Path: blob/master/src/hotspot/share/opto/buildOopMap.cpp
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/*1* Copyright (c) 2002, 2018, Oracle and/or its affiliates. All rights reserved.2* DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.3*4* This code is free software; you can redistribute it and/or modify it5* under the terms of the GNU General Public License version 2 only, as6* published by the Free Software Foundation.7*8* This code is distributed in the hope that it will be useful, but WITHOUT9* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or10* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License11* version 2 for more details (a copy is included in the LICENSE file that12* accompanied this code).13*14* You should have received a copy of the GNU General Public License version15* 2 along with this work; if not, write to the Free Software Foundation,16* Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.17*18* Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA19* or visit www.oracle.com if you need additional information or have any20* questions.21*22*/2324#include "precompiled.hpp"25#include "code/vmreg.inline.hpp"26#include "compiler/oopMap.hpp"27#include "memory/resourceArea.hpp"28#include "opto/addnode.hpp"29#include "opto/callnode.hpp"30#include "opto/compile.hpp"31#include "opto/machnode.hpp"32#include "opto/matcher.hpp"33#include "opto/output.hpp"34#include "opto/phase.hpp"35#include "opto/regalloc.hpp"36#include "opto/rootnode.hpp"37#include "utilities/align.hpp"3839// The functions in this file builds OopMaps after all scheduling is done.40//41// OopMaps contain a list of all registers and stack-slots containing oops (so42// they can be updated by GC). OopMaps also contain a list of derived-pointer43// base-pointer pairs. When the base is moved, the derived pointer moves to44// follow it. Finally, any registers holding callee-save values are also45// recorded. These might contain oops, but only the caller knows.46//47// BuildOopMaps implements a simple forward reaching-defs solution. At each48// GC point we'll have the reaching-def Nodes. If the reaching Nodes are49// typed as pointers (no offset), then they are oops. Pointers+offsets are50// derived pointers, and bases can be found from them. Finally, we'll also51// track reaching callee-save values. Note that a copy of a callee-save value52// "kills" it's source, so that only 1 copy of a callee-save value is alive at53// a time.54//55// We run a simple bitvector liveness pass to help trim out dead oops. Due to56// irreducible loops, we can have a reaching def of an oop that only reaches57// along one path and no way to know if it's valid or not on the other path.58// The bitvectors are quite dense and the liveness pass is fast.59//60// At GC points, we consult this information to build OopMaps. All reaching61// defs typed as oops are added to the OopMap. Only 1 instance of a62// callee-save register can be recorded. For derived pointers, we'll have to63// find and record the register holding the base.64//65// The reaching def's is a simple 1-pass worklist approach. I tried a clever66// breadth-first approach but it was worse (showed O(n^2) in the67// pick-next-block code).68//69// The relevant data is kept in a struct of arrays (it could just as well be70// an array of structs, but the struct-of-arrays is generally a little more71// efficient). The arrays are indexed by register number (including72// stack-slots as registers) and so is bounded by 200 to 300 elements in73// practice. One array will map to a reaching def Node (or NULL for74// conflict/dead). The other array will map to a callee-saved register or75// OptoReg::Bad for not-callee-saved.767778// Structure to pass around79struct OopFlow : public ResourceObj {80short *_callees; // Array mapping register to callee-saved81Node **_defs; // array mapping register to reaching def82// or NULL if dead/conflict83// OopFlow structs, when not being actively modified, describe the _end_ of84// this block.85Block *_b; // Block for this struct86OopFlow *_next; // Next free OopFlow87// or NULL if dead/conflict88Compile* C;8990OopFlow( short *callees, Node **defs, Compile* c ) : _callees(callees), _defs(defs),91_b(NULL), _next(NULL), C(c) { }9293// Given reaching-defs for this block start, compute it for this block end94void compute_reach( PhaseRegAlloc *regalloc, int max_reg, Dict *safehash );9596// Merge these two OopFlows into the 'this' pointer.97void merge( OopFlow *flow, int max_reg );9899// Copy a 'flow' over an existing flow100void clone( OopFlow *flow, int max_size);101102// Make a new OopFlow from scratch103static OopFlow *make( Arena *A, int max_size, Compile* C );104105// Build an oopmap from the current flow info106OopMap *build_oop_map( Node *n, int max_reg, PhaseRegAlloc *regalloc, int* live );107};108109// Given reaching-defs for this block start, compute it for this block end110void OopFlow::compute_reach( PhaseRegAlloc *regalloc, int max_reg, Dict *safehash ) {111112for( uint i=0; i<_b->number_of_nodes(); i++ ) {113Node *n = _b->get_node(i);114115if( n->jvms() ) { // Build an OopMap here?116JVMState *jvms = n->jvms();117// no map needed for leaf calls118if( n->is_MachSafePoint() && !n->is_MachCallLeaf() ) {119int *live = (int*) (*safehash)[n];120assert( live, "must find live" );121n->as_MachSafePoint()->set_oop_map( build_oop_map(n,max_reg,regalloc, live) );122}123}124125// Assign new reaching def's.126// Note that I padded the _defs and _callees arrays so it's legal127// to index at _defs[OptoReg::Bad].128OptoReg::Name first = regalloc->get_reg_first(n);129OptoReg::Name second = regalloc->get_reg_second(n);130_defs[first] = n;131_defs[second] = n;132133// Pass callee-save info around copies134int idx = n->is_Copy();135if( idx ) { // Copies move callee-save info136OptoReg::Name old_first = regalloc->get_reg_first(n->in(idx));137OptoReg::Name old_second = regalloc->get_reg_second(n->in(idx));138int tmp_first = _callees[old_first];139int tmp_second = _callees[old_second];140_callees[old_first] = OptoReg::Bad; // callee-save is moved, dead in old location141_callees[old_second] = OptoReg::Bad;142_callees[first] = tmp_first;143_callees[second] = tmp_second;144} else if( n->is_Phi() ) { // Phis do not mod callee-saves145assert( _callees[first] == _callees[regalloc->get_reg_first(n->in(1))], "" );146assert( _callees[second] == _callees[regalloc->get_reg_second(n->in(1))], "" );147assert( _callees[first] == _callees[regalloc->get_reg_first(n->in(n->req()-1))], "" );148assert( _callees[second] == _callees[regalloc->get_reg_second(n->in(n->req()-1))], "" );149} else {150_callees[first] = OptoReg::Bad; // No longer holding a callee-save value151_callees[second] = OptoReg::Bad;152153// Find base case for callee saves154if( n->is_Proj() && n->in(0)->is_Start() ) {155if( OptoReg::is_reg(first) &&156regalloc->_matcher.is_save_on_entry(first) )157_callees[first] = first;158if( OptoReg::is_reg(second) &&159regalloc->_matcher.is_save_on_entry(second) )160_callees[second] = second;161}162}163}164}165166// Merge the given flow into the 'this' flow167void OopFlow::merge( OopFlow *flow, int max_reg ) {168assert( _b == NULL, "merging into a happy flow" );169assert( flow->_b, "this flow is still alive" );170assert( flow != this, "no self flow" );171172// Do the merge. If there are any differences, drop to 'bottom' which173// is OptoReg::Bad or NULL depending.174for( int i=0; i<max_reg; i++ ) {175// Merge the callee-save's176if( _callees[i] != flow->_callees[i] )177_callees[i] = OptoReg::Bad;178// Merge the reaching defs179if( _defs[i] != flow->_defs[i] )180_defs[i] = NULL;181}182183}184185void OopFlow::clone( OopFlow *flow, int max_size ) {186_b = flow->_b;187memcpy( _callees, flow->_callees, sizeof(short)*max_size);188memcpy( _defs , flow->_defs , sizeof(Node*)*max_size);189}190191OopFlow *OopFlow::make( Arena *A, int max_size, Compile* C ) {192short *callees = NEW_ARENA_ARRAY(A,short,max_size+1);193Node **defs = NEW_ARENA_ARRAY(A,Node*,max_size+1);194debug_only( memset(defs,0,(max_size+1)*sizeof(Node*)) );195OopFlow *flow = new (A) OopFlow(callees+1, defs+1, C);196assert( &flow->_callees[OptoReg::Bad] == callees, "Ok to index at OptoReg::Bad" );197assert( &flow->_defs [OptoReg::Bad] == defs , "Ok to index at OptoReg::Bad" );198return flow;199}200201static int get_live_bit( int *live, int reg ) {202return live[reg>>LogBitsPerInt] & (1<<(reg&(BitsPerInt-1))); }203static void set_live_bit( int *live, int reg ) {204live[reg>>LogBitsPerInt] |= (1<<(reg&(BitsPerInt-1))); }205static void clr_live_bit( int *live, int reg ) {206live[reg>>LogBitsPerInt] &= ~(1<<(reg&(BitsPerInt-1))); }207208// Build an oopmap from the current flow info209OopMap *OopFlow::build_oop_map( Node *n, int max_reg, PhaseRegAlloc *regalloc, int* live ) {210int framesize = regalloc->_framesize;211int max_inarg_slot = OptoReg::reg2stack(regalloc->_matcher._new_SP);212debug_only( char *dup_check = NEW_RESOURCE_ARRAY(char,OptoReg::stack0());213memset(dup_check,0,OptoReg::stack0()) );214215OopMap *omap = new OopMap( framesize, max_inarg_slot );216MachCallNode *mcall = n->is_MachCall() ? n->as_MachCall() : NULL;217JVMState* jvms = n->jvms();218219// For all registers do...220for( int reg=0; reg<max_reg; reg++ ) {221if( get_live_bit(live,reg) == 0 )222continue; // Ignore if not live223224// %%% C2 can use 2 OptoRegs when the physical register is only one 64bit225// register in that case we'll get an non-concrete register for the second226// half. We only need to tell the map the register once!227//228// However for the moment we disable this change and leave things as they229// were.230231VMReg r = OptoReg::as_VMReg(OptoReg::Name(reg), framesize, max_inarg_slot);232233if (false && r->is_reg() && !r->is_concrete()) {234continue;235}236237// See if dead (no reaching def).238Node *def = _defs[reg]; // Get reaching def239assert( def, "since live better have reaching def" );240241// Classify the reaching def as oop, derived, callee-save, dead, or other242const Type *t = def->bottom_type();243if( t->isa_oop_ptr() ) { // Oop or derived?244assert( !OptoReg::is_valid(_callees[reg]), "oop can't be callee save" );245#ifdef _LP64246// 64-bit pointers record oop-ishness on 2 aligned adjacent registers.247// Make sure both are record from the same reaching def, but do not248// put both into the oopmap.249if( (reg&1) == 1 ) { // High half of oop-pair?250assert( _defs[reg-1] == _defs[reg], "both halves from same reaching def" );251continue; // Do not record high parts in oopmap252}253#endif254255// Check for a legal reg name in the oopMap and bailout if it is not.256if (!omap->legal_vm_reg_name(r)) {257regalloc->C->record_method_not_compilable("illegal oopMap register name");258continue;259}260if( t->is_ptr()->_offset == 0 ) { // Not derived?261if( mcall ) {262// Outgoing argument GC mask responsibility belongs to the callee,263// not the caller. Inspect the inputs to the call, to see if264// this live-range is one of them.265uint cnt = mcall->tf()->domain()->cnt();266uint j;267for( j = TypeFunc::Parms; j < cnt; j++)268if( mcall->in(j) == def )269break; // reaching def is an argument oop270if( j < cnt ) // arg oops dont go in GC map271continue; // Continue on to the next register272}273omap->set_oop(r);274} else { // Else it's derived.275// Find the base of the derived value.276uint i;277// Fast, common case, scan278for( i = jvms->oopoff(); i < n->req(); i+=2 )279if( n->in(i) == def ) break; // Common case280if( i == n->req() ) { // Missed, try a more generous scan281// Scan again, but this time peek through copies282for( i = jvms->oopoff(); i < n->req(); i+=2 ) {283Node *m = n->in(i); // Get initial derived value284while( 1 ) {285Node *d = def; // Get initial reaching def286while( 1 ) { // Follow copies of reaching def to end287if( m == d ) goto found; // breaks 3 loops288int idx = d->is_Copy();289if( !idx ) break;290d = d->in(idx); // Link through copy291}292int idx = m->is_Copy();293if( !idx ) break;294m = m->in(idx);295}296}297guarantee( 0, "must find derived/base pair" );298}299found: ;300Node *base = n->in(i+1); // Base is other half of pair301int breg = regalloc->get_reg_first(base);302VMReg b = OptoReg::as_VMReg(OptoReg::Name(breg), framesize, max_inarg_slot);303304// I record liveness at safepoints BEFORE I make the inputs305// live. This is because argument oops are NOT live at a306// safepoint (or at least they cannot appear in the oopmap).307// Thus bases of base/derived pairs might not be in the308// liveness data but they need to appear in the oopmap.309if( get_live_bit(live,breg) == 0 ) {// Not live?310// Flag it, so next derived pointer won't re-insert into oopmap311set_live_bit(live,breg);312// Already missed our turn?313if( breg < reg ) {314if (b->is_stack() || b->is_concrete() || true ) {315omap->set_oop( b);316}317}318}319if (b->is_stack() || b->is_concrete() || true ) {320omap->set_derived_oop( r, b);321}322}323324} else if( t->isa_narrowoop() ) {325assert( !OptoReg::is_valid(_callees[reg]), "oop can't be callee save" );326// Check for a legal reg name in the oopMap and bailout if it is not.327if (!omap->legal_vm_reg_name(r)) {328regalloc->C->record_method_not_compilable("illegal oopMap register name");329continue;330}331if( mcall ) {332// Outgoing argument GC mask responsibility belongs to the callee,333// not the caller. Inspect the inputs to the call, to see if334// this live-range is one of them.335uint cnt = mcall->tf()->domain()->cnt();336uint j;337for( j = TypeFunc::Parms; j < cnt; j++)338if( mcall->in(j) == def )339break; // reaching def is an argument oop340if( j < cnt ) // arg oops dont go in GC map341continue; // Continue on to the next register342}343omap->set_narrowoop(r);344} else if( OptoReg::is_valid(_callees[reg])) { // callee-save?345// It's a callee-save value346assert( dup_check[_callees[reg]]==0, "trying to callee save same reg twice" );347debug_only( dup_check[_callees[reg]]=1; )348VMReg callee = OptoReg::as_VMReg(OptoReg::Name(_callees[reg]));349if ( callee->is_concrete() || true ) {350omap->set_callee_saved( r, callee);351}352353} else {354// Other - some reaching non-oop value355#ifdef ASSERT356if( t->isa_rawptr() && C->cfg()->_raw_oops.member(def) ) {357def->dump();358n->dump();359assert(false, "there should be a oop in OopMap instead of a live raw oop at safepoint");360}361#endif362}363364}365366#ifdef ASSERT367/* Nice, Intel-only assert368int cnt_callee_saves=0;369int reg2 = 0;370while (OptoReg::is_reg(reg2)) {371if( dup_check[reg2] != 0) cnt_callee_saves++;372assert( cnt_callee_saves==3 || cnt_callee_saves==5, "missed some callee-save" );373reg2++;374}375*/376#endif377378#ifdef ASSERT379for( OopMapStream oms1(omap); !oms1.is_done(); oms1.next()) {380OopMapValue omv1 = oms1.current();381if (omv1.type() != OopMapValue::derived_oop_value) {382continue;383}384bool found = false;385for( OopMapStream oms2(omap); !oms2.is_done(); oms2.next()) {386OopMapValue omv2 = oms2.current();387if (omv2.type() != OopMapValue::oop_value) {388continue;389}390if( omv1.content_reg() == omv2.reg() ) {391found = true;392break;393}394}395assert( found, "derived with no base in oopmap" );396}397#endif398399return omap;400}401402// Compute backwards liveness on registers403static void do_liveness(PhaseRegAlloc* regalloc, PhaseCFG* cfg, Block_List* worklist, int max_reg_ints, Arena* A, Dict* safehash) {404int* live = NEW_ARENA_ARRAY(A, int, (cfg->number_of_blocks() + 1) * max_reg_ints);405int* tmp_live = &live[cfg->number_of_blocks() * max_reg_ints];406Node* root = cfg->get_root_node();407// On CISC platforms, get the node representing the stack pointer that regalloc408// used for spills409Node *fp = NodeSentinel;410if (UseCISCSpill && root->req() > 1) {411fp = root->in(1)->in(TypeFunc::FramePtr);412}413memset(live, 0, cfg->number_of_blocks() * (max_reg_ints << LogBytesPerInt));414// Push preds onto worklist415for (uint i = 1; i < root->req(); i++) {416Block* block = cfg->get_block_for_node(root->in(i));417worklist->push(block);418}419420// ZKM.jar includes tiny infinite loops which are unreached from below.421// If we missed any blocks, we'll retry here after pushing all missed422// blocks on the worklist. Normally this outer loop never trips more423// than once.424while (1) {425426while( worklist->size() ) { // Standard worklist algorithm427Block *b = worklist->rpop();428429// Copy first successor into my tmp_live space430int s0num = b->_succs[0]->_pre_order;431int *t = &live[s0num*max_reg_ints];432for( int i=0; i<max_reg_ints; i++ )433tmp_live[i] = t[i];434435// OR in the remaining live registers436for( uint j=1; j<b->_num_succs; j++ ) {437uint sjnum = b->_succs[j]->_pre_order;438int *t = &live[sjnum*max_reg_ints];439for( int i=0; i<max_reg_ints; i++ )440tmp_live[i] |= t[i];441}442443// Now walk tmp_live up the block backwards, computing live444for( int k=b->number_of_nodes()-1; k>=0; k-- ) {445Node *n = b->get_node(k);446// KILL def'd bits447int first = regalloc->get_reg_first(n);448int second = regalloc->get_reg_second(n);449if( OptoReg::is_valid(first) ) clr_live_bit(tmp_live,first);450if( OptoReg::is_valid(second) ) clr_live_bit(tmp_live,second);451452MachNode *m = n->is_Mach() ? n->as_Mach() : NULL;453454// Check if m is potentially a CISC alternate instruction (i.e, possibly455// synthesized by RegAlloc from a conventional instruction and a456// spilled input)457bool is_cisc_alternate = false;458if (UseCISCSpill && m) {459is_cisc_alternate = m->is_cisc_alternate();460}461462// GEN use'd bits463for( uint l=1; l<n->req(); l++ ) {464Node *def = n->in(l);465assert(def != 0, "input edge required");466int first = regalloc->get_reg_first(def);467int second = regalloc->get_reg_second(def);468if( OptoReg::is_valid(first) ) set_live_bit(tmp_live,first);469if( OptoReg::is_valid(second) ) set_live_bit(tmp_live,second);470// If we use the stack pointer in a cisc-alternative instruction,471// check for use as a memory operand. Then reconstruct the RegName472// for this stack location, and set the appropriate bit in the473// live vector 4987749.474if (is_cisc_alternate && def == fp) {475const TypePtr *adr_type = NULL;476intptr_t offset;477const Node* base = m->get_base_and_disp(offset, adr_type);478if (base == NodeSentinel) {479// Machnode has multiple memory inputs. We are unable to reason480// with these, but are presuming (with trepidation) that not any of481// them are oops. This can be fixed by making get_base_and_disp()482// look at a specific input instead of all inputs.483assert(!def->bottom_type()->isa_oop_ptr(), "expecting non-oop mem input");484} else if (base != fp || offset == Type::OffsetBot) {485// Do nothing: the fp operand is either not from a memory use486// (base == NULL) OR the fp is used in a non-memory context487// (base is some other register) OR the offset is not constant,488// so it is not a stack slot.489} else {490assert(offset >= 0, "unexpected negative offset");491offset -= (offset % jintSize); // count the whole word492int stack_reg = regalloc->offset2reg(offset);493if (OptoReg::is_stack(stack_reg)) {494set_live_bit(tmp_live, stack_reg);495} else {496assert(false, "stack_reg not on stack?");497}498}499}500}501502if( n->jvms() ) { // Record liveness at safepoint503504// This placement of this stanza means inputs to calls are505// considered live at the callsite's OopMap. Argument oops are506// hence live, but NOT included in the oopmap. See cutout in507// build_oop_map. Debug oops are live (and in OopMap).508int *n_live = NEW_ARENA_ARRAY(A, int, max_reg_ints);509for( int l=0; l<max_reg_ints; l++ )510n_live[l] = tmp_live[l];511safehash->Insert(n,n_live);512}513514}515516// Now at block top, see if we have any changes. If so, propagate517// to prior blocks.518int *old_live = &live[b->_pre_order*max_reg_ints];519int l;520for( l=0; l<max_reg_ints; l++ )521if( tmp_live[l] != old_live[l] )522break;523if( l<max_reg_ints ) { // Change!524// Copy in new value525for( l=0; l<max_reg_ints; l++ )526old_live[l] = tmp_live[l];527// Push preds onto worklist528for (l = 1; l < (int)b->num_preds(); l++) {529Block* block = cfg->get_block_for_node(b->pred(l));530worklist->push(block);531}532}533}534535// Scan for any missing safepoints. Happens to infinite loops536// ala ZKM.jar537uint i;538for (i = 1; i < cfg->number_of_blocks(); i++) {539Block* block = cfg->get_block(i);540uint j;541for (j = 1; j < block->number_of_nodes(); j++) {542if (block->get_node(j)->jvms() && (*safehash)[block->get_node(j)] == NULL) {543break;544}545}546if (j < block->number_of_nodes()) {547break;548}549}550if (i == cfg->number_of_blocks()) {551break; // Got 'em all552}553554if (PrintOpto && Verbose) {555tty->print_cr("retripping live calc");556}557558// Force the issue (expensively): recheck everybody559for (i = 1; i < cfg->number_of_blocks(); i++) {560worklist->push(cfg->get_block(i));561}562}563}564565// Collect GC mask info - where are all the OOPs?566void PhaseOutput::BuildOopMaps() {567Compile::TracePhase tp("bldOopMaps", &timers[_t_buildOopMaps]);568// Can't resource-mark because I need to leave all those OopMaps around,569// or else I need to resource-mark some arena other than the default.570// ResourceMark rm; // Reclaim all OopFlows when done571int max_reg = C->regalloc()->_max_reg; // Current array extent572573Arena *A = Thread::current()->resource_area();574Block_List worklist; // Worklist of pending blocks575576int max_reg_ints = align_up(max_reg, BitsPerInt)>>LogBitsPerInt;577Dict *safehash = NULL; // Used for assert only578// Compute a backwards liveness per register. Needs a bitarray of579// #blocks x (#registers, rounded up to ints)580safehash = new Dict(cmpkey,hashkey,A);581do_liveness( C->regalloc(), C->cfg(), &worklist, max_reg_ints, A, safehash );582OopFlow *free_list = NULL; // Free, unused583584// Array mapping blocks to completed oopflows585OopFlow **flows = NEW_ARENA_ARRAY(A, OopFlow*, C->cfg()->number_of_blocks());586memset( flows, 0, C->cfg()->number_of_blocks() * sizeof(OopFlow*) );587588589// Do the first block 'by hand' to prime the worklist590Block *entry = C->cfg()->get_block(1);591OopFlow *rootflow = OopFlow::make(A,max_reg,C);592// Initialize to 'bottom' (not 'top')593memset( rootflow->_callees, OptoReg::Bad, max_reg*sizeof(short) );594memset( rootflow->_defs , 0, max_reg*sizeof(Node*) );595flows[entry->_pre_order] = rootflow;596597// Do the first block 'by hand' to prime the worklist598rootflow->_b = entry;599rootflow->compute_reach( C->regalloc(), max_reg, safehash );600for( uint i=0; i<entry->_num_succs; i++ )601worklist.push(entry->_succs[i]);602603// Now worklist contains blocks which have some, but perhaps not all,604// predecessors visited.605while( worklist.size() ) {606// Scan for a block with all predecessors visited, or any randoms slob607// otherwise. All-preds-visited order allows me to recycle OopFlow608// structures rapidly and cut down on the memory footprint.609// Note: not all predecessors might be visited yet (must happen for610// irreducible loops). This is OK, since every live value must have the611// SAME reaching def for the block, so any reaching def is OK.612uint i;613614Block *b = worklist.pop();615// Ignore root block616if (b == C->cfg()->get_root_block()) {617continue;618}619// Block is already done? Happens if block has several predecessors,620// he can get on the worklist more than once.621if( flows[b->_pre_order] ) continue;622623// If this block has a visited predecessor AND that predecessor has this624// last block as his only undone child, we can move the OopFlow from the625// pred to this block. Otherwise we have to grab a new OopFlow.626OopFlow *flow = NULL; // Flag for finding optimized flow627Block *pred = (Block*)((intptr_t)0xdeadbeef);628// Scan this block's preds to find a done predecessor629for (uint j = 1; j < b->num_preds(); j++) {630Block* p = C->cfg()->get_block_for_node(b->pred(j));631OopFlow *p_flow = flows[p->_pre_order];632if( p_flow ) { // Predecessor is done633assert( p_flow->_b == p, "cross check" );634pred = p; // Record some predecessor635// If all successors of p are done except for 'b', then we can carry636// p_flow forward to 'b' without copying, otherwise we have to draw637// from the free_list and clone data.638uint k;639for( k=0; k<p->_num_succs; k++ )640if( !flows[p->_succs[k]->_pre_order] &&641p->_succs[k] != b )642break;643644// Either carry-forward the now-unused OopFlow for b's use645// or draw a new one from the free list646if( k==p->_num_succs ) {647flow = p_flow;648break; // Found an ideal pred, use him649}650}651}652653if( flow ) {654// We have an OopFlow that's the last-use of a predecessor.655// Carry it forward.656} else { // Draw a new OopFlow from the freelist657if( !free_list )658free_list = OopFlow::make(A,max_reg,C);659flow = free_list;660assert( flow->_b == NULL, "oopFlow is not free" );661free_list = flow->_next;662flow->_next = NULL;663664// Copy/clone over the data665flow->clone(flows[pred->_pre_order], max_reg);666}667668// Mark flow for block. Blocks can only be flowed over once,669// because after the first time they are guarded from entering670// this code again.671assert( flow->_b == pred, "have some prior flow" );672flow->_b = NULL;673674// Now push flow forward675flows[b->_pre_order] = flow;// Mark flow for this block676flow->_b = b;677flow->compute_reach( C->regalloc(), max_reg, safehash );678679// Now push children onto worklist680for( i=0; i<b->_num_succs; i++ )681worklist.push(b->_succs[i]);682683}684}685686687