/* * Copyright (c) 1999, 2026, Oracle and/or its affiliates. All rights reserved. * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER. * * This code is free software; you can redistribute it and/or modify it * under the terms of the GNU General Public License version 2 only, as * published by the Free Software Foundation. * * This code is distributed in the hope that it will be useful, but WITHOUT * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License * version 2 for more details (a copy is included in the LICENSE file that * accompanied this code). * * You should have received a copy of the GNU General Public License version * 2 along with this work; if not, write to the Free Software Foundation, * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA. * * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA * or visit www.oracle.com if you need additional information or have any * questions. * */ #include "ci/ciField.hpp" #include "ci/ciInlineKlass.hpp" #include "ci/ciInstance.hpp" #include "ci/ciInstanceKlass.hpp" #include "ci/ciUtilities.inline.hpp" #include "classfile/javaClasses.hpp" #include "classfile/systemDictionary.hpp" #include "classfile/vmClasses.hpp" #include "memory/allocation.hpp" #include "memory/allocation.inline.hpp" #include "memory/resourceArea.hpp" #include "oops/fieldStreams.inline.hpp" #include "oops/instanceKlass.inline.hpp" #include "oops/klass.inline.hpp" #include "oops/oop.inline.hpp" #include "runtime/arguments.hpp" #include "runtime/fieldDescriptor.inline.hpp" #include "runtime/handles.inline.hpp" #include "runtime/jniHandles.inline.hpp" // ciInstanceKlass // // This class represents a Klass* in the HotSpot virtual machine // whose Klass part in an InstanceKlass. // ------------------------------------------------------------------ // ciInstanceKlass::ciInstanceKlass // // Loaded instance klass. ciInstanceKlass::ciInstanceKlass(Klass* k) : ciKlass(k) { assert(get_Klass()->is_instance_klass(), "wrong type"); assert(get_instanceKlass()->is_loaded(), "must be at least loaded"); InstanceKlass* ik = get_instanceKlass(); AccessFlags access_flags = ik->access_flags(); _flags = ciFlags(access_flags); _has_finalizer = ik->has_finalizer(); _has_subklass = flags().is_final() ? subklass_false : subklass_unknown; _init_state = ik->init_state(); _has_nonstatic_fields = ik->has_nonstatic_fields(); _has_nonstatic_concrete_methods = ik->has_nonstatic_concrete_methods(); _is_hidden = ik->is_hidden(); _is_record = ik->is_record(); _declared_nonstatic_fields = nullptr; // initialized lazily by compute_nonstatic_fields _nonstatic_fields = nullptr; // initialized lazily by compute_nonstatic_fields _trust_final_fields = ik->trust_final_fields(); _has_injected_fields = -1; _implementor = nullptr; // we will fill these lazily _transitive_interfaces = nullptr; // Ensure that the metadata wrapped by the ciMetadata is kept alive by GC. // This is primarily useful for metadata which is considered as weak roots // by the GC but need to be strong roots if reachable from a current compilation. // InstanceKlass are created for both weak and strong metadata. Ensuring this metadata // alive covers the cases where there are weak roots without performance cost. oop holder = ik->klass_holder(); if (ik->class_loader_data()->has_class_mirror_holder()) { // Though ciInstanceKlass records class loader oop, it's not enough to keep // non-strong hidden classes alive (loader == nullptr). Klass holder should // be used instead. It is enough to record a ciObject, since cached elements are never removed // during ciObjectFactory lifetime. ciObjectFactory itself is created for // every compilation and lives for the whole duration of the compilation. assert(holder != nullptr, "holder of hidden class is the mirror which is never null"); (void)CURRENT_ENV->get_object(holder); } JavaThread *thread = JavaThread::current(); if (ciObjectFactory::is_initialized()) { _loader = JNIHandles::make_local(thread, ik->class_loader()); _is_shared = false; } else { Handle h_loader(thread, ik->class_loader()); _loader = JNIHandles::make_global(h_loader); _is_shared = true; } _has_trusted_loader = compute_has_trusted_loader(); // Lazy fields get filled in only upon request. _super = nullptr; _java_mirror = nullptr; if (is_shared()) { if (k != vmClasses::Object_klass()) { super(); } //compute_nonstatic_fields(); // done outside of constructor } _field_cache = nullptr; } // Version for unloaded classes: ciInstanceKlass::ciInstanceKlass(ciSymbol* name, jobject loader, BasicType bt) : ciKlass(name, bt) { assert(name->char_at(0) != JVM_SIGNATURE_ARRAY, "not an instance klass"); _init_state = (InstanceKlass::ClassState)0; _has_nonstatic_fields = false; _declared_nonstatic_fields = nullptr; // initialized lazily by compute_nonstatic_fields _nonstatic_fields = nullptr; // initialized lazily by compute_nonstatic_fields _has_injected_fields = -1; _is_hidden = false; _is_record = false; _loader = loader; _is_shared = false; _super = nullptr; _java_mirror = nullptr; _field_cache = nullptr; _has_trusted_loader = compute_has_trusted_loader(); } // ------------------------------------------------------------------ InstanceKlass::ClassState ciInstanceKlass::compute_init_state() { if (_is_shared && is_loaded()) { // Return cached init state of shared klass ciEnv* env = CURRENT_ENV; assert(env->task() != nullptr, "only calls from compilation are expected here"); return env->get_cached_init_state(ident()); } return _init_state; } // ------------------------------------------------------------------ // ciInstanceKlass::compute_shared_has_subklass bool ciInstanceKlass::compute_shared_has_subklass() { GUARDED_VM_ENTRY( InstanceKlass* ik = get_instanceKlass(); _has_subklass = ik->subklass() != nullptr ? subklass_true : subklass_false; return _has_subklass == subklass_true; ) } // ------------------------------------------------------------------ // ciInstanceKlass::loader oop ciInstanceKlass::loader() { ASSERT_IN_VM; return JNIHandles::resolve(_loader); } // ------------------------------------------------------------------ // ciInstanceKlass::loader_handle jobject ciInstanceKlass::loader_handle() { return _loader; } // ------------------------------------------------------------------ // ciInstanceKlass::field_cache // // Get the field cache associated with this klass. ciConstantPoolCache* ciInstanceKlass::field_cache() { if (is_shared()) { return nullptr; } if (_field_cache == nullptr) { assert(!is_java_lang_Object(), "Object has no fields"); Arena* arena = CURRENT_ENV->arena(); _field_cache = new (arena) ciConstantPoolCache(arena, 5); } return _field_cache; } // ------------------------------------------------------------------ // ciInstanceKlass::get_canonical_holder // ciInstanceKlass* ciInstanceKlass::get_canonical_holder(int offset) { #ifdef ASSERT if (!(offset >= 0 && offset < layout_helper_size_in_bytes())) { tty->print("*** get_canonical_holder(%d) on ", offset); this->print(); tty->print_cr(" ***"); }; assert(offset >= 0 && offset < layout_helper_size_in_bytes(), "offset must be tame"); #endif if (offset < instanceOopDesc::base_offset_in_bytes()) { // All header offsets belong properly to java/lang/Object. return CURRENT_ENV->Object_klass(); } ciInstanceKlass* self = this; assert(self->is_loaded(), "must be loaded to access field info"); ciField* field = self->get_field_by_offset(offset, false); if (field != nullptr) { return field->holder(); } else { for (;;) { assert(self->is_loaded(), "must be loaded to have size"); ciInstanceKlass* super = self->super(); if (super == nullptr || super->nof_nonstatic_fields() == 0 || super->layout_helper_size_in_bytes() <= offset) { return self; } else { self = super; // return super->get_canonical_holder(offset) } } } } // ------------------------------------------------------------------ // ciInstanceKlass::is_java_lang_Object // // Is this klass java.lang.Object? bool ciInstanceKlass::is_java_lang_Object() const { return equals(CURRENT_ENV->Object_klass()); } // ------------------------------------------------------------------ // ciInstanceKlass::uses_default_loader bool ciInstanceKlass::uses_default_loader() const { // Note: We do not need to resolve the handle or enter the VM // in order to test null-ness. return _loader == nullptr; } // ------------------------------------------------------------------ /** * Return basic type of boxed value for box klass or T_OBJECT if not. */ BasicType ciInstanceKlass::box_klass_type() const { if (uses_default_loader() && is_loaded()) { return vmClasses::box_klass_type(get_Klass()); } else { return T_OBJECT; } } /** * Is this boxing klass? */ bool ciInstanceKlass::is_box_klass() const { return is_java_primitive(box_klass_type()); } /** * Is this boxed value offset? */ bool ciInstanceKlass::is_boxed_value_offset(int offset) const { BasicType bt = box_klass_type(); return is_java_primitive(bt) && (offset == java_lang_boxing_object::value_offset(bt)); } // ------------------------------------------------------------------ // ciInstanceKlass::is_in_package // // Is this klass in the given package? bool ciInstanceKlass::is_in_package(const char* packagename, int len) { // To avoid class loader mischief, this test always rejects application classes. if (!uses_default_loader()) return false; GUARDED_VM_ENTRY( return is_in_package_impl(packagename, len); ) } bool ciInstanceKlass::is_in_package_impl(const char* packagename, int len) { ASSERT_IN_VM; // If packagename contains trailing '/' exclude it from the // prefix-test since we test for it explicitly. if (packagename[len - 1] == '/') len--; if (!name()->starts_with(packagename, len)) return false; // Test if the class name is something like "java/lang". if ((len + 1) > name()->utf8_length()) return false; // Test for trailing '/' if (name()->char_at(len) != '/') return false; // Make sure it's not actually in a subpackage: if (name()->index_of_at(len+1, "/", 1) >= 0) return false; return true; } // ------------------------------------------------------------------ // ciInstanceKlass::print_impl // // Implementation of the print method. void ciInstanceKlass::print_impl(outputStream* st) { ciKlass::print_impl(st); GUARDED_VM_ENTRY(st->print(" loader=" INTPTR_FORMAT, p2i(loader()));) if (is_loaded()) { st->print(" initialized=%s finalized=%s subklass=%s size=%d flags=", bool_to_str(is_initialized()), bool_to_str(has_finalizer()), bool_to_str(has_subklass()), layout_helper()); _flags.print_klass_flags(st); if (_super) { st->print(" super="); _super->print_name_on(st); } if (_java_mirror) { st->print(" mirror=PRESENT"); } } } // ------------------------------------------------------------------ // ciInstanceKlass::super // // Get the superklass of this klass. ciInstanceKlass* ciInstanceKlass::super() { assert(is_loaded(), "must be loaded"); if (_super == nullptr && !is_java_lang_Object()) { GUARDED_VM_ENTRY( Klass* super_klass = get_instanceKlass()->super(); _super = CURRENT_ENV->get_instance_klass(super_klass); ) } return _super; } // ------------------------------------------------------------------ // ciInstanceKlass::java_mirror // // Get the instance of java.lang.Class corresponding to this klass. // Cache it on this->_java_mirror. ciInstance* ciInstanceKlass::java_mirror() { if (is_shared()) { return ciKlass::java_mirror(); } if (_java_mirror == nullptr) { _java_mirror = ciKlass::java_mirror(); } return _java_mirror; } // ------------------------------------------------------------------ // ciInstanceKlass::unique_concrete_subklass ciInstanceKlass* ciInstanceKlass::unique_concrete_subklass() { if (!is_loaded()) return nullptr; // No change if class is not loaded if (!is_abstract()) return nullptr; // Only applies to abstract classes. if (!has_subklass()) return nullptr; // Must have at least one subklass. VM_ENTRY_MARK; InstanceKlass* ik = get_instanceKlass(); Klass* up = ik->up_cast_abstract(); assert(up->is_instance_klass(), "must be InstanceKlass"); if (ik == up) { return nullptr; } return CURRENT_THREAD_ENV->get_instance_klass(up); } // ------------------------------------------------------------------ // ciInstanceKlass::has_finalizable_subclass bool ciInstanceKlass::has_finalizable_subclass() { if (!is_loaded()) return true; VM_ENTRY_MARK; return Dependencies::find_finalizable_subclass(get_instanceKlass()) != nullptr; } bool ciInstanceKlass::contains_field_offset(int offset) const { VM_ENTRY_MARK; return get_instanceKlass()->contains_field_offset(offset); } ciField* ciInstanceKlass::get_nonstatic_field_by_offset(const int field_offset) { for (int i = 0, len = nof_nonstatic_fields(); i < len; i++) { ciField* field = nonstatic_field_at(i); int field_off = field->offset_in_bytes(); if (field_off == field_offset) { return field; } } return nullptr; } // ------------------------------------------------------------------ // ciInstanceKlass::get_field_by_offset ciField* ciInstanceKlass::get_field_by_offset(int field_offset, bool is_static) { if (!is_static) { return get_nonstatic_field_by_offset(field_offset); } VM_ENTRY_MARK; InstanceKlass* k = get_instanceKlass(); fieldDescriptor fd; if (!k->find_field_from_offset(field_offset, is_static, &fd)) { return nullptr; } ciField* field = new (CURRENT_THREAD_ENV->arena()) ciField(&fd); return field; } ciField* ciInstanceKlass::get_non_flat_field_by_offset(int field_offset) { for (int i = 0, len = nof_declared_nonstatic_fields(); i < len; i++) { ciField* field = declared_nonstatic_field_at(i); int field_off = field->offset_in_bytes(); if (field_off == field_offset) { return field; } } return nullptr; } int ciInstanceKlass::field_index_by_offset(int offset) { int best_offset = 0; int best_index = -1; // Search the field with the given offset for (int i = 0; i < nof_declared_nonstatic_fields(); ++i) { int field_offset = declared_nonstatic_field_at(i)->offset_in_bytes(); if (field_offset == offset) { // Exact match return i; } else if (field_offset < offset && field_offset > best_offset) { // No exact match. Save the index of the field with the closest offset that // is smaller than the given field offset. This index corresponds to the // flat field that holds the field we are looking for. best_offset = field_offset; best_index = i; } } assert(best_index >= 0, "field not found"); assert(best_offset == offset || declared_nonstatic_field_at(best_index)->type()->is_inlinetype(), "offset should match for non-inline types"); return best_index; } // ------------------------------------------------------------------ // ciInstanceKlass::get_field_by_name ciField* ciInstanceKlass::get_field_by_name(ciSymbol* name, ciSymbol* signature, bool is_static) { VM_ENTRY_MARK; InstanceKlass* k = get_instanceKlass(); fieldDescriptor fd; Klass* def = k->find_field(name->get_symbol(), signature->get_symbol(), is_static, &fd); if (def == nullptr) { return nullptr; } ciField* field = new (CURRENT_THREAD_ENV->arena()) ciField(&fd); return field; } const GrowableArray empty_field_array(0, MemTag::mtCompiler); #ifdef ASSERT static void assert_injected_field(InternalFieldStream& fs) { assert(!fs.done(), "invarinat"); fieldDescriptor fd = fs.field_descriptor(); assert(fd.is_injected(), "invariant"); } #endif // ------------------------------------------------------------------ // ciInstanceKlass::get_injected_instance_field_by_name // // Implements also compute_injected_fields(). // ciField* ciInstanceKlass::get_injected_instance_field_by_name(ciSymbol* name, ciSymbol* signature) { VM_ENTRY_MARK; InstanceKlass* const k = get_instanceKlass(); const Symbol* const name_symbol = name->get_symbol(); assert(name_symbol != nullptr, "invariant"); const Symbol* const sig_sym = signature->get_symbol(); assert(sig_sym != nullptr, "invariant"); if (_has_injected_fields == -1) { if (super() != nullptr && super()->has_injected_fields()) { _has_injected_fields = 1; } } ciField* injected = nullptr; for (InternalFieldStream fs(k); !fs.done(); fs.next()) { if (fs.access_flags().is_static()) continue; DEBUG_ONLY(assert_injected_field(fs);) if (_has_injected_fields == -1) { _has_injected_fields = 1; } if (fs.name() == name_symbol && fs.signature() == sig_sym) { fieldDescriptor fd = fs.field_descriptor(); assert(fd.is_injected(), "invariant"); injected = new (CURRENT_THREAD_ENV->arena()) ciField(&fd); break; } } if (_has_injected_fields == -1) { _has_injected_fields = 0; } return injected; } // This is essentially a shortcut for: // get_field_by_offset(field_offset, is_static)->layout_type() // except this does not require allocating memory for a new ciField BasicType ciInstanceKlass::get_field_type_by_offset(const int field_offset, const bool is_static) { if (!is_static) { ciField* field = get_nonstatic_field_by_offset(field_offset); return field != nullptr ? field->layout_type() : T_ILLEGAL; } // Avoid allocating a new ciField by obtaining the field type directly VM_ENTRY_MARK; InstanceKlass* k = get_instanceKlass(); fieldDescriptor fd; if (!k->find_field_from_offset(field_offset, is_static, &fd)) { return T_ILLEGAL; } // Reproduce the behavior of ciField::layout_type BasicType field_type = fd.field_type(); if (is_reference_type(field_type)) { return T_OBJECT; } return type2field[make(field_type)->basic_type()]; } void ciInstanceKlass::compute_nonstatic_fields() { assert(is_loaded(), "must be loaded"); if (_nonstatic_fields != nullptr) { assert(_declared_nonstatic_fields != nullptr, "must be initialized at the same time, class %s", name()->as_utf8()); return; } if (!has_nonstatic_fields()) { _declared_nonstatic_fields = &empty_field_array; _nonstatic_fields = &empty_field_array; return; } assert(!is_java_lang_Object(), "bootstrap OK"); ciInstanceKlass* super = this->super(); assert(super != nullptr, "must have a super class, current class: %s", name()->as_utf8()); super->compute_nonstatic_fields(); const GrowableArray* super_declared_fields = super->_declared_nonstatic_fields; const GrowableArray* super_fields = super->_nonstatic_fields; assert(super_declared_fields != nullptr && super_fields != nullptr, "must have been initialized, current class: %s, super class: %s", name()->as_utf8(), super->name()->as_utf8()); GUARDED_VM_ENTRY({ compute_nonstatic_fields_impl(super_declared_fields, super_fields); }); } void ciInstanceKlass::compute_nonstatic_fields_impl(const GrowableArray* super_declared_fields, const GrowableArray* super_fields) { assert(_declared_nonstatic_fields == nullptr && _nonstatic_fields == nullptr, "initialized already"); ASSERT_IN_VM; Arena* arena = CURRENT_ENV->arena(); InstanceKlass* this_klass = get_instanceKlass(); int declared_field_num = 0; int field_num = 0; for (JavaFieldStream fs(this_klass); !fs.done(); fs.next()) { if (fs.access_flags().is_static()) { continue; } declared_field_num++; fieldDescriptor& fd = fs.field_descriptor(); if (fd.is_flat()) { InlineKlass* k = this_klass->get_inline_type_field_klass(fd.index()); ciInlineKlass* vk = CURRENT_ENV->get_klass(k)->as_inline_klass(); field_num += vk->nof_nonstatic_fields(); field_num += fd.has_null_marker() ? 1 : 0; } else { field_num++; } } GrowableArray* tmp_declared_fields = nullptr; if (declared_field_num != 0) { tmp_declared_fields = new (arena) GrowableArray(arena, declared_field_num + super_declared_fields->length(), 0, nullptr); tmp_declared_fields->appendAll(super_declared_fields); } GrowableArray* tmp_fields = nullptr; if (field_num != 0) { tmp_fields = new (arena) GrowableArray(arena, field_num + super_fields->length(), 0, nullptr); tmp_fields->appendAll(super_fields); } // For later assertion declared_field_num += super_declared_fields->length(); field_num += super_fields->length(); for (JavaFieldStream fs(this_klass); !fs.done(); fs.next()) { if (fs.access_flags().is_static()) { continue; } fieldDescriptor& fd = fs.field_descriptor(); ciField* declared_field = new (arena) ciField(&fd); assert(tmp_declared_fields != nullptr, "should be initialized"); tmp_declared_fields->append(declared_field); if (fd.is_flat()) { // Flat fields are embedded Klass* k = get_instanceKlass()->get_inline_type_field_klass(fd.index()); ciInlineKlass* vk = CURRENT_ENV->get_klass(k)->as_inline_klass(); // Iterate over fields of the flat inline type and copy them to 'this' for (int i = 0; i < vk->nof_nonstatic_fields(); ++i) { assert(tmp_fields != nullptr, "should be initialized"); tmp_fields->append(new (arena) ciField(declared_field, vk->nonstatic_field_at(i))); } if (fd.has_null_marker()) { assert(tmp_fields != nullptr, "should be initialized"); tmp_fields->append(new (arena) ciField(declared_field)); } } else { assert(tmp_fields != nullptr, "should be initialized"); tmp_fields->append(declared_field); } } // Now sort them by offset, ascending. In principle, they could mix with superclass fields. if (tmp_declared_fields != nullptr) { assert(tmp_declared_fields->length() == declared_field_num, "sanity check failed for class: %s, number of declared fields: %d, expected: %d", name()->as_utf8(), tmp_declared_fields->length(), declared_field_num); _declared_nonstatic_fields = tmp_declared_fields; } else { _declared_nonstatic_fields = super_declared_fields; } if (tmp_fields != nullptr) { assert(tmp_fields->length() == field_num, "sanity check failed for class: %s, number of fields: %d, expected: %d", name()->as_utf8(), tmp_fields->length(), field_num); _nonstatic_fields = tmp_fields; } else { _nonstatic_fields = super_fields; } } bool ciInstanceKlass::compute_injected_fields_helper() { ASSERT_IN_VM; InstanceKlass* k = get_instanceKlass(); for (InternalFieldStream fs(k); !fs.done(); fs.next()) { if (fs.access_flags().is_static()) continue; return true; } return false; } void ciInstanceKlass::compute_injected_fields() { assert(is_loaded(), "must be loaded"); int has_injected_fields = 0; if (super() != nullptr && super()->has_injected_fields()) { has_injected_fields = 1; } else { GUARDED_VM_ENTRY({ has_injected_fields = compute_injected_fields_helper() ? 1 : 0; }); } // may be concurrently initialized for shared ciInstanceKlass objects assert(_has_injected_fields == -1 || _has_injected_fields == has_injected_fields, "broken concurrent initialization"); _has_injected_fields = has_injected_fields; } bool ciInstanceKlass::has_object_fields() const { GUARDED_VM_ENTRY( return get_instanceKlass()->nonstatic_oop_map_size() > 0; ); } bool ciInstanceKlass::compute_has_trusted_loader() { ASSERT_IN_VM; oop loader_oop = loader(); if (loader_oop == nullptr) { return true; // bootstrap class loader } return java_lang_ClassLoader::is_trusted_loader(loader_oop); } bool ciInstanceKlass::has_class_initializer() { VM_ENTRY_MARK; return get_instanceKlass()->class_initializer() != nullptr; } // ------------------------------------------------------------------ // ciInstanceKlass::find_method // // Find a method in this klass. ciMethod* ciInstanceKlass::find_method(ciSymbol* name, ciSymbol* signature) { VM_ENTRY_MARK; InstanceKlass* k = get_instanceKlass(); Symbol* name_sym = name->get_symbol(); Symbol* sig_sym= signature->get_symbol(); Method* m = k->find_method(name_sym, sig_sym); if (m == nullptr) return nullptr; return CURRENT_THREAD_ENV->get_method(m); } // ------------------------------------------------------------------ // ciInstanceKlass::is_leaf_type bool ciInstanceKlass::is_leaf_type() { assert(is_loaded(), "must be loaded"); if (is_shared()) { return is_final(); // approximately correct } else { return !has_subklass() && (!is_interface() || nof_implementors() == 0); } } // ------------------------------------------------------------------ // ciInstanceKlass::implementor // // Report an implementor of this interface. // Note that there are various races here, since my copy // of _nof_implementors might be out of date with respect // to results returned by InstanceKlass::implementor. // This is OK, since any dependencies we decide to assert // will be checked later under the Compile_lock. ciInstanceKlass* ciInstanceKlass::implementor() { assert(is_interface(), "required"); ciInstanceKlass* impl = _implementor; if (impl == nullptr) { if (is_shared()) { impl = this; // assume a well-known interface never has a unique implementor } else { // Go into the VM to fetch the implementor. VM_ENTRY_MARK; InstanceKlass* ik = get_instanceKlass(); Klass* implk = ik->implementor(); if (implk != nullptr) { if (implk == ik) { // More than one implementors. Use 'this' in this case. impl = this; } else { impl = CURRENT_THREAD_ENV->get_instance_klass(implk); } } } // Memoize this result. _implementor = impl; } return impl; } bool ciInstanceKlass::can_be_inline_klass(bool is_exact) { if (!Arguments::is_valhalla_enabled()) { return false; } if (!is_loaded() || is_inlinetype()) { // Not loaded or known to be an inline klass return true; } if (!is_exact) { // Not exact, check if this is a valid super for an inline klass GUARDED_VM_ENTRY( return !get_instanceKlass()->access_flags().is_identity_class() || is_java_lang_Object(); ) } return false; } // Utility class for printing of the contents of the static fields for // use by compilation replay. It only prints out the information that // could be consumed by the compiler, so for primitive types it prints // out the actual value. For Strings it's the actual string value. // For array types it it's first level array size since that's the // only value which statically unchangeable. For all other reference // types it simply prints out the dynamic type. class StaticFieldPrinter : public FieldClosure { protected: outputStream* _out; public: StaticFieldPrinter(outputStream* out) : _out(out) { } void do_field_helper(fieldDescriptor* fd, oop obj, bool is_flat); }; class StaticFinalFieldPrinter : public StaticFieldPrinter { const char* _holder; public: StaticFinalFieldPrinter(outputStream* out, const char* holder) : StaticFieldPrinter(out), _holder(holder) { } void do_field(fieldDescriptor* fd) { if (fd->is_final() && !fd->has_initial_value()) { ResourceMark rm; InstanceKlass* holder = fd->field_holder(); oop mirror = holder->java_mirror(); _out->print("staticfield %s %s ", _holder, fd->name()->as_quoted_ascii()); BasicType bt = fd->field_type(); if (bt != T_OBJECT && bt != T_ARRAY) { _out->print("%s ", fd->signature()->as_quoted_ascii()); } do_field_helper(fd, mirror, false); _out->cr(); } } }; class InlineTypeFieldPrinter : public StaticFieldPrinter { oop _obj; public: InlineTypeFieldPrinter(outputStream* out, oop obj) : StaticFieldPrinter(out), _obj(obj) { } void do_field(fieldDescriptor* fd) { _out->print(" "); do_field_helper(fd, _obj, true); } }; void StaticFieldPrinter::do_field_helper(fieldDescriptor* fd, oop mirror, bool is_flat) { BasicType field_type = fd->field_type(); switch (field_type) { case T_BYTE: _out->print("%d", mirror->byte_field(fd->offset())); break; case T_BOOLEAN: _out->print("%d", mirror->bool_field(fd->offset())); break; case T_SHORT: _out->print("%d", mirror->short_field(fd->offset())); break; case T_CHAR: _out->print("%d", mirror->char_field(fd->offset())); break; case T_INT: _out->print("%d", mirror->int_field(fd->offset())); break; case T_LONG: _out->print(INT64_FORMAT, (int64_t)(mirror->long_field(fd->offset()))); break; case T_FLOAT: { float f = mirror->float_field(fd->offset()); _out->print("%d", *(int*)&f); break; } case T_DOUBLE: { double d = mirror->double_field(fd->offset()); _out->print(INT64_FORMAT, *(int64_t*)&d); break; } case T_ARRAY: // fall-through case T_OBJECT: if (!fd->is_null_free_inline_type()) { _out->print("%s", fd->signature()->as_quoted_ascii()); oop value = mirror->obj_field_acquire(fd->offset()); if (value == nullptr) { if (field_type == T_ARRAY) { _out->print(" %d", -1); } } else if (value->is_instance()) { assert(field_type == T_OBJECT, ""); if (value->is_a(vmClasses::String_klass())) { const char* ascii_value = java_lang_String::as_quoted_ascii(value); _out->print(" \"%s\"", (ascii_value != nullptr) ? ascii_value : ""); } else { const char* klass_name = value->klass()->name()->as_quoted_ascii(); _out->print(" %s", klass_name); } } else if (value->is_array()) { arrayOop a = (arrayOop)value; _out->print(" %d", a->length()); if (value->is_objArray()) { objArrayOop oa = (objArrayOop)value; if (value->is_flatArray()) { FlatArrayKlass* klass = ((flatArrayOop)oa)->klass(); LayoutKind lk = klass->layout_kind(); _out->print(" flat"); if (LayoutKindHelper::is_nullable_flat(lk)) { _out->print(" nullable"); } else { _out->print(" null-free"); } if (LayoutKindHelper::is_atomic_flat(lk)) { _out->print(" atomic"); } else { _out->print(" non-atomic"); } } else { _out->print(" ref"); if (oa->klass()->is_null_free_array_klass()) { _out->print(" null-free"); } else { _out->print(" nullable"); } } const char* klass_name = value->klass()->name()->as_quoted_ascii(); _out->print(" %s", klass_name); } } else { ShouldNotReachHere(); } break; } else { // handling of null free inline type _out->print("%s", fd->signature()->as_quoted_ascii()); ResetNoHandleMark rnhm; Thread* THREAD = Thread::current(); SignatureStream ss(fd->signature(), false); Symbol* name = ss.as_symbol(); assert(!HAS_PENDING_EXCEPTION, "can resolve klass?"); InstanceKlass* holder = fd->field_holder(); InstanceKlass* k = SystemDictionary::find_instance_klass(THREAD, name, Handle(THREAD, holder->class_loader())); guarantee(k != nullptr && !HAS_PENDING_EXCEPTION, "can resolve klass?"); InlineKlass* vk = InlineKlass::cast(k); oop obj; if (is_flat) { int field_offset = fd->offset() - vk->payload_offset(); obj = cast_to_oop(cast_from_oop
(mirror) + field_offset); } else { obj = mirror->obj_field_acquire(fd->offset()); } InlineTypeFieldPrinter print_field(_out, obj); vk->do_nonstatic_fields(&print_field); break; } default: ShouldNotReachHere(); } } const char *ciInstanceKlass::replay_name() const { return CURRENT_ENV->replay_name(get_instanceKlass()); } void ciInstanceKlass::dump_replay_instanceKlass(outputStream* out, InstanceKlass* ik) { if (ik->is_hidden()) { const char *name = CURRENT_ENV->dyno_name(ik); if (name != nullptr) { out->print_cr("instanceKlass %s # %s", name, ik->name()->as_quoted_ascii()); } else { out->print_cr("# instanceKlass %s", ik->name()->as_quoted_ascii()); } } else { out->print_cr("instanceKlass %s", ik->name()->as_quoted_ascii()); } } GrowableArray* ciInstanceKlass::transitive_interfaces() const{ if (_transitive_interfaces == nullptr) { const_cast(this)->compute_transitive_interfaces(); } return _transitive_interfaces; } void ciInstanceKlass::compute_transitive_interfaces() { GUARDED_VM_ENTRY( InstanceKlass* ik = get_instanceKlass(); Array* interfaces = ik->transitive_interfaces(); int orig_length = interfaces->length(); Arena* arena = CURRENT_ENV->arena(); int transitive_interfaces_len = orig_length + (is_interface() ? 1 : 0); GrowableArray* transitive_interfaces = new(arena)GrowableArray(arena, transitive_interfaces_len, 0, nullptr); for (int i = 0; i < orig_length; i++) { transitive_interfaces->append(CURRENT_ENV->get_instance_klass(interfaces->at(i))); } if (is_interface()) { transitive_interfaces->append(this); } _transitive_interfaces = transitive_interfaces; ); } void ciInstanceKlass::dump_replay_data(outputStream* out) { ResourceMark rm; InstanceKlass* ik = get_instanceKlass(); ConstantPool* cp = ik->constants(); // Try to record related loaded classes Klass* sub = ik->subklass(); while (sub != nullptr) { if (sub->is_instance_klass()) { InstanceKlass *isub = InstanceKlass::cast(sub); dump_replay_instanceKlass(out, isub); } sub = sub->next_sibling(); } // Dump out the state of the constant pool tags. During replay the // tags will be validated for things which shouldn't change and // classes will be resolved if the tags indicate that they were // resolved at compile time. const char *name = replay_name(); out->print("ciInstanceKlass %s %d %d %d", name, is_linked(), is_initialized(), cp->length()); for (int index = 1; index < cp->length(); index++) { out->print(" %d", cp->tags()->at(index)); } out->cr(); if (is_initialized()) { // Dump out the static final fields in case the compilation relies // on their value for correct replay. StaticFinalFieldPrinter sffp(out, name); ik->do_local_static_fields(&sffp); } } #ifdef ASSERT bool ciInstanceKlass::debug_final_field_at(int offset) { GUARDED_VM_ENTRY( InstanceKlass* ik = get_instanceKlass(); fieldDescriptor fd; if (ik->find_field_from_offset(offset, false, &fd)) { return fd.is_final(); } ); return false; } bool ciInstanceKlass::debug_stable_field_at(int offset) { GUARDED_VM_ENTRY( InstanceKlass* ik = get_instanceKlass(); fieldDescriptor fd; if (ik->find_field_from_offset(offset, false, &fd)) { return fd.is_stable(); } ); return false; } #endif