1 /*
2  * Copyright (c) 2012, 2019, Oracle and/or its affiliates. All rights reserved.
3  * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
4  *
5  * This code is free software; you can redistribute it and/or modify it
6  * under the terms of the GNU General Public License version 2 only, as
7  * published by the Free Software Foundation.
8  *
9  * This code is distributed in the hope that it will be useful, but WITHOUT
10  * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11  * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
12  * version 2 for more details (a copy is included in the LICENSE file that
13  * accompanied this code).
14  *
15  * You should have received a copy of the GNU General Public License version
16  * 2 along with this work; if not, write to the Free Software Foundation,
17  * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
18  *
19  * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
20  * or visit www.oracle.com if you need additional information or have any
21  * questions.
22  *
23  */
24 
25 #include "precompiled.hpp"
26 #include "jvm.h"
27 #include "classfile/classListParser.hpp"
28 #include "classfile/classLoaderExt.hpp"
29 #include "classfile/dictionary.hpp"
30 #include "classfile/loaderConstraints.hpp"
31 #include "classfile/placeholders.hpp"
32 #include "classfile/symbolTable.hpp"
33 #include "classfile/stringTable.hpp"
34 #include "classfile/systemDictionary.hpp"
35 #include "classfile/systemDictionaryShared.hpp"
36 #include "code/codeCache.hpp"
37 #include "interpreter/bytecodeStream.hpp"
38 #include "interpreter/bytecodes.hpp"
39 #include "logging/log.hpp"
40 #include "logging/logMessage.hpp"
41 #include "memory/filemap.hpp"
42 #include "memory/heapShared.inline.hpp"
43 #include "memory/metaspace.hpp"
44 #include "memory/metaspaceClosure.hpp"
45 #include "memory/metaspaceShared.hpp"
46 #include "memory/resourceArea.hpp"
47 #include "oops/compressedOops.inline.hpp"
48 #include "oops/instanceClassLoaderKlass.hpp"
49 #include "oops/instanceMirrorKlass.hpp"
50 #include "oops/instanceRefKlass.hpp"
51 #include "oops/objArrayKlass.hpp"
52 #include "oops/objArrayOop.hpp"
53 #include "oops/oop.inline.hpp"
54 #include "oops/typeArrayKlass.hpp"
55 #include "prims/jvmtiRedefineClasses.hpp"
56 #include "runtime/handles.inline.hpp"
57 #include "runtime/os.hpp"
58 #include "runtime/safepointVerifiers.hpp"
59 #include "runtime/signature.hpp"
60 #include "runtime/timerTrace.hpp"
61 #include "runtime/vmThread.hpp"
62 #include "runtime/vmOperations.hpp"
63 #include "utilities/align.hpp"
64 #include "utilities/bitMap.hpp"
65 #include "utilities/defaultStream.hpp"
66 #include "utilities/hashtable.inline.hpp"
67 #if INCLUDE_G1GC
68 #include "gc/g1/g1Allocator.inline.hpp"
69 #include "gc/g1/g1CollectedHeap.hpp"
70 #endif
71 
72 ReservedSpace MetaspaceShared::_shared_rs;
73 VirtualSpace MetaspaceShared::_shared_vs;
74 MetaspaceSharedStats MetaspaceShared::_stats;
75 bool MetaspaceShared::_has_error_classes;
76 bool MetaspaceShared::_archive_loading_failed = false;
77 bool MetaspaceShared::_remapped_readwrite = false;
78 bool MetaspaceShared::_open_archive_heap_region_mapped = false;
79 address MetaspaceShared::_cds_i2i_entry_code_buffers = NULL;
80 size_t MetaspaceShared::_cds_i2i_entry_code_buffers_size = 0;
81 size_t MetaspaceShared::_core_spaces_size = 0;
82 
83 // The CDS archive is divided into the following regions:
84 //     mc  - misc code (the method entry trampolines)
85 //     rw  - read-write metadata
86 //     ro  - read-only metadata and read-only tables
87 //     md  - misc data (the c++ vtables)
88 //     od  - optional data (original class files)
89 //
90 //     s0  - shared strings(closed archive heap space) #0
91 //     s1  - shared strings(closed archive heap space) #1 (may be empty)
92 //     oa0 - open archive heap space #0
93 //     oa1 - open archive heap space #1 (may be empty)
94 //
95 // The mc, rw, ro, md and od regions are linearly allocated, starting from
96 // SharedBaseAddress, in the order of mc->rw->ro->md->od. The size of these 5 regions
97 // are page-aligned, and there's no gap between any consecutive regions.
98 //
99 // These 5 regions are populated in the following steps:
100 // [1] All classes are loaded in MetaspaceShared::preload_classes(). All metadata are
101 //     temporarily allocated outside of the shared regions. Only the method entry
102 //     trampolines are written into the mc region.
103 // [2] ArchiveCompactor copies RW metadata into the rw region.
104 // [3] ArchiveCompactor copies RO metadata into the ro region.
105 // [4] SymbolTable, StringTable, SystemDictionary, and a few other read-only data
106 //     are copied into the ro region as read-only tables.
107 // [5] C++ vtables are copied into the md region.
108 // [6] Original class files are copied into the od region.
109 //
110 // The s0/s1 and oa0/oa1 regions are populated inside MetaspaceShared::dump_java_heap_objects.
111 // Their layout is independent of the other 5 regions.
112 
113 class DumpRegion {
114 private:
115   const char* _name;
116   char* _base;
117   char* _top;
118   char* _end;
119   bool _is_packed;
120 
expand_top_to(char * newtop)121   char* expand_top_to(char* newtop) {
122     assert(is_allocatable(), "must be initialized and not packed");
123     assert(newtop >= _top, "must not grow backwards");
124     if (newtop > _end) {
125       MetaspaceShared::report_out_of_space(_name, newtop - _top);
126       ShouldNotReachHere();
127     }
128     MetaspaceShared::commit_shared_space_to(newtop);
129     _top = newtop;
130     return _top;
131   }
132 
133 public:
DumpRegion(const char * name)134   DumpRegion(const char* name) : _name(name), _base(NULL), _top(NULL), _end(NULL), _is_packed(false) {}
135 
allocate(size_t num_bytes,size_t alignment=BytesPerWord)136   char* allocate(size_t num_bytes, size_t alignment=BytesPerWord) {
137     char* p = (char*)align_up(_top, alignment);
138     char* newtop = p + align_up(num_bytes, alignment);
139     expand_top_to(newtop);
140     memset(p, 0, newtop - p);
141     return p;
142   }
143 
append_intptr_t(intptr_t n)144   void append_intptr_t(intptr_t n) {
145     assert(is_aligned(_top, sizeof(intptr_t)), "bad alignment");
146     intptr_t *p = (intptr_t*)_top;
147     char* newtop = _top + sizeof(intptr_t);
148     expand_top_to(newtop);
149     *p = n;
150   }
151 
base() const152   char* base()      const { return _base;        }
top() const153   char* top()       const { return _top;         }
end() const154   char* end()       const { return _end;         }
reserved() const155   size_t reserved() const { return _end - _base; }
used() const156   size_t used()     const { return _top - _base; }
is_packed() const157   bool is_packed()  const { return _is_packed;   }
is_allocatable() const158   bool is_allocatable() const {
159     return !is_packed() && _base != NULL;
160   }
161 
print(size_t total_bytes) const162   void print(size_t total_bytes) const {
163     tty->print_cr("%-3s space: " SIZE_FORMAT_W(9) " [ %4.1f%% of total] out of " SIZE_FORMAT_W(9) " bytes [%5.1f%% used] at " INTPTR_FORMAT,
164                   _name, used(), percent_of(used(), total_bytes), reserved(), percent_of(used(), reserved()), p2i(_base));
165   }
print_out_of_space_msg(const char * failing_region,size_t needed_bytes)166   void print_out_of_space_msg(const char* failing_region, size_t needed_bytes) {
167     tty->print("[%-8s] " PTR_FORMAT " - " PTR_FORMAT " capacity =%9d, allocated =%9d",
168                _name, p2i(_base), p2i(_top), int(_end - _base), int(_top - _base));
169     if (strcmp(_name, failing_region) == 0) {
170       tty->print_cr(" required = %d", int(needed_bytes));
171     } else {
172       tty->cr();
173     }
174   }
175 
init(const ReservedSpace * rs)176   void init(const ReservedSpace* rs) {
177     _base = _top = rs->base();
178     _end = rs->end();
179   }
init(char * b,char * t,char * e)180   void init(char* b, char* t, char* e) {
181     _base = b;
182     _top = t;
183     _end = e;
184   }
185 
pack(DumpRegion * next=NULL)186   void pack(DumpRegion* next = NULL) {
187     assert(!is_packed(), "sanity");
188     _end = (char*)align_up(_top, Metaspace::reserve_alignment());
189     _is_packed = true;
190     if (next != NULL) {
191       next->_base = next->_top = this->_end;
192       next->_end = MetaspaceShared::shared_rs()->end();
193     }
194   }
contains(char * p)195   bool contains(char* p) {
196     return base() <= p && p < top();
197   }
198 };
199 
200 
201 DumpRegion _mc_region("mc"), _ro_region("ro"), _rw_region("rw"), _md_region("md"), _od_region("od");
202 size_t _total_string_region_size = 0, _total_open_archive_region_size = 0;
203 
misc_code_space_alloc(size_t num_bytes)204 char* MetaspaceShared::misc_code_space_alloc(size_t num_bytes) {
205   return _mc_region.allocate(num_bytes);
206 }
207 
read_only_space_alloc(size_t num_bytes)208 char* MetaspaceShared::read_only_space_alloc(size_t num_bytes) {
209   return _ro_region.allocate(num_bytes);
210 }
211 
read_only_space_top()212 char* MetaspaceShared::read_only_space_top() {
213   return _ro_region.top();
214 }
215 
initialize_runtime_shared_and_meta_spaces()216 void MetaspaceShared::initialize_runtime_shared_and_meta_spaces() {
217   assert(UseSharedSpaces, "Must be called when UseSharedSpaces is enabled");
218 
219   // If using shared space, open the file that contains the shared space
220   // and map in the memory before initializing the rest of metaspace (so
221   // the addresses don't conflict)
222   address cds_address = NULL;
223   FileMapInfo* mapinfo = new FileMapInfo();
224 
225   // Open the shared archive file, read and validate the header. If
226   // initialization fails, shared spaces [UseSharedSpaces] are
227   // disabled and the file is closed.
228   // Map in spaces now also
229   if (mapinfo->initialize() && map_shared_spaces(mapinfo)) {
230     size_t cds_total = core_spaces_size();
231     cds_address = (address)mapinfo->region_addr(0);
232 #ifdef _LP64
233     if (Metaspace::using_class_space()) {
234       char* cds_end = (char*)(cds_address + cds_total);
235       cds_end = (char *)align_up(cds_end, Metaspace::reserve_alignment());
236       // If UseCompressedClassPointers is set then allocate the metaspace area
237       // above the heap and above the CDS area (if it exists).
238       Metaspace::allocate_metaspace_compressed_klass_ptrs(cds_end, cds_address);
239       // map_heap_regions() compares the current narrow oop and klass encodings
240       // with the archived ones, so it must be done after all encodings are determined.
241       mapinfo->map_heap_regions();
242     }
243     Universe::set_narrow_klass_range(CompressedClassSpaceSize);
244 #endif // _LP64
245   } else {
246     assert(!mapinfo->is_open() && !UseSharedSpaces,
247            "archive file not closed or shared spaces not disabled.");
248   }
249 }
250 
initialize_dumptime_shared_and_meta_spaces()251 void MetaspaceShared::initialize_dumptime_shared_and_meta_spaces() {
252   assert(DumpSharedSpaces, "should be called for dump time only");
253   const size_t reserve_alignment = Metaspace::reserve_alignment();
254   bool large_pages = false; // No large pages when dumping the CDS archive.
255   char* shared_base = (char*)align_up((char*)SharedBaseAddress, reserve_alignment);
256 
257 #ifdef _LP64
258   // On 64-bit VM, the heap and class space layout will be the same as if
259   // you're running in -Xshare:on mode:
260   //
261   //                              +-- SharedBaseAddress (default = 0x800000000)
262   //                              v
263   // +-..---------+---------+ ... +----+----+----+----+----+---------------+
264   // |    Heap    | Archive |     | MC | RW | RO | MD | OD | class space   |
265   // +-..---------+---------+ ... +----+----+----+----+----+---------------+
266   // |<--   MaxHeapSize  -->|     |<-- UnscaledClassSpaceMax = 4GB ------->|
267   //
268   const uint64_t UnscaledClassSpaceMax = (uint64_t(max_juint) + 1);
269   const size_t cds_total = align_down(UnscaledClassSpaceMax, reserve_alignment);
270 #else
271   // We don't support archives larger than 256MB on 32-bit due to limited virtual address space.
272   size_t cds_total = align_down(256*M, reserve_alignment);
273 #endif
274 
275   // First try to reserve the space at the specified SharedBaseAddress.
276   _shared_rs = ReservedSpace(cds_total, reserve_alignment, large_pages, shared_base);
277   if (_shared_rs.is_reserved()) {
278     assert(shared_base == 0 || _shared_rs.base() == shared_base, "should match");
279   } else {
280     // Get a mmap region anywhere if the SharedBaseAddress fails.
281     _shared_rs = ReservedSpace(cds_total, reserve_alignment, large_pages);
282   }
283   if (!_shared_rs.is_reserved()) {
284     vm_exit_during_initialization("Unable to reserve memory for shared space",
285                                   err_msg(SIZE_FORMAT " bytes.", cds_total));
286   }
287 
288 #ifdef _LP64
289   // During dump time, we allocate 4GB (UnscaledClassSpaceMax) of space and split it up:
290   // + The upper 1 GB is used as the "temporary compressed class space" -- preload_classes()
291   //   will store Klasses into this space.
292   // + The lower 3 GB is used for the archive -- when preload_classes() is done,
293   //   ArchiveCompactor will copy the class metadata into this space, first the RW parts,
294   //   then the RO parts.
295 
296   assert(UseCompressedOops && UseCompressedClassPointers,
297       "UseCompressedOops and UseCompressedClassPointers must be set");
298 
299   size_t max_archive_size = align_down(cds_total * 3 / 4, reserve_alignment);
300   ReservedSpace tmp_class_space = _shared_rs.last_part(max_archive_size);
301   CompressedClassSpaceSize = align_down(tmp_class_space.size(), reserve_alignment);
302   _shared_rs = _shared_rs.first_part(max_archive_size);
303 
304   // Set up compress class pointers.
305   Universe::set_narrow_klass_base((address)_shared_rs.base());
306   // Set narrow_klass_shift to be LogKlassAlignmentInBytes. This is consistent
307   // with AOT.
308   Universe::set_narrow_klass_shift(LogKlassAlignmentInBytes);
309   // Set the range of klass addresses to 4GB.
310   Universe::set_narrow_klass_range(cds_total);
311 
312   Metaspace::initialize_class_space(tmp_class_space);
313   log_info(cds)("narrow_klass_base = " PTR_FORMAT ", narrow_klass_shift = %d",
314                 p2i(Universe::narrow_klass_base()), Universe::narrow_klass_shift());
315 
316   log_info(cds)("Allocated temporary class space: " SIZE_FORMAT " bytes at " PTR_FORMAT,
317                 CompressedClassSpaceSize, p2i(tmp_class_space.base()));
318 #endif
319 
320   // Start with 0 committed bytes. The memory will be committed as needed by
321   // MetaspaceShared::commit_shared_space_to().
322   if (!_shared_vs.initialize(_shared_rs, 0)) {
323     vm_exit_during_initialization("Unable to allocate memory for shared space");
324   }
325 
326   _mc_region.init(&_shared_rs);
327   tty->print_cr("Allocated shared space: " SIZE_FORMAT " bytes at " PTR_FORMAT,
328                 _shared_rs.size(), p2i(_shared_rs.base()));
329 }
330 
331 // Called by universe_post_init()
post_initialize(TRAPS)332 void MetaspaceShared::post_initialize(TRAPS) {
333   if (UseSharedSpaces) {
334     int size = FileMapInfo::get_number_of_shared_paths();
335     if (size > 0) {
336       SystemDictionaryShared::allocate_shared_data_arrays(size, THREAD);
337       FileMapHeader* header = FileMapInfo::current_info()->header();
338       ClassLoaderExt::init_paths_start_index(header->_app_class_paths_start_index);
339       ClassLoaderExt::init_app_module_paths_start_index(header->_app_module_paths_start_index);
340     }
341   }
342 
343   if (DumpSharedSpaces) {
344     if (SharedArchiveConfigFile) {
345       read_extra_data(SharedArchiveConfigFile, THREAD);
346     }
347   }
348 }
349 
read_extra_data(const char * filename,TRAPS)350 void MetaspaceShared::read_extra_data(const char* filename, TRAPS) {
351   HashtableTextDump reader(filename);
352   reader.check_version("VERSION: 1.0");
353 
354   while (reader.remain() > 0) {
355     int utf8_length;
356     int prefix_type = reader.scan_prefix(&utf8_length);
357     ResourceMark rm(THREAD);
358     char* utf8_buffer = NEW_RESOURCE_ARRAY(char, utf8_length);
359     reader.get_utf8(utf8_buffer, utf8_length);
360 
361     if (prefix_type == HashtableTextDump::SymbolPrefix) {
362       SymbolTable::new_symbol(utf8_buffer, utf8_length, THREAD);
363     } else{
364       assert(prefix_type == HashtableTextDump::StringPrefix, "Sanity");
365       utf8_buffer[utf8_length] = '\0';
366       oop s = StringTable::intern(utf8_buffer, THREAD);
367     }
368   }
369 }
370 
commit_shared_space_to(char * newtop)371 void MetaspaceShared::commit_shared_space_to(char* newtop) {
372   assert(DumpSharedSpaces, "dump-time only");
373   char* base = _shared_rs.base();
374   size_t need_committed_size = newtop - base;
375   size_t has_committed_size = _shared_vs.committed_size();
376   if (need_committed_size < has_committed_size) {
377     return;
378   }
379 
380   size_t min_bytes = need_committed_size - has_committed_size;
381   size_t preferred_bytes = 1 * M;
382   size_t uncommitted = _shared_vs.reserved_size() - has_committed_size;
383 
384   size_t commit = MAX2(min_bytes, preferred_bytes);
385   assert(commit <= uncommitted, "sanity");
386 
387   bool result = _shared_vs.expand_by(commit, false);
388   if (!result) {
389     vm_exit_during_initialization(err_msg("Failed to expand shared space to " SIZE_FORMAT " bytes",
390                                           need_committed_size));
391   }
392 
393   log_info(cds)("Expanding shared spaces by " SIZE_FORMAT_W(7) " bytes [total " SIZE_FORMAT_W(9)  " bytes ending at %p]",
394                 commit, _shared_vs.actual_committed_size(), _shared_vs.high());
395 }
396 
397 // Read/write a data stream for restoring/preserving metadata pointers and
398 // miscellaneous data from/to the shared archive file.
399 
serialize(SerializeClosure * soc)400 void MetaspaceShared::serialize(SerializeClosure* soc) {
401   int tag = 0;
402   soc->do_tag(--tag);
403 
404   // Verify the sizes of various metadata in the system.
405   soc->do_tag(sizeof(Method));
406   soc->do_tag(sizeof(ConstMethod));
407   soc->do_tag(arrayOopDesc::base_offset_in_bytes(T_BYTE));
408   soc->do_tag(sizeof(ConstantPool));
409   soc->do_tag(sizeof(ConstantPoolCache));
410   soc->do_tag(objArrayOopDesc::base_offset_in_bytes());
411   soc->do_tag(typeArrayOopDesc::base_offset_in_bytes(T_BYTE));
412   soc->do_tag(sizeof(Symbol));
413 
414   // Dump/restore miscellaneous metadata.
415   Universe::serialize(soc, true);
416   soc->do_tag(--tag);
417 
418   // Dump/restore references to commonly used names and signatures.
419   vmSymbols::serialize(soc);
420   soc->do_tag(--tag);
421 
422   // Dump/restore the symbol and string tables
423   SymbolTable::serialize(soc);
424   StringTable::serialize(soc);
425   soc->do_tag(--tag);
426 
427   JavaClasses::serialize_offsets(soc);
428   InstanceMirrorKlass::serialize_offsets(soc);
429   soc->do_tag(--tag);
430 
431   soc->do_tag(666);
432 }
433 
cds_i2i_entry_code_buffers(size_t total_size)434 address MetaspaceShared::cds_i2i_entry_code_buffers(size_t total_size) {
435   if (DumpSharedSpaces) {
436     if (_cds_i2i_entry_code_buffers == NULL) {
437       _cds_i2i_entry_code_buffers = (address)misc_code_space_alloc(total_size);
438       _cds_i2i_entry_code_buffers_size = total_size;
439     }
440   } else if (UseSharedSpaces) {
441     assert(_cds_i2i_entry_code_buffers != NULL, "must already been initialized");
442   } else {
443     return NULL;
444   }
445 
446   assert(_cds_i2i_entry_code_buffers_size == total_size, "must not change");
447   return _cds_i2i_entry_code_buffers;
448 }
449 
450 // CDS code for dumping shared archive.
451 
452 // Global object for holding classes that have been loaded.  Since this
453 // is run at a safepoint just before exit, this is the entire set of classes.
454 static GrowableArray<Klass*>* _global_klass_objects;
455 
collect_array_classes(Klass * k)456 static void collect_array_classes(Klass* k) {
457   _global_klass_objects->append_if_missing(k);
458   if (k->is_array_klass()) {
459     // Add in the array classes too
460     ArrayKlass* ak = ArrayKlass::cast(k);
461     Klass* h = ak->higher_dimension();
462     if (h != NULL) {
463       h->array_klasses_do(collect_array_classes);
464     }
465   }
466 }
467 
468 class CollectClassesClosure : public KlassClosure {
do_klass(Klass * k)469   void do_klass(Klass* k) {
470     if (!(k->is_instance_klass() && InstanceKlass::cast(k)->is_in_error_state())) {
471       if (k->is_instance_klass() && InstanceKlass::cast(k)->signers() != NULL) {
472         // Mark any class with signers and don't add to the _global_klass_objects
473         k->set_has_signer_and_not_archived();
474       } else {
475         _global_klass_objects->append_if_missing(k);
476       }
477     }
478     if (k->is_array_klass()) {
479       // Add in the array classes too
480       ArrayKlass* ak = ArrayKlass::cast(k);
481       Klass* h = ak->higher_dimension();
482       if (h != NULL) {
483         h->array_klasses_do(collect_array_classes);
484       }
485     }
486   }
487 };
488 
remove_unshareable_in_classes()489 static void remove_unshareable_in_classes() {
490   for (int i = 0; i < _global_klass_objects->length(); i++) {
491     Klass* k = _global_klass_objects->at(i);
492     if (!k->is_objArray_klass()) {
493       // InstanceKlass and TypeArrayKlass will in turn call remove_unshareable_info
494       // on their array classes.
495       assert(k->is_instance_klass() || k->is_typeArray_klass(), "must be");
496       k->remove_unshareable_info();
497     }
498   }
499 }
500 
remove_java_mirror_in_classes()501 static void remove_java_mirror_in_classes() {
502   for (int i = 0; i < _global_klass_objects->length(); i++) {
503     Klass* k = _global_klass_objects->at(i);
504     if (!k->is_objArray_klass()) {
505       // InstanceKlass and TypeArrayKlass will in turn call remove_unshareable_info
506       // on their array classes.
507       assert(k->is_instance_klass() || k->is_typeArray_klass(), "must be");
508       k->remove_java_mirror();
509     }
510   }
511 }
512 
clear_basic_type_mirrors()513 static void clear_basic_type_mirrors() {
514   assert(!MetaspaceShared::is_heap_object_archiving_allowed(), "Sanity");
515   Universe::set_int_mirror(NULL);
516   Universe::set_float_mirror(NULL);
517   Universe::set_double_mirror(NULL);
518   Universe::set_byte_mirror(NULL);
519   Universe::set_bool_mirror(NULL);
520   Universe::set_char_mirror(NULL);
521   Universe::set_long_mirror(NULL);
522   Universe::set_short_mirror(NULL);
523   Universe::set_void_mirror(NULL);
524 }
525 
rewrite_nofast_bytecode(Method * method)526 static void rewrite_nofast_bytecode(Method* method) {
527   BytecodeStream bcs(method);
528   while (!bcs.is_last_bytecode()) {
529     Bytecodes::Code opcode = bcs.next();
530     switch (opcode) {
531     case Bytecodes::_getfield:      *bcs.bcp() = Bytecodes::_nofast_getfield;      break;
532     case Bytecodes::_putfield:      *bcs.bcp() = Bytecodes::_nofast_putfield;      break;
533     case Bytecodes::_aload_0:       *bcs.bcp() = Bytecodes::_nofast_aload_0;       break;
534     case Bytecodes::_iload: {
535       if (!bcs.is_wide()) {
536         *bcs.bcp() = Bytecodes::_nofast_iload;
537       }
538       break;
539     }
540     default: break;
541     }
542   }
543 }
544 
545 // Walk all methods in the class list to ensure that they won't be modified at
546 // run time. This includes:
547 // [1] Rewrite all bytecodes as needed, so that the ConstMethod* will not be modified
548 //     at run time by RewriteBytecodes/RewriteFrequentPairs
549 // [2] Assign a fingerprint, so one doesn't need to be assigned at run-time.
rewrite_nofast_bytecodes_and_calculate_fingerprints()550 static void rewrite_nofast_bytecodes_and_calculate_fingerprints() {
551   for (int i = 0; i < _global_klass_objects->length(); i++) {
552     Klass* k = _global_klass_objects->at(i);
553     if (k->is_instance_klass()) {
554       InstanceKlass* ik = InstanceKlass::cast(k);
555       for (int i = 0; i < ik->methods()->length(); i++) {
556         Method* m = ik->methods()->at(i);
557         rewrite_nofast_bytecode(m);
558         Fingerprinter fp(m);
559         // The side effect of this call sets method's fingerprint field.
560         fp.fingerprint();
561       }
562     }
563   }
564 }
565 
566 #if INCLUDE_JVMTI
relocate_cached_class_file()567 static void relocate_cached_class_file() {
568   for (int i = 0; i < _global_klass_objects->length(); i++) {
569     Klass* k = _global_klass_objects->at(i);
570     if (k->is_instance_klass()) {
571       InstanceKlass* ik = InstanceKlass::cast(k);
572       JvmtiCachedClassFileData* p = ik->get_archived_class_data();
573       if (p != NULL) {
574         int size = offset_of(JvmtiCachedClassFileData, data) + p->length;
575         JvmtiCachedClassFileData* q = (JvmtiCachedClassFileData*)_od_region.allocate(size);
576         q->length = p->length;
577         memcpy(q->data, p->data, p->length);
578         ik->set_archived_class_data(q);
579       }
580     }
581   }
582 }
583 #endif // INCLUDE_JVMTI
584 
585 NOT_PRODUCT(
586 static void assert_not_anonymous_class(InstanceKlass* k) {
587   assert(!(k->is_anonymous()), "cannot archive anonymous classes");
588 }
589 
590 // Anonymous classes are not stored inside any dictionaries. They are created by
591 // SystemDictionary::parse_stream() with a non-null host_klass.
592 static void assert_no_anonymoys_classes_in_dictionaries() {
593   ClassLoaderDataGraph::dictionary_classes_do(assert_not_anonymous_class);
594 })
595 
596 // Objects of the Metadata types (such as Klass and ConstantPool) have C++ vtables.
597 // (In GCC this is the field <Type>::_vptr, i.e., first word in the object.)
598 //
599 // Addresses of the vtables and the methods may be different across JVM runs,
600 // if libjvm.so is dynamically loaded at a different base address.
601 //
602 // To ensure that the Metadata objects in the CDS archive always have the correct vtable:
603 //
604 // + at dump time:  we redirect the _vptr to point to our own vtables inside
605 //                  the CDS image
606 // + at run time:   we clone the actual contents of the vtables from libjvm.so
607 //                  into our own tables.
608 
609 // Currently, the archive contain ONLY the following types of objects that have C++ vtables.
610 #define CPP_VTABLE_PATCH_TYPES_DO(f) \
611   f(ConstantPool) \
612   f(InstanceKlass) \
613   f(InstanceClassLoaderKlass) \
614   f(InstanceMirrorKlass) \
615   f(InstanceRefKlass) \
616   f(Method) \
617   f(ObjArrayKlass) \
618   f(TypeArrayKlass)
619 
620 class CppVtableInfo {
621   intptr_t _vtable_size;
622   intptr_t _cloned_vtable[1];
623 public:
num_slots(int vtable_size)624   static int num_slots(int vtable_size) {
625     return 1 + vtable_size; // Need to add the space occupied by _vtable_size;
626   }
vtable_size()627   int vtable_size()           { return int(uintx(_vtable_size)); }
set_vtable_size(int n)628   void set_vtable_size(int n) { _vtable_size = intptr_t(n); }
cloned_vtable()629   intptr_t* cloned_vtable()   { return &_cloned_vtable[0]; }
zero()630   void zero()                 { memset(_cloned_vtable, 0, sizeof(intptr_t) * vtable_size()); }
631   // Returns the address of the next CppVtableInfo that can be placed immediately after this CppVtableInfo
byte_size(int vtable_size)632   static size_t byte_size(int vtable_size) {
633     CppVtableInfo i;
634     return pointer_delta(&i._cloned_vtable[vtable_size], &i, sizeof(u1));
635   }
636 };
637 
638 template <class T> class CppVtableCloner : public T {
vtable_of(Metadata & m)639   static intptr_t* vtable_of(Metadata& m) {
640     return *((intptr_t**)&m);
641   }
642   static CppVtableInfo* _info;
643 
644   static int get_vtable_length(const char* name);
645 
646 public:
647   // Allocate and initialize the C++ vtable, starting from top, but do not go past end.
648   static intptr_t* allocate(const char* name);
649 
650   // Clone the vtable to ...
651   static intptr_t* clone_vtable(const char* name, CppVtableInfo* info);
652 
zero_vtable_clone()653   static void zero_vtable_clone() {
654     assert(DumpSharedSpaces, "dump-time only");
655     _info->zero();
656   }
657 
658   // Switch the vtable pointer to point to the cloned vtable.
patch(Metadata * obj)659   static void patch(Metadata* obj) {
660     assert(DumpSharedSpaces, "dump-time only");
661     *(void**)obj = (void*)(_info->cloned_vtable());
662   }
663 
is_valid_shared_object(const T * obj)664   static bool is_valid_shared_object(const T* obj) {
665     intptr_t* vptr = *(intptr_t**)obj;
666     return vptr == _info->cloned_vtable();
667   }
668 };
669 
670 template <class T> CppVtableInfo* CppVtableCloner<T>::_info = NULL;
671 
672 template <class T>
allocate(const char * name)673 intptr_t* CppVtableCloner<T>::allocate(const char* name) {
674   assert(is_aligned(_md_region.top(), sizeof(intptr_t)), "bad alignment");
675   int n = get_vtable_length(name);
676   _info = (CppVtableInfo*)_md_region.allocate(CppVtableInfo::byte_size(n), sizeof(intptr_t));
677   _info->set_vtable_size(n);
678 
679   intptr_t* p = clone_vtable(name, _info);
680   assert((char*)p == _md_region.top(), "must be");
681 
682   return p;
683 }
684 
685 template <class T>
clone_vtable(const char * name,CppVtableInfo * info)686 intptr_t* CppVtableCloner<T>::clone_vtable(const char* name, CppVtableInfo* info) {
687   if (!DumpSharedSpaces) {
688     assert(_info == 0, "_info is initialized only at dump time");
689     _info = info; // Remember it -- it will be used by MetaspaceShared::is_valid_shared_method()
690   }
691   T tmp; // Allocate temporary dummy metadata object to get to the original vtable.
692   int n = info->vtable_size();
693   intptr_t* srcvtable = vtable_of(tmp);
694   intptr_t* dstvtable = info->cloned_vtable();
695 
696   // We already checked (and, if necessary, adjusted n) when the vtables were allocated, so we are
697   // safe to do memcpy.
698   log_debug(cds, vtables)("Copying %3d vtable entries for %s", n, name);
699   memcpy(dstvtable, srcvtable, sizeof(intptr_t) * n);
700   return dstvtable + n;
701 }
702 
703 // To determine the size of the vtable for each type, we use the following
704 // trick by declaring 2 subclasses:
705 //
706 //   class CppVtableTesterA: public InstanceKlass {virtual int   last_virtual_method() {return 1;}    };
707 //   class CppVtableTesterB: public InstanceKlass {virtual void* last_virtual_method() {return NULL}; };
708 //
709 // CppVtableTesterA and CppVtableTesterB's vtables have the following properties:
710 // - Their size (N+1) is exactly one more than the size of InstanceKlass's vtable (N)
711 // - The first N entries have are exactly the same as in InstanceKlass's vtable.
712 // - Their last entry is different.
713 //
714 // So to determine the value of N, we just walk CppVtableTesterA and CppVtableTesterB's tables
715 // and find the first entry that's different.
716 //
717 // This works on all C++ compilers supported by Oracle, but you may need to tweak it for more
718 // esoteric compilers.
719 
720 template <class T> class CppVtableTesterB: public T {
721 public:
last_virtual_method()722   virtual int last_virtual_method() {return 1;}
723 };
724 
725 template <class T> class CppVtableTesterA : public T {
726 public:
last_virtual_method()727   virtual void* last_virtual_method() {
728     // Make this different than CppVtableTesterB::last_virtual_method so the C++
729     // compiler/linker won't alias the two functions.
730     return NULL;
731   }
732 };
733 
734 template <class T>
get_vtable_length(const char * name)735 int CppVtableCloner<T>::get_vtable_length(const char* name) {
736   CppVtableTesterA<T> a;
737   CppVtableTesterB<T> b;
738 
739   intptr_t* avtable = vtable_of(a);
740   intptr_t* bvtable = vtable_of(b);
741 
742   // Start at slot 1, because slot 0 may be RTTI (on Solaris/Sparc)
743   int vtable_len = 1;
744   for (; ; vtable_len++) {
745     if (avtable[vtable_len] != bvtable[vtable_len]) {
746       break;
747     }
748   }
749   log_debug(cds, vtables)("Found   %3d vtable entries for %s", vtable_len, name);
750 
751   return vtable_len;
752 }
753 
754 #define ALLOC_CPP_VTABLE_CLONE(c) \
755   CppVtableCloner<c>::allocate(#c);
756 
757 #define CLONE_CPP_VTABLE(c) \
758   p = CppVtableCloner<c>::clone_vtable(#c, (CppVtableInfo*)p);
759 
760 #define ZERO_CPP_VTABLE(c) \
761  CppVtableCloner<c>::zero_vtable_clone();
762 
763 // This can be called at both dump time and run time.
clone_cpp_vtables(intptr_t * p)764 intptr_t* MetaspaceShared::clone_cpp_vtables(intptr_t* p) {
765   assert(DumpSharedSpaces || UseSharedSpaces, "sanity");
766   CPP_VTABLE_PATCH_TYPES_DO(CLONE_CPP_VTABLE);
767   return p;
768 }
769 
zero_cpp_vtable_clones_for_writing()770 void MetaspaceShared::zero_cpp_vtable_clones_for_writing() {
771   assert(DumpSharedSpaces, "dump-time only");
772   CPP_VTABLE_PATCH_TYPES_DO(ZERO_CPP_VTABLE);
773 }
774 
775 // Allocate and initialize the C++ vtables, starting from top, but do not go past end.
allocate_cpp_vtable_clones()776 void MetaspaceShared::allocate_cpp_vtable_clones() {
777   assert(DumpSharedSpaces, "dump-time only");
778   // Layout (each slot is a intptr_t):
779   //   [number of slots in the first vtable = n1]
780   //   [ <n1> slots for the first vtable]
781   //   [number of slots in the first second = n2]
782   //   [ <n2> slots for the second vtable]
783   //   ...
784   // The order of the vtables is the same as the CPP_VTAB_PATCH_TYPES_DO macro.
785   CPP_VTABLE_PATCH_TYPES_DO(ALLOC_CPP_VTABLE_CLONE);
786 }
787 
788 // Switch the vtable pointer to point to the cloned vtable. We assume the
789 // vtable pointer is in first slot in object.
patch_cpp_vtable_pointers()790 void MetaspaceShared::patch_cpp_vtable_pointers() {
791   int n = _global_klass_objects->length();
792   for (int i = 0; i < n; i++) {
793     Klass* obj = _global_klass_objects->at(i);
794     if (obj->is_instance_klass()) {
795       InstanceKlass* ik = InstanceKlass::cast(obj);
796       if (ik->is_class_loader_instance_klass()) {
797         CppVtableCloner<InstanceClassLoaderKlass>::patch(ik);
798       } else if (ik->is_reference_instance_klass()) {
799         CppVtableCloner<InstanceRefKlass>::patch(ik);
800       } else if (ik->is_mirror_instance_klass()) {
801         CppVtableCloner<InstanceMirrorKlass>::patch(ik);
802       } else {
803         CppVtableCloner<InstanceKlass>::patch(ik);
804       }
805       ConstantPool* cp = ik->constants();
806       CppVtableCloner<ConstantPool>::patch(cp);
807       for (int j = 0; j < ik->methods()->length(); j++) {
808         Method* m = ik->methods()->at(j);
809         CppVtableCloner<Method>::patch(m);
810         assert(CppVtableCloner<Method>::is_valid_shared_object(m), "must be");
811       }
812     } else if (obj->is_objArray_klass()) {
813       CppVtableCloner<ObjArrayKlass>::patch(obj);
814     } else {
815       assert(obj->is_typeArray_klass(), "sanity");
816       CppVtableCloner<TypeArrayKlass>::patch(obj);
817     }
818   }
819 }
820 
is_valid_shared_method(const Method * m)821 bool MetaspaceShared::is_valid_shared_method(const Method* m) {
822   assert(is_in_shared_metaspace(m), "must be");
823   return CppVtableCloner<Method>::is_valid_shared_object(m);
824 }
825 
826 // Closure for serializing initialization data out to a data area to be
827 // written to the shared file.
828 
829 class WriteClosure : public SerializeClosure {
830 private:
831   DumpRegion* _dump_region;
832 
833 public:
WriteClosure(DumpRegion * r)834   WriteClosure(DumpRegion* r) {
835     _dump_region = r;
836   }
837 
do_ptr(void ** p)838   void do_ptr(void** p) {
839     _dump_region->append_intptr_t((intptr_t)*p);
840   }
841 
do_u4(u4 * p)842   void do_u4(u4* p) {
843     void* ptr = (void*)(uintx(*p));
844     do_ptr(&ptr);
845   }
846 
do_bool(bool * p)847   void do_bool(bool *p) {
848     void* ptr = (void*)(uintx(*p));
849     do_ptr(&ptr);
850   }
851 
do_tag(int tag)852   void do_tag(int tag) {
853     _dump_region->append_intptr_t((intptr_t)tag);
854   }
855 
do_oop(oop * o)856   void do_oop(oop* o) {
857     if (*o == NULL) {
858       _dump_region->append_intptr_t(0);
859     } else {
860       assert(MetaspaceShared::is_heap_object_archiving_allowed(),
861              "Archiving heap object is not allowed");
862       _dump_region->append_intptr_t(
863         (intptr_t)CompressedOops::encode_not_null(*o));
864     }
865   }
866 
do_region(u_char * start,size_t size)867   void do_region(u_char* start, size_t size) {
868     assert((intptr_t)start % sizeof(intptr_t) == 0, "bad alignment");
869     assert(size % sizeof(intptr_t) == 0, "bad size");
870     do_tag((int)size);
871     while (size > 0) {
872       _dump_region->append_intptr_t(*(intptr_t*)start);
873       start += sizeof(intptr_t);
874       size -= sizeof(intptr_t);
875     }
876   }
877 
reading() const878   bool reading() const { return false; }
879 };
880 
881 // This is for dumping detailed statistics for the allocations
882 // in the shared spaces.
883 class DumpAllocStats : public ResourceObj {
884 public:
885 
886   // Here's poor man's enum inheritance
887 #define SHAREDSPACE_OBJ_TYPES_DO(f) \
888   METASPACE_OBJ_TYPES_DO(f) \
889   f(SymbolHashentry) \
890   f(SymbolBucket) \
891   f(StringHashentry) \
892   f(StringBucket) \
893   f(Other)
894 
895   enum Type {
896     // Types are MetaspaceObj::ClassType, MetaspaceObj::SymbolType, etc
897     SHAREDSPACE_OBJ_TYPES_DO(METASPACE_OBJ_TYPE_DECLARE)
898     _number_of_types
899   };
900 
type_name(Type type)901   static const char * type_name(Type type) {
902     switch(type) {
903     SHAREDSPACE_OBJ_TYPES_DO(METASPACE_OBJ_TYPE_NAME_CASE)
904     default:
905       ShouldNotReachHere();
906       return NULL;
907     }
908   }
909 
910 public:
911   enum { RO = 0, RW = 1 };
912 
913   int _counts[2][_number_of_types];
914   int _bytes [2][_number_of_types];
915 
DumpAllocStats()916   DumpAllocStats() {
917     memset(_counts, 0, sizeof(_counts));
918     memset(_bytes,  0, sizeof(_bytes));
919   };
920 
record(MetaspaceObj::Type type,int byte_size,bool read_only)921   void record(MetaspaceObj::Type type, int byte_size, bool read_only) {
922     assert(int(type) >= 0 && type < MetaspaceObj::_number_of_types, "sanity");
923     int which = (read_only) ? RO : RW;
924     _counts[which][type] ++;
925     _bytes [which][type] += byte_size;
926   }
927 
record_other_type(int byte_size,bool read_only)928   void record_other_type(int byte_size, bool read_only) {
929     int which = (read_only) ? RO : RW;
930     _bytes [which][OtherType] += byte_size;
931   }
932   void print_stats(int ro_all, int rw_all, int mc_all, int md_all);
933 };
934 
print_stats(int ro_all,int rw_all,int mc_all,int md_all)935 void DumpAllocStats::print_stats(int ro_all, int rw_all, int mc_all, int md_all) {
936   // Calculate size of data that was not allocated by Metaspace::allocate()
937   MetaspaceSharedStats *stats = MetaspaceShared::stats();
938 
939   // symbols
940   _counts[RO][SymbolHashentryType] = stats->symbol.hashentry_count;
941   _bytes [RO][SymbolHashentryType] = stats->symbol.hashentry_bytes;
942 
943   _counts[RO][SymbolBucketType] = stats->symbol.bucket_count;
944   _bytes [RO][SymbolBucketType] = stats->symbol.bucket_bytes;
945 
946   // strings
947   _counts[RO][StringHashentryType] = stats->string.hashentry_count;
948   _bytes [RO][StringHashentryType] = stats->string.hashentry_bytes;
949 
950   _counts[RO][StringBucketType] = stats->string.bucket_count;
951   _bytes [RO][StringBucketType] = stats->string.bucket_bytes;
952 
953   // TODO: count things like dictionary, vtable, etc
954   _bytes[RW][OtherType] += mc_all + md_all;
955   rw_all += mc_all + md_all; // mc/md are mapped Read/Write
956 
957   // prevent divide-by-zero
958   if (ro_all < 1) {
959     ro_all = 1;
960   }
961   if (rw_all < 1) {
962     rw_all = 1;
963   }
964 
965   int all_ro_count = 0;
966   int all_ro_bytes = 0;
967   int all_rw_count = 0;
968   int all_rw_bytes = 0;
969 
970 // To make fmt_stats be a syntactic constant (for format warnings), use #define.
971 #define fmt_stats "%-20s: %8d %10d %5.1f | %8d %10d %5.1f | %8d %10d %5.1f"
972   const char *sep = "--------------------+---------------------------+---------------------------+--------------------------";
973   const char *hdr = "                        ro_cnt   ro_bytes     % |   rw_cnt   rw_bytes     % |  all_cnt  all_bytes     %";
974 
975   LogMessage(cds) msg;
976 
977   msg.info("Detailed metadata info (excluding od/st regions; rw stats include md/mc regions):");
978   msg.info("%s", hdr);
979   msg.info("%s", sep);
980   for (int type = 0; type < int(_number_of_types); type ++) {
981     const char *name = type_name((Type)type);
982     int ro_count = _counts[RO][type];
983     int ro_bytes = _bytes [RO][type];
984     int rw_count = _counts[RW][type];
985     int rw_bytes = _bytes [RW][type];
986     int count = ro_count + rw_count;
987     int bytes = ro_bytes + rw_bytes;
988 
989     double ro_perc = percent_of(ro_bytes, ro_all);
990     double rw_perc = percent_of(rw_bytes, rw_all);
991     double perc    = percent_of(bytes, ro_all + rw_all);
992 
993     msg.info(fmt_stats, name,
994                          ro_count, ro_bytes, ro_perc,
995                          rw_count, rw_bytes, rw_perc,
996                          count, bytes, perc);
997 
998     all_ro_count += ro_count;
999     all_ro_bytes += ro_bytes;
1000     all_rw_count += rw_count;
1001     all_rw_bytes += rw_bytes;
1002   }
1003 
1004   int all_count = all_ro_count + all_rw_count;
1005   int all_bytes = all_ro_bytes + all_rw_bytes;
1006 
1007   double all_ro_perc = percent_of(all_ro_bytes, ro_all);
1008   double all_rw_perc = percent_of(all_rw_bytes, rw_all);
1009   double all_perc    = percent_of(all_bytes, ro_all + rw_all);
1010 
1011   msg.info("%s", sep);
1012   msg.info(fmt_stats, "Total",
1013                        all_ro_count, all_ro_bytes, all_ro_perc,
1014                        all_rw_count, all_rw_bytes, all_rw_perc,
1015                        all_count, all_bytes, all_perc);
1016 
1017   assert(all_ro_bytes == ro_all, "everything should have been counted");
1018   assert(all_rw_bytes == rw_all, "everything should have been counted");
1019 
1020 #undef fmt_stats
1021 }
1022 
1023 // Populate the shared space.
1024 
1025 class VM_PopulateDumpSharedSpace: public VM_Operation {
1026 private:
1027   GrowableArray<MemRegion> *_closed_archive_heap_regions;
1028   GrowableArray<MemRegion> *_open_archive_heap_regions;
1029 
1030   GrowableArray<ArchiveHeapOopmapInfo> *_closed_archive_heap_oopmaps;
1031   GrowableArray<ArchiveHeapOopmapInfo> *_open_archive_heap_oopmaps;
1032 
1033   void dump_java_heap_objects() NOT_CDS_JAVA_HEAP_RETURN;
1034   void dump_archive_heap_oopmaps() NOT_CDS_JAVA_HEAP_RETURN;
1035   void dump_archive_heap_oopmaps(GrowableArray<MemRegion>* regions,
1036                                  GrowableArray<ArchiveHeapOopmapInfo>* oopmaps);
1037   void dump_symbols();
1038   char* dump_read_only_tables();
1039   void print_region_stats();
1040   void print_heap_region_stats(GrowableArray<MemRegion> *heap_mem,
1041                                const char *name, const size_t total_size);
1042 public:
1043 
type() const1044   VMOp_Type type() const { return VMOp_PopulateDumpSharedSpace; }
1045   void doit();   // outline because gdb sucks
1046   static void write_region(FileMapInfo* mapinfo, int region, DumpRegion* space, bool read_only,  bool allow_exec);
allow_nested_vm_operations() const1047   bool allow_nested_vm_operations() const { return true; }
1048 }; // class VM_PopulateDumpSharedSpace
1049 
1050 class SortedSymbolClosure: public SymbolClosure {
1051   GrowableArray<Symbol*> _symbols;
do_symbol(Symbol ** sym)1052   virtual void do_symbol(Symbol** sym) {
1053     assert((*sym)->is_permanent(), "archived symbols must be permanent");
1054     _symbols.append(*sym);
1055   }
compare_symbols_by_address(Symbol ** a,Symbol ** b)1056   static int compare_symbols_by_address(Symbol** a, Symbol** b) {
1057     if (a[0] < b[0]) {
1058       return -1;
1059     } else if (a[0] == b[0]) {
1060       return 0;
1061     } else {
1062       return 1;
1063     }
1064   }
1065 
1066 public:
SortedSymbolClosure()1067   SortedSymbolClosure() {
1068     SymbolTable::symbols_do(this);
1069     _symbols.sort(compare_symbols_by_address);
1070   }
get_sorted_symbols()1071   GrowableArray<Symbol*>* get_sorted_symbols() {
1072     return &_symbols;
1073   }
1074 };
1075 
1076 // ArchiveCompactor --
1077 //
1078 // This class is the central piece of shared archive compaction -- all metaspace data are
1079 // initially allocated outside of the shared regions. ArchiveCompactor copies the
1080 // metaspace data into their final location in the shared regions.
1081 
1082 class ArchiveCompactor : AllStatic {
1083   static DumpAllocStats* _alloc_stats;
1084   static SortedSymbolClosure* _ssc;
1085 
my_hash(const address & a)1086   static unsigned my_hash(const address& a) {
1087     return primitive_hash<address>(a);
1088   }
my_equals(const address & a0,const address & a1)1089   static bool my_equals(const address& a0, const address& a1) {
1090     return primitive_equals<address>(a0, a1);
1091   }
1092   typedef ResourceHashtable<
1093       address, address,
1094       ArchiveCompactor::my_hash,   // solaris compiler doesn't like: primitive_hash<address>
1095       ArchiveCompactor::my_equals, // solaris compiler doesn't like: primitive_equals<address>
1096       16384, ResourceObj::C_HEAP> RelocationTable;
1097   static RelocationTable* _new_loc_table;
1098 
1099 public:
initialize()1100   static void initialize() {
1101     _alloc_stats = new(ResourceObj::C_HEAP, mtInternal)DumpAllocStats;
1102     _new_loc_table = new(ResourceObj::C_HEAP, mtInternal)RelocationTable;
1103   }
alloc_stats()1104   static DumpAllocStats* alloc_stats() {
1105     return _alloc_stats;
1106   }
1107 
allocate(MetaspaceClosure::Ref * ref,bool read_only)1108   static void allocate(MetaspaceClosure::Ref* ref, bool read_only) {
1109     address obj = ref->obj();
1110     int bytes = ref->size() * BytesPerWord;
1111     char* p;
1112     size_t alignment = BytesPerWord;
1113     char* oldtop;
1114     char* newtop;
1115 
1116     if (read_only) {
1117       oldtop = _ro_region.top();
1118       p = _ro_region.allocate(bytes, alignment);
1119       newtop = _ro_region.top();
1120     } else {
1121       oldtop = _rw_region.top();
1122       p = _rw_region.allocate(bytes, alignment);
1123       newtop = _rw_region.top();
1124     }
1125     memcpy(p, obj, bytes);
1126     bool isnew = _new_loc_table->put(obj, (address)p);
1127     log_trace(cds)("Copy: " PTR_FORMAT " ==> " PTR_FORMAT " %d", p2i(obj), p2i(p), bytes);
1128     assert(isnew, "must be");
1129 
1130     _alloc_stats->record(ref->msotype(), int(newtop - oldtop), read_only);
1131     if (ref->msotype() == MetaspaceObj::SymbolType) {
1132       uintx delta = MetaspaceShared::object_delta(p);
1133       if (delta > MAX_SHARED_DELTA) {
1134         // This is just a sanity check and should not appear in any real world usage. This
1135         // happens only if you allocate more than 2GB of Symbols and would require
1136         // millions of shared classes.
1137         vm_exit_during_initialization("Too many Symbols in the CDS archive",
1138                                       "Please reduce the number of shared classes.");
1139       }
1140     }
1141   }
1142 
get_new_loc(MetaspaceClosure::Ref * ref)1143   static address get_new_loc(MetaspaceClosure::Ref* ref) {
1144     address* pp = _new_loc_table->get(ref->obj());
1145     assert(pp != NULL, "must be");
1146     return *pp;
1147   }
1148 
1149 private:
1150   // Makes a shallow copy of visited MetaspaceObj's
1151   class ShallowCopier: public UniqueMetaspaceClosure {
1152     bool _read_only;
1153   public:
ShallowCopier(bool read_only)1154     ShallowCopier(bool read_only) : _read_only(read_only) {}
1155 
do_unique_ref(Ref * ref,bool read_only)1156     virtual void do_unique_ref(Ref* ref, bool read_only) {
1157       if (read_only == _read_only) {
1158         allocate(ref, read_only);
1159       }
1160     }
1161   };
1162 
1163   // Relocate embedded pointers within a MetaspaceObj's shallow copy
1164   class ShallowCopyEmbeddedRefRelocator: public UniqueMetaspaceClosure {
1165   public:
do_unique_ref(Ref * ref,bool read_only)1166     virtual void do_unique_ref(Ref* ref, bool read_only) {
1167       address new_loc = get_new_loc(ref);
1168       RefRelocator refer;
1169       ref->metaspace_pointers_do_at(&refer, new_loc);
1170     }
1171   };
1172 
1173   // Relocate a reference to point to its shallow copy
1174   class RefRelocator: public MetaspaceClosure {
1175   public:
do_ref(Ref * ref,bool read_only)1176     virtual bool do_ref(Ref* ref, bool read_only) {
1177       if (ref->not_null()) {
1178         ref->update(get_new_loc(ref));
1179       }
1180       return false; // Do not recurse.
1181     }
1182   };
1183 
1184 #ifdef ASSERT
1185   class IsRefInArchiveChecker: public MetaspaceClosure {
1186   public:
do_ref(Ref * ref,bool read_only)1187     virtual bool do_ref(Ref* ref, bool read_only) {
1188       if (ref->not_null()) {
1189         char* obj = (char*)ref->obj();
1190         assert(_ro_region.contains(obj) || _rw_region.contains(obj),
1191                "must be relocated to point to CDS archive");
1192       }
1193       return false; // Do not recurse.
1194     }
1195   };
1196 #endif
1197 
1198 public:
copy_and_compact()1199   static void copy_and_compact() {
1200     ResourceMark rm;
1201     SortedSymbolClosure the_ssc; // StackObj
1202     _ssc = &the_ssc;
1203 
1204     tty->print_cr("Scanning all metaspace objects ... ");
1205     {
1206       // allocate and shallow-copy RW objects, immediately following the MC region
1207       tty->print_cr("Allocating RW objects ... ");
1208       _mc_region.pack(&_rw_region);
1209 
1210       ResourceMark rm;
1211       ShallowCopier rw_copier(false);
1212       iterate_roots(&rw_copier);
1213     }
1214     {
1215       // allocate and shallow-copy of RO object, immediately following the RW region
1216       tty->print_cr("Allocating RO objects ... ");
1217       _rw_region.pack(&_ro_region);
1218 
1219       ResourceMark rm;
1220       ShallowCopier ro_copier(true);
1221       iterate_roots(&ro_copier);
1222     }
1223     {
1224       tty->print_cr("Relocating embedded pointers ... ");
1225       ResourceMark rm;
1226       ShallowCopyEmbeddedRefRelocator emb_reloc;
1227       iterate_roots(&emb_reloc);
1228     }
1229     {
1230       tty->print_cr("Relocating external roots ... ");
1231       ResourceMark rm;
1232       RefRelocator ext_reloc;
1233       iterate_roots(&ext_reloc);
1234     }
1235 
1236 #ifdef ASSERT
1237     {
1238       tty->print_cr("Verifying external roots ... ");
1239       ResourceMark rm;
1240       IsRefInArchiveChecker checker;
1241       iterate_roots(&checker);
1242     }
1243 #endif
1244 
1245 
1246     // cleanup
1247     _ssc = NULL;
1248   }
1249 
1250   // We must relocate the System::_well_known_klasses only after we have copied the
1251   // java objects in during dump_java_heap_objects(): during the object copy, we operate on
1252   // old objects which assert that their klass is the original klass.
relocate_well_known_klasses()1253   static void relocate_well_known_klasses() {
1254     {
1255       tty->print_cr("Relocating SystemDictionary::_well_known_klasses[] ... ");
1256       ResourceMark rm;
1257       RefRelocator ext_reloc;
1258       SystemDictionary::well_known_klasses_do(&ext_reloc);
1259     }
1260     // NOTE: after this point, we shouldn't have any globals that can reach the old
1261     // objects.
1262 
1263     // We cannot use any of the objects in the heap anymore (except for the objects
1264     // in the CDS shared string regions) because their headers no longer point to
1265     // valid Klasses.
1266   }
1267 
iterate_roots(MetaspaceClosure * it)1268   static void iterate_roots(MetaspaceClosure* it) {
1269     GrowableArray<Symbol*>* symbols = _ssc->get_sorted_symbols();
1270     for (int i=0; i<symbols->length(); i++) {
1271       it->push(symbols->adr_at(i));
1272     }
1273     if (_global_klass_objects != NULL) {
1274       // Need to fix up the pointers
1275       for (int i = 0; i < _global_klass_objects->length(); i++) {
1276         // NOTE -- this requires that the vtable is NOT yet patched, or else we are hosed.
1277         it->push(_global_klass_objects->adr_at(i));
1278       }
1279     }
1280     FileMapInfo::metaspace_pointers_do(it);
1281     SystemDictionary::classes_do(it);
1282     Universe::metaspace_pointers_do(it);
1283     SymbolTable::metaspace_pointers_do(it);
1284     vmSymbols::metaspace_pointers_do(it);
1285   }
1286 
get_relocated_klass(Klass * orig_klass)1287   static Klass* get_relocated_klass(Klass* orig_klass) {
1288     assert(DumpSharedSpaces, "dump time only");
1289     address* pp = _new_loc_table->get((address)orig_klass);
1290     assert(pp != NULL, "must be");
1291     Klass* klass = (Klass*)(*pp);
1292     assert(klass->is_klass(), "must be");
1293     return klass;
1294   }
1295 };
1296 
1297 DumpAllocStats* ArchiveCompactor::_alloc_stats;
1298 SortedSymbolClosure* ArchiveCompactor::_ssc;
1299 ArchiveCompactor::RelocationTable* ArchiveCompactor::_new_loc_table;
1300 
write_region(FileMapInfo * mapinfo,int region_idx,DumpRegion * dump_region,bool read_only,bool allow_exec)1301 void VM_PopulateDumpSharedSpace::write_region(FileMapInfo* mapinfo, int region_idx,
1302                                               DumpRegion* dump_region, bool read_only,  bool allow_exec) {
1303   mapinfo->write_region(region_idx, dump_region->base(), dump_region->used(), read_only, allow_exec);
1304 }
1305 
dump_symbols()1306 void VM_PopulateDumpSharedSpace::dump_symbols() {
1307   tty->print_cr("Dumping symbol table ...");
1308 
1309   NOT_PRODUCT(SymbolTable::verify());
1310   SymbolTable::write_to_archive();
1311 }
1312 
dump_read_only_tables()1313 char* VM_PopulateDumpSharedSpace::dump_read_only_tables() {
1314   char* oldtop = _ro_region.top();
1315   // Reorder the system dictionary. Moving the symbols affects
1316   // how the hash table indices are calculated.
1317   SystemDictionary::reorder_dictionary_for_sharing();
1318 
1319   tty->print("Removing java_mirror ... ");
1320   if (!MetaspaceShared::is_heap_object_archiving_allowed()) {
1321     clear_basic_type_mirrors();
1322   }
1323   remove_java_mirror_in_classes();
1324   tty->print_cr("done. ");
1325   NOT_PRODUCT(SystemDictionary::verify();)
1326 
1327   size_t buckets_bytes = SystemDictionary::count_bytes_for_buckets();
1328   char* buckets_top = _ro_region.allocate(buckets_bytes, sizeof(intptr_t));
1329   SystemDictionary::copy_buckets(buckets_top, _ro_region.top());
1330 
1331   size_t table_bytes = SystemDictionary::count_bytes_for_table();
1332   char* table_top = _ro_region.allocate(table_bytes, sizeof(intptr_t));
1333   SystemDictionary::copy_table(table_top, _ro_region.top());
1334 
1335   // Write the archived object sub-graph infos. For each klass with sub-graphs,
1336   // the info includes the static fields (sub-graph entry points) and Klasses
1337   // of objects included in the sub-graph.
1338   HeapShared::write_archived_subgraph_infos();
1339 
1340   // Write the other data to the output array.
1341   WriteClosure wc(&_ro_region);
1342   MetaspaceShared::serialize(&wc);
1343 
1344   // Write the bitmaps for patching the archive heap regions
1345   dump_archive_heap_oopmaps();
1346 
1347   char* newtop = _ro_region.top();
1348   ArchiveCompactor::alloc_stats()->record_other_type(int(newtop - oldtop), true);
1349   return buckets_top;
1350 }
1351 
doit()1352 void VM_PopulateDumpSharedSpace::doit() {
1353   // We should no longer allocate anything from the metaspace, so that:
1354   //
1355   // (1) Metaspace::allocate might trigger GC if we have run out of
1356   //     committed metaspace, but we can't GC because we're running
1357   //     in the VM thread.
1358   // (2) ArchiveCompactor needs to work with a stable set of MetaspaceObjs.
1359   Metaspace::freeze();
1360 
1361   Thread* THREAD = VMThread::vm_thread();
1362 
1363   FileMapInfo::check_nonempty_dir_in_shared_path_table();
1364 
1365   NOT_PRODUCT(SystemDictionary::verify();)
1366   // The following guarantee is meant to ensure that no loader constraints
1367   // exist yet, since the constraints table is not shared.  This becomes
1368   // more important now that we don't re-initialize vtables/itables for
1369   // shared classes at runtime, where constraints were previously created.
1370   guarantee(SystemDictionary::constraints()->number_of_entries() == 0,
1371             "loader constraints are not saved");
1372   guarantee(SystemDictionary::placeholders()->number_of_entries() == 0,
1373           "placeholders are not saved");
1374   // Revisit and implement this if we prelink method handle call sites:
1375   guarantee(SystemDictionary::invoke_method_table() == NULL ||
1376             SystemDictionary::invoke_method_table()->number_of_entries() == 0,
1377             "invoke method table is not saved");
1378 
1379   // At this point, many classes have been loaded.
1380   // Gather systemDictionary classes in a global array and do everything to
1381   // that so we don't have to walk the SystemDictionary again.
1382   _global_klass_objects = new GrowableArray<Klass*>(1000);
1383   CollectClassesClosure collect_classes;
1384   ClassLoaderDataGraph::loaded_classes_do(&collect_classes);
1385 
1386   tty->print_cr("Number of classes %d", _global_klass_objects->length());
1387   {
1388     int num_type_array = 0, num_obj_array = 0, num_inst = 0;
1389     for (int i = 0; i < _global_klass_objects->length(); i++) {
1390       Klass* k = _global_klass_objects->at(i);
1391       if (k->is_instance_klass()) {
1392         num_inst ++;
1393       } else if (k->is_objArray_klass()) {
1394         num_obj_array ++;
1395       } else {
1396         assert(k->is_typeArray_klass(), "sanity");
1397         num_type_array ++;
1398       }
1399     }
1400     tty->print_cr("    instance classes   = %5d", num_inst);
1401     tty->print_cr("    obj array classes  = %5d", num_obj_array);
1402     tty->print_cr("    type array classes = %5d", num_type_array);
1403   }
1404 
1405   // Ensure the ConstMethods won't be modified at run-time
1406   tty->print("Updating ConstMethods ... ");
1407   rewrite_nofast_bytecodes_and_calculate_fingerprints();
1408   tty->print_cr("done. ");
1409 
1410   // Move classes from platform/system dictionaries into the boot dictionary
1411   SystemDictionary::combine_shared_dictionaries();
1412 
1413   // Make sure all classes have a correct loader type.
1414   ClassLoaderData::the_null_class_loader_data()->dictionary()->classes_do(MetaspaceShared::check_shared_class_loader_type);
1415 
1416   // Remove all references outside the metadata
1417   tty->print("Removing unshareable information ... ");
1418   remove_unshareable_in_classes();
1419   tty->print_cr("done. ");
1420 
1421   // We don't support archiving anonymous classes. Verify that they are not stored in
1422   // the any dictionaries.
1423   NOT_PRODUCT(assert_no_anonymoys_classes_in_dictionaries());
1424 
1425   ArchiveCompactor::initialize();
1426   ArchiveCompactor::copy_and_compact();
1427 
1428   dump_symbols();
1429 
1430   // Dump supported java heap objects
1431   _closed_archive_heap_regions = NULL;
1432   _open_archive_heap_regions = NULL;
1433   dump_java_heap_objects();
1434 
1435   ArchiveCompactor::relocate_well_known_klasses();
1436 
1437   char* read_only_tables_start = dump_read_only_tables();
1438   _ro_region.pack(&_md_region);
1439 
1440   char* vtbl_list = _md_region.top();
1441   MetaspaceShared::allocate_cpp_vtable_clones();
1442   _md_region.pack(&_od_region);
1443 
1444   // Relocate the archived class file data into the od region
1445   JVMTI_ONLY(relocate_cached_class_file();)
1446   _od_region.pack();
1447 
1448   // The 5 core spaces are allocated consecutively mc->rw->ro->md->od, so there total size
1449   // is just the spaces between the two ends.
1450   size_t core_spaces_size = _od_region.end() - _mc_region.base();
1451   assert(core_spaces_size == (size_t)align_up(core_spaces_size, Metaspace::reserve_alignment()),
1452          "should already be aligned");
1453 
1454   // During patching, some virtual methods may be called, so at this point
1455   // the vtables must contain valid methods (as filled in by CppVtableCloner::allocate).
1456   MetaspaceShared::patch_cpp_vtable_pointers();
1457 
1458   // The vtable clones contain addresses of the current process.
1459   // We don't want to write these addresses into the archive.
1460   MetaspaceShared::zero_cpp_vtable_clones_for_writing();
1461 
1462   // Create and write the archive file that maps the shared spaces.
1463 
1464   FileMapInfo* mapinfo = new FileMapInfo();
1465   mapinfo->populate_header(os::vm_allocation_granularity());
1466   mapinfo->set_read_only_tables_start(read_only_tables_start);
1467   mapinfo->set_misc_data_patching_start(vtbl_list);
1468   mapinfo->set_cds_i2i_entry_code_buffers(MetaspaceShared::cds_i2i_entry_code_buffers());
1469   mapinfo->set_cds_i2i_entry_code_buffers_size(MetaspaceShared::cds_i2i_entry_code_buffers_size());
1470   mapinfo->set_core_spaces_size(core_spaces_size);
1471 
1472   for (int pass=1; pass<=2; pass++) {
1473     if (pass == 1) {
1474       // The first pass doesn't actually write the data to disk. All it
1475       // does is to update the fields in the mapinfo->_header.
1476     } else {
1477       // After the first pass, the contents of mapinfo->_header are finalized,
1478       // so we can compute the header's CRC, and write the contents of the header
1479       // and the regions into disk.
1480       mapinfo->open_for_write();
1481       mapinfo->set_header_crc(mapinfo->compute_header_crc());
1482     }
1483     mapinfo->write_header();
1484 
1485     // NOTE: md contains the trampoline code for method entries, which are patched at run time,
1486     // so it needs to be read/write.
1487     write_region(mapinfo, MetaspaceShared::mc, &_mc_region, /*read_only=*/false,/*allow_exec=*/true);
1488     write_region(mapinfo, MetaspaceShared::rw, &_rw_region, /*read_only=*/false,/*allow_exec=*/false);
1489     write_region(mapinfo, MetaspaceShared::ro, &_ro_region, /*read_only=*/true, /*allow_exec=*/false);
1490     write_region(mapinfo, MetaspaceShared::md, &_md_region, /*read_only=*/false,/*allow_exec=*/false);
1491     write_region(mapinfo, MetaspaceShared::od, &_od_region, /*read_only=*/true, /*allow_exec=*/false);
1492 
1493     _total_string_region_size = mapinfo->write_archive_heap_regions(
1494                                         _closed_archive_heap_regions,
1495                                         _closed_archive_heap_oopmaps,
1496                                         MetaspaceShared::first_string,
1497                                         MetaspaceShared::max_strings);
1498     _total_open_archive_region_size = mapinfo->write_archive_heap_regions(
1499                                         _open_archive_heap_regions,
1500                                         _open_archive_heap_oopmaps,
1501                                         MetaspaceShared::first_open_archive_heap_region,
1502                                         MetaspaceShared::max_open_archive_heap_region);
1503   }
1504 
1505   mapinfo->close();
1506 
1507   // Restore the vtable in case we invoke any virtual methods.
1508   MetaspaceShared::clone_cpp_vtables((intptr_t*)vtbl_list);
1509 
1510   print_region_stats();
1511 
1512   if (log_is_enabled(Info, cds)) {
1513     ArchiveCompactor::alloc_stats()->print_stats(int(_ro_region.used()), int(_rw_region.used()),
1514                                                  int(_mc_region.used()), int(_md_region.used()));
1515   }
1516 
1517   if (PrintSystemDictionaryAtExit) {
1518     SystemDictionary::print();
1519   }
1520   // There may be other pending VM operations that operate on the InstanceKlasses,
1521   // which will fail because InstanceKlasses::remove_unshareable_info()
1522   // has been called. Forget these operations and exit the VM directly.
1523   vm_direct_exit(0);
1524 }
1525 
print_region_stats()1526 void VM_PopulateDumpSharedSpace::print_region_stats() {
1527   // Print statistics of all the regions
1528   const size_t total_reserved = _ro_region.reserved()  + _rw_region.reserved() +
1529                                 _mc_region.reserved()  + _md_region.reserved() +
1530                                 _od_region.reserved()  +
1531                                 _total_string_region_size +
1532                                 _total_open_archive_region_size;
1533   const size_t total_bytes = _ro_region.used()  + _rw_region.used() +
1534                              _mc_region.used()  + _md_region.used() +
1535                              _od_region.used()  +
1536                              _total_string_region_size +
1537                              _total_open_archive_region_size;
1538   const double total_u_perc = percent_of(total_bytes, total_reserved);
1539 
1540   _mc_region.print(total_reserved);
1541   _rw_region.print(total_reserved);
1542   _ro_region.print(total_reserved);
1543   _md_region.print(total_reserved);
1544   _od_region.print(total_reserved);
1545   print_heap_region_stats(_closed_archive_heap_regions, "st", total_reserved);
1546   print_heap_region_stats(_open_archive_heap_regions, "oa", total_reserved);
1547 
1548   tty->print_cr("total    : " SIZE_FORMAT_W(9) " [100.0%% of total] out of " SIZE_FORMAT_W(9) " bytes [%5.1f%% used]",
1549                  total_bytes, total_reserved, total_u_perc);
1550 }
1551 
print_heap_region_stats(GrowableArray<MemRegion> * heap_mem,const char * name,const size_t total_size)1552 void VM_PopulateDumpSharedSpace::print_heap_region_stats(GrowableArray<MemRegion> *heap_mem,
1553                                                          const char *name, const size_t total_size) {
1554   int arr_len = heap_mem == NULL ? 0 : heap_mem->length();
1555   for (int i = 0; i < arr_len; i++) {
1556       char* start = (char*)heap_mem->at(i).start();
1557       size_t size = heap_mem->at(i).byte_size();
1558       char* top = start + size;
1559       tty->print_cr("%s%d space: " SIZE_FORMAT_W(9) " [ %4.1f%% of total] out of " SIZE_FORMAT_W(9) " bytes [100.0%% used] at " INTPTR_FORMAT,
1560                     name, i, size, size/double(total_size)*100.0, size, p2i(start));
1561 
1562   }
1563 }
1564 
1565 // Update a Java object to point its Klass* to the new location after
1566 // shared archive has been compacted.
relocate_klass_ptr(oop o)1567 void MetaspaceShared::relocate_klass_ptr(oop o) {
1568   assert(DumpSharedSpaces, "sanity");
1569   Klass* k = ArchiveCompactor::get_relocated_klass(o->klass());
1570   o->set_klass(k);
1571 }
1572 
get_relocated_klass(Klass * k)1573 Klass* MetaspaceShared::get_relocated_klass(Klass *k) {
1574   assert(DumpSharedSpaces, "sanity");
1575   return ArchiveCompactor::get_relocated_klass(k);
1576 }
1577 
1578 class LinkSharedClassesClosure : public KlassClosure {
1579   Thread* THREAD;
1580   bool    _made_progress;
1581  public:
LinkSharedClassesClosure(Thread * thread)1582   LinkSharedClassesClosure(Thread* thread) : THREAD(thread), _made_progress(false) {}
1583 
reset()1584   void reset()               { _made_progress = false; }
made_progress() const1585   bool made_progress() const { return _made_progress; }
1586 
do_klass(Klass * k)1587   void do_klass(Klass* k) {
1588     if (k->is_instance_klass()) {
1589       InstanceKlass* ik = InstanceKlass::cast(k);
1590       // Link the class to cause the bytecodes to be rewritten and the
1591       // cpcache to be created. Class verification is done according
1592       // to -Xverify setting.
1593       _made_progress |= MetaspaceShared::try_link_class(ik, THREAD);
1594       guarantee(!HAS_PENDING_EXCEPTION, "exception in link_class");
1595 
1596       ik->constants()->resolve_class_constants(THREAD);
1597     }
1598   }
1599 };
1600 
1601 class CheckSharedClassesClosure : public KlassClosure {
1602   bool    _made_progress;
1603  public:
CheckSharedClassesClosure()1604   CheckSharedClassesClosure() : _made_progress(false) {}
1605 
reset()1606   void reset()               { _made_progress = false; }
made_progress() const1607   bool made_progress() const { return _made_progress; }
do_klass(Klass * k)1608   void do_klass(Klass* k) {
1609     if (k->is_instance_klass() && InstanceKlass::cast(k)->check_sharing_error_state()) {
1610       _made_progress = true;
1611     }
1612   }
1613 };
1614 
check_shared_class_loader_type(InstanceKlass * ik)1615 void MetaspaceShared::check_shared_class_loader_type(InstanceKlass* ik) {
1616   ResourceMark rm;
1617   if (ik->shared_classpath_index() == UNREGISTERED_INDEX) {
1618     guarantee(ik->loader_type() == 0,
1619             "Class loader type must not be set for this class %s", ik->name()->as_C_string());
1620   } else {
1621     guarantee(ik->loader_type() != 0,
1622             "Class loader type must be set for this class %s", ik->name()->as_C_string());
1623   }
1624 }
1625 
link_and_cleanup_shared_classes(TRAPS)1626 void MetaspaceShared::link_and_cleanup_shared_classes(TRAPS) {
1627   // We need to iterate because verification may cause additional classes
1628   // to be loaded.
1629   LinkSharedClassesClosure link_closure(THREAD);
1630   do {
1631     link_closure.reset();
1632     ClassLoaderDataGraph::loaded_classes_do(&link_closure);
1633     guarantee(!HAS_PENDING_EXCEPTION, "exception in link_class");
1634   } while (link_closure.made_progress());
1635 
1636   if (_has_error_classes) {
1637     // Mark all classes whose super class or interfaces failed verification.
1638     CheckSharedClassesClosure check_closure;
1639     do {
1640       // Not completely sure if we need to do this iteratively. Anyway,
1641       // we should come here only if there are unverifiable classes, which
1642       // shouldn't happen in normal cases. So better safe than sorry.
1643       check_closure.reset();
1644       ClassLoaderDataGraph::loaded_classes_do(&check_closure);
1645     } while (check_closure.made_progress());
1646 
1647     if (IgnoreUnverifiableClassesDuringDump) {
1648       // This is useful when running JCK or SQE tests. You should not
1649       // enable this when running real apps.
1650       SystemDictionary::remove_classes_in_error_state();
1651     } else {
1652       tty->print_cr("Please remove the unverifiable classes from your class list and try again");
1653       exit(1);
1654     }
1655   }
1656 }
1657 
prepare_for_dumping()1658 void MetaspaceShared::prepare_for_dumping() {
1659   Arguments::check_unsupported_dumping_properties();
1660   ClassLoader::initialize_shared_path();
1661 }
1662 
1663 // Preload classes from a list, populate the shared spaces and dump to a
1664 // file.
preload_and_dump(TRAPS)1665 void MetaspaceShared::preload_and_dump(TRAPS) {
1666   { TraceTime timer("Dump Shared Spaces", TRACETIME_LOG(Info, startuptime));
1667     ResourceMark rm;
1668     char class_list_path_str[JVM_MAXPATHLEN];
1669     // Preload classes to be shared.
1670     const char* class_list_path;
1671     if (SharedClassListFile == NULL) {
1672       // Construct the path to the class list (in jre/lib)
1673       // Walk up two directories from the location of the VM and
1674       // optionally tack on "lib" (depending on platform)
1675       os::jvm_path(class_list_path_str, sizeof(class_list_path_str));
1676       for (int i = 0; i < 3; i++) {
1677         char *end = strrchr(class_list_path_str, *os::file_separator());
1678         if (end != NULL) *end = '\0';
1679       }
1680       int class_list_path_len = (int)strlen(class_list_path_str);
1681       if (class_list_path_len >= 3) {
1682         if (strcmp(class_list_path_str + class_list_path_len - 3, "lib") != 0) {
1683           if (class_list_path_len < JVM_MAXPATHLEN - 4) {
1684             jio_snprintf(class_list_path_str + class_list_path_len,
1685                          sizeof(class_list_path_str) - class_list_path_len,
1686                          "%slib", os::file_separator());
1687             class_list_path_len += 4;
1688           }
1689         }
1690       }
1691       if (class_list_path_len < JVM_MAXPATHLEN - 10) {
1692         jio_snprintf(class_list_path_str + class_list_path_len,
1693                      sizeof(class_list_path_str) - class_list_path_len,
1694                      "%sclasslist", os::file_separator());
1695       }
1696       class_list_path = class_list_path_str;
1697     } else {
1698       class_list_path = SharedClassListFile;
1699     }
1700 
1701     tty->print_cr("Loading classes to share ...");
1702     _has_error_classes = false;
1703     int class_count = preload_classes(class_list_path, THREAD);
1704     if (ExtraSharedClassListFile) {
1705       class_count += preload_classes(ExtraSharedClassListFile, THREAD);
1706     }
1707     tty->print_cr("Loading classes to share: done.");
1708 
1709     log_info(cds)("Shared spaces: preloaded %d classes", class_count);
1710 
1711     // Rewrite and link classes
1712     tty->print_cr("Rewriting and linking classes ...");
1713 
1714     // Link any classes which got missed. This would happen if we have loaded classes that
1715     // were not explicitly specified in the classlist. E.g., if an interface implemented by class K
1716     // fails verification, all other interfaces that were not specified in the classlist but
1717     // are implemented by K are not verified.
1718     link_and_cleanup_shared_classes(CATCH);
1719     tty->print_cr("Rewriting and linking classes: done");
1720 
1721     SystemDictionary::clear_invoke_method_table();
1722     HeapShared::init_archivable_static_fields(THREAD);
1723 
1724     SystemDictionaryShared::finalize_verification_constraints();
1725 
1726     VM_PopulateDumpSharedSpace op;
1727     VMThread::execute(&op);
1728   }
1729 }
1730 
1731 
preload_classes(const char * class_list_path,TRAPS)1732 int MetaspaceShared::preload_classes(const char* class_list_path, TRAPS) {
1733   ClassListParser parser(class_list_path);
1734   int class_count = 0;
1735 
1736     while (parser.parse_one_line()) {
1737       Klass* klass = ClassLoaderExt::load_one_class(&parser, THREAD);
1738       if (HAS_PENDING_EXCEPTION) {
1739         if (klass == NULL &&
1740              (PENDING_EXCEPTION->klass()->name() == vmSymbols::java_lang_ClassNotFoundException())) {
1741           // print a warning only when the pending exception is class not found
1742           tty->print_cr("Preload Warning: Cannot find %s", parser.current_class_name());
1743         }
1744         CLEAR_PENDING_EXCEPTION;
1745       }
1746       if (klass != NULL) {
1747         if (log_is_enabled(Trace, cds)) {
1748           ResourceMark rm;
1749           log_trace(cds)("Shared spaces preloaded: %s", klass->external_name());
1750         }
1751 
1752         if (klass->is_instance_klass()) {
1753           InstanceKlass* ik = InstanceKlass::cast(klass);
1754 
1755           // Link the class to cause the bytecodes to be rewritten and the
1756           // cpcache to be created. The linking is done as soon as classes
1757           // are loaded in order that the related data structures (klass and
1758           // cpCache) are located together.
1759           try_link_class(ik, THREAD);
1760           guarantee(!HAS_PENDING_EXCEPTION, "exception in link_class");
1761         }
1762 
1763         class_count++;
1764       }
1765     }
1766 
1767   return class_count;
1768 }
1769 
1770 // Returns true if the class's status has changed
try_link_class(InstanceKlass * ik,TRAPS)1771 bool MetaspaceShared::try_link_class(InstanceKlass* ik, TRAPS) {
1772   assert(DumpSharedSpaces, "should only be called during dumping");
1773   if (ik->init_state() < InstanceKlass::linked) {
1774     bool saved = BytecodeVerificationLocal;
1775     if (ik->loader_type() == 0 && ik->class_loader() == NULL) {
1776       // The verification decision is based on BytecodeVerificationRemote
1777       // for non-system classes. Since we are using the NULL classloader
1778       // to load non-system classes for customized class loaders during dumping,
1779       // we need to temporarily change BytecodeVerificationLocal to be the same as
1780       // BytecodeVerificationRemote. Note this can cause the parent system
1781       // classes also being verified. The extra overhead is acceptable during
1782       // dumping.
1783       BytecodeVerificationLocal = BytecodeVerificationRemote;
1784     }
1785     ik->link_class(THREAD);
1786     if (HAS_PENDING_EXCEPTION) {
1787       ResourceMark rm;
1788       tty->print_cr("Preload Warning: Verification failed for %s",
1789                     ik->external_name());
1790       CLEAR_PENDING_EXCEPTION;
1791       ik->set_in_error_state();
1792       _has_error_classes = true;
1793     }
1794     BytecodeVerificationLocal = saved;
1795     return true;
1796   } else {
1797     return false;
1798   }
1799 }
1800 
1801 #if INCLUDE_CDS_JAVA_HEAP
dump_java_heap_objects()1802 void VM_PopulateDumpSharedSpace::dump_java_heap_objects() {
1803   if (!MetaspaceShared::is_heap_object_archiving_allowed()) {
1804     if (log_is_enabled(Info, cds)) {
1805       log_info(cds)(
1806         "Archived java heap is not supported as UseG1GC, "
1807         "UseCompressedOops and UseCompressedClassPointers are required."
1808         "Current settings: UseG1GC=%s, UseCompressedOops=%s, UseCompressedClassPointers=%s.",
1809         BOOL_TO_STR(UseG1GC), BOOL_TO_STR(UseCompressedOops),
1810         BOOL_TO_STR(UseCompressedClassPointers));
1811     }
1812     return;
1813   }
1814 
1815   {
1816     NoSafepointVerifier nsv;
1817 
1818     // Cache for recording where the archived objects are copied to
1819     MetaspaceShared::create_archive_object_cache();
1820 
1821     tty->print_cr("Dumping objects to closed archive heap region ...");
1822     NOT_PRODUCT(StringTable::verify());
1823     // The closed space has maximum two regions. See FileMapInfo::write_archive_heap_regions() for details.
1824     _closed_archive_heap_regions = new GrowableArray<MemRegion>(2);
1825     MetaspaceShared::dump_closed_archive_heap_objects(_closed_archive_heap_regions);
1826 
1827     tty->print_cr("Dumping objects to open archive heap region ...");
1828     _open_archive_heap_regions = new GrowableArray<MemRegion>(2);
1829     MetaspaceShared::dump_open_archive_heap_objects(_open_archive_heap_regions);
1830 
1831     MetaspaceShared::destroy_archive_object_cache();
1832   }
1833 
1834   G1HeapVerifier::verify_archive_regions();
1835 }
1836 
dump_archive_heap_oopmaps()1837 void VM_PopulateDumpSharedSpace::dump_archive_heap_oopmaps() {
1838   if (MetaspaceShared::is_heap_object_archiving_allowed()) {
1839     _closed_archive_heap_oopmaps = new GrowableArray<ArchiveHeapOopmapInfo>(2);
1840     dump_archive_heap_oopmaps(_closed_archive_heap_regions, _closed_archive_heap_oopmaps);
1841 
1842     _open_archive_heap_oopmaps = new GrowableArray<ArchiveHeapOopmapInfo>(2);
1843     dump_archive_heap_oopmaps(_open_archive_heap_regions, _open_archive_heap_oopmaps);
1844   }
1845 }
1846 
dump_archive_heap_oopmaps(GrowableArray<MemRegion> * regions,GrowableArray<ArchiveHeapOopmapInfo> * oopmaps)1847 void VM_PopulateDumpSharedSpace::dump_archive_heap_oopmaps(GrowableArray<MemRegion>* regions,
1848                                                            GrowableArray<ArchiveHeapOopmapInfo>* oopmaps) {
1849   for (int i=0; i<regions->length(); i++) {
1850     ResourceBitMap oopmap = HeapShared::calculate_oopmap(regions->at(i));
1851     size_t size_in_bits = oopmap.size();
1852     size_t size_in_bytes = oopmap.size_in_bytes();
1853     uintptr_t* buffer = (uintptr_t*)_ro_region.allocate(size_in_bytes, sizeof(intptr_t));
1854     oopmap.write_to(buffer, size_in_bytes);
1855     log_info(cds)("Oopmap = " INTPTR_FORMAT " (" SIZE_FORMAT_W(6) " bytes) for heap region "
1856                   INTPTR_FORMAT " (" SIZE_FORMAT_W(8) " bytes)",
1857                   p2i(buffer), size_in_bytes,
1858                   p2i(regions->at(i).start()), regions->at(i).byte_size());
1859 
1860     ArchiveHeapOopmapInfo info;
1861     info._oopmap = (address)buffer;
1862     info._oopmap_size_in_bits = size_in_bits;
1863     oopmaps->append(info);
1864   }
1865 }
1866 
dump_closed_archive_heap_objects(GrowableArray<MemRegion> * closed_archive)1867 void MetaspaceShared::dump_closed_archive_heap_objects(
1868                                     GrowableArray<MemRegion> * closed_archive) {
1869   assert(is_heap_object_archiving_allowed(), "Cannot dump java heap objects");
1870 
1871   Thread* THREAD = Thread::current();
1872   G1CollectedHeap::heap()->begin_archive_alloc_range();
1873 
1874   // Archive interned string objects
1875   StringTable::write_to_archive();
1876 
1877   G1CollectedHeap::heap()->end_archive_alloc_range(closed_archive,
1878                                                    os::vm_allocation_granularity());
1879 }
1880 
dump_open_archive_heap_objects(GrowableArray<MemRegion> * open_archive)1881 void MetaspaceShared::dump_open_archive_heap_objects(
1882                                     GrowableArray<MemRegion> * open_archive) {
1883   assert(UseG1GC, "Only support G1 GC");
1884   assert(UseCompressedOops && UseCompressedClassPointers,
1885          "Only support UseCompressedOops and UseCompressedClassPointers enabled");
1886 
1887   Thread* THREAD = Thread::current();
1888   G1CollectedHeap::heap()->begin_archive_alloc_range(true /* open */);
1889 
1890   java_lang_Class::archive_basic_type_mirrors(THREAD);
1891 
1892   MetaspaceShared::archive_klass_objects(THREAD);
1893 
1894   HeapShared::archive_static_fields(THREAD);
1895 
1896   G1CollectedHeap::heap()->end_archive_alloc_range(open_archive,
1897                                                    os::vm_allocation_granularity());
1898 }
1899 
obj_hash(oop const & p)1900 unsigned MetaspaceShared::obj_hash(oop const& p) {
1901   assert(!p->mark()->has_bias_pattern(),
1902          "this object should never have been locked");  // so identity_hash won't safepoin
1903   unsigned hash = (unsigned)p->identity_hash();
1904   return hash;
1905 }
1906 
1907 MetaspaceShared::ArchivedObjectCache* MetaspaceShared::_archive_object_cache = NULL;
find_archived_heap_object(oop obj)1908 oop MetaspaceShared::find_archived_heap_object(oop obj) {
1909   assert(DumpSharedSpaces, "dump-time only");
1910   ArchivedObjectCache* cache = MetaspaceShared::archive_object_cache();
1911   oop* p = cache->get(obj);
1912   if (p != NULL) {
1913     return *p;
1914   } else {
1915     return NULL;
1916   }
1917 }
1918 
archive_heap_object(oop obj,Thread * THREAD)1919 oop MetaspaceShared::archive_heap_object(oop obj, Thread* THREAD) {
1920   assert(DumpSharedSpaces, "dump-time only");
1921 
1922   oop ao = find_archived_heap_object(obj);
1923   if (ao != NULL) {
1924     // already archived
1925     return ao;
1926   }
1927 
1928   int len = obj->size();
1929   if (G1CollectedHeap::heap()->is_archive_alloc_too_large(len)) {
1930     log_debug(cds, heap)("Cannot archive, object (" PTR_FORMAT ") is too large: " SIZE_FORMAT,
1931                          p2i(obj), (size_t)obj->size());
1932     return NULL;
1933   }
1934 
1935   int hash = obj->identity_hash();
1936   oop archived_oop = (oop)G1CollectedHeap::heap()->archive_mem_allocate(len);
1937   if (archived_oop != NULL) {
1938     Copy::aligned_disjoint_words((HeapWord*)obj, (HeapWord*)archived_oop, len);
1939     relocate_klass_ptr(archived_oop);
1940     ArchivedObjectCache* cache = MetaspaceShared::archive_object_cache();
1941     cache->put(obj, archived_oop);
1942     log_debug(cds, heap)("Archived heap object " PTR_FORMAT " ==> " PTR_FORMAT,
1943                          p2i(obj), p2i(archived_oop));
1944   } else {
1945     log_error(cds, heap)(
1946       "Cannot allocate space for object " PTR_FORMAT " in archived heap region",
1947       p2i(obj));
1948     vm_exit(1);
1949   }
1950   return archived_oop;
1951 }
1952 
materialize_archived_object(narrowOop v)1953 oop MetaspaceShared::materialize_archived_object(narrowOop v) {
1954   if (!CompressedOops::is_null(v)) {
1955     oop obj = HeapShared::decode_from_archive(v);
1956     return G1CollectedHeap::heap()->materialize_archived_object(obj);
1957   }
1958   return NULL;
1959 }
1960 
archive_klass_objects(Thread * THREAD)1961 void MetaspaceShared::archive_klass_objects(Thread* THREAD) {
1962   int i;
1963   for (i = 0; i < _global_klass_objects->length(); i++) {
1964     Klass* k = _global_klass_objects->at(i);
1965 
1966     // archive mirror object
1967     java_lang_Class::archive_mirror(k, CHECK);
1968 
1969     // archive the resolved_referenes array
1970     if (k->is_instance_klass()) {
1971       InstanceKlass* ik = InstanceKlass::cast(k);
1972       ik->constants()->archive_resolved_references(THREAD);
1973     }
1974   }
1975 }
1976 
is_archive_object(oop p)1977 bool MetaspaceShared::is_archive_object(oop p) {
1978   return (p == NULL) ? false : G1ArchiveAllocator::is_archive_object(p);
1979 }
1980 
fixup_mapped_heap_regions()1981 void MetaspaceShared::fixup_mapped_heap_regions() {
1982   FileMapInfo *mapinfo = FileMapInfo::current_info();
1983   mapinfo->fixup_mapped_heap_regions();
1984 }
1985 #endif // INCLUDE_CDS_JAVA_HEAP
1986 
1987 // Closure for serializing initialization data in from a data area
1988 // (ptr_array) read from the shared file.
1989 
1990 class ReadClosure : public SerializeClosure {
1991 private:
1992   intptr_t** _ptr_array;
1993 
nextPtr()1994   inline intptr_t nextPtr() {
1995     return *(*_ptr_array)++;
1996   }
1997 
1998 public:
ReadClosure(intptr_t ** ptr_array)1999   ReadClosure(intptr_t** ptr_array) { _ptr_array = ptr_array; }
2000 
do_ptr(void ** p)2001   void do_ptr(void** p) {
2002     assert(*p == NULL, "initializing previous initialized pointer.");
2003     intptr_t obj = nextPtr();
2004     assert((intptr_t)obj >= 0 || (intptr_t)obj < -100,
2005            "hit tag while initializing ptrs.");
2006     *p = (void*)obj;
2007   }
2008 
do_u4(u4 * p)2009   void do_u4(u4* p) {
2010     intptr_t obj = nextPtr();
2011     *p = (u4)(uintx(obj));
2012   }
2013 
do_bool(bool * p)2014   void do_bool(bool* p) {
2015     intptr_t obj = nextPtr();
2016     *p = (bool)(uintx(obj));
2017   }
2018 
do_tag(int tag)2019   void do_tag(int tag) {
2020     int old_tag;
2021     old_tag = (int)(intptr_t)nextPtr();
2022     // do_int(&old_tag);
2023     assert(tag == old_tag, "old tag doesn't match");
2024     FileMapInfo::assert_mark(tag == old_tag);
2025   }
2026 
do_oop(oop * p)2027   void do_oop(oop *p) {
2028     narrowOop o = (narrowOop)nextPtr();
2029     if (o == 0 || !MetaspaceShared::open_archive_heap_region_mapped()) {
2030       p = NULL;
2031     } else {
2032       assert(MetaspaceShared::is_heap_object_archiving_allowed(),
2033              "Archived heap object is not allowed");
2034       assert(MetaspaceShared::open_archive_heap_region_mapped(),
2035              "Open archive heap region is not mapped");
2036       *p = HeapShared::decode_from_archive(o);
2037     }
2038   }
2039 
do_region(u_char * start,size_t size)2040   void do_region(u_char* start, size_t size) {
2041     assert((intptr_t)start % sizeof(intptr_t) == 0, "bad alignment");
2042     assert(size % sizeof(intptr_t) == 0, "bad size");
2043     do_tag((int)size);
2044     while (size > 0) {
2045       *(intptr_t*)start = nextPtr();
2046       start += sizeof(intptr_t);
2047       size -= sizeof(intptr_t);
2048     }
2049   }
2050 
reading() const2051   bool reading() const { return true; }
2052 };
2053 
2054 // Return true if given address is in the misc data region
is_in_shared_region(const void * p,int idx)2055 bool MetaspaceShared::is_in_shared_region(const void* p, int idx) {
2056   return UseSharedSpaces && FileMapInfo::current_info()->is_in_shared_region(p, idx);
2057 }
2058 
is_in_trampoline_frame(address addr)2059 bool MetaspaceShared::is_in_trampoline_frame(address addr) {
2060   if (UseSharedSpaces && is_in_shared_region(addr, MetaspaceShared::mc)) {
2061     return true;
2062   }
2063   return false;
2064 }
2065 
2066 // Map shared spaces at requested addresses and return if succeeded.
map_shared_spaces(FileMapInfo * mapinfo)2067 bool MetaspaceShared::map_shared_spaces(FileMapInfo* mapinfo) {
2068   size_t image_alignment = mapinfo->alignment();
2069 
2070 #ifndef _WINDOWS
2071   // Map in the shared memory and then map the regions on top of it.
2072   // On Windows, don't map the memory here because it will cause the
2073   // mappings of the regions to fail.
2074   ReservedSpace shared_rs = mapinfo->reserve_shared_memory();
2075   if (!shared_rs.is_reserved()) return false;
2076 #endif
2077 
2078   assert(!DumpSharedSpaces, "Should not be called with DumpSharedSpaces");
2079 
2080   char* ro_base = NULL; char* ro_top;
2081   char* rw_base = NULL; char* rw_top;
2082   char* mc_base = NULL; char* mc_top;
2083   char* md_base = NULL; char* md_top;
2084   char* od_base = NULL; char* od_top;
2085 
2086   // Map each shared region
2087   if ((mc_base = mapinfo->map_region(mc, &mc_top)) != NULL &&
2088       (rw_base = mapinfo->map_region(rw, &rw_top)) != NULL &&
2089       (ro_base = mapinfo->map_region(ro, &ro_top)) != NULL &&
2090       (md_base = mapinfo->map_region(md, &md_top)) != NULL &&
2091       (od_base = mapinfo->map_region(od, &od_top)) != NULL &&
2092       (image_alignment == (size_t)os::vm_allocation_granularity()) &&
2093       mapinfo->validate_shared_path_table()) {
2094     // Success -- set up MetaspaceObj::_shared_metaspace_{base,top} for
2095     // fast checking in MetaspaceShared::is_in_shared_metaspace() and
2096     // MetaspaceObj::is_shared().
2097     //
2098     // We require that mc->rw->ro->md->od to be laid out consecutively, with no
2099     // gaps between them. That way, we can ensure that the OS won't be able to
2100     // allocate any new memory spaces inside _shared_metaspace_{base,top}, which
2101     // would mess up the simple comparision in MetaspaceShared::is_in_shared_metaspace().
2102     assert(mc_base < ro_base && mc_base < rw_base && mc_base < md_base && mc_base < od_base, "must be");
2103     assert(od_top  > ro_top  && od_top  > rw_top  && od_top  > md_top  && od_top  > mc_top , "must be");
2104     assert(mc_top == rw_base, "must be");
2105     assert(rw_top == ro_base, "must be");
2106     assert(ro_top == md_base, "must be");
2107     assert(md_top == od_base, "must be");
2108 
2109     MetaspaceObj::set_shared_metaspace_range((void*)mc_base, (void*)od_top);
2110     return true;
2111   } else {
2112     // If there was a failure in mapping any of the spaces, unmap the ones
2113     // that succeeded
2114     if (ro_base != NULL) mapinfo->unmap_region(ro);
2115     if (rw_base != NULL) mapinfo->unmap_region(rw);
2116     if (mc_base != NULL) mapinfo->unmap_region(mc);
2117     if (md_base != NULL) mapinfo->unmap_region(md);
2118     if (od_base != NULL) mapinfo->unmap_region(od);
2119 #ifndef _WINDOWS
2120     // Release the entire mapped region
2121     shared_rs.release();
2122 #endif
2123     // If -Xshare:on is specified, print out the error message and exit VM,
2124     // otherwise, set UseSharedSpaces to false and continue.
2125     if (RequireSharedSpaces || PrintSharedArchiveAndExit) {
2126       vm_exit_during_initialization("Unable to use shared archive.", "Failed map_region for using -Xshare:on.");
2127     } else {
2128       FLAG_SET_DEFAULT(UseSharedSpaces, false);
2129     }
2130     return false;
2131   }
2132 }
2133 
2134 // Read the miscellaneous data from the shared file, and
2135 // serialize it out to its various destinations.
2136 
initialize_shared_spaces()2137 void MetaspaceShared::initialize_shared_spaces() {
2138   FileMapInfo *mapinfo = FileMapInfo::current_info();
2139   _cds_i2i_entry_code_buffers = mapinfo->cds_i2i_entry_code_buffers();
2140   _cds_i2i_entry_code_buffers_size = mapinfo->cds_i2i_entry_code_buffers_size();
2141   _core_spaces_size = mapinfo->core_spaces_size();
2142   char* buffer = mapinfo->misc_data_patching_start();
2143   clone_cpp_vtables((intptr_t*)buffer);
2144 
2145   // The rest of the data is now stored in the RW region
2146   buffer = mapinfo->read_only_tables_start();
2147   int sharedDictionaryLen = *(intptr_t*)buffer;
2148   buffer += sizeof(intptr_t);
2149   int number_of_entries = *(intptr_t*)buffer;
2150   buffer += sizeof(intptr_t);
2151   SystemDictionary::set_shared_dictionary((HashtableBucket<mtClass>*)buffer,
2152                                           sharedDictionaryLen,
2153                                           number_of_entries);
2154   buffer += sharedDictionaryLen;
2155 
2156   // The following data are the linked list elements
2157   // (HashtableEntry objects) for the shared dictionary table.
2158 
2159   int len = *(intptr_t*)buffer;     // skip over shared dictionary entries
2160   buffer += sizeof(intptr_t);
2161   buffer += len;
2162 
2163   // The table of archived java heap object sub-graph infos
2164   buffer = HeapShared::read_archived_subgraph_infos(buffer);
2165 
2166   // Verify various attributes of the archive, plus initialize the
2167   // shared string/symbol tables
2168   intptr_t* array = (intptr_t*)buffer;
2169   ReadClosure rc(&array);
2170   serialize(&rc);
2171 
2172   // Initialize the run-time symbol table.
2173   SymbolTable::create_table();
2174 
2175   mapinfo->patch_archived_heap_embedded_pointers();
2176 
2177   // Close the mapinfo file
2178   mapinfo->close();
2179 
2180   if (PrintSharedArchiveAndExit) {
2181     if (PrintSharedDictionary) {
2182       tty->print_cr("\nShared classes:\n");
2183       SystemDictionary::print_shared(tty);
2184     }
2185     if (_archive_loading_failed) {
2186       tty->print_cr("archive is invalid");
2187       vm_exit(1);
2188     } else {
2189       tty->print_cr("archive is valid");
2190       vm_exit(0);
2191     }
2192   }
2193 }
2194 
2195 // JVM/TI RedefineClasses() support:
remap_shared_readonly_as_readwrite()2196 bool MetaspaceShared::remap_shared_readonly_as_readwrite() {
2197   assert(SafepointSynchronize::is_at_safepoint(), "must be at safepoint");
2198 
2199   if (UseSharedSpaces) {
2200     // remap the shared readonly space to shared readwrite, private
2201     FileMapInfo* mapinfo = FileMapInfo::current_info();
2202     if (!mapinfo->remap_shared_readonly_as_readwrite()) {
2203       return false;
2204     }
2205     _remapped_readwrite = true;
2206   }
2207   return true;
2208 }
2209 
report_out_of_space(const char * name,size_t needed_bytes)2210 void MetaspaceShared::report_out_of_space(const char* name, size_t needed_bytes) {
2211   // This is highly unlikely to happen on 64-bits because we have reserved a 4GB space.
2212   // On 32-bit we reserve only 256MB so you could run out of space with 100,000 classes
2213   // or so.
2214   _mc_region.print_out_of_space_msg(name, needed_bytes);
2215   _rw_region.print_out_of_space_msg(name, needed_bytes);
2216   _ro_region.print_out_of_space_msg(name, needed_bytes);
2217   _md_region.print_out_of_space_msg(name, needed_bytes);
2218   _od_region.print_out_of_space_msg(name, needed_bytes);
2219 
2220   vm_exit_during_initialization(err_msg("Unable to allocate from '%s' region", name),
2221                                 "Please reduce the number of shared classes.");
2222 }
2223