/* * Copyright (c) 1997, 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 "opto/callnode.hpp" #include "opto/cfgnode.hpp" #include "opto/inlinetypenode.hpp" #include "opto/matcher.hpp" #include "opto/mathexactnode.hpp" #include "opto/multnode.hpp" #include "opto/opcodes.hpp" #include "opto/phaseX.hpp" #include "opto/regmask.hpp" #include "opto/type.hpp" #include "utilities/vmError.hpp" //============================================================================= //------------------------------MultiNode-------------------------------------- const RegMask &MultiNode::out_RegMask() const { return RegMask::EMPTY; } Node* MultiNode::match(const ProjNode* proj, const Matcher* m) { return proj->clone(); } //------------------------------proj_out--------------------------------------- // Get a named projection or null if not found ProjNode* MultiNode::proj_out_or_null(uint which_proj) const { assert((Opcode() != Op_If && Opcode() != Op_RangeCheck) || which_proj == (uint)true || which_proj == (uint)false, "must be 1 or 0"); assert(number_of_projs(which_proj) <= 1, "only when there's a single projection"); ProjNode* proj = find_first(which_proj); assert(proj == nullptr || (Opcode() != Op_If && Opcode() != Op_RangeCheck) || proj->Opcode() == (which_proj ? Op_IfTrue : Op_IfFalse), "incorrect projection node at If/RangeCheck: IfTrue on false path or IfFalse on true path"); return proj; } ProjNode* MultiNode::proj_out_or_null(uint which_proj, bool is_io_use) const { assert(number_of_projs(which_proj, is_io_use) <= 1, "only when there's a single projection"); return find_first(which_proj, is_io_use); } template ProjNode* MultiNode::apply_to_projs(Callback callback, uint which_proj, bool is_io_use) const { auto filter = [&](ProjNode* proj) { if (proj->_is_io_use == is_io_use && callback(proj) == BREAK_AND_RETURN_CURRENT_PROJ) { return BREAK_AND_RETURN_CURRENT_PROJ; } return CONTINUE; }; return apply_to_projs(filter, which_proj); } uint MultiNode::number_of_projs(uint which_proj) const { uint cnt = 0; auto count_projs = [&](ProjNode* proj) { cnt++; }; for_each_proj(count_projs, which_proj); return cnt; } uint MultiNode::number_of_projs(uint which_proj, bool is_io_use) const { uint cnt = 0; auto count_projs = [&](ProjNode* proj) { cnt++; }; for_each_proj(count_projs, which_proj, is_io_use); return cnt; } ProjNode* MultiNode::find_first(uint which_proj) const { auto find_proj = [&](ProjNode* proj) { return BREAK_AND_RETURN_CURRENT_PROJ; }; return apply_to_projs(find_proj, which_proj); } ProjNode* MultiNode::find_first(uint which_proj, bool is_io_use) const { auto find_proj = [](ProjNode* proj) { return BREAK_AND_RETURN_CURRENT_PROJ; }; return apply_to_projs(find_proj, which_proj, is_io_use); } // Get a named projection ProjNode* MultiNode::proj_out(uint which_proj) const { assert((Opcode() != Op_If && Opcode() != Op_RangeCheck) || outcnt() == 2, "bad if #1"); ProjNode* p = proj_out_or_null(which_proj); assert(p != nullptr, "named projection %u not found", which_proj); return p; } //============================================================================= //------------------------------ProjNode--------------------------------------- uint ProjNode::hash() const { // only one input return (uintptr_t)in(TypeFunc::Control) + (_con << 1) + (_is_io_use ? 1 : 0); } bool ProjNode::cmp( const Node &n ) const { return _con == ((ProjNode&)n)._con && ((ProjNode&)n)._is_io_use == _is_io_use; } uint ProjNode::size_of() const { return sizeof(ProjNode); } // Test if we propagate interesting control along this projection bool ProjNode::is_CFG() const { Node *def = in(0); return (_con == TypeFunc::Control && def->is_CFG()); } const Type* ProjNode::proj_type(const Type* t) const { if (t == Type::TOP) { return Type::TOP; } if (t == Type::BOTTOM) { return Type::BOTTOM; } t = t->is_tuple()->field_at(_con); CallStaticJavaNode* call = in(0)->isa_CallStaticJava(); if (call != nullptr && call->is_boxing_method()) { // The result of autoboxing is always non-null on normal path. if (call->tf()->returns_inline_type_as_fields()) { // Last returned value is the null marker if (_con == call->tf()->range_cc()->cnt() - 1) { t = TypeInt::ONE; } } else if (_con == TypeFunc::Parms) { t = t->join_speculative(TypePtr::NOTNULL); } } return t; } const Type *ProjNode::bottom_type() const { if (in(0) == nullptr) return Type::TOP; return proj_type(in(0)->bottom_type()); } const TypePtr *ProjNode::adr_type() const { if (bottom_type() == Type::MEMORY) { // in(0) might be a narrow MemBar; otherwise we will report TypePtr::BOTTOM Node* ctrl = in(0); if (ctrl->Opcode() == Op_Tuple) { // Jumping over Tuples: the i-th projection of a Tuple is the i-th input of the Tuple. ctrl = ctrl->in(_con); } // node is dead or we are in the process of removing a dead subgraph if (ctrl == nullptr || ctrl->is_top()) { return nullptr; } const TypePtr* adr_type = ctrl->adr_type(); #ifdef ASSERT if (!VMError::is_error_reported() && !Node::in_dump()) assert(adr_type != nullptr, "source must have adr_type"); #endif return adr_type; } assert(bottom_type()->base() != Type::Memory, "no other memories?"); return nullptr; } bool ProjNode::pinned() const { return in(0)->pinned(); } #ifndef PRODUCT void ProjNode::dump_spec(outputStream *st) const { st->print("#%d",_con); if(_is_io_use) st->print(" (i_o_use)");} void ProjNode::dump_compact_spec(outputStream *st) const { for (DUIterator i = this->outs(); this->has_out(i); i++) { Node* o = this->out(i); if (not_a_node(o)) { st->print("[?]"); } else if (o == nullptr) { st->print("[_]"); } else { st->print("[%d]", o->_idx); } } st->print("#%d", _con); } #endif //----------------------------check_con---------------------------------------- void ProjNode::check_con() const { Node* n = in(0); if (n == nullptr) return; // should be assert, but NodeHash makes bogons if (n->is_Mach()) return; // mach. projs. are not type-safe if (n->is_Start()) return; // alas, starts can have mach. projs. also if (_con == SCMemProjNode::SCMEMPROJCON ) return; const Type* t = n->bottom_type(); if (t == Type::TOP) return; // multi is dead assert(_con < t->is_tuple()->cnt(), "ProjNode::_con must be in range"); } //------------------------------Identity--------------------------------------- Node* ProjNode::Identity(PhaseGVN* phase) { if (in(0) != nullptr && in(0)->Opcode() == Op_Tuple) { // Jumping over Tuples: the i-th projection of a Tuple is the i-th input of the Tuple. return in(0)->in(_con); } CallStaticJavaNode* call = in(0)->isa_CallStaticJava(); if (call != nullptr) { if (call->is_boxing_method() && call->method()->return_type()->is_inlinetype()) { // Boxing (for example, via Integer.valueOf(int)) if (call->tf()->returns_inline_type_as_fields()) { if (_con == TypeFunc::Parms) { // Oop projection: Keep it to avoid re-buffering. If unused, // it will go away and enable removal of the boxing call. return this; } else if (_con == TypeFunc::Parms + 1) { // Field projection: Use unboxed input value return call->in(TypeFunc::Parms); } // The null marker projection is removed by ProjNode::proj_type. } } else if (call->is_unboxing_method() && _con == TypeFunc::Parms) { // Unboxing (for example, via Integer.intValue()) // Use field value of boxed input value object if (call->method()->has_scalarized_args()) { return call->in(TypeFunc::Parms + 1); } else { Node* arg = call->in(TypeFunc::Parms); if (arg->is_InlineType()) { assert(!phase->type(arg)->maybe_null(), "missing receiver null check?"); return arg->as_InlineType()->field_value(0); } } } } return this; } //------------------------------Value------------------------------------------ const Type* ProjNode::Value(PhaseGVN* phase) const { if (in(0) == nullptr) return Type::TOP; return proj_type(phase->type(in(0))); } //------------------------------out_RegMask------------------------------------ // Pass the buck uphill const RegMask &ProjNode::out_RegMask() const { return RegMask::EMPTY; } //------------------------------ideal_reg-------------------------------------- uint ProjNode::ideal_reg() const { return bottom_type()->ideal_reg(); } //-------------------------------is_uncommon_trap_proj---------------------------- // Return uncommon trap call node if proj is for "proj->[region->..]call_uct" // null otherwise CallStaticJavaNode* ProjNode::is_uncommon_trap_proj(Deoptimization::DeoptReason reason) const { const int path_limit = 10; const Node* out = this; for (int ct = 0; ct < path_limit; ct++) { out = out->unique_ctrl_out_or_null(); if (out == nullptr) return nullptr; if (out->is_CallStaticJava()) { CallStaticJavaNode* call = out->as_CallStaticJava(); int req = call->uncommon_trap_request(); if (req != 0) { Deoptimization::DeoptReason trap_reason = Deoptimization::trap_request_reason(req); if (trap_reason == reason || reason == Deoptimization::Reason_none) { return call; } } return nullptr; // don't do further after call } if (out->Opcode() != Op_Region) return nullptr; } return nullptr; } //-------------------------------is_uncommon_trap_if_pattern------------------------- // Return uncommon trap call node for "if(test)-> proj -> ... // | // V // other_proj->[region->..]call_uct" // or null otherwise. CallStaticJavaNode* ProjNode::is_uncommon_trap_if_pattern(Deoptimization::DeoptReason reason) const { Node* iff = in(0); if (!iff->is_If() || iff->outcnt() < 2) { // Not a projection of an If or variation of a dead If node. return nullptr; } return as_IfProj()->other_if_proj()->is_uncommon_trap_proj(reason); } NarrowMemProjNode::NarrowMemProjNode(InitializeNode* src, const TypePtr* adr_type) : ProjNode(src, TypeFunc::Memory), _adr_type(adr_type) { assert(Compile::current()->have_alias_type(adr_type), "alias index should have been allocated already"); init_class_id(Class_NarrowMemProj); }