Change-Id: If5f1c09b3988bc009821330ca128ff22a54c0e88 Reviewed-on: https://gem5-review.googlesource.com/c/public/gem5/+/41741 Maintainer: Bobby R. Bruce <bbruce@ucdavis.edu> Tested-by: kokoro <noreply+kokoro@google.com> Reviewed-by: Gabe Black <gabe.black@gmail.com>
392 lines
14 KiB
C++
392 lines
14 KiB
C++
/*
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* Copyright (c) 2003-2004 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 "arch/sparc/process.hh"
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#include "arch/sparc/asi.hh"
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#include "arch/sparc/handlers.hh"
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#include "arch/sparc/page_size.hh"
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#include "arch/sparc/regs/int.hh"
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#include "arch/sparc/regs/misc.hh"
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#include "arch/sparc/types.hh"
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#include "base/loader/elf_object.hh"
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#include "base/loader/object_file.hh"
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#include "base/logging.hh"
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#include "cpu/thread_context.hh"
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#include "debug/Stack.hh"
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#include "mem/page_table.hh"
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#include "params/Process.hh"
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#include "sim/aux_vector.hh"
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#include "sim/byteswap.hh"
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#include "sim/process_impl.hh"
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#include "sim/syscall_return.hh"
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#include "sim/system.hh"
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using namespace SparcISA;
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SparcProcess::SparcProcess(const ProcessParams ¶ms,
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::Loader::ObjectFile *objFile, Addr _StackBias)
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: Process(params,
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new EmulationPageTable(params.name, params.pid, PageBytes),
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objFile),
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StackBias(_StackBias)
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{
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fatal_if(params.useArchPT, "Arch page tables not implemented.");
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// Initialize these to 0s
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fillStart = 0;
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spillStart = 0;
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}
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void
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SparcProcess::initState()
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{
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Process::initState();
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ThreadContext *tc = system->threads[contextIds[0]];
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// From the SPARC ABI
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// Setup default FP state
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tc->setMiscRegNoEffect(MISCREG_FSR, 0);
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tc->setMiscRegNoEffect(MISCREG_TICK, 0);
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/*
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* Register window management registers
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*/
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// No windows contain info from other programs
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tc->setIntReg(INTREG_OTHERWIN, 0);
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// There are no windows to pop
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tc->setIntReg(INTREG_CANRESTORE, 0);
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// All windows are available to save into
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tc->setIntReg(INTREG_CANSAVE, NWindows - 2);
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// All windows are "clean"
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tc->setIntReg(INTREG_CLEANWIN, NWindows);
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// Start with register window 0
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tc->setMiscReg(MISCREG_CWP, 0);
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// Always use spill and fill traps 0
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tc->setIntReg(INTREG_WSTATE, 0);
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// Set the trap level to 0
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tc->setMiscRegNoEffect(MISCREG_TL, 0);
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// Set the ASI register to something fixed
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tc->setMiscReg(MISCREG_ASI, ASI_PRIMARY);
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// Set the MMU Primary Context Register to hold the process' pid
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tc->setMiscReg(MISCREG_MMU_P_CONTEXT, _pid);
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/*
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* T1 specific registers
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*/
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// Turn on the icache, dcache, dtb translation, and itb translation.
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tc->setMiscRegNoEffect(MISCREG_MMU_LSU_CTRL, 15);
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}
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void
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Sparc32Process::initState()
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{
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SparcProcess::initState();
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ThreadContext *tc = system->threads[contextIds[0]];
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// The process runs in user mode with 32 bit addresses
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PSTATE pstate = 0;
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pstate.ie = 1;
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pstate.am = 1;
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tc->setMiscReg(MISCREG_PSTATE, pstate);
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argsInit(32 / 8, PageBytes);
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}
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void
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Sparc64Process::initState()
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{
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SparcProcess::initState();
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ThreadContext *tc = system->threads[contextIds[0]];
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// The process runs in user mode
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PSTATE pstate = 0;
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pstate.ie = 1;
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tc->setMiscReg(MISCREG_PSTATE, pstate);
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argsInit(sizeof(RegVal), PageBytes);
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}
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template<class IntType>
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void
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SparcProcess::argsInit(int pageSize)
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{
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int intSize = sizeof(IntType);
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std::vector<AuxVector<IntType>> auxv;
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std::string filename;
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if (argv.size() < 1)
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filename = "";
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else
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filename = argv[0];
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// Even for a 32 bit process, the ABI says we still need to
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// maintain double word alignment of the stack pointer.
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uint64_t align = 16;
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enum hardwareCaps
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{
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M5_HWCAP_SPARC_FLUSH = 1,
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M5_HWCAP_SPARC_STBAR = 2,
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M5_HWCAP_SPARC_SWAP = 4,
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M5_HWCAP_SPARC_MULDIV = 8,
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M5_HWCAP_SPARC_V9 = 16,
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// This one should technically only be set
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// if there is a cheetah or cheetah_plus tlb,
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// but we'll use it all the time
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M5_HWCAP_SPARC_ULTRA3 = 32
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};
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const int64_t hwcap =
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M5_HWCAP_SPARC_FLUSH |
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M5_HWCAP_SPARC_STBAR |
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M5_HWCAP_SPARC_SWAP |
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M5_HWCAP_SPARC_MULDIV |
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M5_HWCAP_SPARC_V9 |
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M5_HWCAP_SPARC_ULTRA3;
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// Setup the auxilliary vectors. These will already have endian conversion.
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// Auxilliary vectors are loaded only for elf formatted executables.
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auto *elfObject = dynamic_cast<::Loader::ElfObject *>(objFile);
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if (elfObject) {
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// Bits which describe the system hardware capabilities
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auxv.emplace_back(M5_AT_HWCAP, hwcap);
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// The system page size
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auxv.emplace_back(M5_AT_PAGESZ, SparcISA::PageBytes);
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// Defined to be 100 in the kernel source.
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// Frequency at which times() increments
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auxv.emplace_back(M5_AT_CLKTCK, 100);
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// For statically linked executables, this is the virtual address of
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// the program header tables if they appear in the executable image
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auxv.emplace_back(M5_AT_PHDR, elfObject->programHeaderTable());
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// This is the size of a program header entry from the elf file.
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auxv.emplace_back(M5_AT_PHENT, elfObject->programHeaderSize());
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// This is the number of program headers from the original elf file.
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auxv.emplace_back(M5_AT_PHNUM, elfObject->programHeaderCount());
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// This is the base address of the ELF interpreter; it should be
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// zero for static executables or contain the base address for
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// dynamic executables.
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auxv.emplace_back(M5_AT_BASE, getBias());
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// This is hardwired to 0 in the elf loading code in the kernel
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auxv.emplace_back(M5_AT_FLAGS, 0);
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// The entry point to the program
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auxv.emplace_back(M5_AT_ENTRY, objFile->entryPoint());
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// Different user and group IDs
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auxv.emplace_back(M5_AT_UID, uid());
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auxv.emplace_back(M5_AT_EUID, euid());
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auxv.emplace_back(M5_AT_GID, gid());
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auxv.emplace_back(M5_AT_EGID, egid());
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// Whether to enable "secure mode" in the executable
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auxv.emplace_back(M5_AT_SECURE, 0);
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// The address of 16 "random" bytes.
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auxv.emplace_back(M5_AT_RANDOM, 0);
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}
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// Figure out how big the initial stack needs to be
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// The unaccounted for 8 byte 0 at the top of the stack
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int sentry_size = 8;
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// This is the name of the file which is present on the initial stack
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// It's purpose is to let the user space linker examine the original file.
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int file_name_size = filename.size() + 1;
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const int numRandomBytes = 16;
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int aux_data_size = numRandomBytes;
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int env_data_size = 0;
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for (int i = 0; i < envp.size(); ++i) {
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env_data_size += envp[i].size() + 1;
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}
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int arg_data_size = 0;
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for (int i = 0; i < argv.size(); ++i) {
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arg_data_size += argv[i].size() + 1;
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}
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// The info_block.
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int base_info_block_size =
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sentry_size + file_name_size + env_data_size + arg_data_size;
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int info_block_size = roundUp(base_info_block_size, align);
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int info_block_padding = info_block_size - base_info_block_size;
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// Each auxilliary vector is two words
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int aux_array_size = intSize * 2 * (auxv.size() + 1);
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int envp_array_size = intSize * (envp.size() + 1);
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int argv_array_size = intSize * (argv.size() + 1);
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int argc_size = intSize;
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int window_save_size = intSize * 16;
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// Figure out the size of the contents of the actual initial frame
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int frame_size =
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aux_array_size +
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envp_array_size +
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argv_array_size +
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argc_size +
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window_save_size;
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// There needs to be padding after the auxiliary vector data so that the
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// very bottom of the stack is aligned properly.
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int aligned_partial_size = roundUp(frame_size, align);
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int aux_padding = aligned_partial_size - frame_size;
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int space_needed =
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info_block_size +
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aux_data_size +
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aux_padding +
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frame_size;
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memState->setStackMin(memState->getStackBase() - space_needed);
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memState->setStackMin(roundDown(memState->getStackMin(), align));
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memState->setStackSize(memState->getStackBase() - memState->getStackMin());
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// Allocate space for the stack
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memState->mapRegion(roundDown(memState->getStackMin(), pageSize),
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roundUp(memState->getStackSize(), pageSize), "stack");
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// map out initial stack contents
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IntType sentry_base = memState->getStackBase() - sentry_size;
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IntType file_name_base = sentry_base - file_name_size;
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IntType env_data_base = file_name_base - env_data_size;
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IntType arg_data_base = env_data_base - arg_data_size;
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IntType aux_data_base = arg_data_base - info_block_padding - aux_data_size;
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IntType auxv_array_base = aux_data_base - aux_array_size - aux_padding;
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IntType envp_array_base = auxv_array_base - envp_array_size;
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IntType argv_array_base = envp_array_base - argv_array_size;
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IntType argc_base = argv_array_base - argc_size;
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#if TRACING_ON
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IntType window_save_base = argc_base - window_save_size;
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#endif
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DPRINTF(Stack, "The addresses of items on the initial stack:\n");
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DPRINTF(Stack, "%#x - sentry NULL\n", sentry_base);
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DPRINTF(Stack, "filename = %s\n", filename);
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DPRINTF(Stack, "%#x - file name\n", file_name_base);
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DPRINTF(Stack, "%#x - env data\n", env_data_base);
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DPRINTF(Stack, "%#x - arg data\n", arg_data_base);
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DPRINTF(Stack, "%#x - auxv array\n", auxv_array_base);
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DPRINTF(Stack, "%#x - envp array\n", envp_array_base);
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DPRINTF(Stack, "%#x - argv array\n", argv_array_base);
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DPRINTF(Stack, "%#x - argc \n", argc_base);
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DPRINTF(Stack, "%#x - window save\n", window_save_base);
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DPRINTF(Stack, "%#x - stack min\n", memState->getStackMin());
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assert(window_save_base == memState->getStackMin());
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// write contents to stack
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// figure out argc
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IntType argc = argv.size();
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IntType guestArgc = htobe(argc);
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// Write out the sentry void *
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uint64_t sentry_NULL = 0;
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initVirtMem->writeBlob(sentry_base, &sentry_NULL, sentry_size);
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// Write the file name
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initVirtMem->writeString(file_name_base, filename.c_str());
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// Fix up the aux vectors which point to data.
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for (auto &aux: auxv) {
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if (aux.type == M5_AT_RANDOM)
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aux.val = aux_data_base;
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}
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// Copy the aux stuff
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Addr auxv_array_end = auxv_array_base;
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for (const auto &aux: auxv) {
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initVirtMem->write(auxv_array_end, aux, ByteOrder::big);
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auxv_array_end += sizeof(aux);
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}
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// Write out the terminating zeroed auxilliary vector
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const AuxVector<IntType> zero(0, 0);
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initVirtMem->write(auxv_array_end, zero);
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auxv_array_end += sizeof(zero);
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copyStringArray(envp, envp_array_base, env_data_base,
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ByteOrder::big, *initVirtMem);
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copyStringArray(argv, argv_array_base, arg_data_base,
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ByteOrder::big, *initVirtMem);
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initVirtMem->writeBlob(argc_base, &guestArgc, intSize);
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// Set up space for the trap handlers into the processes address space.
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// Since the stack grows down and there is reserved address space abov
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// it, we can put stuff above it and stay out of the way.
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fillStart = memState->getStackBase();
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spillStart = fillStart + sizeof(MachInst) * numFillInsts;
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ThreadContext *tc = system->threads[contextIds[0]];
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// Set up the thread context to start running the process
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// assert(NumArgumentRegs >= 2);
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// tc->setIntReg(ArgumentReg[0], argc);
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// tc->setIntReg(ArgumentReg[1], argv_array_base);
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tc->setIntReg(StackPointerReg, memState->getStackMin() - StackBias);
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// %g1 is a pointer to a function that should be run at exit. Since we
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// don't have anything like that, it should be set to 0.
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tc->setIntReg(1, 0);
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tc->pcState(getStartPC());
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// Align the "stack_min" to a page boundary.
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memState->setStackMin(roundDown(memState->getStackMin(), pageSize));
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}
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void
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Sparc64Process::argsInit(int intSize, int pageSize)
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{
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SparcProcess::argsInit<uint64_t>(pageSize);
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// Stuff the trap handlers into the process address space
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initVirtMem->writeBlob(fillStart,
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fillHandler64, sizeof(MachInst) * numFillInsts);
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initVirtMem->writeBlob(spillStart,
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spillHandler64, sizeof(MachInst) * numSpillInsts);
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}
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void
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Sparc32Process::argsInit(int intSize, int pageSize)
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{
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SparcProcess::argsInit<uint32_t>(pageSize);
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// Stuff the trap handlers into the process address space
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initVirtMem->writeBlob(fillStart,
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fillHandler32, sizeof(MachInst) * numFillInsts);
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initVirtMem->writeBlob(spillStart,
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spillHandler32, sizeof(MachInst) * numSpillInsts);
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}
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