351. if(ret != TC_Multi_HashMap::RT_OK && ret != TC_Multi_HashMap::RT_ONLY_KEY)
  352. {
  353. return ret;
  354. }
  355. tars::TarsInputStream<BufferReader> is;
  356. is.setBuffer(hv._mkey.c_str(), hv._mkey.length());
  357. v._mkey.readFrom(is);
  358. is.setBuffer(hv._data._key.c_str(), hv._data._key.length());
  359. v._ukey.readFrom(is);
  360. if(ret != TC_Multi_HashMap::RT_ONLY_KEY)
  361. {
  362. is.setBuffer(hv._data._value.c_str(), hv._data._value.length());
  363. v._value.readFrom(is);
  364. }
  365. v._dirty = hv._data._dirty;
  366. v._iVersion = hv._data._iVersion;
  367. v._iSyncTime = hv._data._synct;
  368. return ret;
  369. }
  370. protected:
  371. TC_Multi_HashMap::HashMapLockItem _item;
  372. };
  373. ///////////////////////////////////////////////////////////////////
  374. /**
  375. * 迭代器
  376. */
  377. struct JhmLockIterator
  378. {
  379. public:
  380. /**
  381. * 构造
  382. * @param it
  383. * @param lock
  384. */
  385. JhmLockIterator(const TC_Multi_HashMap::lock_iterator it, const JhmAutoLockPtr &lock)
  386. : _it(it), _item(it._iItem), _lock(lock)
  387. {
  388. }
  389. /**
  390. * 拷贝构造
  391. * @param it
  392. */
  393. JhmLockIterator(const JhmLockIterator &it)
  394. : _it(it._it), _item(it._item), _lock(it._lock)
  395. {
  396. }
  397. /**
  398. * 复制
  399. * @param it
  400. *
  401. * @return JhmLockIterator&
  402. */
  403. JhmLockIterator& operator=(const JhmLockIterator &it)
  404. {
  405. if(this != &it)
  406. {
  407. _it = it._it;
  408. _item = it._item;
  409. _lock = it._lock;
  410. }
  411. return (*this);
  412. }
  413. /**
  414. *
  415. * @param it
  416. *
  417. * @return bool
  418. */
  419. bool operator==(const JhmLockIterator& it)
  420. {
  421. return (_it == it._it && _item == it._item);
  422. }
  423. /**
  424. *
  425. * @param mv
  426. *
  427. * @return bool
  428. */
  429. bool operator!=(const JhmLockIterator& it)
  430. {
  431. return !((*this) == it);
  432. }
  433. /**
  434. * 前置++
  435. *
  436. * @return JhmLockIterator&
  437. */
  438. JhmLockIterator& operator++()
  439. {
  440. ++_it;
  441. _item = JhmLockItem(_it._iItem);
  442. return (*this);
  443. }
  444. /**
  445. * 后置++
  446. *
  447. * @return JhmLockIterator&
  448. */
  449. JhmLockIterator operator++(int)
  450. {
  451. JhmLockIterator jit(_it, _lock);
  452. ++_it;
  453. _item = JhmLockItem(_it._iItem);
  454. return jit;
  455. }
  456. /**
  457. * 获取数据项
  458. *
  459. * @return JhmLockItem&
  460. */
  461. JhmLockItem& operator*() { return _item; }
  462. /**
  463. * 获取数据项
  464. *
  465. * @return JhmLockItem*
  466. */
  467. JhmLockItem* operator->() { return &_item; }
  468. protected:
  469. /**
  470. * 迭代器
  471. */
  472. TC_Multi_HashMap::lock_iterator _it;
  473. /**
  474. * 数据项
  475. */
  476. JhmLockItem _item;
  477. /**
  478. * 锁
  479. */
  480. JhmAutoLockPtr _lock;
  481. };
  482. typedef JhmLockIterator lock_iterator ;
  483. ///////////////////////////////////////////////////////////////////
  484. /**
  485. * 锁, 用于非锁迭代器
  486. *
  487. */
  488. class JhmLock : public TC_HandleBase
  489. {
  490. public:
  491. /**
  492. * 构造
  493. * @param mutex
  494. */
  495. JhmLock(typename LockPolicy::Mutex &mutex) : _mutex(mutex)
  496. {
  497. }
  498. /**
  499. * 获取锁
  500. *
  501. * @return typename LockPolicy::Mutex
  502. */
  503. typename LockPolicy::Mutex& mutex()
  504. {
  505. return _mutex;
  506. }
  507. protected:
  508. //不实现
  509. JhmLock(const JhmLock &al);
  510. JhmLock &operator=(const JhmLock &al);
  511. protected:
  512. /**
  513. * 锁
  514. */
  515. typename LockPolicy::Mutex &_mutex;
  516. };
  517. typedef TC_AutoPtr<JhmLock> JhmLockPtr;
  518. ///////////////////////////////////////////////////////////////////
  519. /**
  520. * 数据项
  521. */
  522. class JhmItem
  523. {
  524. public:
  525. /**
  526. * 构造函数
  527. * @param item
  528. */
  529. JhmItem(const TC_Multi_HashMap::HashMapItem &item, const JhmLockPtr &lock)
  530. : _item(item), _lock(lock)
  531. {
  532. }
  533. /**
  534. * 拷贝构造
  535. * @param it
  536. */
  537. JhmItem(const JhmItem &item)
  538. : _item(item._item), _lock(item._lock)
  539. {
  540. }
  541. /**
  542. * 复制
  543. * @param it
  544. *
  545. * @return JhmItem&
  546. */
  547. JhmItem& operator=(const JhmItem &item)
  548. {
  549. if(this != &item)
  550. {
  551. _item = item._item;
  552. _lock = item._lock;
  553. }
  554. return (*this);
  555. }
  556. /**
  557. *
  558. * @param item
  559. *
  560. * @return bool
  561. */
  562. bool operator==(const JhmItem& item)
  563. {
  564. return (_item == item._item);
  565. }
  566. /**
  567. *
  568. * @param item
  569. *
  570. * @return bool
  571. */
  572. bool operator!=(const JhmItem& item)
  573. {
  574. return !((*this) == item);
  575. }
  576. /**
  577. * 获取当前hash桶的所有数据, 注意只获取有key/value的数据
  578. * 对于只有key的数据, 不获取
  579. * 如果协议解码有问题也不获取
  580. * @param vs,
  581. */
  582. void get(vector<TarsMultiHashMap::Value> &vs)
  583. {
  584. vector<TC_Multi_HashMap::Value> vtData;
  585. {
  586. TC_LockT<typename LockPolicy::Mutex> lock(_lock->mutex());
  587. _item.get(vtData);
  588. }
  589. for(size_t i = 0; i < vtData.size(); i++)
  590. {
  591. try
  592. {
  593. Value v;
  594. tars::TarsInputStream<BufferReader> is;
  595. is.setBuffer(vtData[i]._mkey.c_str(), vtData[i]._mkey.length());
  596. v._mkey.readFrom(is);
  597. is.setBuffer(vtData[i]._data._key.c_str(), vtData[i]._data._key.length());
  598. v._ukey.readFrom(is);
  599. is.setBuffer(vtData[i]._data._value.c_str(), vtData[i]._data._value.length());
  600. v._value.readFrom(is);
  601. v._iVersion = vtData[i]._data._iVersion;
  602. v._dirty = vtData[i]._data._dirty;
  603. v._iSyncTime = vtData[i]._data._synct;
  604. vs.push_back(v);
  605. }
  606. catch(exception &ex)
  607. {
  608. }
  609. }
  610. }
  611. protected:
  612. TC_Multi_HashMap::HashMapItem _item;
  613. JhmLockPtr _lock;
  614. };
  615. ///////////////////////////////////////////////////////////////////
  616. /**
  617. * 迭代器
  618. */
  619. struct JhmIterator
  620. {
  621. public:
  622. /**
  623. * 构造
  624. * @param it
  625. * @param lock
  626. */
  627. JhmIterator(const TC_Multi_HashMap::hash_iterator &it, const JhmLockPtr &lock)
  628. : _it(it), _item(it._iItem, lock), _lock(lock)
  629. {
  630. }
  631. /**
  632. * 拷贝构造
  633. * @param it
  634. */
  635. JhmIterator(const JhmIterator &it)
  636. : _it(it._it), _item(it._item), _lock(it._lock)
  637. {
  638. }
  639. /**
  640. * 复制
  641. * @param it
  642. *
  643. * @return JhmIterator&
  644. */
  645. JhmIterator& operator=(const JhmIterator &it)
  646. {
  647. if(this != &it)
  648. {
  649. _it = it._it;
  650. _item = it._item;
  651. }
  652. return (*this);
  653. }
  654. /**
  655. *
  656. * @param it
  657. *
  658. * @return bool
  659. */
  660. bool operator==(const JhmIterator& it)
  661. {
  662. return (_it == it._it && _item == it._item);
  663. }
  664. /**
  665. *
  666. * @param mv
  667. *
  668. * @return bool
  669. */
  670. bool operator!=(const JhmIterator& it)
  671. {
  672. return !((*this) == it);
  673. }
  674. /**
  675. * 前置++
  676. *
  677. * @return JhmIterator&
  678. */
  679. JhmIterator& operator++()
  680. {
  681. TC_LockT<typename LockPolicy::Mutex> lock(_lock->mutex());
  682. ++_it;
  683. _item = JhmItem(_it._iItem, _lock);
  684. return (*this);
  685. }
  686. /**
  687. * 后置++
  688. *
  689. * @return JhmIterator&
  690. */
  691. JhmIterator operator++(int)
  692. {
  693. TC_LockT<typename LockPolicy::Mutex> lock(_lock->mutex());
  694. JhmIterator jit(_it, _lock);
  695. ++_it;
  696. _item = JhmItem(_it._iItem, _lock);
  697. return jit;
  698. }
  699. /**
  700. * 获取数据项
  701. *
  702. * @return JhmItem&
  703. */
  704. JhmItem& operator*() { return _item; }
  705. /**
  706. * 获取数据项
  707. *
  708. * @return JhmItem*
  709. */
  710. JhmItem* operator->() { return &_item; }
  711. protected:
  712. /**
  713. * 迭代器
  714. */
  715. TC_Multi_HashMap::hash_iterator _it;
  716. /**
  717. * 数据项
  718. */
  719. JhmItem _item;
  720. /**
  721. * 锁
  722. */
  723. JhmLockPtr _lock;
  724. };
  725. typedef JhmIterator hash_iterator ;
  726. ////////////////////////////////////////////////////////////////////////////
  727. //
  728. /**
  729. * 构造函数
  730. */
  731. TarsMultiHashMap()
  732. {
  733. _todo_of = NULL;
  734. }
  735. /**
  736. * 初始化数据块平均大小
  737. * 表示内存分配的时候,会分配n个最小块, n个(最小快*增长因子), n个(最小快*增长因子*增长因子)..., 直到n个最大块
  738. * n是hashmap自己计算出来的
  739. * 这种分配策略通常是你数据快记录变长比较多的使用, 便于节约内存,如果数据记录基本不是变长的, 那最小块=最大快,增长因子=1就可以了
  740. * @param iMinDataSize: 最小数据块大小
  741. * @param iMaxDataSize: 最大数据块大小
  742. * @param fFactor: 增长因子 >= 1.0
  743. */
  744. void initDataBlockSize(size_t iMinDataSize, size_t iMaxDataSize, float fFactor)
  745. {
  746. this->_t.initDataBlockSize(iMinDataSize, iMaxDataSize, fFactor);
  747. }
  748. /**
  749. * 设置hash比率(设置chunk数据块/hash项比值, 默认是2)
  750. * 有需要更改必须在create之前调用
  751. *
  752. * @param fratio
  753. */
  754. void initHashRatio(float fratio) { this->_t.initHashRatio(fratio);}
  755. /**
  756. * 初始化chunk个数/主key hash个数, 默认是1, 含义是一个主key下面大概有多个条数据
  757. * 有需要更改必须在create之前调用
  758. *
  759. * @param fratio
  760. */
  761. void initMainKeyHashRatio(float fratio) { this->_t.initMainKeyHashRatio(fratio);}
  762. /**
  763. * 设置hash方式,这个hash函数将作为联合主键的hash函数
  764. * @param hash_of
  765. */
  766. void setHashFunctor(TC_Multi_HashMap::hash_functor hashf)
  767. {
  768. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  769. this->_t.setHashFunctor(hashf);
  770. }
  771. /**
  772. * 设置主key的hash方式,如果不设,主key将使用上面的联合主键的hash函数
  773. * @param hash_of
  774. */
  775. void setHashFunctorM(TC_Multi_HashMap::hash_functor hashf)
  776. {
  777. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  778. this->_t.setHashFunctorM(hashf);
  779. }
  780. /**
  781. * 获取hash方式
  782. *
  783. * @return TC_Multi_HashMap::hash_functor&
  784. */
  785. TC_Multi_HashMap::hash_functor &getHashFunctor() { return this->_t.getHashFunctor(); }
  786. /* 获取主key hash方式
  787. *
  788. * @return TC_Multi_HashMap::hash_functor&
  789. */
  790. TC_Multi_HashMap::hash_functor &getHashFunctorM() { return this->_t.getHashFunctorM(); }
  791. /**
  792. * 设置淘汰操作类
  793. * @param erase_of
  794. */
  795. void setToDoFunctor(ToDoFunctor *todo_of) { this->_todo_of = todo_of; }
  796. /**
  797. * 获取每种大小内存块的头部信息
  798. *
  799. * @return vector<TC_MemChunk::tagChunkHead>: 不同大小内存块头部信息
  800. */
  801. vector<TC_MemChunk::tagChunkHead> getBlockDetail()
  802. {
  803. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  804. return this->_t.getBlockDetail();
  805. }
  806. /**
  807. * 所有block中chunk的个数
  808. *
  809. * @return size_t
  810. */
  811. size_t allBlockChunkCount()
  812. {
  813. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  814. return this->_t.allBlockChunkCount();
  815. }
  816. /**
  817. * 每种block中chunk的个数(不同大小内存块的个数相同)
  818. *
  819. * @return size_t
  820. */
  821. vector<size_t> singleBlockChunkCount()
  822. {
  823. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  824. return this->_t.singleBlockChunkCount();
  825. }
  826. /**
  827. * 获取hash桶的个数
  828. *
  829. * @return size_t
  830. */
  831. size_t getHashCount()
  832. {
  833. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  834. return this->_t.getHashCount();
  835. }
  836. /**
  837. * 获取主key hash桶个数
  838. */
  839. size_t getMainKeyHashCount()
  840. {
  841. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  842. return this->_t.getMainKeyHashCount();
  843. }
  844. /**
  845. * 元素的个数
  846. *
  847. * @return size_t
  848. */
  849. size_t size()
  850. {
  851. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  852. return this->_t.size();
  853. }
  854. /**
  855. * 脏数据元素个数
  856. *
  857. * @return size_t
  858. */
  859. size_t dirtyCount()
  860. {
  861. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  862. return this->_t.dirtyCount();
  863. }
  864. /**
  865. * 主键下Only key数据元素个数
  866. *
  867. * @return size_t
  868. */
  869. size_t onlyKeyCount()
  870. {
  871. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  872. return this->_t.onlyKeyCount();
  873. }
  874. /**
  875. * 主key下Only key数据元素个数
  876. *
  877. * @return size_t
  878. */
  879. size_t onlyKeyCountM()
  880. {
  881. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  882. return this->_t.onlyKeyCountM();
  883. }
  884. /**
  885. * 设置每次淘汰数量
  886. * @param n
  887. */
  888. void setEraseCount(size_t n)
  889. {
  890. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  891. this->_t.setEraseCount(n);
  892. }
  893. /**
  894. * 获取每次淘汰数量
  895. *
  896. * @return size_t
  897. */
  898. size_t getEraseCount()
  899. {
  900. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  901. return this->_t.getEraseCount();
  902. }
  903. /**
  904. * 设置只读
  905. * @param bReadOnly
  906. */
  907. void setReadOnly(bool bReadOnly)
  908. {
  909. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  910. this->_t.setReadOnly(bReadOnly);
  911. }
  912. /**
  913. * 是否只读
  914. *
  915. * @return bool
  916. */
  917. bool isReadOnly()
  918. {
  919. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  920. return this->_t.isReadOnly();
  921. }
  922. /**
  923. * 设置是否可以自动淘汰
  924. * @param bAutoErase
  925. */
  926. void setAutoErase(bool bAutoErase)
  927. {
  928. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  929. this->_t.setAutoErase(bAutoErase);
  930. }
  931. /**
  932. * 是否可以自动淘汰
  933. *
  934. * @return bool
  935. */
  936. bool isAutoErase()
  937. {
  938. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  939. return this->_t.isAutoErase();
  940. }
  941. /**
  942. * 设置淘汰方式
  943. * TC_Multi_HashMap::ERASEBYGET
  944. * TC_Multi_HashMap::ERASEBYSET
  945. * @param cEraseMode
  946. */
  947. void setEraseMode(char cEraseMode)
  948. {
  949. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  950. this->_t.setEraseMode(cEraseMode);
  951. }
  952. /**
  953. * 获取淘汰方式
  954. *
  955. * @return bool
  956. */
  957. char getEraseMode()
  958. {
  959. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  960. return this->_t.getEraseMode();
  961. }
  962. /**
  963. * 头部信息
  964. *
  965. * @return TC_Multi_HashMap::tagMapHead
  966. */
  967. TC_Multi_HashMap::tagMapHead& getMapHead() { return this->_t.getMapHead(); }
  968. /**
  969. * 设置回写时间间隔(秒)
  970. * @param iSyncTime
  971. */
  972. void setSyncTime(time_t iSyncTime)
  973. {
  974. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  975. this->_t.setSyncTime(iSyncTime);
  976. }
  977. /**
  978. * 获取回写时间
  979. *
  980. * @return time_t
  981. */
  982. time_t getSyncTime()
  983. {
  984. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  985. return this->_t.getSyncTime();
  986. }
  987. /**
  988. * dump到文件
  989. * @param sFile
  990. * @param bDoClear: 是否清空
  991. * @return int
  992. * TC_Multi_HashMap::RT_DUMP_FILE_ERR: dump到文件出错
  993. * TC_Multi_HashMap::RT_OK: dump到文件成功
  994. */
  995. int dump2file(const string &sFile, bool bDoClear = false)
  996. {
  997. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  998. int ret = this->_t.dump2file(sFile);
  999. if(ret != TC_Multi_HashMap::RT_OK)
  1000. {
  1001. return ret;
  1002. }
  1003. if(bDoClear)
  1004. this->_t.clear();
  1005. return ret;
  1006. }
  1007. /**
  1008. * 从文件load
  1009. * @param sFile
  1010. *
  1011. * @return int
  1012. * TC_Multi_HashMap::RT_LOAL_FILE_ERR: load出错
  1013. * TC_Multi_HashMap::RT_VERSION_MISMATCH_ERR: 版本不一致
  1014. * TC_Multi_HashMap::RT_OK: load成功
  1015. */
  1016. int load5file(const string &sFile)
  1017. {
  1018. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1019. return this->_t.load5file(sFile);
  1020. }
  1021. /**
  1022. * 清空hash map
  1023. * 所有map中的数据都被清空
  1024. */
  1025. void clear()
  1026. {
  1027. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1028. return this->_t.clear();
  1029. }
  1030. /**
  1031. * 检查数据脏状态
  1032. * @param mk, 主key
  1033. * @param uk, 除主key外的联合主键
  1034. *
  1035. * @return int
  1036. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1037. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key
  1038. * TC_Multi_HashMap::RT_DIRTY_DATA: 是脏数据
  1039. * TC_Multi_HashMap::RT_OK: 是干净数据
  1040. * 其他返回值: 错误
  1041. */
  1042. int checkDirty(const MK &mk, const UK &uk)
  1043. {
  1044. tars::TarsOutputStream<BufferWriter> mosk;
  1045. mk.writeTo(mosk);
  1046. string smk(mosk.getBuffer(), mosk.getLength());
  1047. tars::TarsOutputStream<BufferWriter> uosk;
  1048. uk.writeTo(uosk);
  1049. string suk(uosk.getBuffer(), uosk.getLength());
  1050. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1051. return this->_t.checkDirty(smk, suk);
  1052. }
  1053. /**
  1054. * 检查主key下的数据脏状态,只要主key下任何一条记录是脏数据就返回脏
  1055. * @param mk, 主key
  1056. *
  1057. * @return int
  1058. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1059. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key
  1060. * TC_Multi_HashMap::RT_DIRTY_DATA: 是脏数据
  1061. * TC_Multi_HashMap::RT_OK: 是干净数据
  1062. * 其他返回值: 错误
  1063. */
  1064. int checkDirty(const MK &mk)
  1065. {
  1066. tars::TarsOutputStream<BufferWriter> mosk;
  1067. mk.writeTo(mosk);
  1068. string smk(mosk.getBuffer(), mosk.getLength());
  1069. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1070. return this->_t.checkDirty(smk);
  1071. }
  1072. /**
  1073. * 设置为干净数据i, 修改SET/GET时间链, 会导致数据不回写
  1074. * @param k
  1075. *
  1076. * @return int
  1077. * TC_Multi_HashMap::RT_READONLY: 只读
  1078. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1079. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key
  1080. * TC_Multi_HashMap::RT_OK: 设置成功
  1081. * 其他返回值: 错误
  1082. */
  1083. int setClean(const MK &mk, const UK &uk)
  1084. {
  1085. tars::TarsOutputStream<BufferWriter> mosk;
  1086. mk.writeTo(mosk);
  1087. string smk(mosk.getBuffer(), mosk.getLength());
  1088. tars::TarsOutputStream<BufferWriter> uosk;
  1089. uk.writeTo(uosk);
  1090. string suk(uosk.getBuffer(), uosk.getLength());
  1091. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1092. return this->_t.setClean(smk, suk);
  1093. }
  1094. /**
  1095. * 设置为脏数据, 修改SET/GET时间链, 会导致数据回写
  1096. * @param mk
  1097. * @param uk
  1098. * @return int
  1099. * TC_Multi_HashMap::RT_READONLY: 只读
  1100. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1101. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key
  1102. * TC_Multi_HashMap::RT_OK: 设置脏数据成功
  1103. * 其他返回值: 错误
  1104. */
  1105. int setDirty(const MK &mk, const UK &uk)
  1106. {
  1107. tars::TarsOutputStream<BufferWriter> mosk;
  1108. mk.writeTo(mosk);
  1109. string smk(mosk.getBuffer(), mosk.getLength());
  1110. tars::TarsOutputStream<BufferWriter> uosk;
  1111. uk.writeTo(uosk);
  1112. string suk(uosk.getBuffer(), uosk.getLength());
  1113. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1114. return this->_t.setDirty(smk, suk);
  1115. }
  1116. /**
  1117. * 设置数据回写时间
  1118. * @param mk
  1119. * @param uk
  1120. * @param iSyncTime
  1121. * @return int
  1122. * TC_Multi_HashMap::RT_READONLY: 只读
  1123. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1124. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key
  1125. * TC_Multi_HashMap::RT_OK: 设置脏数据成功
  1126. * 其他返回值: 错误
  1127. */
  1128. int setSyncTime(const MK &mk, const UK &uk, time_t iSyncTime)
  1129. {
  1130. tars::TarsOutputStream<BufferWriter> mosk;
  1131. mk.writeTo(mosk);
  1132. string smk(mosk.getBuffer(), mosk.getLength());
  1133. tars::TarsOutputStream<BufferWriter> uosk;
  1134. uk.writeTo(uosk);
  1135. string suk(uosk.getBuffer(), uosk.getLength());
  1136. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1137. return this->_t.setSyncTime(smk, suk, iSyncTime);
  1138. }
  1139. /**
  1140. * 获取数据, 修改GET时间链
  1141. * (如果没设置自定义Get函数,没有数据时返回:RT_NO_DATA)
  1142. * @param mk
  1143. * @param uk
  1144. * @param v
  1145. *
  1146. * @return int:
  1147. * TC_Multi_HashMap::RT_NO_DATA: 没有数据
  1148. * TC_Multi_HashMap::RT_READONLY: 只读模式
  1149. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key
  1150. * TC_Multi_HashMap::RT_OK:获取数据成功
  1151. * TC_Multi_HashMap::RT_LOAD_DATA_ERR: load数据失败
  1152. * 其他返回值: 错误
  1153. */
  1154. int get(const MK &mk, const UK &uk, Value &v)
  1155. {
  1156. int ret = TC_Multi_HashMap::RT_OK;
  1157. tars::TarsOutputStream<BufferWriter> mosk;
  1158. mk.writeTo(mosk);
  1159. string smk(mosk.getBuffer(), mosk.getLength());
  1160. tars::TarsOutputStream<BufferWriter> uosk;
  1161. uk.writeTo(uosk);
  1162. string suk(uosk.getBuffer(), uosk.getLength());
  1163. TC_Multi_HashMap::Value tv;
  1164. {
  1165. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1166. ret = this->_t.get(smk, suk, tv);
  1167. }
  1168. // 读取到数据了, 解包
  1169. if(ret == TC_Multi_HashMap::RT_OK)
  1170. {
  1171. v._mkey = mk;
  1172. v._ukey = uk;
  1173. v._dirty = tv._data._dirty;
  1174. v._iSyncTime = tv._data._synct;
  1175. v._iVersion = tv._data._iVersion;
  1176. tars::TarsInputStream<BufferReader> is;
  1177. is.setBuffer(tv._data._value.c_str(), tv._data._value.length());
  1178. v._value.readFrom(is);
  1179. return ret;
  1180. }
  1181. if(ret != TC_Multi_HashMap::RT_NO_DATA || _todo_of == NULL)
  1182. {
  1183. return ret;
  1184. }
  1185. //只读模式
  1186. if(isReadOnly())
  1187. {
  1188. return TC_Multi_HashMap::RT_READONLY;
  1189. }
  1190. // Hashmap中没有数据,从外部获取函数获取数据
  1191. typename ToDoFunctor::DataRecord stDataRecord;
  1192. stDataRecord._mkey = mk;
  1193. stDataRecord._ukey = uk;
  1194. ret = _todo_of->get(stDataRecord);
  1195. if(ret == TC_Multi_HashMap::RT_OK)
  1196. {
  1197. v = stDataRecord;
  1198. // 设置到hashmap中
  1199. return this->set(stDataRecord._mkey, stDataRecord._ukey, stDataRecord._value, 0, stDataRecord._dirty);
  1200. }
  1201. else if(ret == TC_Multi_HashMap::RT_NO_GET)
  1202. {
  1203. return TC_Multi_HashMap::RT_NO_DATA;
  1204. }
  1205. else if(ret == TC_Multi_HashMap::RT_NO_DATA)
  1206. {
  1207. // 没有数据,以only key的形式设置到hashmap中
  1208. ret = this->set(stDataRecord._mkey, stDataRecord._ukey);
  1209. if(ret == TC_Multi_HashMap::RT_OK)
  1210. {
  1211. return TC_Multi_HashMap::RT_ONLY_KEY;
  1212. }
  1213. return ret;
  1214. }
  1215. return TC_Multi_HashMap::RT_LOAD_DATA_ERR;
  1216. }
  1217. /**
  1218. * 仅根据主key获取所有的数据
  1219. * @param mk
  1220. * @param vs
  1221. *
  1222. * @return int:
  1223. * RT_NO_DATA: 没有数据
  1224. * RT_ONLY_KEY: 只有Key
  1225. * RT_PART_DATA: 数据不全,只有部分数据
  1226. * RT_OK: 获取数据成功
  1227. * 其他返回值: 错误
  1228. */
  1229. int get(const MK& mk, vector<Value> &vs)
  1230. {
  1231. tars::TarsOutputStream<BufferWriter> os;
  1232. mk.writeTo(os);
  1233. string smk(os.getBuffer(), os.getLength());
  1234. int ret = TC_Multi_HashMap::RT_OK;
  1235. vector<TC_Multi_HashMap::Value> hvs;
  1236. {
  1237. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1238. ret = this->_t.get(smk, hvs);
  1239. }
  1240. if(ret == TC_Multi_HashMap::RT_OK)
  1241. {
  1242. for(size_t i = 0; i < hvs.size(); i ++)
  1243. {
  1244. Value v;
  1245. v._mkey = mk;
  1246. tars::TarsInputStream<BufferReader> is;
  1247. is.setBuffer(hvs[i]._data._key.c_str(), hvs[i]._data._key.length());
  1248. v._ukey.readFrom(is);
  1249. is.setBuffer(hvs[i]._data._value.c_str(), hvs[i]._data._value.length());
  1250. v._value.readFrom(is);
  1251. v._iVersion = hvs[i]._data._iVersion;
  1252. v._dirty = hvs[i]._data._dirty;
  1253. v._iSyncTime = hvs[i]._data._synct;
  1254. vs.push_back(v);
  1255. }
  1256. return ret;
  1257. }
  1258. if(ret != TC_Multi_HashMap::RT_NO_DATA || _todo_of == NULL)
  1259. {
  1260. return ret;
  1261. }
  1262. //只读模式
  1263. if(isReadOnly())
  1264. {
  1265. return TC_Multi_HashMap::RT_READONLY;
  1266. }
  1267. // Hashmap中没有数据,从外部获取函数获取数据
  1268. ret = _todo_of->get(mk, vs);
  1269. if(ret == TC_Multi_HashMap::RT_OK)
  1270. {
  1271. // 设置到hashmap中
  1272. for(size_t i = 0; i < vs.size(); i ++)
  1273. {
  1274. ret = this->set(vs[i]._mkey, vs[i]._ukey, vs[i]._value, 0, vs[i]._dirty);
  1275. if(ret != TC_Multi_HashMap::RT_OK)
  1276. {
  1277. // 把设置进去的全部删除
  1278. vector<TC_Multi_HashMap::Value> vtErased;
  1279. {
  1280. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1281. this->_t.del(smk, vtErased);
  1282. }
  1283. return ret;
  1284. }
  1285. }
  1286. }
  1287. else if(ret == TC_Multi_HashMap::RT_NO_GET)
  1288. {
  1289. return TC_Multi_HashMap::RT_NO_DATA;
  1290. }
  1291. else if(ret == TC_Multi_HashMap::RT_NO_DATA)
  1292. {
  1293. // 没有数据,以only key的形式设置到hashmap中
  1294. ret = this->set(mk);
  1295. if(ret == TC_Multi_HashMap::RT_OK)
  1296. {
  1297. return TC_Multi_HashMap::RT_ONLY_KEY;
  1298. }
  1299. return ret;
  1300. }
  1301. return TC_Multi_HashMap::RT_LOAD_DATA_ERR;
  1302. }
  1303. /**
  1304. * 根据hash值获取相同hash值的所有数据
  1305. * 注意:c匹配对象操作中, map是加锁的, 需要注意
  1306. * @param h, h为联合主键(MK+UK)的hash
  1307. * @param vv
  1308. * @param c, 匹配仿函数: bool operator()(MK, UK);
  1309. *
  1310. * @return int, RT_OK
  1311. */
  1312. template<typename C>
  1313. int getHash(uint32_t h, vector<Value> &vv, C c)
  1314. {
  1315. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1316. size_t index = h % this->_t.getHashCount();
  1317. size_t iAddr = this->_t.item(index)->_iBlockAddr;
  1318. TC_Multi_HashMap::lock_iterator it(&this->_t, iAddr, TC_Multi_HashMap::lock_iterator::IT_UKEY, TC_Multi_HashMap::lock_iterator::IT_NEXT);
  1319. while(it != this->_t.end())
  1320. {
  1321. Value v;
  1322. TC_Multi_HashMap::Value hv;
  1323. int ret = it->get(hv);
  1324. if(ret == TC_Multi_HashMap::RT_OK)
  1325. {
  1326. tars::TarsInputStream<BufferReader> is;
  1327. is.setBuffer(hv._mkey.c_str(), hv._mkey.length());
  1328. v._mkey.readFrom(is);
  1329. is.setBuffer(hv._data._key.c_str(), hv._data._key.length());
  1330. v._ukey.readFrom(is);
  1331. if(c(v._mkey, v._ukey))
  1332. {
  1333. is.setBuffer(hv._data._value.c_str(), hv._data._value.length());
  1334. v._value.readFrom(is);
  1335. v._iVersion = hv._data._iVersion;
  1336. v._dirty = hv._data._dirty;
  1337. v._iSyncTime = hv._data._synct;
  1338. vv.push_back(v);
  1339. }
  1340. }
  1341. it ++;
  1342. }
  1343. return TC_Multi_HashMap::RT_OK;
  1344. }
  1345. /**
  1346. * 根据主key hash值获取相同主key hash值的所有数据
  1347. * 注意:c匹配对象操作中, map是加锁的, 需要注意
  1348. * @param h, h为主key(MK)的hash
  1349. * @param mv, 返回结果集,以主key分组
  1350. * @param c, 匹配仿函数: bool operator()(MK);
  1351. *
  1352. * @return int, RT_OK
  1353. */
  1354. template<typename C>
  1355. int getHashM(uint32_t h, map<MK, vector<Value> > &mv, C c)
  1356. {
  1357. int ret = TC_Multi_HashMap::RT_OK;
  1358. map<string, vector<TC_Multi_HashMap::Value> > hmv;
  1359. {
  1360. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1361. ret = this->_t.get(h, hmv);
  1362. }
  1363. if(ret == TC_Multi_HashMap::RT_OK)
  1364. {
  1365. map<string, vector<TC_Multi_HashMap::Value> >::iterator it = hmv.begin();
  1366. while(it != hmv.end())
  1367. {
  1368. MK mk;
  1369. tars::TarsInputStream<BufferReader> is;
  1370. is.setBuffer(it->first.c_str(), it->first.length());
  1371. mk.readFrom(is);
  1372. if(c(mk))
  1373. {
  1374. vector<Value> vs;
  1375. vector<TC_Multi_HashMap::Value> &hvs = it->second;
  1376. for(size_t i = 0; i < hvs.size(); i ++)
  1377. {
  1378. Value v;
  1379. v._mkey = mk;
  1380. is.setBuffer(hvs[i]._data._key.c_str(), hvs[i]._data._key.length());
  1381. v._ukey.readFrom(is);
  1382. is.setBuffer(hvs[i]._data._value.c_str(), hvs[i]._data._value.length());
  1383. v._value.readFrom(is);
  1384. v._iVersion = hvs[i]._data._iVersion;
  1385. v._dirty = hvs[i]._data._dirty;
  1386. v._iSyncTime = hvs[i]._data._synct;
  1387. vs.push_back(v);
  1388. }
  1389. mv[mk] = vs;
  1390. }
  1391. it ++;
  1392. }
  1393. }
  1394. return ret;
  1395. }
  1396. /**
  1397. * 设置数据, 修改时间链, 内存不够时会自动淘汰老的数据
  1398. * @param mk: 主key
  1399. * @param uk: 除主key外的联合主键
  1400. * @param v: 值
  1401. * @param iVersion: 设置的数据版本,应该根据get的数据版本来设置,0表示不检查版本
  1402. * @param bDirty: 是否是脏数据
  1403. * @param bHead: 数据插入到主key链的头部还是尾部
  1404. * @param eType: 插入的数据的类型
  1405. * PART_DATA: 插入的数据是不完整的数据
  1406. * FULL_DATA: 插入的数据是完整数据
  1407. * AUTO_DATA: 根据Cache已有数据类型决定最终数据类型,如果已有数据是不完整的,最终的数据也是不完整的,如果已有数据是完整的,最终数据也是完整的,如果Cache中没有数据,最终数据是不完整的
  1408. * @return int:
  1409. * TC_Multi_HashMap::RT_READONLY: map只读
  1410. * TC_Multi_HashMap::RT_NO_MEMORY: 没有空间(不淘汰数据情况下会出现)
  1411. * TC_Multi_HashMap::RT_OK: 设置成功
  1412. * 其他返回值: 错误
  1413. */
  1414. int set(const MK &mk, const UK &uk, const V &v, uint8_t iVersion,
  1415. bool bDirty = true, TC_Multi_HashMap::DATATYPE eType = TC_Multi_HashMap::AUTO_DATA, bool bHead = true)
  1416. {
  1417. tars::TarsOutputStream<BufferWriter> mos;
  1418. mk.writeTo(mos);
  1419. string smk(mos.getBuffer(), mos.getLength());
  1420. tars::TarsOutputStream<BufferWriter> uos;
  1421. uk.writeTo(uos);
  1422. string suk(uos.getBuffer(), uos.getLength());
  1423. tars::TarsOutputStream<BufferWriter> vos;
  1424. v.writeTo(vos);
  1425. string sv(vos.getBuffer(), vos.getLength());
  1426. int ret = TC_Multi_HashMap::RT_OK;
  1427. vector<TC_Multi_HashMap::Value> vtErased;
  1428. {
  1429. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1430. ret = this->_t.set(smk, suk, sv, iVersion, bDirty, eType, bHead, vtErased);
  1431. }
  1432. //操作淘汰数据
  1433. if(_todo_of)
  1434. {
  1435. for(size_t i = 0; i < vtErased.size(); i++)
  1436. {
  1437. MK emk;
  1438. UK euk;
  1439. V tv;
  1440. try
  1441. {
  1442. tars::TarsInputStream<BufferReader> is;
  1443. is.setBuffer(vtErased[i]._mkey.c_str(), vtErased[i]._mkey.length());
  1444. emk.readFrom(is);
  1445. is.setBuffer(vtErased[i]._data._key.c_str(), vtErased[i]._data._key.length());
  1446. euk.readFrom(is);
  1447. is.setBuffer(vtErased[i]._data._value.c_str(), vtErased[i]._data._value.length());
  1448. tv.readFrom(is);
  1449. typename ToDoFunctor::DataRecord stDataRecord;
  1450. stDataRecord._mkey = emk;
  1451. stDataRecord._ukey = euk;
  1452. stDataRecord._value = tv;
  1453. stDataRecord._iVersion = vtErased[i]._data._iVersion;
  1454. stDataRecord._dirty = vtErased[i]._data._dirty;
  1455. stDataRecord._iSyncTime = vtErased[i]._data._synct;
  1456. _todo_of->sync(stDataRecord);
  1457. }
  1458. catch(exception &ex)
  1459. {
  1460. }
  1461. }
  1462. }
  1463. return ret;
  1464. }
  1465. /**
  1466. * 仅设置Key, 内存不够时会自动淘汰老的数据
  1467. * @param mk: 主key
  1468. * @param uk: 除主key外的联合主键
  1469. * @param bHead: 数据插入到主key链的头部还是尾部
  1470. * @param eType: 插入的数据的类型
  1471. * PART_DATA: 插入的数据是不完整的数据
  1472. * FULL_DATA: 插入的数据是完整数据
  1473. * AUTO_DATA: 根据Cache已有数据类型决定最终数据类型,如果已有数据是不完整的,最终的数据也是不完整的,如果已有数据是完整的,最终数据也是完整的,如果Cache中没有数据,最终数据是不完整的
  1474. * @return int:
  1475. * TC_Multi_HashMap::RT_READONLY: map只读
  1476. * TC_Multi_HashMap::RT_NO_MEMORY: 没有空间(不淘汰数据情况下会出现)
  1477. * TC_Multi_HashMap::RT_OK: 设置成功
  1478. * 其他返回值: 错误
  1479. */
  1480. int set(const MK &mk, const UK &uk, TC_Multi_HashMap::DATATYPE eType = TC_Multi_HashMap::AUTO_DATA, bool bHead = true)
  1481. {
  1482. tars::TarsOutputStream<BufferWriter> mos;
  1483. mk.writeTo(mos);
  1484. string smk(mos.getBuffer(), mos.getLength());
  1485. tars::TarsOutputStream<BufferWriter> uos;
  1486. uk.writeTo(uos);
  1487. string suk(uos.getBuffer(), uos.getLength());
  1488. int ret = TC_Multi_HashMap::RT_OK;
  1489. vector<TC_Multi_HashMap::Value> vtErased;
  1490. {
  1491. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1492. ret = this->_t.set(smk, suk, eType, bHead, vtErased);
  1493. }
  1494. //操作淘汰数据
  1495. if(_todo_of)
  1496. {
  1497. for(size_t i = 0; i < vtErased.size(); i++)
  1498. {
  1499. MK emk;
  1500. UK euk;
  1501. V tv;
  1502. try
  1503. {
  1504. tars::TarsInputStream<BufferReader> is;
  1505. is.setBuffer(vtErased[i]._mkey.c_str(), vtErased[i]._mkey.length());
  1506. emk.readFrom(is);
  1507. is.setBuffer(vtErased[i]._data._key.c_str(), vtErased[i]._data._key.length());
  1508. euk.readFrom(is);
  1509. is.setBuffer(vtErased[i]._data._value.c_str(), vtErased[i]._data._value.length());
  1510. tv.readFrom(is);
  1511. typename ToDoFunctor::DataRecord stDataRecord;
  1512. stDataRecord._mkey = emk;
  1513. stDataRecord._ukey = euk;
  1514. stDataRecord._value = tv;
  1515. stDataRecord._iVersion = vtErased[i]._data._iVersion;
  1516. stDataRecord._dirty = vtErased[i]._data._dirty;
  1517. stDataRecord._iSyncTime = vtErased[i]._data._synct;
  1518. _todo_of->sync(stDataRecord);
  1519. }
  1520. catch(exception &ex)
  1521. {
  1522. }
  1523. }
  1524. }
  1525. return ret;
  1526. }
  1527. /**
  1528. * 仅设置主Key, 内存不够时会自动淘汰老的数据
  1529. * @param mk: 主key
  1530. * @return int:
  1531. * TC_Multi_HashMap::RT_READONLY: map只读
  1532. * TC_Multi_HashMap::RT_NO_MEMORY: 没有空间(不淘汰数据情况下会出现)
  1533. * TC_Multi_HashMap::RT_OK: 设置成功
  1534. * 其他返回值: 错误
  1535. */
  1536. int set(const MK &mk)
  1537. {
  1538. tars::TarsOutputStream<BufferWriter> mos;
  1539. mk.writeTo(mos);
  1540. string smk(mos.getBuffer(), mos.getLength());
  1541. int ret = TC_Multi_HashMap::RT_OK;
  1542. vector<TC_Multi_HashMap::Value> vtErased;
  1543. {
  1544. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1545. ret = this->_t.set(smk, vtErased);
  1546. }
  1547. //操作淘汰数据
  1548. if(_todo_of)
  1549. {
  1550. for(size_t i = 0; i < vtErased.size(); i++)
  1551. {
  1552. MK emk;
  1553. UK euk;
  1554. V tv;
  1555. try
  1556. {
  1557. tars::TarsInputStream<BufferReader> is;
  1558. is.setBuffer(vtErased[i]._mkey.c_str(), vtErased[i]._mkey.length());
  1559. emk.readFrom(is);
  1560. is.setBuffer(vtErased[i]._data._key.c_str(), vtErased[i]._data._key.length());
  1561. euk.readFrom(is);
  1562. is.setBuffer(vtErased[i]._data._value.c_str(), vtErased[i]._data._value.length());
  1563. tv.readFrom(is);
  1564. typename ToDoFunctor::DataRecord stDataRecord;
  1565. stDataRecord._mkey = emk;
  1566. stDataRecord._ukey = euk;
  1567. stDataRecord._value = tv;
  1568. stDataRecord._iVersion = vtErased[i]._data._iVersion;
  1569. stDataRecord._dirty = vtErased[i]._data._dirty;
  1570. stDataRecord._iSyncTime = vtErased[i]._data._synct;
  1571. _todo_of->sync(stDataRecord);
  1572. }
  1573. catch(exception &ex)
  1574. {
  1575. }
  1576. }
  1577. }
  1578. return ret;
  1579. }
  1580. /**
  1581. * 批量设置数据,内存不够时会自动淘汰
  1582. * 注意,此接口通常用于从数据库中取出相同主key下的一批数据并同步到Cache
  1583. * 不能滥用此接口来批量插入数据,要注意保证Cache和数据库数据的一致
  1584. * @param vs, 批量数据集
  1585. * @param eType: 插入的数据的类型
  1586. * PART_DATA: 插入的数据是不完整的数据
  1587. * FULL_DATA: 插入的数据是完整数据
  1588. * AUTO_DATA: 根据Cache已有数据类型决定最终数据类型,如果已有数据是不完整的,最终的数据也是不完整的,如果已有数据是完整的,最终数据也是完整的,如果Cache中没有数据,最终数据是不完整的
  1589. * @param bHead, 数据插入到主key链的头部还是尾部
  1590. * @param bForce, 是否强制插入数据,为false则表示如果数据已经存在则不更新
  1591. *
  1592. * @return int:
  1593. * TC_Multi_HashMap::RT_READONLY: map只读
  1594. * TC_Multi_HashMap::RT_NO_MEMORY: 没有空间(不淘汰数据情况下会出现)
  1595. * TC_Multi_HashMap::RT_OK: 设置成功
  1596. * 其他返回值: 错误
  1597. */
  1598. int set(const vector<Value> &vs, TC_Multi_HashMap::DATATYPE eType = TC_Multi_HashMap::AUTO_DATA, bool bHead = true, bool bForce = true)
  1599. {
  1600. int ret = TC_Multi_HashMap::RT_OK;
  1601. vector<TC_Multi_HashMap::Value> vtSet, vtErased;
  1602. for(size_t i = 0; i < vs.size(); i ++)
  1603. {
  1604. TC_Multi_HashMap::Value v;
  1605. tars::TarsOutputStream<BufferWriter> mos;
  1606. vs[i]._mkey.writeTo(mos);
  1607. v._mkey.assign(mos.getBuffer(), mos.getLength());
  1608. tars::TarsOutputStream<BufferWriter> uos;
  1609. vs[i]._ukey.writeTo(uos);
  1610. v._data._key.assign(uos.getBuffer(), uos.getLength());
  1611. tars::TarsOutputStream<BufferWriter> vos;
  1612. vs[i]._value.writeTo(vos);
  1613. v._data._value.assign(vos.getBuffer(), vos.getLength());
  1614. v._data._dirty = vs[i]._dirty;
  1615. v._data._iVersion = vs[i]._iVersion;
  1616. v._data._synct = vs[i]._iSyncTime;
  1617. vtSet.push_back(v);
  1618. }
  1619. {
  1620. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1621. ret = this->_t.set(vtSet, eType, bHead, bForce, vtErased);
  1622. }
  1623. //操作淘汰数据
  1624. if(_todo_of)
  1625. {
  1626. for(size_t i = 0; i < vtErased.size(); i++)
  1627. {
  1628. MK emk;
  1629. UK euk;
  1630. V tv;
  1631. try
  1632. {
  1633. tars::TarsInputStream<BufferReader> is;
  1634. is.setBuffer(vtErased[i]._mkey.c_str(), vtErased[i]._mkey.length());
  1635. emk.readFrom(is);
  1636. is.setBuffer(vtErased[i]._data._key.c_str(), vtErased[i]._data._key.length());
  1637. euk.readFrom(is);
  1638. is.setBuffer(vtErased[i]._data._value.c_str(), vtErased[i]._data._value.length());
  1639. tv.readFrom(is);
  1640. typename ToDoFunctor::DataRecord stDataRecord;
  1641. stDataRecord._mkey = emk;
  1642. stDataRecord._ukey = euk;
  1643. stDataRecord._value = tv;
  1644. stDataRecord._iVersion = vtErased[i]._data._iVersion;
  1645. stDataRecord._dirty = vtErased[i]._data._dirty;
  1646. stDataRecord._iSyncTime = vtErased[i]._data._synct;
  1647. _todo_of->sync(stDataRecord);
  1648. }
  1649. catch(exception &ex)
  1650. {
  1651. }
  1652. }
  1653. }
  1654. return ret;
  1655. }
  1656. /**
  1657. * 删除数据
  1658. * 无论cache是否有数据,todo的del都被调用
  1659. *
  1660. * @param mk, 主key
  1661. * @param uk, 除主key外的联合主键
  1662. *
  1663. * @return int:
  1664. * TC_Multi_HashMap::RT_READONLY: map只读
  1665. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1666. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key, 也删除了
  1667. * TC_Multi_HashMap::RT_OK: 删除数据成功
  1668. * 其他返回值: 错误
  1669. */
  1670. int del(const MK &mk, const UK &uk)
  1671. {
  1672. int ret = TC_Multi_HashMap::RT_OK;
  1673. TC_Multi_HashMap::Value data;
  1674. tars::TarsOutputStream<BufferWriter> mos;
  1675. mk.writeTo(mos);
  1676. string smk(mos.getBuffer(), mos.getLength());
  1677. tars::TarsOutputStream<BufferWriter> uos;
  1678. uk.writeTo(uos);
  1679. string suk(uos.getBuffer(), uos.getLength());
  1680. {
  1681. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1682. ret = this->_t.del(smk, suk, data);
  1683. }
  1684. if(ret != TC_Multi_HashMap::RT_OK && ret != TC_Multi_HashMap::RT_ONLY_KEY && ret != TC_Multi_HashMap::RT_NO_DATA)
  1685. {
  1686. return ret;
  1687. }
  1688. if(_todo_of)
  1689. {
  1690. typename ToDoFunctor::DataRecord stDataRecord;
  1691. stDataRecord._mkey = mk;
  1692. stDataRecord._ukey = uk;
  1693. if(ret == TC_Multi_HashMap::RT_OK)
  1694. {
  1695. V v;
  1696. tars::TarsInputStream<BufferReader> is;
  1697. is.setBuffer(data._data._value.c_str(), data._data._value.length());
  1698. v.readFrom(is);
  1699. stDataRecord._value = v;
  1700. stDataRecord._iVersion = data._data._iVersion;
  1701. stDataRecord._dirty = data._data._dirty;
  1702. stDataRecord._iSyncTime = data._data._synct;
  1703. }
  1704. _todo_of->del((ret == TC_Multi_HashMap::RT_OK), stDataRecord);
  1705. }
  1706. return ret;
  1707. }
  1708. /**
  1709. * 删除主key下的所有数据
  1710. * cache有数据,todo的erase被调用
  1711. *
  1712. * @param mk, 主key
  1713. *
  1714. * @return int:
  1715. * TC_Multi_HashMap::RT_READONLY: map只读
  1716. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1717. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key, 也删除了
  1718. * TC_Multi_HashMap::RT_OK: 删除数据成功
  1719. * 其他返回值: 错误
  1720. */
  1721. int erase(const MK &mk)
  1722. {
  1723. int ret = TC_Multi_HashMap::RT_OK;
  1724. vector<TC_Multi_HashMap::Value> vtErased;
  1725. tars::TarsOutputStream<BufferWriter> os;
  1726. mk.writeTo(os);
  1727. string smk(os.getBuffer(), os.getLength());
  1728. {
  1729. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1730. ret = this->_t.del(smk, vtErased);
  1731. }
  1732. if(ret != TC_Multi_HashMap::RT_OK)
  1733. {
  1734. return ret;
  1735. }
  1736. if(_todo_of)
  1737. {
  1738. for(size_t i = 0; i < vtErased.size(); i ++)
  1739. {
  1740. MK emk;
  1741. UK euk;
  1742. V tv;
  1743. try
  1744. {
  1745. tars::TarsInputStream<BufferReader> is;
  1746. is.setBuffer(vtErased[i]._mkey.c_str(), vtErased[i]._mkey.length());
  1747. emk.readFrom(is);
  1748. is.setBuffer(vtErased[i]._data._key.c_str(), vtErased[i]._data._key.length());
  1749. euk.readFrom(is);
  1750. is.setBuffer(vtErased[i]._data._value.c_str(), vtErased[i]._data._value.length());
  1751. tv.readFrom(is);
  1752. typename ToDoFunctor::DataRecord stDataRecord;
  1753. stDataRecord._mkey = emk;
  1754. stDataRecord._ukey = euk;
  1755. stDataRecord._value = tv;
  1756. stDataRecord._iVersion = vtErased[i]._data._iVersion;
  1757. stDataRecord._dirty = vtErased[i]._data._dirty;
  1758. stDataRecord._iSyncTime = vtErased[i]._data._synct;
  1759. _todo_of->erase(stDataRecord);
  1760. }
  1761. catch(exception &ex)
  1762. {
  1763. }
  1764. }
  1765. }
  1766. return ret;
  1767. }
  1768. /**
  1769. * 删除指定数据
  1770. * cache有数据,todo的erase被调用
  1771. *
  1772. * @param mk, 主key
  1773. * @param uk, 除主key外的联合主键
  1774. *
  1775. * @return int:
  1776. * TC_Multi_HashMap::RT_READONLY: map只读
  1777. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1778. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key, 也删除了
  1779. * TC_Multi_HashMap::RT_OK: 删除数据成功
  1780. * 其他返回值: 错误
  1781. */
  1782. int erase(const MK &mk, const UK &uk)
  1783. {
  1784. int ret = TC_Multi_HashMap::RT_OK;
  1785. TC_Multi_HashMap::Value data;
  1786. tars::TarsOutputStream<BufferWriter> mos;
  1787. mk.writeTo(mos);
  1788. string smk(mos.getBuffer(), mos.getLength());
  1789. tars::TarsOutputStream<BufferWriter> uos;
  1790. uk.writeTo(uos);
  1791. string suk(uos.getBuffer(), uos.getLength());
  1792. {
  1793. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1794. ret = this->_t.del(smk, suk, data);
  1795. }
  1796. if(ret != TC_Multi_HashMap::RT_OK)
  1797. {
  1798. return ret;
  1799. }
  1800. if(_todo_of)
  1801. {
  1802. MK emk;
  1803. UK euk;
  1804. V tv;
  1805. try
  1806. {
  1807. tars::TarsInputStream<BufferReader> is;
  1808. is.setBuffer(data._mkey.c_str(), data._mkey.length());
  1809. emk.readFrom(is);
  1810. is.setBuffer(data._data._key.c_str(), data._data._key.length());
  1811. euk.readFrom(is);
  1812. is.setBuffer(data._data._value.c_str(), data._data._value.length());
  1813. tv.readFrom(is);
  1814. typename ToDoFunctor::DataRecord stDataRecord;
  1815. stDataRecord._mkey = emk;
  1816. stDataRecord._ukey = euk;
  1817. stDataRecord._value = tv;
  1818. stDataRecord._iVersion = data._data._iVersion;
  1819. stDataRecord._dirty = data._data._dirty;
  1820. stDataRecord._iSyncTime = data._data._synct;
  1821. _todo_of->erase(stDataRecord);
  1822. }
  1823. catch(exception &ex)
  1824. {
  1825. }
  1826. }
  1827. return ret;
  1828. }
  1829. /**
  1830. * 强制删除数据,不调用todo的erase被调用
  1831. *
  1832. * @param mk, 主key
  1833. * @param uk, 除主key外的联合主键
  1834. *
  1835. * @return int:
  1836. * TC_Multi_HashMap::RT_READONLY: map只读
  1837. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1838. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key, 也删除了
  1839. * TC_Multi_HashMap::RT_OK: 删除数据成功
  1840. * 其他返回值: 错误
  1841. */
  1842. int eraseByForce(const MK &mk, const UK &uk)
  1843. {
  1844. int ret = TC_Multi_HashMap::RT_OK;
  1845. TC_Multi_HashMap::Value data;
  1846. tars::TarsOutputStream<BufferWriter> mos;
  1847. mk.writeTo(mos);
  1848. string smk(mos.getBuffer(), mos.getLength());
  1849. tars::TarsOutputStream<BufferWriter> uos;
  1850. uk.writeTo(uos);
  1851. string suk(uos.getBuffer(), uos.getLength());
  1852. {
  1853. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1854. ret = this->_t.del(smk, suk, data);
  1855. }
  1856. if(ret != TC_Multi_HashMap::RT_OK)
  1857. {
  1858. return ret;
  1859. }
  1860. return ret;
  1861. }
  1862. /**
  1863. * 强制删除主key下的所有数据,不调用todo的erase被调用
  1864. *
  1865. * @param mk, 主key
  1866. * @return int:
  1867. * TC_Multi_HashMap::RT_READONLY: map只读
  1868. * TC_Multi_HashMap::RT_NO_DATA: 没有当前数据
  1869. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key, 也删除了
  1870. * TC_Multi_HashMap::RT_OK: 删除数据成功
  1871. * 其他返回值: 错误
  1872. */
  1873. int eraseByForce(const MK &mk)
  1874. {
  1875. int ret = TC_Multi_HashMap::RT_OK;
  1876. vector<TC_Multi_HashMap::Value> data;
  1877. tars::TarsOutputStream<BufferWriter> os;
  1878. mk.writeTo(os);
  1879. string smk(os.getBuffer(), os.getLength());
  1880. {
  1881. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1882. ret = this->_t.del(smk, data);
  1883. }
  1884. if(ret != TC_Multi_HashMap::RT_OK)
  1885. {
  1886. return ret;
  1887. }
  1888. return ret;
  1889. }
  1890. /**
  1891. * 淘汰数据, 根据Get时间淘汰
  1892. * 直到: 元素个数/chunks * 100 < ratio,bCheckDirty 为true时,遇到脏数据则淘汰结束
  1893. * @param ratio: 共享内存chunks使用比例 0< ratio < 100
  1894. * @param bCheckDirty: 是否检查数据脏状态,如果检查则遇到脏数据不淘汰
  1895. * @return int:
  1896. * TC_Multi_HashMap::RT_READONLY: map只读
  1897. * TC_Multi_HashMap::RT_OK:淘汰完毕
  1898. */
  1899. int erase(int ratio, bool bCheckDirty = false)
  1900. {
  1901. while(true)
  1902. {
  1903. int ret;
  1904. vector<TC_Multi_HashMap::Value> vtErased;
  1905. {
  1906. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1907. ret = this->_t.erase(ratio, vtErased, bCheckDirty);
  1908. if(ret == TC_Multi_HashMap::RT_OK || ret == TC_Multi_HashMap::RT_READONLY)
  1909. {
  1910. return ret;
  1911. }
  1912. if(ret != TC_Multi_HashMap::RT_ERASE_OK)
  1913. {
  1914. continue;
  1915. }
  1916. }
  1917. if(_todo_of)
  1918. {
  1919. for(size_t i = 0; i < vtErased.size(); i++)
  1920. {
  1921. MK emk;
  1922. UK euk;
  1923. V tv;
  1924. try
  1925. {
  1926. tars::TarsInputStream<BufferReader> is;
  1927. is.setBuffer(vtErased[i]._mkey.c_str(), vtErased[i]._mkey.length());
  1928. emk.readFrom(is);
  1929. is.setBuffer(vtErased[i]._data._key.c_str(), vtErased[i]._data._key.length());
  1930. euk.readFrom(is);
  1931. is.setBuffer(vtErased[i]._data._value.c_str(), vtErased[i]._data._value.length());
  1932. tv.readFrom(is);
  1933. typename ToDoFunctor::DataRecord stDataRecord;
  1934. stDataRecord._mkey = emk;
  1935. stDataRecord._ukey = euk;
  1936. stDataRecord._value = tv;
  1937. stDataRecord._iVersion = vtErased[i]._data._iVersion;
  1938. stDataRecord._dirty = vtErased[i]._data._dirty;
  1939. stDataRecord._iSyncTime = vtErased[i]._data._synct;
  1940. _todo_of->erase(stDataRecord);
  1941. }
  1942. catch(exception &ex)
  1943. {
  1944. }
  1945. }
  1946. }
  1947. }
  1948. return TC_Multi_HashMap::RT_OK;
  1949. }
  1950. /**
  1951. * 回写单条记录, 如果记录不存在, 则不做任何处理
  1952. * @param mk
  1953. * @param uk
  1954. *
  1955. * @return int
  1956. * TC_Multi_HashMap::RT_NO_DATA: 没有数据
  1957. * TC_Multi_HashMap::RT_ONLY_KEY:只有Key
  1958. * TC_Multi_HashMap::RT_OK:获取数据成功
  1959. * TC_Multi_HashMap::RT_LOAD_DATA_ERR: load数据失败
  1960. * 其他返回值: 错误
  1961. */
  1962. int sync(const MK &mk, const UK &uk)
  1963. {
  1964. Value v;
  1965. int ret = get(mk, uk, v);
  1966. if(ret == TC_Multi_HashMap::RT_OK)
  1967. {
  1968. if(_todo_of)
  1969. {
  1970. _todo_of->sync(v);
  1971. }
  1972. }
  1973. return ret;
  1974. }
  1975. /**
  1976. * 将脏数据且一定时间没有回写的数据全部回写
  1977. * 数据回写时间与当前时间超过_pHead->_iSyncTime(setSyncTime)则需要回写
  1978. *
  1979. * map只读时仍然可以回写
  1980. *
  1981. * @param iNowTime: 回写到什么时间, 通常是当前时间
  1982. * @return int:
  1983. * TC_Multi_HashMap::RT_OK: 回写完毕了
  1984. */
  1985. int sync(time_t iNowTime)
  1986. {
  1987. {
  1988. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1989. this->_t.sync();
  1990. }
  1991. while(true)
  1992. {
  1993. TC_Multi_HashMap::Value data;
  1994. int ret;
  1995. {
  1996. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  1997. ret = this->_t.sync(iNowTime, data);
  1998. if(ret == TC_Multi_HashMap::RT_OK)
  1999. {
  2000. return ret;
  2001. }
  2002. if(ret != TC_Multi_HashMap::RT_NEED_SYNC)
  2003. {
  2004. continue;
  2005. }
  2006. }
  2007. if(_todo_of)
  2008. {
  2009. MK mk;
  2010. UK uk;
  2011. V tv;
  2012. tars::TarsInputStream<BufferReader> is;
  2013. is.setBuffer(data._mkey.c_str(), data._mkey.length());
  2014. mk.readFrom(is);
  2015. is.setBuffer(data._data._key.c_str(), data._data._key.length());
  2016. uk.readFrom(is);
  2017. is.setBuffer(data._data._value.c_str(), data._data._value.length());
  2018. tv.readFrom(is);
  2019. typename ToDoFunctor::DataRecord stDataRecord;
  2020. stDataRecord._mkey = mk;
  2021. stDataRecord._ukey = uk;
  2022. stDataRecord._value = tv;
  2023. stDataRecord._iVersion = data._data._iVersion;
  2024. stDataRecord._dirty = data._data._dirty;
  2025. stDataRecord._iSyncTime = data._data._synct;
  2026. _todo_of->sync(stDataRecord);
  2027. }
  2028. }
  2029. return TC_Multi_HashMap::RT_OK;
  2030. }
  2031. /**
  2032. *将脏数据尾指针赋给回写尾指针
  2033. */
  2034. void sync()
  2035. {
  2036. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  2037. this->_t.sync();
  2038. }
  2039. /**
  2040. * 将脏数据且一定时间没有回写的数据回写,只回写一个脏数据,目的是替代int sync(time_t iNowTime)
  2041. * 方法,把由业务控制每次回写数据量,使用时应该先调用void sync()
  2042. *
  2043. * 数据回写时间与当前时间超过_pHead->_iSyncTime(setSyncTime)则需要回写
  2044. * map只读时仍然可以回写
  2045. *
  2046. * @param iNowTime: 回写到什么时间, 通常是当前时间
  2047. * @return int:
  2048. * TC_Multi_HashMap::RT_OK: 回写完毕了
  2049. *
  2050. * 示例:
  2051. * p->sync();
  2052. * while(true) {
  2053. * int iRet = pthis->SyncOnce(tNow);
  2054. * if( iRet == TC_Multi_HashMap::RT_OK )
  2055. * break;
  2056. * }
  2057. */
  2058. int syncOnce(time_t iNowTime)
  2059. {
  2060. TC_Multi_HashMap::Value data;
  2061. int ret;
  2062. {
  2063. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  2064. ret = this->_t.sync(iNowTime, data);
  2065. if(ret == TC_Multi_HashMap::RT_OK)
  2066. {
  2067. return ret;
  2068. }
  2069. if(ret != TC_Multi_HashMap::RT_NEED_SYNC)
  2070. {
  2071. return ret;
  2072. }
  2073. }
  2074. if(_todo_of)
  2075. {
  2076. MK mk;
  2077. UK uk;
  2078. V tv;
  2079. tars::TarsInputStream<BufferReader> is;
  2080. is.setBuffer(data._mkey.c_str(), data._mkey.length());
  2081. mk.readFrom(is);
  2082. is.setBuffer(data._data._key.c_str(), data._data._key.length());
  2083. uk.readFrom(is);
  2084. is.setBuffer(data._data._value.c_str(), data._data._value.length());
  2085. tv.readFrom(is);
  2086. typename ToDoFunctor::DataRecord stDataRecord;
  2087. stDataRecord._mkey = mk;
  2088. stDataRecord._ukey = uk;
  2089. stDataRecord._value = tv;
  2090. stDataRecord._iVersion = data._data._iVersion;
  2091. stDataRecord._dirty = data._data._dirty;
  2092. stDataRecord._iSyncTime = data._data._synct;
  2093. _todo_of->sync(stDataRecord);
  2094. }
  2095. return ret;
  2096. }
  2097. /**
  2098. * 备份数据
  2099. * map只读时仍然可以备份
  2100. * 可以多个线程/进程备份数据,同时备份时bForceFromBegin设置为false效率更高
  2101. *
  2102. * @param bForceFromBegin: 是否强制重头开始备份, 通常为false
  2103. * @return int:
  2104. * TC_Multi_HashMap::RT_OK: 备份OK了
  2105. */
  2106. int backup(bool bForceFromBegin = false)
  2107. {
  2108. {
  2109. //开始准备备份
  2110. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  2111. this->_t.backup(bForceFromBegin);
  2112. }
  2113. while(true)
  2114. {
  2115. TC_Multi_HashMap::Value data;
  2116. int ret;
  2117. {
  2118. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  2119. ret = this->_t.backup(data);
  2120. if(ret == TC_Multi_HashMap::RT_OK)
  2121. {
  2122. return ret;
  2123. }
  2124. if(ret != TC_Multi_HashMap::RT_NEED_BACKUP)
  2125. {
  2126. continue;
  2127. }
  2128. }
  2129. if(_todo_of)
  2130. {
  2131. MK mk;
  2132. UK uk;
  2133. V tv;
  2134. tars::TarsInputStream<BufferReader> is;
  2135. is.setBuffer(data._mkey.c_str(), data._mkey.length());
  2136. mk.readFrom(is);
  2137. is.setBuffer(data._data._key.c_str(), data._data._key.length());
  2138. uk.readFrom(is);
  2139. is.setBuffer(data._data._value.c_str(), data._data._value.length());
  2140. tv.readFrom(is);
  2141. typename ToDoFunctor::DataRecord stDataRecord;
  2142. stDataRecord._mkey = mk;
  2143. stDataRecord._ukey = uk;
  2144. stDataRecord._value = tv;
  2145. stDataRecord._iVersion = data._data._iVersion;
  2146. stDataRecord._dirty = data._data._dirty;
  2147. stDataRecord._iSyncTime = data._data._synct;
  2148. _todo_of->backup(stDataRecord);
  2149. }
  2150. }
  2151. return TC_Multi_HashMap::RT_OK;
  2152. }
  2153. /**
  2154. * 描述
  2155. *
  2156. * @return string
  2157. */
  2158. string desc() { return this->_t.desc(); }
  2159. ///////////////////////////////////////////////////////////////////////////////
  2160. /**
  2161. * 尾部
  2162. *
  2163. * @return lock_iterator
  2164. */
  2165. lock_iterator end()
  2166. {
  2167. JhmAutoLockPtr jlock;
  2168. return JhmLockIterator(this->_t.end(), jlock);
  2169. }
  2170. /**
  2171. * 根据联合主键(MK+UK)查找数据
  2172. * @param mk
  2173. * @param uk
  2174. * @return lock_interator
  2175. * 返回end()表示没有查到
  2176. */
  2177. lock_iterator find(const MK &mk, const UK &uk)
  2178. {
  2179. tars::TarsOutputStream<BufferWriter> mos;
  2180. mk.writeTo(mos);
  2181. string smk(mos.getBuffer(), mos.getLength());
  2182. tars::TarsOutputStream<BufferWriter> uos;
  2183. uk.writeTo(uos);
  2184. string suk(uos.getBuffer(), uos.getLength());
  2185. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2186. return JhmLockIterator(this->_t.find(smk, suk), jlock);
  2187. }
  2188. /**
  2189. * 查找主key下所有数据数量
  2190. * @param mk, 主key
  2191. *
  2192. * @return size_t, 主key下的记录数
  2193. */
  2194. size_t count(const MK &mk)
  2195. {
  2196. tars::TarsOutputStream<BufferWriter> os;
  2197. mk.writeTo(os);
  2198. string smk(os.getBuffer(), os.getLength());
  2199. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  2200. return this->_t.count(smk);
  2201. }
  2202. /**
  2203. * 根据主key查找第一个数据的位置
  2204. * 与上面的count函数组合可以遍历所有主key下的数据
  2205. * 也可以直接使用迭代器,直到end
  2206. * @param mk, 主key
  2207. * @return lock_iterator, 返回end()表示没有数据
  2208. */
  2209. lock_iterator find(const MK& mk)
  2210. {
  2211. tars::TarsOutputStream<BufferWriter> os;
  2212. mk.writeTo(os);
  2213. string smk(os.getBuffer(), os.getLength());
  2214. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2215. return JhmLockIterator(this->_t.find(smk), jlock);
  2216. }
  2217. /**
  2218. * 判断主key是否存在
  2219. * @param mk, 主key
  2220. *
  2221. * @return int
  2222. * TC_Multi_HashMap::RT_OK, 主key存在,且有数据
  2223. * TC_Multi_HashMap::RT_ONLY_KEY, 主key存在,没有数据
  2224. * TC_Multi_HashMap::RT_PART_DATA, 主key存在,里面的数据可能不完整
  2225. * TC_Multi_HashMap::RT_NO_DATA, 主key不存在
  2226. */
  2227. int checkMainKey(const MK& mk)
  2228. {
  2229. tars::TarsOutputStream<BufferWriter> os;
  2230. mk.writeTo(os);
  2231. string smk(os.getBuffer(), os.getLength());
  2232. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  2233. return this->_t.checkMainKey(smk);
  2234. }
  2235. /**
  2236. * 设置主key下数据的完整性
  2237. * @param mk, 主key
  2238. * @param bFull, true为完整数据,false为不完整数据
  2239. *
  2240. * @return
  2241. * RT_READONLY: 只读
  2242. * RT_NO_DATA: 没有当前数据
  2243. * RT_OK: 设置成功
  2244. * 其他返回值: 错误
  2245. */
  2246. int setFullData(const MK &mk, bool bFull)
  2247. {
  2248. tars::TarsOutputStream<BufferWriter> os;
  2249. mk.writeTo(os);
  2250. string smk(os.getBuffer(), os.getLength());
  2251. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  2252. return this->_t.setFullData(smk, bFull);
  2253. }
  2254. /**
  2255. * 检查坏block,并可进行修复
  2256. * @param bRepaire, 是否进行修复
  2257. *
  2258. * @return size_t, 返回坏数据个数
  2259. */
  2260. size_t checkBadBlock(bool bRepair)
  2261. {
  2262. size_t c = this->_t.getHashCount();
  2263. size_t e = 0;
  2264. for(size_t i = 0; i < c; i++)
  2265. {
  2266. TC_LockT<typename LockPolicy::Mutex> lock(LockPolicy::mutex());
  2267. e += this->_t.checkBadBlock(i, bRepair);
  2268. }
  2269. return e;
  2270. }
  2271. /**
  2272. * block正序
  2273. *
  2274. * @return lock_iterator
  2275. */
  2276. lock_iterator begin()
  2277. {
  2278. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2279. return JhmLockIterator(this->_t.begin(), jlock);
  2280. }
  2281. /**
  2282. * block逆序
  2283. *
  2284. * @return lock_iterator
  2285. */
  2286. lock_iterator rbegin()
  2287. {
  2288. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2289. return JhmLockIterator(this->_t.rbegin(), jlock);
  2290. }
  2291. /**
  2292. * 以Set时间排序的迭代器
  2293. * 返回的迭代器++表示按照时间顺序:最近Set-->最久Set
  2294. *
  2295. * @return lock_iterator
  2296. */
  2297. lock_iterator beginSetTime()
  2298. {
  2299. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2300. return JhmLockIterator(this->_t.beginSetTime(), jlock);
  2301. }
  2302. /**
  2303. * Set时间链逆序的迭代器
  2304. *
  2305. * 返回的迭代器++表示按照时间顺序:最久Set-->最近Set
  2306. *
  2307. * @return lock_iterator
  2308. */
  2309. lock_iterator rbeginSetTime()
  2310. {
  2311. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2312. return JhmLockIterator(this->_t.rbeginSetTime(), jlock);
  2313. }
  2314. /**
  2315. * 以Get时间排序的迭代器
  2316. * 返回的迭代器++表示按照时间顺序:最近Get-->最久Get
  2317. *
  2318. * @return lock_iterator
  2319. */
  2320. lock_iterator beginGetTime()
  2321. {
  2322. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2323. return JhmLockIterator(this->_t.beginGetTime(), jlock);
  2324. }
  2325. /**
  2326. * Get时间链逆序的迭代器
  2327. *
  2328. * 返回的迭代器++表示按照时间顺序:最久Get-->最近Get
  2329. *
  2330. * @return lock_iterator
  2331. */
  2332. lock_iterator rbeginGetTime()
  2333. {
  2334. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2335. return JhmLockIterator(this->_t.rbeginGetTime(), jlock);
  2336. }
  2337. /**
  2338. * 获取脏链表尾部迭代器(最长时间没有Set的脏数据)
  2339. *
  2340. * 返回的迭代器++表示按照时间顺序:最近Set-->最久Set
  2341. * 可能存在干净数据
  2342. *
  2343. * @return lock_iterator
  2344. */
  2345. lock_iterator beginDirty()
  2346. {
  2347. JhmAutoLockPtr jlock(new JhmAutoLock(this->mutex()));
  2348. return JhmLockIterator(this->_t.beginDirty(), jlock);
  2349. }
  2350. /////////////////////////////////////////////////////////////////////////////////////////
  2351. // 以下是遍历map函数, 不需要对map加锁
  2352. /**
  2353. * 根据hash桶遍历
  2354. *
  2355. * @return hash_iterator
  2356. */
  2357. hash_iterator hashBegin()
  2358. {
  2359. JhmLockPtr jlock(new JhmLock(this->mutex()));
  2360. return JhmIterator(this->_t.hashBegin(), jlock);
  2361. }
  2362. /**
  2363. * 结束
  2364. *
  2365. * @return
  2366. */
  2367. hash_iterator hashEnd()
  2368. {
  2369. JhmLockPtr jlock;
  2370. return JhmIterator(this->_t.hashEnd(), jlock);
  2371. }
  2372. protected:
  2373. /**
  2374. * 删除数据的函数对象
  2375. */
  2376. ToDoFunctor *_todo_of;
  2377. };
  2378. }
  2379. #endif