BinaryDeserializer.h 13 KB

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  1. /*
  2. * BinaryDeserializer.h, part of VCMI engine
  3. *
  4. * Authors: listed in file AUTHORS in main folder
  5. *
  6. * License: GNU General Public License v2.0 or later
  7. * Full text of license available in license.txt file, in main folder
  8. *
  9. */
  10. #pragma once
  11. #include <boost/mpl/for_each.hpp>
  12. #include "CTypeList.h"
  13. #include "../mapObjects/CGHeroInstance.h"
  14. class CStackInstance;
  15. class DLL_LINKAGE CLoaderBase
  16. {
  17. protected:
  18. IBinaryReader * reader;
  19. public:
  20. CLoaderBase(IBinaryReader * r): reader(r){};
  21. inline int read(void * data, unsigned size)
  22. {
  23. return reader->read(data, size);
  24. };
  25. };
  26. /// Main class for deserialization of classes from binary form
  27. /// Effectively revesed version of BinarySerializer
  28. class DLL_LINKAGE BinaryDeserializer : public CLoaderBase
  29. {
  30. template<typename Variant, typename Source>
  31. struct VariantLoaderHelper
  32. {
  33. Source & source;
  34. std::vector<std::function<Variant()>> funcs;
  35. VariantLoaderHelper(Source & source):
  36. source(source)
  37. {
  38. boost::mpl::for_each<typename Variant::types>(std::ref(*this));
  39. }
  40. template<typename Type>
  41. void operator()(Type)
  42. {
  43. funcs.push_back([&]() -> Variant
  44. {
  45. Type obj;
  46. source.load(obj);
  47. return Variant(obj);
  48. });
  49. }
  50. };
  51. template<typename Ser,typename T>
  52. struct LoadIfStackInstance
  53. {
  54. static bool invoke(Ser &s, T &data)
  55. {
  56. return false;
  57. }
  58. };
  59. template<typename Ser>
  60. struct LoadIfStackInstance<Ser, CStackInstance *>
  61. {
  62. static bool invoke(Ser &s, CStackInstance* &data)
  63. {
  64. CArmedInstance *armedObj;
  65. SlotID slot;
  66. s.load(armedObj);
  67. s.load(slot);
  68. if(slot != SlotID::COMMANDER_SLOT_PLACEHOLDER)
  69. {
  70. assert(armedObj->hasStackAtSlot(slot));
  71. data = armedObj->stacks[slot];
  72. }
  73. else
  74. {
  75. auto hero = dynamic_cast<CGHeroInstance *>(armedObj);
  76. assert(hero);
  77. assert(hero->commander);
  78. data = hero->commander;
  79. }
  80. return true;
  81. }
  82. };
  83. template <typename T, typename Enable = void>
  84. struct ClassObjectCreator
  85. {
  86. static T *invoke()
  87. {
  88. static_assert(!std::is_abstract<T>::value, "Cannot call new upon abstract classes!");
  89. return new T();
  90. }
  91. };
  92. template<typename T>
  93. struct ClassObjectCreator<T, typename std::enable_if<std::is_abstract<T>::value>::type>
  94. {
  95. static T *invoke()
  96. {
  97. throw std::runtime_error("Something went really wrong during deserialization. Attempted creating an object of an abstract class " + std::string(typeid(T).name()));
  98. }
  99. };
  100. #define READ_CHECK_U32(x) \
  101. ui32 length; \
  102. load(length); \
  103. if(length > 500000) \
  104. { \
  105. logGlobal->warnStream() << "Warning: very big length: " << length;\
  106. reader->reportState(logGlobal); \
  107. };
  108. template <typename T> class CPointerLoader;
  109. class CBasicPointerLoader
  110. {
  111. public:
  112. virtual const std::type_info * loadPtr(CLoaderBase &ar, void *data, ui32 pid) const =0; //data is pointer to the ACTUAL POINTER
  113. virtual ~CBasicPointerLoader(){}
  114. template<typename T> static CBasicPointerLoader *getApplier(const T * t=nullptr)
  115. {
  116. return new CPointerLoader<T>();
  117. }
  118. };
  119. template <typename T> class CPointerLoader : public CBasicPointerLoader
  120. {
  121. public:
  122. const std::type_info * loadPtr(CLoaderBase &ar, void *data, ui32 pid) const override //data is pointer to the ACTUAL POINTER
  123. {
  124. BinaryDeserializer &s = static_cast<BinaryDeserializer&>(ar);
  125. T *&ptr = *static_cast<T**>(data);
  126. //create new object under pointer
  127. typedef typename std::remove_pointer<T>::type npT;
  128. ptr = ClassObjectCreator<npT>::invoke(); //does new npT or throws for abstract classes
  129. s.ptrAllocated(ptr, pid);
  130. //T is most derived known type, it's time to call actual serialize
  131. ptr->serialize(s,s.fileVersion);
  132. return &typeid(T);
  133. }
  134. };
  135. CApplier<CBasicPointerLoader> applier;
  136. int write(const void * data, unsigned size);
  137. public:
  138. bool reverseEndianess; //if source has different endianness than us, we reverse bytes
  139. si32 fileVersion;
  140. std::map<ui32, void*> loadedPointers;
  141. std::map<ui32, const std::type_info*> loadedPointersTypes;
  142. std::map<const void*, boost::any> loadedSharedPointers;
  143. bool smartPointerSerialization;
  144. bool saving;
  145. BinaryDeserializer(IBinaryReader * r): CLoaderBase(r)
  146. {
  147. saving = false;
  148. fileVersion = 0;
  149. smartPointerSerialization = true;
  150. reverseEndianess = false;
  151. }
  152. template<class T>
  153. BinaryDeserializer & operator&(T & t)
  154. {
  155. this->load(t);
  156. return * this;
  157. }
  158. template < class T, typename std::enable_if < std::is_fundamental<T>::value && !std::is_same<T, bool>::value, int >::type = 0 >
  159. void load(T &data)
  160. {
  161. if(0) //for testing #989
  162. {
  163. this->read(&data,sizeof(data));
  164. }
  165. else
  166. {
  167. unsigned length = sizeof(data);
  168. char* dataPtr = (char*)&data;
  169. this->read(dataPtr,length);
  170. if(reverseEndianess)
  171. std::reverse(dataPtr, dataPtr + length);
  172. }
  173. }
  174. template < typename T, typename std::enable_if < is_serializeable<BinaryDeserializer, T>::value, int >::type = 0 >
  175. void load(T &data)
  176. {
  177. ////that const cast is evil because it allows to implicitly overwrite const objects when deserializing
  178. typedef typename std::remove_const<T>::type nonConstT;
  179. nonConstT &hlp = const_cast<nonConstT&>(data);
  180. hlp.serialize(*this,fileVersion);
  181. }
  182. template < typename T, typename std::enable_if < std::is_array<T>::value, int >::type = 0 >
  183. void load(T &data)
  184. {
  185. ui32 size = ARRAY_COUNT(data);
  186. for(ui32 i = 0; i < size; i++)
  187. load(data[i]);
  188. }
  189. template < typename T, typename std::enable_if < std::is_enum<T>::value, int >::type = 0 >
  190. void load(T &data)
  191. {
  192. si32 read;
  193. load( read );
  194. data = static_cast<T>(read);
  195. }
  196. template < typename T, typename std::enable_if < std::is_same<T, bool>::value, int >::type = 0 >
  197. void load(T &data)
  198. {
  199. ui8 read;
  200. load( read );
  201. data = static_cast<bool>(read);
  202. }
  203. template < typename T, typename std::enable_if < std::is_same<T, std::vector<bool> >::value, int >::type = 0 >
  204. void load(T & data)
  205. {
  206. std::vector<ui8> convData;
  207. load(convData);
  208. convData.resize(data.size());
  209. range::copy(convData, data.begin());
  210. }
  211. template <typename T>
  212. void load(std::vector<T> &data, typename std::enable_if < !std::is_same<T, bool >::value, int >::type = 0)
  213. {
  214. READ_CHECK_U32(length);
  215. data.resize(length);
  216. for(ui32 i=0;i<length;i++)
  217. load( data[i]);
  218. }
  219. template < typename T, typename std::enable_if < std::is_pointer<T>::value, int >::type = 0 >
  220. void load(T &data)
  221. {
  222. ui8 hlp;
  223. load( hlp );
  224. if(!hlp)
  225. {
  226. data = nullptr;
  227. return;
  228. }
  229. if(reader->smartVectorMembersSerialization)
  230. {
  231. typedef typename std::remove_const<typename std::remove_pointer<T>::type>::type TObjectType; //eg: const CGHeroInstance * => CGHeroInstance
  232. typedef typename VectorizedTypeFor<TObjectType>::type VType; //eg: CGHeroInstance -> CGobjectInstance
  233. typedef typename VectorizedIDType<TObjectType>::type IDType;
  234. if(const auto *info = reader->getVectorizedTypeInfo<VType, IDType>())
  235. {
  236. IDType id;
  237. load(id);
  238. if(id != IDType(-1))
  239. {
  240. data = static_cast<T>(reader->getVectorItemFromId<VType, IDType>(*info, id));
  241. return;
  242. }
  243. }
  244. }
  245. if(reader->sendStackInstanceByIds)
  246. {
  247. bool gotLoaded = LoadIfStackInstance<BinaryDeserializer,T>::invoke(* this, data);
  248. if(gotLoaded)
  249. return;
  250. }
  251. ui32 pid = 0xffffffff; //pointer id (or maybe rather pointee id)
  252. if(smartPointerSerialization)
  253. {
  254. load( pid ); //get the id
  255. std::map<ui32, void*>::iterator i = loadedPointers.find(pid); //lookup
  256. if(i != loadedPointers.end())
  257. {
  258. // We already got this pointer
  259. // Cast it in case we are loading it to a non-first base pointer
  260. assert(loadedPointersTypes.count(pid));
  261. data = reinterpret_cast<T>(typeList.castRaw(i->second, loadedPointersTypes.at(pid), &typeid(typename std::remove_const<typename std::remove_pointer<T>::type>::type)));
  262. return;
  263. }
  264. }
  265. //get type id
  266. ui16 tid;
  267. load( tid );
  268. if(!tid)
  269. {
  270. typedef typename std::remove_pointer<T>::type npT;
  271. typedef typename std::remove_const<npT>::type ncpT;
  272. data = ClassObjectCreator<ncpT>::invoke();
  273. ptrAllocated(data, pid);
  274. load(*data);
  275. }
  276. else
  277. {
  278. auto typeInfo = applier.getApplier(tid)->loadPtr(*this,&data, pid);
  279. data = reinterpret_cast<T>(typeList.castRaw((void*)data, typeInfo, &typeid(typename std::remove_const<typename std::remove_pointer<T>::type>::type)));
  280. }
  281. }
  282. template <typename T>
  283. void ptrAllocated(const T *ptr, ui32 pid)
  284. {
  285. if(smartPointerSerialization && pid != 0xffffffff)
  286. {
  287. loadedPointersTypes[pid] = &typeid(T);
  288. loadedPointers[pid] = (void*)ptr; //add loaded pointer to our lookup map; cast is to avoid errors with const T* pt
  289. }
  290. }
  291. template<typename Base, typename Derived> void registerType(const Base * b = nullptr, const Derived * d = nullptr)
  292. {
  293. applier.registerType(b, d);
  294. }
  295. template <typename T>
  296. void load(std::shared_ptr<T> &data)
  297. {
  298. typedef typename std::remove_const<T>::type NonConstT;
  299. NonConstT *internalPtr;
  300. load(internalPtr);
  301. void *internalPtrDerived = typeList.castToMostDerived(internalPtr);
  302. if(internalPtr)
  303. {
  304. auto itr = loadedSharedPointers.find(internalPtrDerived);
  305. if(itr != loadedSharedPointers.end())
  306. {
  307. // This pointers is already loaded. The "data" needs to be pointed to it,
  308. // so their shared state is actually shared.
  309. try
  310. {
  311. auto actualType = typeList.getTypeInfo(internalPtr);
  312. auto typeWeNeedToReturn = typeList.getTypeInfo<T>();
  313. if(*actualType == *typeWeNeedToReturn)
  314. {
  315. // No casting needed, just unpack already stored shared_ptr and return it
  316. data = boost::any_cast<std::shared_ptr<T>>(itr->second);
  317. }
  318. else
  319. {
  320. // We need to perform series of casts
  321. auto ret = typeList.castShared(itr->second, actualType, typeWeNeedToReturn);
  322. data = boost::any_cast<std::shared_ptr<T>>(ret);
  323. }
  324. }
  325. catch(std::exception &e)
  326. {
  327. logGlobal->errorStream() << e.what();
  328. logGlobal->errorStream() << boost::format("Failed to cast stored shared ptr. Real type: %s. Needed type %s. FIXME FIXME FIXME")
  329. % itr->second.type().name() % typeid(std::shared_ptr<T>).name();
  330. //TODO scenario with inheritance -> we can have stored ptr to base and load ptr to derived (or vice versa)
  331. assert(0);
  332. }
  333. }
  334. else
  335. {
  336. auto hlp = std::shared_ptr<NonConstT>(internalPtr);
  337. data = hlp; //possibly adds const
  338. loadedSharedPointers[internalPtrDerived] = typeList.castSharedToMostDerived(hlp);
  339. }
  340. }
  341. else
  342. data.reset();
  343. }
  344. template <typename T>
  345. void load(std::unique_ptr<T> &data)
  346. {
  347. T *internalPtr;
  348. load( internalPtr );
  349. data.reset(internalPtr);
  350. }
  351. template <typename T, size_t N>
  352. void load(std::array<T, N> &data)
  353. {
  354. for(ui32 i = 0; i < N; i++)
  355. load( data[i] );
  356. }
  357. template <typename T>
  358. void load(std::set<T> &data)
  359. {
  360. READ_CHECK_U32(length);
  361. data.clear();
  362. T ins;
  363. for(ui32 i=0;i<length;i++)
  364. {
  365. load( ins );
  366. data.insert(ins);
  367. }
  368. }
  369. template <typename T, typename U>
  370. void load(std::unordered_set<T, U> &data)
  371. {
  372. READ_CHECK_U32(length);
  373. data.clear();
  374. T ins;
  375. for(ui32 i=0;i<length;i++)
  376. {
  377. load(ins);
  378. data.insert(ins);
  379. }
  380. }
  381. template <typename T>
  382. void load(std::list<T> &data)
  383. {
  384. READ_CHECK_U32(length);
  385. data.clear();
  386. T ins;
  387. for(ui32 i=0;i<length;i++)
  388. {
  389. load(ins);
  390. data.push_back(ins);
  391. }
  392. }
  393. template <typename T1, typename T2>
  394. void load(std::pair<T1,T2> &data)
  395. {
  396. load(data.first);
  397. load(data.second);
  398. }
  399. template <typename T1, typename T2>
  400. void load(std::map<T1,T2> &data)
  401. {
  402. READ_CHECK_U32(length);
  403. data.clear();
  404. T1 key;
  405. T2 value;
  406. for(ui32 i=0;i<length;i++)
  407. {
  408. load(key);
  409. load(value);
  410. data.insert(std::pair<T1, T2>(std::move(key), std::move(value)));
  411. }
  412. }
  413. template <typename T1, typename T2>
  414. void load(std::multimap<T1, T2> &data)
  415. {
  416. READ_CHECK_U32(length);
  417. data.clear();
  418. T1 key;
  419. T2 value;
  420. for(ui32 i = 0; i < length; i++)
  421. {
  422. load(key);
  423. load(value);
  424. data.insert(std::pair<T1, T2>(std::move(key), std::move(value)));
  425. }
  426. }
  427. void load(std::string &data)
  428. {
  429. READ_CHECK_U32(length);
  430. data.resize(length);
  431. this->read((void*)data.c_str(),length);
  432. }
  433. template <BOOST_VARIANT_ENUM_PARAMS(typename T)>
  434. void load(boost::variant<BOOST_VARIANT_ENUM_PARAMS(T)> &data)
  435. {
  436. typedef boost::variant<BOOST_VARIANT_ENUM_PARAMS(T)> TVariant;
  437. VariantLoaderHelper<TVariant, BinaryDeserializer> loader(*this);
  438. si32 which;
  439. load( which );
  440. assert(which < loader.funcs.size());
  441. data = loader.funcs.at(which)();
  442. }
  443. template <typename T>
  444. void load(boost::optional<T> & data)
  445. {
  446. ui8 present;
  447. load( present );
  448. if(present)
  449. {
  450. T t;
  451. load(t);
  452. }
  453. else
  454. {
  455. data = boost::optional<T>();
  456. }
  457. }
  458. };
  459. class DLL_LINKAGE CLoadFile : public IBinaryReader
  460. {
  461. public:
  462. BinaryDeserializer serializer;
  463. std::string fName;
  464. std::unique_ptr<boost::filesystem::ifstream> sfile;
  465. CLoadFile(const boost::filesystem::path & fname, int minimalVersion = version); //throws!
  466. ~CLoadFile();
  467. int read(void * data, unsigned size) override; //throws!
  468. void openNextFile(const boost::filesystem::path & fname, int minimalVersion); //throws!
  469. void clear();
  470. void reportState(CLogger * out) override;
  471. void checkMagicBytes(const std::string & text);
  472. template<class T>
  473. CLoadFile & operator>>(T &t)
  474. {
  475. serializer & t;
  476. return * this;
  477. }
  478. };