be55bfe6cf
gcc/ * passes.c (opt_pass::execute): Adjust. (pass_manager::execute_pass_mode_switching): Likewise. (early_local_passes::execute): Likewise. (execute_one_pass): Pass cfun to the pass's execute method. * tree-pass.h (opt_pass::execute): Add function * argument. * asan.c, auto-inc-dec.c, bb-reorder.c, bt-load.c, cfgcleanup.c, cfgexpand.c, cfgrtl.c, cgraphbuild.c, combine-stack-adj.c, combine.c, compare-elim.c, config/arc/arc.c, config/epiphany/mode-switch-use.c, config/epiphany/resolve-sw-modes.c, config/i386/i386.c, config/mips/mips.c, config/rl78/rl78.c, config/s390/s390.c, config/sparc/sparc.c, cprop.c, dce.c, df-core.c, dse.c, dwarf2cfi.c, except.c, final.c, function.c, fwprop.c, gcse.c, gimple-low.c, gimple-ssa-isolate-paths.c, gimple-ssa-strength-reduction.c, graphite.c, ifcvt.c, init-regs.c, ipa-cp.c, ipa-devirt.c, ipa-inline-analysis.c, ipa-inline.c, ipa-profile.c, ipa-pure-const.c, ipa-reference.c, ipa-split.c, ipa.c, ira.c, jump.c, loop-init.c, lower-subreg.c, mode-switching.c, omp-low.c, postreload-gcse.c, postreload.c, predict.c, recog.c, ree.c, reg-stack.c, regcprop.c, reginfo.c, regrename.c, reorg.c, sched-rgn.c, stack-ptr-mod.c, store-motion.c, tracer.c, trans-mem.c, tree-call-cdce.c, tree-cfg.c, tree-cfgcleanup.c, tree-complex.c, tree-eh.c, tree-emutls.c, tree-if-conv.c, tree-into-ssa.c, tree-loop-distribution.c, tree-nrv.c, tree-object-size.c, tree-parloops.c, tree-predcom.c, tree-ssa-ccp.c, tree-ssa-copy.c, tree-ssa-copyrename.c, tree-ssa-dce.c, tree-ssa-dom.c, tree-ssa-dse.c, tree-ssa-forwprop.c, tree-ssa-ifcombine.c, tree-ssa-loop-ch.c, tree-ssa-loop-im.c, tree-ssa-loop-ivcanon.c, tree-ssa-loop-prefetch.c, tree-ssa-loop-unswitch.c, tree-ssa-loop.c, tree-ssa-math-opts.c, tree-ssa-phiopt.c, tree-ssa-phiprop.c, tree-ssa-pre.c, tree-ssa-reassoc.c, tree-ssa-sink.c, tree-ssa-strlen.c, tree-ssa-structalias.c, tree-ssa-uncprop.c, tree-ssa-uninit.c, tree-ssa.c, tree-ssanames.c, tree-stdarg.c, tree-switch-conversion.c, tree-tailcall.c, tree-vect-generic.c, tree-vectorizer.c, tree-vrp.c, tree.c, tsan.c, ubsan.c, var-tracking.c, vtable-verify.c, web.c: Adjust. From-SVN: r209482
782 lines
28 KiB
C
782 lines
28 KiB
C
/* Copyright (C) 2013-2014 Free Software Foundation, Inc.
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This file is part of GCC.
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GCC is free software; you can redistribute it and/or modify it under
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the terms of the GNU General Public License as published by the Free
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Software Foundation; either version 3, or (at your option) any later
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version.
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GCC is distributed in the hope that it will be useful, but WITHOUT ANY
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WARRANTY; without even the implied warranty of MERCHANTABILITY or
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FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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for more details.
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You should have received a copy of the GNU General Public License
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along with GCC; see the file COPYING3. If not see
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<http://www.gnu.org/licenses/>. */
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/* Virtual Table Pointer Security Pass - Detect corruption of vtable pointers
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before using them for virtual method dispatches. */
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/* This file is part of the vtable security feature implementation.
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The vtable security feature is designed to detect when a virtual
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call is about to be made through an invalid vtable pointer
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(possibly due to data corruption or malicious attacks). The
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compiler finds every virtual call, and inserts a verification call
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before the virtual call. The verification call takes the actual
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vtable pointer value in the object through which the virtual call
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is being made, and compares the vtable pointer against a set of all
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valid vtable pointers that the object could contain (this set is
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based on the declared type of the object). If the pointer is in
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the valid set, execution is allowed to continue; otherwise the
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program is halted.
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There are several pieces needed in order to make this work: 1. For
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every virtual class in the program (i.e. a class that contains
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virtual methods), we need to build the set of all possible valid
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vtables that an object of that class could point to. This includes
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vtables for any class(es) that inherit from the class under
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consideration. 2. For every such data set we build up, we need a
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way to find and reference the data set. This is complicated by the
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fact that the real vtable addresses are not known until runtime,
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when the program is loaded into memory, but we need to reference the
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sets at compile time when we are inserting verification calls into
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the program. 3. We need to find every virtual call in the program,
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and insert the verification call (with the appropriate arguments)
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before the virtual call. 4. We need some runtime library pieces:
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the code to build up the data sets at runtime; the code to actually
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perform the verification using the data sets; and some code to set
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protections on the data sets, so they themselves do not become
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hacker targets.
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To find and reference the set of valid vtable pointers for any given
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virtual class, we create a special global variable for each virtual
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class. We refer to this as the "vtable map variable" for that
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class. The vtable map variable has the type "void *", and is
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initialized by the compiler to NULL. At runtime when the set of
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valid vtable pointers for a virtual class, e.g. class Foo, is built,
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the vtable map variable for class Foo is made to point to the set.
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During compile time, when the compiler is inserting verification
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calls into the program, it passes the vtable map variable for the
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appropriate class to the verification call, so that at runtime the
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verification call can find the appropriate data set.
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The actual set of valid vtable pointers for a virtual class,
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e.g. class Foo, cannot be built until runtime, when the vtables get
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loaded into memory and their addresses are known. But the knowledge
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about which vtables belong in which class' hierarchy is only known
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at compile time. Therefore at compile time we collect class
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hierarchy and vtable information about every virtual class, and we
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generate calls to build up the data sets at runtime. To build the
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data sets, we call one of the functions we add to the runtime
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library, __VLTRegisterPair. __VLTRegisterPair takes two arguments,
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a vtable map variable and the address of a vtable. If the vtable
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map variable is currently NULL, it creates a new data set (hash
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table), makes the vtable map variable point to the new data set, and
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inserts the vtable address into the data set. If the vtable map
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variable is not NULL, it just inserts the vtable address into the
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data set. In order to make sure that our data sets are built before
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any verification calls happen, we create a special constructor
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initialization function for each compilation unit, give it a very
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high initialization priority, and insert all of our calls to
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__VLTRegisterPair into our special constructor initialization
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function.
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The vtable verification feature is controlled by the flag
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'-fvtable-verify='. There are three flavors of this:
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'-fvtable-verify=std', '-fvtable-verify=preinit', and
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'-fvtable-verify=none'. If the option '-fvtable-verfy=preinit' is
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used, then our constructor initialization function gets put into the
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preinit array. This is necessary if there are data sets that need
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to be built very early in execution. If the constructor
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initialization function gets put into the preinit array, the we also
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add calls to __VLTChangePermission at the beginning and end of the
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function. The call at the beginning sets the permissions on the
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data sets and vtable map variables to read/write, and the one at the
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end makes them read-only. If the '-fvtable-verify=std' option is
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used, the constructor initialization functions are executed at their
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normal time, and the __VLTChangePermission calls are handled
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differently (see the comments in libstdc++-v3/libsupc++/vtv_rts.cc).
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The option '-fvtable-verify=none' turns off vtable verification.
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This file contains code for the tree pass that goes through all the
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statements in each basic block, looking for virtual calls, and
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inserting a call to __VLTVerifyVtablePointer (with appropriate
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arguments) before each one. It also contains the hash table
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functions for the data structures used for collecting the class
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hierarchy data and building/maintaining the vtable map variable data
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are defined in gcc/vtable-verify.h. These data structures are
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shared with the code in the C++ front end that collects the class
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hierarchy & vtable information and generates the vtable map
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variables (see cp/vtable-class-hierarchy.c). This tree pass should
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run just before the gimple is converted to RTL.
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Some implementation details for this pass:
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To find all of the virtual calls, we iterate through all the
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gimple statements in each basic block, looking for any call
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statement with the code "OBJ_TYPE_REF". Once we have found the
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virtual call, we need to find the vtable pointer through which the
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call is being made, and the type of the object containing the
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pointer (to find the appropriate vtable map variable). We then use
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these to build a call to __VLTVerifyVtablePointer, passing the
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vtable map variable, and the vtable pointer. We insert the
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verification call just after the gimple statement that gets the
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vtable pointer out of the object, and we update the next
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statement to depend on the result returned from
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__VLTVerifyVtablePointer (the vtable pointer value), to ensure
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subsequent compiler phases don't remove or reorder the call (it's no
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good to have the verification occur after the virtual call, for
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example). To find the vtable pointer being used (and the type of
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the object) we search backwards through the def_stmts chain from the
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virtual call (see verify_bb_vtables for more details). */
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#include "config.h"
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#include "system.h"
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#include "coretypes.h"
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#include "tree.h"
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#include "basic-block.h"
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#include "tree-ssa-alias.h"
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#include "internal-fn.h"
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#include "gimple-expr.h"
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#include "is-a.h"
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#include "gimple.h"
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#include "gimple-iterator.h"
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#include "gimple-ssa.h"
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#include "tree-phinodes.h"
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#include "ssa-iterators.h"
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#include "stringpool.h"
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#include "tree-ssanames.h"
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#include "tree-pass.h"
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#include "cfgloop.h"
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#include "vtable-verify.h"
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unsigned num_vtable_map_nodes = 0;
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int total_num_virtual_calls = 0;
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int total_num_verified_vcalls = 0;
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extern GTY(()) tree verify_vtbl_ptr_fndecl;
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tree verify_vtbl_ptr_fndecl = NULL_TREE;
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/* Keep track of whether or not any virtual call were verified. */
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static bool any_verification_calls_generated = false;
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unsigned int vtable_verify_main (void);
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/* The following few functions are for the vtbl pointer hash table
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in the 'registered' field of the struct vtable_map_node. The hash
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table keeps track of which vtable pointers have been used in
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calls to __VLTRegisterPair with that particular vtable map variable. */
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/* This function checks to see if a particular VTABLE_DECL and OFFSET are
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already in the 'registered' hash table for NODE. */
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bool
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vtbl_map_node_registration_find (struct vtbl_map_node *node,
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tree vtable_decl,
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unsigned offset)
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{
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struct vtable_registration key;
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struct vtable_registration **slot;
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gcc_assert (node && node->registered.is_created ());
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key.vtable_decl = vtable_decl;
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slot = (struct vtable_registration **) node->registered.find_slot (&key,
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NO_INSERT);
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if (slot && (*slot))
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{
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unsigned i;
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for (i = 0; i < ((*slot)->offsets).length (); ++i)
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if ((*slot)->offsets[i] == offset)
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return true;
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}
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return false;
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}
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/* This function inserts VTABLE_DECL and OFFSET into the 'registered'
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hash table for NODE. It returns a boolean indicating whether or not
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it actually inserted anything. */
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bool
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vtbl_map_node_registration_insert (struct vtbl_map_node *node,
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tree vtable_decl,
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unsigned offset)
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{
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struct vtable_registration key;
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struct vtable_registration **slot;
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bool inserted_something = false;
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if (!node || !node->registered.is_created ())
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return false;
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key.vtable_decl = vtable_decl;
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slot = (struct vtable_registration **) node->registered.find_slot (&key,
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INSERT);
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if (! *slot)
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{
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struct vtable_registration *node;
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node = XNEW (struct vtable_registration);
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node->vtable_decl = vtable_decl;
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(node->offsets).create (10);
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(node->offsets).safe_push (offset);
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*slot = node;
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inserted_something = true;
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}
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else
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{
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/* We found the vtable_decl slot; we need to see if it already
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contains the offset. If not, we need to add the offset. */
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unsigned i;
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bool found = false;
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for (i = 0; i < ((*slot)->offsets).length () && !found; ++i)
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if ((*slot)->offsets[i] == offset)
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found = true;
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if (!found)
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{
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((*slot)->offsets).safe_push (offset);
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inserted_something = true;
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}
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}
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return inserted_something;
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}
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/* Hashtable functions for vtable_registration hashtables. */
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inline hashval_t
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registration_hasher::hash (const value_type *p)
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{
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const struct vtable_registration *n = (const struct vtable_registration *) p;
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return (hashval_t) (DECL_UID (n->vtable_decl));
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}
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inline bool
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registration_hasher::equal (const value_type *p1, const compare_type *p2)
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{
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const struct vtable_registration *n1 =
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(const struct vtable_registration *) p1;
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const struct vtable_registration *n2 =
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(const struct vtable_registration *) p2;
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return (DECL_UID (n1->vtable_decl) == DECL_UID (n2->vtable_decl));
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}
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/* End of hashtable functions for "registered" hashtables. */
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/* Hashtable definition and functions for vtbl_map_hash. */
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struct vtbl_map_hasher : typed_noop_remove <struct vtbl_map_node>
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{
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typedef struct vtbl_map_node value_type;
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typedef struct vtbl_map_node compare_type;
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static inline hashval_t hash (const value_type *);
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static inline bool equal (const value_type *, const compare_type *);
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};
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/* Returns a hash code for P. */
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inline hashval_t
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vtbl_map_hasher::hash (const value_type *p)
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{
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const struct vtbl_map_node n = *((const struct vtbl_map_node *) p);
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return (hashval_t) IDENTIFIER_HASH_VALUE (n.class_name);
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}
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/* Returns nonzero if P1 and P2 are equal. */
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inline bool
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vtbl_map_hasher::equal (const value_type *p1, const compare_type *p2)
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{
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const struct vtbl_map_node n1 = *((const struct vtbl_map_node *) p1);
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const struct vtbl_map_node n2 = *((const struct vtbl_map_node *) p2);
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return (IDENTIFIER_HASH_VALUE (n1.class_name) ==
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IDENTIFIER_HASH_VALUE (n2.class_name));
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}
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/* Here are the two structures into which we insert vtable map nodes.
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We use two data structures because of the vastly different ways we need
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to find the nodes for various tasks (see comments in vtable-verify.h
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for more details. */
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typedef hash_table <vtbl_map_hasher> vtbl_map_table_type;
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typedef vtbl_map_table_type::iterator vtbl_map_iterator_type;
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/* Vtable map variable nodes stored in a hash table. */
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static vtbl_map_table_type vtbl_map_hash;
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/* Vtable map variable nodes stored in a vector. */
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vec<struct vtbl_map_node *> vtbl_map_nodes_vec;
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/* Return vtbl_map node for CLASS_NAME without creating a new one. */
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struct vtbl_map_node *
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vtbl_map_get_node (tree class_type)
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{
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struct vtbl_map_node key;
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struct vtbl_map_node **slot;
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tree class_type_decl;
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tree class_name;
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unsigned int type_quals;
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if (!vtbl_map_hash.is_created ())
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return NULL;
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gcc_assert (TREE_CODE (class_type) == RECORD_TYPE);
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/* Find the TYPE_DECL for the class. */
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class_type_decl = TYPE_NAME (class_type);
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/* Verify that there aren't any qualifiers on the type. */
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type_quals = TYPE_QUALS (TREE_TYPE (class_type_decl));
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gcc_assert (type_quals == TYPE_UNQUALIFIED);
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/* Get the mangled name for the unqualified type. */
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gcc_assert (HAS_DECL_ASSEMBLER_NAME_P (class_type_decl));
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class_name = DECL_ASSEMBLER_NAME (class_type_decl);
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key.class_name = class_name;
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slot = (struct vtbl_map_node **) vtbl_map_hash.find_slot (&key,
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NO_INSERT);
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if (!slot)
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return NULL;
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return *slot;
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}
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/* Return vtbl_map node assigned to BASE_CLASS_TYPE. Create new one
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when needed. */
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struct vtbl_map_node *
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find_or_create_vtbl_map_node (tree base_class_type)
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{
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struct vtbl_map_node key;
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struct vtbl_map_node *node;
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struct vtbl_map_node **slot;
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tree class_type_decl;
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unsigned int type_quals;
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if (!vtbl_map_hash.is_created ())
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vtbl_map_hash.create (10);
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/* Find the TYPE_DECL for the class. */
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class_type_decl = TYPE_NAME (base_class_type);
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/* Verify that there aren't any type qualifiers on type. */
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type_quals = TYPE_QUALS (TREE_TYPE (class_type_decl));
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gcc_assert (type_quals == TYPE_UNQUALIFIED);
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gcc_assert (HAS_DECL_ASSEMBLER_NAME_P (class_type_decl));
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key.class_name = DECL_ASSEMBLER_NAME (class_type_decl);
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slot = (struct vtbl_map_node **) vtbl_map_hash.find_slot (&key,
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INSERT);
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if (*slot)
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return *slot;
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node = XNEW (struct vtbl_map_node);
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node->vtbl_map_decl = NULL_TREE;
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node->class_name = key.class_name;
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node->uid = num_vtable_map_nodes++;
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node->class_info = XNEW (struct vtv_graph_node);
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node->class_info->class_type = base_class_type;
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node->class_info->class_uid = node->uid;
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node->class_info->num_processed_children = 0;
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(node->class_info->parents).create (4);
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(node->class_info->children).create (4);
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node->registered.create (16);
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node->is_used = false;
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vtbl_map_nodes_vec.safe_push (node);
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gcc_assert (vtbl_map_nodes_vec[node->uid] == node);
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*slot = node;
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return node;
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}
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/* End of hashtable functions for vtable_map variables hash table. */
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/* Given a gimple STMT, this function checks to see if the statement
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is an assignment, the rhs of which is getting the vtable pointer
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value out of an object. (i.e. it's the value we need to verify
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because its the vtable pointer that will be used for a virtual
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call). */
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static bool
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is_vtable_assignment_stmt (gimple stmt)
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{
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|
|
if (gimple_code (stmt) != GIMPLE_ASSIGN)
|
|
return false;
|
|
else
|
|
{
|
|
tree lhs = gimple_assign_lhs (stmt);
|
|
tree rhs = gimple_assign_rhs1 (stmt);
|
|
|
|
if (TREE_CODE (lhs) != SSA_NAME)
|
|
return false;
|
|
|
|
if (TREE_CODE (rhs) != COMPONENT_REF)
|
|
return false;
|
|
|
|
if (! (TREE_OPERAND (rhs, 1))
|
|
|| (TREE_CODE (TREE_OPERAND (rhs, 1)) != FIELD_DECL))
|
|
return false;
|
|
|
|
if (! DECL_VIRTUAL_P (TREE_OPERAND (rhs, 1)))
|
|
return false;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
/* This function attempts to recover the declared class of an object
|
|
that is used in making a virtual call. We try to get the type from
|
|
the type cast in the gimple assignment statement that extracts the
|
|
vtable pointer from the object (DEF_STMT). The gimple statement
|
|
usually looks something like this:
|
|
|
|
D.2201_4 = MEM[(struct Event *)this_1(D)]._vptr.Event */
|
|
|
|
static tree
|
|
extract_object_class_type (tree rhs)
|
|
{
|
|
tree result = NULL_TREE;
|
|
|
|
/* Try to find and extract the type cast from that stmt. */
|
|
if (TREE_CODE (rhs) == COMPONENT_REF)
|
|
{
|
|
tree op0 = TREE_OPERAND (rhs, 0);
|
|
tree op1 = TREE_OPERAND (rhs, 1);
|
|
|
|
if (TREE_CODE (op1) == FIELD_DECL
|
|
&& DECL_VIRTUAL_P (op1))
|
|
{
|
|
if (TREE_CODE (op0) == COMPONENT_REF
|
|
&& TREE_CODE (TREE_OPERAND (op0, 0)) == MEM_REF
|
|
&& TREE_CODE (TREE_TYPE (TREE_OPERAND (op0, 0)))== RECORD_TYPE)
|
|
result = TREE_TYPE (TREE_OPERAND (op0, 0));
|
|
else
|
|
result = TREE_TYPE (op0);
|
|
}
|
|
else if (TREE_CODE (op0) == COMPONENT_REF)
|
|
{
|
|
result = extract_object_class_type (op0);
|
|
if (result == NULL_TREE
|
|
&& TREE_CODE (op1) == COMPONENT_REF)
|
|
result = extract_object_class_type (op1);
|
|
}
|
|
}
|
|
|
|
return result;
|
|
}
|
|
|
|
/* This function traces forward through the def-use chain of an SSA
|
|
variable to see if it ever gets used in a virtual function call. It
|
|
returns a boolean indicating whether or not it found a virtual call in
|
|
the use chain. */
|
|
|
|
static bool
|
|
var_is_used_for_virtual_call_p (tree lhs, int *mem_ref_depth)
|
|
{
|
|
imm_use_iterator imm_iter;
|
|
bool found_vcall = false;
|
|
use_operand_p use_p;
|
|
|
|
if (TREE_CODE (lhs) != SSA_NAME)
|
|
return false;
|
|
|
|
if (*mem_ref_depth > 2)
|
|
return false;
|
|
|
|
/* Iterate through the immediate uses of the current variable. If
|
|
it's a virtual function call, we're done. Otherwise, if there's
|
|
an LHS for the use stmt, add the ssa var to the work list
|
|
(assuming it's not already in the list and is not a variable
|
|
we've already examined. */
|
|
|
|
FOR_EACH_IMM_USE_FAST (use_p, imm_iter, lhs)
|
|
{
|
|
gimple stmt2 = USE_STMT (use_p);
|
|
|
|
if (is_gimple_call (stmt2))
|
|
{
|
|
tree fncall = gimple_call_fn (stmt2);
|
|
if (fncall && TREE_CODE (fncall) == OBJ_TYPE_REF)
|
|
found_vcall = true;
|
|
else
|
|
return false;
|
|
}
|
|
else if (gimple_code (stmt2) == GIMPLE_PHI)
|
|
{
|
|
found_vcall = var_is_used_for_virtual_call_p
|
|
(gimple_phi_result (stmt2),
|
|
mem_ref_depth);
|
|
}
|
|
else if (is_gimple_assign (stmt2))
|
|
{
|
|
tree rhs = gimple_assign_rhs1 (stmt2);
|
|
if (TREE_CODE (rhs) == ADDR_EXPR
|
|
|| TREE_CODE (rhs) == MEM_REF)
|
|
*mem_ref_depth = *mem_ref_depth + 1;
|
|
|
|
if (TREE_CODE (rhs) == COMPONENT_REF)
|
|
{
|
|
while (TREE_CODE (TREE_OPERAND (rhs, 0)) == COMPONENT_REF)
|
|
rhs = TREE_OPERAND (rhs, 0);
|
|
|
|
if (TREE_CODE (TREE_OPERAND (rhs, 0)) == ADDR_EXPR
|
|
|| TREE_CODE (TREE_OPERAND (rhs, 0)) == MEM_REF)
|
|
*mem_ref_depth = *mem_ref_depth + 1;
|
|
}
|
|
|
|
if (*mem_ref_depth < 3)
|
|
found_vcall = var_is_used_for_virtual_call_p
|
|
(gimple_assign_lhs (stmt2),
|
|
mem_ref_depth);
|
|
}
|
|
|
|
else
|
|
break;
|
|
|
|
if (found_vcall)
|
|
return true;
|
|
}
|
|
|
|
return false;
|
|
}
|
|
|
|
/* Search through all the statements in a basic block (BB), searching
|
|
for virtual method calls. For each virtual method dispatch, find
|
|
the vptr value used, and the statically declared type of the
|
|
object; retrieve the vtable map variable for the type of the
|
|
object; generate a call to __VLTVerifyVtablePointer; and insert the
|
|
generated call into the basic block, after the point where the vptr
|
|
value is gotten out of the object and before the virtual method
|
|
dispatch. Make the virtual method dispatch depend on the return
|
|
value from the verification call, so that subsequent optimizations
|
|
cannot reorder the two calls. */
|
|
|
|
static void
|
|
verify_bb_vtables (basic_block bb)
|
|
{
|
|
gimple_seq stmts;
|
|
gimple stmt = NULL;
|
|
gimple_stmt_iterator gsi_vtbl_assign;
|
|
gimple_stmt_iterator gsi_virtual_call;
|
|
|
|
stmts = bb_seq (bb);
|
|
gsi_virtual_call = gsi_start (stmts);
|
|
for (; !gsi_end_p (gsi_virtual_call); gsi_next (&gsi_virtual_call))
|
|
{
|
|
stmt = gsi_stmt (gsi_virtual_call);
|
|
|
|
/* Count virtual calls. */
|
|
if (is_gimple_call (stmt))
|
|
{
|
|
tree fncall = gimple_call_fn (stmt);
|
|
if (fncall && TREE_CODE (fncall) == OBJ_TYPE_REF)
|
|
total_num_virtual_calls++;
|
|
}
|
|
|
|
if (is_vtable_assignment_stmt (stmt))
|
|
{
|
|
tree lhs = gimple_assign_lhs (stmt);
|
|
tree vtbl_var_decl = NULL_TREE;
|
|
struct vtbl_map_node *vtable_map_node;
|
|
tree vtbl_decl = NULL_TREE;
|
|
gimple call_stmt;
|
|
const char *vtable_name = "<unknown>";
|
|
tree tmp0;
|
|
bool found;
|
|
int mem_ref_depth = 0;
|
|
|
|
/* Make sure this vptr field access is for a virtual call. */
|
|
if (!var_is_used_for_virtual_call_p (lhs, &mem_ref_depth))
|
|
continue;
|
|
|
|
/* Now we have found the virtual method dispatch and
|
|
the preceding access of the _vptr.* field... Next
|
|
we need to find the statically declared type of
|
|
the object, so we can find and use the right
|
|
vtable map variable in the verification call. */
|
|
tree class_type = extract_object_class_type
|
|
(gimple_assign_rhs1 (stmt));
|
|
|
|
gsi_vtbl_assign = gsi_for_stmt (stmt);
|
|
|
|
if (class_type
|
|
&& (TREE_CODE (class_type) == RECORD_TYPE)
|
|
&& TYPE_BINFO (class_type))
|
|
{
|
|
/* Get the vtable VAR_DECL for the type. */
|
|
vtbl_var_decl = BINFO_VTABLE (TYPE_BINFO (class_type));
|
|
|
|
if (TREE_CODE (vtbl_var_decl) == POINTER_PLUS_EXPR)
|
|
vtbl_var_decl = TREE_OPERAND (TREE_OPERAND (vtbl_var_decl, 0),
|
|
0);
|
|
|
|
gcc_assert (vtbl_var_decl);
|
|
|
|
vtbl_decl = vtbl_var_decl;
|
|
vtable_map_node = vtbl_map_get_node
|
|
(TYPE_MAIN_VARIANT (class_type));
|
|
|
|
gcc_assert (verify_vtbl_ptr_fndecl);
|
|
|
|
/* Given the vtable pointer for the base class of the
|
|
object, build the call to __VLTVerifyVtablePointer to
|
|
verify that the object's vtable pointer (contained in
|
|
lhs) is in the set of valid vtable pointers for the
|
|
base class. */
|
|
|
|
if (vtable_map_node && vtable_map_node->vtbl_map_decl)
|
|
{
|
|
vtable_map_node->is_used = true;
|
|
vtbl_var_decl = vtable_map_node->vtbl_map_decl;
|
|
|
|
if (TREE_CODE (vtbl_decl) == VAR_DECL)
|
|
vtable_name = IDENTIFIER_POINTER (DECL_NAME (vtbl_decl));
|
|
|
|
/* Call different routines if we are interested in
|
|
trace information to debug problems. */
|
|
if (flag_vtv_debug)
|
|
{
|
|
int len1 = IDENTIFIER_LENGTH
|
|
(DECL_NAME (vtbl_var_decl));
|
|
int len2 = strlen (vtable_name);
|
|
|
|
call_stmt = gimple_build_call
|
|
(verify_vtbl_ptr_fndecl, 4,
|
|
build1 (ADDR_EXPR,
|
|
TYPE_POINTER_TO
|
|
(TREE_TYPE (vtbl_var_decl)),
|
|
vtbl_var_decl),
|
|
lhs,
|
|
build_string_literal
|
|
(len1 + 1,
|
|
IDENTIFIER_POINTER
|
|
(DECL_NAME
|
|
(vtbl_var_decl))),
|
|
build_string_literal (len2 + 1,
|
|
vtable_name));
|
|
}
|
|
else
|
|
call_stmt = gimple_build_call
|
|
(verify_vtbl_ptr_fndecl, 2,
|
|
build1 (ADDR_EXPR,
|
|
TYPE_POINTER_TO
|
|
(TREE_TYPE (vtbl_var_decl)),
|
|
vtbl_var_decl),
|
|
lhs);
|
|
|
|
|
|
/* Create a new SSA_NAME var to hold the call's
|
|
return value, and make the call_stmt use the
|
|
variable for that purpose. */
|
|
tmp0 = make_temp_ssa_name (TREE_TYPE (lhs), NULL, "VTV");
|
|
gimple_call_set_lhs (call_stmt, tmp0);
|
|
update_stmt (call_stmt);
|
|
|
|
/* Replace all uses of lhs with tmp0. */
|
|
found = false;
|
|
imm_use_iterator iterator;
|
|
gimple use_stmt;
|
|
FOR_EACH_IMM_USE_STMT (use_stmt, iterator, lhs)
|
|
{
|
|
use_operand_p use_p;
|
|
if (use_stmt == call_stmt)
|
|
continue;
|
|
FOR_EACH_IMM_USE_ON_STMT (use_p, iterator)
|
|
SET_USE (use_p, tmp0);
|
|
update_stmt (use_stmt);
|
|
found = true;
|
|
}
|
|
|
|
gcc_assert (found);
|
|
|
|
/* Insert the new verification call just after the
|
|
statement that gets the vtable pointer out of the
|
|
object. */
|
|
gcc_assert (gsi_stmt (gsi_vtbl_assign) == stmt);
|
|
gsi_insert_after (&gsi_vtbl_assign, call_stmt,
|
|
GSI_NEW_STMT);
|
|
|
|
any_verification_calls_generated = true;
|
|
total_num_verified_vcalls++;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
/* Definition of this optimization pass. */
|
|
|
|
namespace {
|
|
|
|
const pass_data pass_data_vtable_verify =
|
|
{
|
|
GIMPLE_PASS, /* type */
|
|
"vtable-verify", /* name */
|
|
OPTGROUP_NONE, /* optinfo_flags */
|
|
true, /* has_execute */
|
|
TV_VTABLE_VERIFICATION, /* tv_id */
|
|
( PROP_cfg | PROP_ssa ), /* properties_required */
|
|
0, /* properties_provided */
|
|
0, /* properties_destroyed */
|
|
0, /* todo_flags_start */
|
|
TODO_update_ssa, /* todo_flags_finish */
|
|
};
|
|
|
|
class pass_vtable_verify : public gimple_opt_pass
|
|
{
|
|
public:
|
|
pass_vtable_verify (gcc::context *ctxt)
|
|
: gimple_opt_pass (pass_data_vtable_verify, ctxt)
|
|
{}
|
|
|
|
/* opt_pass methods: */
|
|
virtual bool gate (function *) { return (flag_vtable_verify); }
|
|
virtual unsigned int execute (function *);
|
|
|
|
}; // class pass_vtable_verify
|
|
|
|
/* Loop through all the basic blocks in the current function, passing them to
|
|
verify_bb_vtables, which searches for virtual calls, and inserts
|
|
calls to __VLTVerifyVtablePointer. */
|
|
|
|
unsigned int
|
|
pass_vtable_verify::execute (function *fun)
|
|
{
|
|
unsigned int ret = 1;
|
|
basic_block bb;
|
|
|
|
FOR_ALL_BB_FN (bb, fun)
|
|
verify_bb_vtables (bb);
|
|
|
|
return ret;
|
|
}
|
|
|
|
} // anon namespace
|
|
|
|
gimple_opt_pass *
|
|
make_pass_vtable_verify (gcc::context *ctxt)
|
|
{
|
|
return new pass_vtable_verify (ctxt);
|
|
}
|
|
|
|
#include "gt-vtable-verify.h"
|