Symbol type is part of the info provided by an ELF object's symtab. It indicates whether a symbol is a file symbol, or a function symbol, etc. Change-Id: I827e79f8439c47ac9e889734aaf354c653aff530 Signed-off-by: Hoa Nguyen <hn@hnpl.org>
613 lines
18 KiB
C++
613 lines
18 KiB
C++
/*
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* Copyright (c) 2010-2012, 2015, 2017 ARM Limited
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* Copyright (c) 2020 Barkhausen Institut
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* All rights reserved
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*
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* The license below extends only to copyright in the software and shall
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* not be construed as granting a license to any other intellectual
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* property including but not limited to intellectual property relating
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* to a hardware implementation of the functionality of the software
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* licensed hereunder. You may use the software subject to the license
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* terms below provided that you ensure that this notice is replicated
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* unmodified and in its entirety in all distributions of the software,
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* modified or unmodified, in source code or in binary form.
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*
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* Copyright (c) 2011 Advanced Micro Devices, Inc.
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* Copyright (c) 2003-2006 The Regents of The University of Michigan
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are
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* met: redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer;
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* redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in the
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* documentation and/or other materials provided with the distribution;
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* neither the name of the copyright holders nor the names of its
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* contributors may be used to endorse or promote products derived from
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* this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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* OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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* LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#include "sim/pseudo_inst.hh"
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#include <fcntl.h>
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#include <unistd.h>
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#include <array>
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#include <cerrno>
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#include <fstream>
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#include <string>
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#include <vector>
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#include "base/debug.hh"
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#include "base/output.hh"
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#include "cpu/base.hh"
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#include "cpu/thread_context.hh"
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#include "debug/Loader.hh"
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#include "debug/Quiesce.hh"
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#include "debug/WorkItems.hh"
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#include "dev/net/dist_iface.hh"
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#include "mem/se_translating_port_proxy.hh"
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#include "mem/translating_port_proxy.hh"
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#include "params/BaseCPU.hh"
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#include "sim/full_system.hh"
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#include "sim/process.hh"
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#include "sim/serialize.hh"
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#include "sim/sim_events.hh"
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#include "sim/sim_exit.hh"
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#include "sim/stat_control.hh"
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#include "sim/stats.hh"
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#include "sim/system.hh"
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namespace gem5
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{
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using namespace statistics;
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namespace pseudo_inst
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{
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/**
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* Unique keys to retrieve various params by the initParam pseudo inst.
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*
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* @note Each key may be at most 16 characters (because we use
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* two 64-bit registers to pass in the key to the initparam function).
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*/
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namespace
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{
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/**
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* The default key (empty string)
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*/
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const std::string DEFAULT = "";
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/**
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* Unique key for "rank" param (distributed gem5 runs)
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*/
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const std::string DIST_RANK = "dist-rank";
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/**
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* Unique key for "size" param (distributed gem5 runs)
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*/
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const std::string DIST_SIZE = "dist-size";
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} // anonymous namespace
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void
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arm(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::arm()\n");
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auto *workload = tc->getSystemPtr()->workload;
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if (workload)
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workload->recordArm();
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}
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void
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quiesce(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::quiesce()\n");
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tc->quiesce();
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}
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void
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quiesceSkip(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::quiesceSkip()\n");
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tc->quiesceTick(tc->getCpuPtr()->nextCycle() + 1);
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}
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void
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quiesceNs(ThreadContext *tc, uint64_t ns)
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{
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DPRINTF(PseudoInst, "pseudo_inst::quiesceNs(%i)\n", ns);
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tc->quiesceTick(curTick() + sim_clock::as_int::ns * ns);
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}
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void
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quiesceCycles(ThreadContext *tc, uint64_t cycles)
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{
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DPRINTF(PseudoInst, "pseudo_inst::quiesceCycles(%i)\n", cycles);
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tc->quiesceTick(tc->getCpuPtr()->clockEdge(Cycles(cycles)));
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}
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uint64_t
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quiesceTime(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::quiesceTime()\n");
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return (tc->readLastActivate() - tc->readLastSuspend()) /
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sim_clock::as_int::ns;
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}
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uint64_t
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rpns(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::rpns()\n");
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return curTick() / sim_clock::as_int::ns;
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}
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void
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wakeCPU(ThreadContext *tc, uint64_t cpuid)
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{
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DPRINTF(PseudoInst, "pseudo_inst::wakeCPU(%i)\n", cpuid);
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System *sys = tc->getSystemPtr();
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if (sys->threads.size() <= cpuid) {
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warn("pseudo_inst::wakeCPU(%i), cpuid greater than number of contexts"
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"(%i)\n", cpuid, sys->threads.size());
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return;
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}
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ThreadContext *other_tc = sys->threads[cpuid];
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if (other_tc->status() == ThreadContext::Suspended)
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other_tc->activate();
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}
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void
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m5exit(ThreadContext *tc, Tick delay)
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{
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DPRINTF(PseudoInst, "pseudo_inst::m5exit(%i)\n", delay);
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if (DistIface::readyToExit(delay)) {
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Tick when = curTick() + delay * sim_clock::as_int::ns;
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exitSimLoop("m5_exit instruction encountered", 0, when, 0, true);
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}
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}
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// m5sum is for sanity checking the gem5 op interface.
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uint64_t
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m5sum(ThreadContext *tc, uint64_t a, uint64_t b, uint64_t c,
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uint64_t d, uint64_t e, uint64_t f)
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{
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DPRINTF(PseudoInst, "pseudo_inst::m5sum(%#x, %#x, %#x, %#x, %#x, %#x)\n",
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a, b, c, d, e, f);
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return a + b + c + d + e + f;
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}
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void
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m5fail(ThreadContext *tc, Tick delay, uint64_t code)
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{
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DPRINTF(PseudoInst, "pseudo_inst::m5fail(%i, %i)\n", delay, code);
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Tick when = curTick() + delay * sim_clock::as_int::ns;
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exitSimLoop("m5_fail instruction encountered", code, when, 0, true);
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}
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void
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loadsymbol(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::loadsymbol()\n");
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const std::string &filename = tc->getCpuPtr()->system->params().symbolfile;
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if (filename.empty()) {
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return;
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}
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std::string buffer;
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std::ifstream file(filename.c_str());
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if (!file)
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fatal("file error: Can't open symbol table file %s\n", filename);
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while (!file.eof()) {
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getline(file, buffer);
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if (buffer.empty())
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continue;
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std::string::size_type idx = buffer.find(' ');
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if (idx == std::string::npos)
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continue;
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std::string address = "0x" + buffer.substr(0, idx);
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eat_white(address);
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if (address.empty())
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continue;
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// Skip over letter and space
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std::string symbol = buffer.substr(idx + 3);
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eat_white(symbol);
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if (symbol.empty())
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continue;
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Addr addr;
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if (!to_number(address, addr))
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continue;
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if (!tc->getSystemPtr()->workload->insertSymbol(
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{ loader::Symbol::Binding::Global,
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loader::Symbol::SymbolType::Function, symbol, addr })) {
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continue;
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}
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DPRINTF(Loader, "Loaded symbol: %s @ %#llx\n", symbol, addr);
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}
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file.close();
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}
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void
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addsymbol(ThreadContext *tc, Addr addr, Addr symbolAddr)
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{
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DPRINTF(PseudoInst, "pseudo_inst::addsymbol(0x%x, 0x%x)\n",
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addr, symbolAddr);
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std::string symbol;
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TranslatingPortProxy fs_proxy(tc);
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SETranslatingPortProxy se_proxy(tc);
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PortProxy &virt_proxy = FullSystem ? fs_proxy : se_proxy;
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virt_proxy.readString(symbol, symbolAddr);
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DPRINTF(Loader, "Loaded symbol: %s @ %#llx\n", symbol, addr);
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tc->getSystemPtr()->workload->insertSymbol(
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{ loader::Symbol::Binding::Global,
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loader::Symbol::SymbolType::Function, symbol, addr }
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);
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loader::debugSymbolTable.insert(
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{ loader::Symbol::Binding::Global,
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loader::Symbol::SymbolType::Function, symbol, addr }
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);
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}
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uint64_t
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initParam(ThreadContext *tc, uint64_t key_str1, uint64_t key_str2)
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{
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DPRINTF(PseudoInst, "pseudo_inst::initParam() key:%s%s\n",
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(char *)&key_str1, (char *)&key_str2);
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// The key parameter string is passed in via two 64-bit registers. We copy
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// out the characters from the 64-bit integer variables here, and
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// concatenate them in the key character buffer
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const int len = 2 * sizeof(uint64_t) + 1;
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char key[len];
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std::memset(key, '\0', len);
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std::array<uint64_t, 2> key_regs = {{ key_str1, key_str2 }};
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key_regs = letoh(key_regs);
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std::memcpy(key, key_regs.data(), sizeof(key_regs));
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// Check key parameter to figure out what to return.
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const std::string key_str(key);
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if (key == DEFAULT)
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return tc->getCpuPtr()->system->init_param;
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else if (key == DIST_RANK)
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return DistIface::rankParam();
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else if (key == DIST_SIZE)
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return DistIface::sizeParam();
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else
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panic("Unknown key for initparam pseudo instruction:\"%s\"", key_str);
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}
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void
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resetstats(ThreadContext *tc, Tick delay, Tick period)
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{
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DPRINTF(PseudoInst, "pseudo_inst::resetstats(%i, %i)\n", delay, period);
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if (!tc->getCpuPtr()->params().do_statistics_insts)
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return;
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Tick when = curTick() + delay * sim_clock::as_int::ns;
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Tick repeat = period * sim_clock::as_int::ns;
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statistics::schedStatEvent(false, true, when, repeat);
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}
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void
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dumpstats(ThreadContext *tc, Tick delay, Tick period)
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{
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DPRINTF(PseudoInst, "pseudo_inst::dumpstats(%i, %i)\n", delay, period);
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if (!tc->getCpuPtr()->params().do_statistics_insts)
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return;
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Tick when = curTick() + delay * sim_clock::as_int::ns;
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Tick repeat = period * sim_clock::as_int::ns;
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statistics::schedStatEvent(true, false, when, repeat);
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}
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void
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dumpresetstats(ThreadContext *tc, Tick delay, Tick period)
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{
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DPRINTF(PseudoInst, "pseudo_inst::dumpresetstats(%i, %i)\n", delay,
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period);
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if (!tc->getCpuPtr()->params().do_statistics_insts)
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return;
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Tick when = curTick() + delay * sim_clock::as_int::ns;
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Tick repeat = period * sim_clock::as_int::ns;
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statistics::schedStatEvent(true, true, when, repeat);
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}
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void
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m5checkpoint(ThreadContext *tc, Tick delay, Tick period)
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{
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DPRINTF(PseudoInst, "pseudo_inst::m5checkpoint(%i, %i)\n", delay, period);
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if (!tc->getCpuPtr()->params().do_checkpoint_insts)
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return;
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if (DistIface::readyToCkpt(delay, period)) {
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Tick when = curTick() + delay * sim_clock::as_int::ns;
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Tick repeat = period * sim_clock::as_int::ns;
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exitSimLoop("checkpoint", 0, when, repeat);
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}
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}
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uint64_t
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readfile(ThreadContext *tc, Addr vaddr, uint64_t len, uint64_t offset)
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{
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DPRINTF(PseudoInst, "pseudo_inst::readfile(0x%x, 0x%x, 0x%x)\n",
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vaddr, len, offset);
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const std::string &file = tc->getSystemPtr()->params().readfile;
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if (file.empty()) {
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return 0;
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}
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uint64_t result = 0;
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int fd = ::open(file.c_str(), O_RDONLY, 0);
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if (fd < 0)
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panic("could not open file %s\n", file);
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if (::lseek(fd, offset, SEEK_SET) < 0)
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panic("could not seek: %s", strerror(errno));
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char *buf = new char[len];
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char *p = buf;
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while (len > 0) {
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int bytes = ::read(fd, p, len);
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if (bytes <= 0)
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break;
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p += bytes;
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result += bytes;
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len -= bytes;
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}
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close(fd);
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TranslatingPortProxy fs_proxy(tc);
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SETranslatingPortProxy se_proxy(tc);
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PortProxy &virt_proxy = FullSystem ? fs_proxy : se_proxy;
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virt_proxy.writeBlob(vaddr, buf, result);
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delete [] buf;
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return result;
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}
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uint64_t
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writefile(ThreadContext *tc, Addr vaddr, uint64_t len, uint64_t offset,
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Addr filename_addr)
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{
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DPRINTF(PseudoInst, "pseudo_inst::writefile(0x%x, 0x%x, 0x%x, 0x%x)\n",
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vaddr, len, offset, filename_addr);
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// copy out target filename
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std::string filename;
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TranslatingPortProxy fs_proxy(tc);
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SETranslatingPortProxy se_proxy(tc);
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PortProxy &virt_proxy = FullSystem ? fs_proxy : se_proxy;
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virt_proxy.readString(filename, filename_addr);
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OutputStream *out;
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if (offset == 0) {
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// create a new file (truncate)
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out = simout.create(filename, true, true);
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} else {
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// do not truncate file if offset is non-zero
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// (ios::in flag is required as well to keep the existing data
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// intact, otherwise existing data will be zeroed out.)
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out = simout.open(filename,
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std::ios::in | std::ios::out | std::ios::binary, true);
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}
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std::ostream *os(out->stream());
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if (!os)
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panic("could not open file %s\n", filename);
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if (offset != 0) {
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// seek to offset
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os->seekp(offset);
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}
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// copy out data and write to file
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char *buf = new char[len];
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virt_proxy.readBlob(vaddr, buf, len);
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os->write(buf, len);
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if (os->fail() || os->bad())
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panic("Error while doing writefile!\n");
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simout.close(out);
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delete [] buf;
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return len;
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}
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void
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debugbreak(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::debugbreak()\n");
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debug::breakpoint();
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}
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void
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switchcpu(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::switchcpu()\n");
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exitSimLoop("switchcpu");
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}
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void
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togglesync(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::togglesync()\n");
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DistIface::toggleSync(tc);
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}
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void
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triggerWorkloadEvent(ThreadContext *tc)
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{
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DPRINTF(PseudoInst, "pseudo_inst::triggerWorkloadEvent()\n");
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tc->getSystemPtr()->workload->event(tc);
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}
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//
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// This function is executed when annotated work items begin. Depending on
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// what the user specified at the command line, the simulation may exit and/or
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// take a checkpoint when a certain work item begins.
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//
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void
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workbegin(ThreadContext *tc, uint64_t workid, uint64_t threadid)
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{
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DPRINTF(PseudoInst, "pseudo_inst::workbegin(%i, %i)\n", workid, threadid);
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System *sys = tc->getSystemPtr();
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const System::Params ¶ms = sys->params();
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if (params.exit_on_work_items) {
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exitSimLoop("workbegin", static_cast<int>(workid));
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return;
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}
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DPRINTF(WorkItems, "Work Begin workid: %d, threadid %d\n", workid,
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threadid);
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tc->getCpuPtr()->workItemBegin();
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sys->workItemBegin(threadid, workid);
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//
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// If specified, determine if this is the specific work item the user
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// identified
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//
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if (params.work_item_id == -1 || params.work_item_id == workid) {
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uint64_t systemWorkBeginCount = sys->incWorkItemsBegin();
|
|
int cpuId = tc->getCpuPtr()->cpuId();
|
|
|
|
if (params.work_cpus_ckpt_count != 0 &&
|
|
sys->markWorkItem(cpuId) >= params.work_cpus_ckpt_count) {
|
|
//
|
|
// If active cpus equals checkpoint count, create checkpoint
|
|
//
|
|
exitSimLoop("checkpoint");
|
|
}
|
|
|
|
if (systemWorkBeginCount == params.work_begin_ckpt_count) {
|
|
//
|
|
// Note: the string specified as the cause of the exit event must
|
|
// exactly equal "checkpoint" inorder to create a checkpoint
|
|
//
|
|
exitSimLoop("checkpoint");
|
|
}
|
|
|
|
if (systemWorkBeginCount == params.work_begin_exit_count) {
|
|
//
|
|
// If a certain number of work items started, exit simulation
|
|
//
|
|
exitSimLoop("work started count reach");
|
|
}
|
|
|
|
if (cpuId == params.work_begin_cpu_id_exit) {
|
|
//
|
|
// If work started on the cpu id specified, exit simulation
|
|
//
|
|
exitSimLoop("work started on specific cpu");
|
|
}
|
|
}
|
|
}
|
|
|
|
//
|
|
// This function is executed when annotated work items end. Depending on
|
|
// what the user specified at the command line, the simulation may exit and/or
|
|
// take a checkpoint when a certain work item ends.
|
|
//
|
|
void
|
|
workend(ThreadContext *tc, uint64_t workid, uint64_t threadid)
|
|
{
|
|
DPRINTF(PseudoInst, "pseudo_inst::workend(%i, %i)\n", workid, threadid);
|
|
System *sys = tc->getSystemPtr();
|
|
const System::Params ¶ms = sys->params();
|
|
|
|
if (params.exit_on_work_items) {
|
|
exitSimLoop("workend", static_cast<int>(workid));
|
|
return;
|
|
}
|
|
|
|
DPRINTF(WorkItems, "Work End workid: %d, threadid %d\n", workid, threadid);
|
|
tc->getCpuPtr()->workItemEnd();
|
|
sys->workItemEnd(threadid, workid);
|
|
|
|
//
|
|
// If specified, determine if this is the specific work item the user
|
|
// identified
|
|
//
|
|
if (params.work_item_id == -1 || params.work_item_id == workid) {
|
|
|
|
uint64_t systemWorkEndCount = sys->incWorkItemsEnd();
|
|
int cpuId = tc->getCpuPtr()->cpuId();
|
|
|
|
if (params.work_cpus_ckpt_count != 0 &&
|
|
sys->markWorkItem(cpuId) >= params.work_cpus_ckpt_count) {
|
|
//
|
|
// If active cpus equals checkpoint count, create checkpoint
|
|
//
|
|
exitSimLoop("checkpoint");
|
|
}
|
|
|
|
if (params.work_end_ckpt_count != 0 &&
|
|
systemWorkEndCount == params.work_end_ckpt_count) {
|
|
//
|
|
// If total work items completed equals checkpoint count, create
|
|
// checkpoint
|
|
//
|
|
exitSimLoop("checkpoint");
|
|
}
|
|
|
|
if (params.work_end_exit_count != 0 &&
|
|
systemWorkEndCount == params.work_end_exit_count) {
|
|
//
|
|
// If total work items completed equals exit count, exit simulation
|
|
//
|
|
exitSimLoop("work items exit count reached");
|
|
}
|
|
}
|
|
}
|
|
|
|
} // namespace pseudo_inst
|
|
} // namespace gem5
|