mirror of
https://github.com/Motorhead1991/qemu.git
synced 2025-07-27 04:13:53 -06:00

- Ignore writes to CNTP_CTL_EL0 on HVF ARM (Alexander) - Add '-d invalid_mem' logging option (Zoltan) - Create QOM containers explicitly (Peter) - Rename sysemu/ -> system/ (Philippe) - Re-orderning of include/exec/ headers (Philippe) Move a lot of declarations from these legacy mixed bag headers: . "exec/cpu-all.h" . "exec/cpu-common.h" . "exec/cpu-defs.h" . "exec/exec-all.h" . "exec/translate-all" to these more specific ones: . "exec/page-protection.h" . "exec/translation-block.h" . "user/cpu_loop.h" . "user/guest-host.h" . "user/page-protection.h" -----BEGIN PGP SIGNATURE----- iQIzBAABCAAdFiEE+qvnXhKRciHc/Wuy4+MsLN6twN4FAmdlnyAACgkQ4+MsLN6t wN6mBw//QFWi7CrU+bb8KMM53kOU9C507tjn99LLGFb5or73/umDsw6eo/b8DHBt KIwGLgATel42oojKfNKavtAzLK5rOrywpboPDpa3SNeF1onW+99NGJ52LQUqIX6K A6bS0fPdGG9ZzEuPpbjDXlp++0yhDcdSgZsS42fEsT7Dyj5gzJYlqpqhiXGqpsn8 4Y0UMxSL21K3HEexlzw2hsoOBFA3tUm2ujNDhNkt8QASr85yQVLCypABJnuoe/// 5Ojl5wTBeDwhANET0rhwHK8eIYaNboiM9fHopJYhvyw1bz6yAu9jQwzF/MrL3s/r xa4OBHBy5mq2hQV9Shcl3UfCQdk/vDaYaWpgzJGX8stgMGYfnfej1SIl8haJIfcl VMX8/jEFdYbjhO4AeGRYcBzWjEJymkDJZoiSWp2NuEDi6jqIW+7yW1q0Rnlg9lay ShAqLK5Pv4zUw3t0Jy3qv9KSW8sbs6PQxtzXjk8p97rTf76BJ2pF8sv1tVzmsidP 9L92Hv5O34IqzBu2oATOUZYJk89YGmTIUSLkpT7asJZpBLwNM2qLp5jO00WVU0Sd +kAn324guYPkko/TVnjC/AY7CMu55EOtD9NU35k3mUAnxXT9oDUeL4NlYtfgrJx6 x1Nzr2FkS68+wlPAFKNSSU5lTjsjNaFM0bIJ4LCNtenJVP+SnRo= =cjz8 -----END PGP SIGNATURE----- Merge tag 'exec-20241220' of https://github.com/philmd/qemu into staging Accel & Exec patch queue - Ignore writes to CNTP_CTL_EL0 on HVF ARM (Alexander) - Add '-d invalid_mem' logging option (Zoltan) - Create QOM containers explicitly (Peter) - Rename sysemu/ -> system/ (Philippe) - Re-orderning of include/exec/ headers (Philippe) Move a lot of declarations from these legacy mixed bag headers: . "exec/cpu-all.h" . "exec/cpu-common.h" . "exec/cpu-defs.h" . "exec/exec-all.h" . "exec/translate-all" to these more specific ones: . "exec/page-protection.h" . "exec/translation-block.h" . "user/cpu_loop.h" . "user/guest-host.h" . "user/page-protection.h" # -----BEGIN PGP SIGNATURE----- # # iQIzBAABCAAdFiEE+qvnXhKRciHc/Wuy4+MsLN6twN4FAmdlnyAACgkQ4+MsLN6t # wN6mBw//QFWi7CrU+bb8KMM53kOU9C507tjn99LLGFb5or73/umDsw6eo/b8DHBt # KIwGLgATel42oojKfNKavtAzLK5rOrywpboPDpa3SNeF1onW+99NGJ52LQUqIX6K # A6bS0fPdGG9ZzEuPpbjDXlp++0yhDcdSgZsS42fEsT7Dyj5gzJYlqpqhiXGqpsn8 # 4Y0UMxSL21K3HEexlzw2hsoOBFA3tUm2ujNDhNkt8QASr85yQVLCypABJnuoe/// # 5Ojl5wTBeDwhANET0rhwHK8eIYaNboiM9fHopJYhvyw1bz6yAu9jQwzF/MrL3s/r # xa4OBHBy5mq2hQV9Shcl3UfCQdk/vDaYaWpgzJGX8stgMGYfnfej1SIl8haJIfcl # VMX8/jEFdYbjhO4AeGRYcBzWjEJymkDJZoiSWp2NuEDi6jqIW+7yW1q0Rnlg9lay # ShAqLK5Pv4zUw3t0Jy3qv9KSW8sbs6PQxtzXjk8p97rTf76BJ2pF8sv1tVzmsidP # 9L92Hv5O34IqzBu2oATOUZYJk89YGmTIUSLkpT7asJZpBLwNM2qLp5jO00WVU0Sd # +kAn324guYPkko/TVnjC/AY7CMu55EOtD9NU35k3mUAnxXT9oDUeL4NlYtfgrJx6 # x1Nzr2FkS68+wlPAFKNSSU5lTjsjNaFM0bIJ4LCNtenJVP+SnRo= # =cjz8 # -----END PGP SIGNATURE----- # gpg: Signature made Fri 20 Dec 2024 11:45:20 EST # gpg: using RSA key FAABE75E12917221DCFD6BB2E3E32C2CDEADC0DE # gpg: Good signature from "Philippe Mathieu-Daudé (F4BUG) <f4bug@amsat.org>" [unknown] # gpg: WARNING: This key is not certified with a trusted signature! # gpg: There is no indication that the signature belongs to the owner. # Primary key fingerprint: FAAB E75E 1291 7221 DCFD 6BB2 E3E3 2C2C DEAD C0DE * tag 'exec-20241220' of https://github.com/philmd/qemu: (59 commits) util/qemu-timer: fix indentation meson: Do not define CONFIG_DEVICES on user emulation system/accel-ops: Remove unnecessary 'exec/cpu-common.h' header system/numa: Remove unnecessary 'exec/cpu-common.h' header hw/xen: Remove unnecessary 'exec/cpu-common.h' header target/mips: Drop left-over comment about Jazz machine target/mips: Remove tswap() calls in semihosting uhi_fstat_cb() target/xtensa: Remove tswap() calls in semihosting simcall() helper accel/tcg: Un-inline translator_is_same_page() accel/tcg: Include missing 'exec/translation-block.h' header accel/tcg: Move tcg_cflags_has/set() to 'exec/translation-block.h' accel/tcg: Restrict curr_cflags() declaration to 'internal-common.h' qemu/coroutine: Include missing 'qemu/atomic.h' header exec/translation-block: Include missing 'qemu/atomic.h' header accel/tcg: Declare cpu_loop_exit_requested() in 'exec/cpu-common.h' exec/cpu-all: Include 'cpu.h' earlier so MMU_USER_IDX is always defined target/sparc: Move sparc_restore_state_to_opc() to cpu.c target/sparc: Uninline cpu_get_tb_cpu_state() target/loongarch: Declare loongarch_cpu_dump_state() locally user: Move various declarations out of 'exec/exec-all.h' ... Conflicts: hw/char/riscv_htif.c hw/intc/riscv_aplic.c target/s390x/cpu.c Apply sysemu header path changes to not in the pull request. Signed-off-by: Stefan Hajnoczi <stefanha@redhat.com>
525 lines
17 KiB
C
525 lines
17 KiB
C
/*
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* QEMU RISC-V Boot Helper
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*
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* Copyright (c) 2017 SiFive, Inc.
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* Copyright (c) 2019 Alistair Francis <alistair.francis@wdc.com>
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*
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* This program is free software; you can redistribute it and/or modify it
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* under the terms and conditions of the GNU General Public License,
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* version 2 or later, as published by the Free Software Foundation.
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*
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* This program is distributed in the hope it will be useful, but WITHOUT
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
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* more details.
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*
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* You should have received a copy of the GNU General Public License along with
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* this program. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include "qemu/osdep.h"
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#include "qemu/datadir.h"
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#include "qemu/units.h"
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#include "qemu/error-report.h"
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#include "exec/cpu-defs.h"
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#include "hw/boards.h"
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#include "hw/loader.h"
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#include "hw/riscv/boot.h"
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#include "hw/riscv/boot_opensbi.h"
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#include "elf.h"
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#include "system/device_tree.h"
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#include "system/qtest.h"
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#include "system/kvm.h"
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#include "system/reset.h"
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#include <libfdt.h>
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bool riscv_is_32bit(RISCVHartArrayState *harts)
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{
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RISCVCPUClass *mcc = RISCV_CPU_GET_CLASS(&harts->harts[0]);
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return mcc->misa_mxl_max == MXL_RV32;
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}
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/*
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* Return the per-socket PLIC hart topology configuration string
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* (caller must free with g_free())
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*/
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char *riscv_plic_hart_config_string(int hart_count)
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{
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g_autofree const char **vals = g_new(const char *, hart_count + 1);
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int i;
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for (i = 0; i < hart_count; i++) {
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CPUState *cs = qemu_get_cpu(i);
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CPURISCVState *env = &RISCV_CPU(cs)->env;
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if (kvm_enabled()) {
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vals[i] = "S";
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} else if (riscv_has_ext(env, RVS)) {
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vals[i] = "MS";
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} else {
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vals[i] = "M";
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}
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}
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vals[i] = NULL;
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/* g_strjoinv() obliges us to cast away const here */
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return g_strjoinv(",", (char **)vals);
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}
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void riscv_boot_info_init(RISCVBootInfo *info, RISCVHartArrayState *harts)
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{
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info->kernel_size = 0;
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info->initrd_size = 0;
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info->is_32bit = riscv_is_32bit(harts);
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}
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target_ulong riscv_calc_kernel_start_addr(RISCVBootInfo *info,
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target_ulong firmware_end_addr) {
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if (info->is_32bit) {
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return QEMU_ALIGN_UP(firmware_end_addr, 4 * MiB);
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} else {
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return QEMU_ALIGN_UP(firmware_end_addr, 2 * MiB);
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}
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}
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const char *riscv_default_firmware_name(RISCVHartArrayState *harts)
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{
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if (riscv_is_32bit(harts)) {
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return RISCV32_BIOS_BIN;
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}
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return RISCV64_BIOS_BIN;
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}
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static char *riscv_find_bios(const char *bios_filename)
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{
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char *filename;
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filename = qemu_find_file(QEMU_FILE_TYPE_BIOS, bios_filename);
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if (filename == NULL) {
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if (!qtest_enabled()) {
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/*
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* We only ship OpenSBI binary bios images in the QEMU source.
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* For machines that use images other than the default bios,
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* running QEMU test will complain hence let's suppress the error
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* report for QEMU testing.
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*/
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error_report("Unable to find the RISC-V BIOS \"%s\"",
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bios_filename);
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exit(1);
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}
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}
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return filename;
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}
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char *riscv_find_firmware(const char *firmware_filename,
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const char *default_machine_firmware)
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{
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char *filename = NULL;
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if ((!firmware_filename) || (!strcmp(firmware_filename, "default"))) {
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/*
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* The user didn't specify -bios, or has specified "-bios default".
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* That means we are going to load the OpenSBI binary included in
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* the QEMU source.
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*/
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filename = riscv_find_bios(default_machine_firmware);
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} else if (strcmp(firmware_filename, "none")) {
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filename = riscv_find_bios(firmware_filename);
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}
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return filename;
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}
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target_ulong riscv_find_and_load_firmware(MachineState *machine,
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const char *default_machine_firmware,
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hwaddr *firmware_load_addr,
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symbol_fn_t sym_cb)
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{
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char *firmware_filename;
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target_ulong firmware_end_addr = *firmware_load_addr;
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firmware_filename = riscv_find_firmware(machine->firmware,
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default_machine_firmware);
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if (firmware_filename) {
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/* If not "none" load the firmware */
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firmware_end_addr = riscv_load_firmware(firmware_filename,
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firmware_load_addr, sym_cb);
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g_free(firmware_filename);
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}
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return firmware_end_addr;
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}
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target_ulong riscv_load_firmware(const char *firmware_filename,
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hwaddr *firmware_load_addr,
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symbol_fn_t sym_cb)
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{
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uint64_t firmware_entry, firmware_end;
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ssize_t firmware_size;
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g_assert(firmware_filename != NULL);
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if (load_elf_ram_sym(firmware_filename, NULL, NULL, NULL,
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&firmware_entry, NULL, &firmware_end, NULL,
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0, EM_RISCV, 1, 0, NULL, true, sym_cb) > 0) {
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*firmware_load_addr = firmware_entry;
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return firmware_end;
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}
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firmware_size = load_image_targphys_as(firmware_filename,
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*firmware_load_addr,
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current_machine->ram_size, NULL);
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if (firmware_size > 0) {
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return *firmware_load_addr + firmware_size;
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}
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error_report("could not load firmware '%s'", firmware_filename);
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exit(1);
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}
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static void riscv_load_initrd(MachineState *machine, RISCVBootInfo *info)
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{
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const char *filename = machine->initrd_filename;
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uint64_t mem_size = machine->ram_size;
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void *fdt = machine->fdt;
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hwaddr start, end;
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ssize_t size;
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g_assert(filename != NULL);
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/*
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* We want to put the initrd far enough into RAM that when the
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* kernel is uncompressed it will not clobber the initrd. However
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* on boards without much RAM we must ensure that we still leave
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* enough room for a decent sized initrd, and on boards with large
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* amounts of RAM, we put the initrd at 512MB to allow large kernels
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* to boot.
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* So for boards with less than 1GB of RAM we put the initrd
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* halfway into RAM, and for boards with 1GB of RAM or more we put
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* the initrd at 512MB.
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*/
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start = info->image_low_addr + MIN(mem_size / 2, 512 * MiB);
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size = load_ramdisk(filename, start, mem_size - start);
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if (size == -1) {
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size = load_image_targphys(filename, start, mem_size - start);
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if (size == -1) {
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error_report("could not load ramdisk '%s'", filename);
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exit(1);
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}
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}
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info->initrd_start = start;
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info->initrd_size = size;
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/* Some RISC-V machines (e.g. opentitan) don't have a fdt. */
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if (fdt) {
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end = start + size;
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qemu_fdt_setprop_u64(fdt, "/chosen", "linux,initrd-start", start);
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qemu_fdt_setprop_u64(fdt, "/chosen", "linux,initrd-end", end);
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}
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}
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void riscv_load_kernel(MachineState *machine,
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RISCVBootInfo *info,
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target_ulong kernel_start_addr,
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bool load_initrd,
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symbol_fn_t sym_cb)
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{
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const char *kernel_filename = machine->kernel_filename;
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ssize_t kernel_size;
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void *fdt = machine->fdt;
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g_assert(kernel_filename != NULL);
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/*
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* NB: Use low address not ELF entry point to ensure that the fw_dynamic
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* behaviour when loading an ELF matches the fw_payload, fw_jump and BBL
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* behaviour, as well as fw_dynamic with a raw binary, all of which jump to
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* the (expected) load address load address. This allows kernels to have
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* separate SBI and ELF entry points (used by FreeBSD, for example).
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*/
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kernel_size = load_elf_ram_sym(kernel_filename, NULL, NULL, NULL, NULL,
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&info->image_low_addr, &info->image_high_addr,
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NULL, 0, EM_RISCV, 1, 0, NULL, true, sym_cb);
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if (kernel_size > 0) {
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info->kernel_size = kernel_size;
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goto out;
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}
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kernel_size = load_uimage_as(kernel_filename, &info->image_low_addr,
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NULL, NULL, NULL, NULL, NULL);
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if (kernel_size > 0) {
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info->kernel_size = kernel_size;
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info->image_high_addr = info->image_low_addr + kernel_size;
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goto out;
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}
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kernel_size = load_image_targphys_as(kernel_filename, kernel_start_addr,
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current_machine->ram_size, NULL);
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if (kernel_size > 0) {
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info->kernel_size = kernel_size;
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info->image_low_addr = kernel_start_addr;
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info->image_high_addr = info->image_low_addr + kernel_size;
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goto out;
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}
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error_report("could not load kernel '%s'", kernel_filename);
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exit(1);
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out:
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/*
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* For 32 bit CPUs 'image_low_addr' can be sign-extended by
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* load_elf_ram_sym().
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*/
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if (info->is_32bit) {
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info->image_low_addr = extract64(info->image_low_addr, 0, 32);
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}
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if (load_initrd && machine->initrd_filename) {
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riscv_load_initrd(machine, info);
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}
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if (fdt && machine->kernel_cmdline && *machine->kernel_cmdline) {
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qemu_fdt_setprop_string(fdt, "/chosen", "bootargs",
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machine->kernel_cmdline);
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}
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}
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/*
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* This function makes an assumption that the DRAM interval
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* 'dram_base' + 'dram_size' is contiguous.
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*
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* Considering that 'dram_end' is the lowest value between
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* the end of the DRAM block and MachineState->ram_size, the
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* FDT location will vary according to 'dram_base':
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*
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* - if 'dram_base' is less that 3072 MiB, the FDT will be
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* put at the lowest value between 3072 MiB and 'dram_end';
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*
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* - if 'dram_base' is higher than 3072 MiB, the FDT will be
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* put at 'dram_end'.
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*
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* The FDT is fdt_packed() during the calculation.
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*/
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uint64_t riscv_compute_fdt_addr(hwaddr dram_base, hwaddr dram_size,
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MachineState *ms, RISCVBootInfo *info)
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{
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int ret = fdt_pack(ms->fdt);
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hwaddr dram_end, temp;
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int fdtsize;
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uint64_t dtb_start, dtb_start_limit;
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/* Should only fail if we've built a corrupted tree */
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g_assert(ret == 0);
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fdtsize = fdt_totalsize(ms->fdt);
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if (fdtsize <= 0) {
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error_report("invalid device-tree");
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exit(1);
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}
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if (info->initrd_size) {
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/* If initrd is successfully loaded, place DTB after it. */
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dtb_start_limit = info->initrd_start + info->initrd_size;
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} else if (info->kernel_size) {
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/* If only kernel is successfully loaded, place DTB after it. */
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dtb_start_limit = info->image_high_addr;
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} else {
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/* Otherwise, do not check DTB overlapping */
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dtb_start_limit = 0;
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}
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/*
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* A dram_size == 0, usually from a MemMapEntry[].size element,
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* means that the DRAM block goes all the way to ms->ram_size.
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*/
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dram_end = dram_base;
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dram_end += dram_size ? MIN(ms->ram_size, dram_size) : ms->ram_size;
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/*
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* We should put fdt as far as possible to avoid kernel/initrd overwriting
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* its content. But it should be addressable by 32 bit system as well in RV32.
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* Thus, put it near to the end of dram in RV64, and put it near to the end
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* of dram or 3GB whichever is lesser in RV32.
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*/
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if (!info->is_32bit) {
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temp = dram_end;
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} else {
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temp = (dram_base < 3072 * MiB) ? MIN(dram_end, 3072 * MiB) : dram_end;
|
|
}
|
|
|
|
dtb_start = QEMU_ALIGN_DOWN(temp - fdtsize, 2 * MiB);
|
|
|
|
if (dtb_start_limit && (dtb_start < dtb_start_limit)) {
|
|
error_report("No enough memory to place DTB after kernel/initrd");
|
|
exit(1);
|
|
}
|
|
|
|
return dtb_start;
|
|
}
|
|
|
|
/*
|
|
* 'fdt_addr' is received as hwaddr because boards might put
|
|
* the FDT beyond 32-bit addressing boundary.
|
|
*/
|
|
void riscv_load_fdt(hwaddr fdt_addr, void *fdt)
|
|
{
|
|
uint32_t fdtsize = fdt_totalsize(fdt);
|
|
|
|
/* copy in the device tree */
|
|
qemu_fdt_dumpdtb(fdt, fdtsize);
|
|
|
|
rom_add_blob_fixed_as("fdt", fdt, fdtsize, fdt_addr,
|
|
&address_space_memory);
|
|
qemu_register_reset_nosnapshotload(qemu_fdt_randomize_seeds,
|
|
rom_ptr_for_as(&address_space_memory, fdt_addr, fdtsize));
|
|
}
|
|
|
|
void riscv_rom_copy_firmware_info(MachineState *machine,
|
|
RISCVHartArrayState *harts,
|
|
hwaddr rom_base, hwaddr rom_size,
|
|
uint32_t reset_vec_size,
|
|
uint64_t kernel_entry)
|
|
{
|
|
struct fw_dynamic_info32 dinfo32;
|
|
struct fw_dynamic_info dinfo;
|
|
size_t dinfo_len;
|
|
|
|
if (riscv_is_32bit(harts)) {
|
|
dinfo32.magic = cpu_to_le32(FW_DYNAMIC_INFO_MAGIC_VALUE);
|
|
dinfo32.version = cpu_to_le32(FW_DYNAMIC_INFO_VERSION);
|
|
dinfo32.next_mode = cpu_to_le32(FW_DYNAMIC_INFO_NEXT_MODE_S);
|
|
dinfo32.next_addr = cpu_to_le32(kernel_entry);
|
|
dinfo32.options = 0;
|
|
dinfo32.boot_hart = 0;
|
|
dinfo_len = sizeof(dinfo32);
|
|
} else {
|
|
dinfo.magic = cpu_to_le64(FW_DYNAMIC_INFO_MAGIC_VALUE);
|
|
dinfo.version = cpu_to_le64(FW_DYNAMIC_INFO_VERSION);
|
|
dinfo.next_mode = cpu_to_le64(FW_DYNAMIC_INFO_NEXT_MODE_S);
|
|
dinfo.next_addr = cpu_to_le64(kernel_entry);
|
|
dinfo.options = 0;
|
|
dinfo.boot_hart = 0;
|
|
dinfo_len = sizeof(dinfo);
|
|
}
|
|
|
|
/**
|
|
* copy the dynamic firmware info. This information is specific to
|
|
* OpenSBI but doesn't break any other firmware as long as they don't
|
|
* expect any certain value in "a2" register.
|
|
*/
|
|
if (dinfo_len > (rom_size - reset_vec_size)) {
|
|
error_report("not enough space to store dynamic firmware info");
|
|
exit(1);
|
|
}
|
|
|
|
rom_add_blob_fixed_as("mrom.finfo",
|
|
riscv_is_32bit(harts) ?
|
|
(void *)&dinfo32 : (void *)&dinfo,
|
|
dinfo_len,
|
|
rom_base + reset_vec_size,
|
|
&address_space_memory);
|
|
}
|
|
|
|
void riscv_setup_rom_reset_vec(MachineState *machine, RISCVHartArrayState *harts,
|
|
hwaddr start_addr,
|
|
hwaddr rom_base, hwaddr rom_size,
|
|
uint64_t kernel_entry,
|
|
uint64_t fdt_load_addr)
|
|
{
|
|
int i;
|
|
uint32_t start_addr_hi32 = 0x00000000;
|
|
uint32_t fdt_load_addr_hi32 = 0x00000000;
|
|
|
|
if (!riscv_is_32bit(harts)) {
|
|
start_addr_hi32 = start_addr >> 32;
|
|
fdt_load_addr_hi32 = fdt_load_addr >> 32;
|
|
}
|
|
/* reset vector */
|
|
uint32_t reset_vec[10] = {
|
|
0x00000297, /* 1: auipc t0, %pcrel_hi(fw_dyn) */
|
|
0x02828613, /* addi a2, t0, %pcrel_lo(1b) */
|
|
0xf1402573, /* csrr a0, mhartid */
|
|
0,
|
|
0,
|
|
0x00028067, /* jr t0 */
|
|
start_addr, /* start: .dword */
|
|
start_addr_hi32,
|
|
fdt_load_addr, /* fdt_laddr: .dword */
|
|
fdt_load_addr_hi32,
|
|
/* fw_dyn: */
|
|
};
|
|
if (riscv_is_32bit(harts)) {
|
|
reset_vec[3] = 0x0202a583; /* lw a1, 32(t0) */
|
|
reset_vec[4] = 0x0182a283; /* lw t0, 24(t0) */
|
|
} else {
|
|
reset_vec[3] = 0x0202b583; /* ld a1, 32(t0) */
|
|
reset_vec[4] = 0x0182b283; /* ld t0, 24(t0) */
|
|
}
|
|
|
|
if (!harts->harts[0].cfg.ext_zicsr) {
|
|
/*
|
|
* The Zicsr extension has been disabled, so let's ensure we don't
|
|
* run the CSR instruction. Let's fill the address with a non
|
|
* compressed nop.
|
|
*/
|
|
reset_vec[2] = 0x00000013; /* addi x0, x0, 0 */
|
|
}
|
|
|
|
/* copy in the reset vector in little_endian byte order */
|
|
for (i = 0; i < ARRAY_SIZE(reset_vec); i++) {
|
|
reset_vec[i] = cpu_to_le32(reset_vec[i]);
|
|
}
|
|
rom_add_blob_fixed_as("mrom.reset", reset_vec, sizeof(reset_vec),
|
|
rom_base, &address_space_memory);
|
|
riscv_rom_copy_firmware_info(machine, harts,
|
|
rom_base, rom_size,
|
|
sizeof(reset_vec),
|
|
kernel_entry);
|
|
}
|
|
|
|
void riscv_setup_direct_kernel(hwaddr kernel_addr, hwaddr fdt_addr)
|
|
{
|
|
CPUState *cs;
|
|
|
|
for (cs = first_cpu; cs; cs = CPU_NEXT(cs)) {
|
|
RISCVCPU *riscv_cpu = RISCV_CPU(cs);
|
|
riscv_cpu->env.kernel_addr = kernel_addr;
|
|
riscv_cpu->env.fdt_addr = fdt_addr;
|
|
}
|
|
}
|
|
|
|
void riscv_setup_firmware_boot(MachineState *machine)
|
|
{
|
|
if (machine->kernel_filename) {
|
|
FWCfgState *fw_cfg;
|
|
fw_cfg = fw_cfg_find();
|
|
|
|
assert(fw_cfg);
|
|
/*
|
|
* Expose the kernel, the command line, and the initrd in fw_cfg.
|
|
* We don't process them here at all, it's all left to the
|
|
* firmware.
|
|
*/
|
|
load_image_to_fw_cfg(fw_cfg,
|
|
FW_CFG_KERNEL_SIZE, FW_CFG_KERNEL_DATA,
|
|
machine->kernel_filename,
|
|
true);
|
|
load_image_to_fw_cfg(fw_cfg,
|
|
FW_CFG_INITRD_SIZE, FW_CFG_INITRD_DATA,
|
|
machine->initrd_filename, false);
|
|
|
|
if (machine->kernel_cmdline) {
|
|
fw_cfg_add_i32(fw_cfg, FW_CFG_CMDLINE_SIZE,
|
|
strlen(machine->kernel_cmdline) + 1);
|
|
fw_cfg_add_string(fw_cfg, FW_CFG_CMDLINE_DATA,
|
|
machine->kernel_cmdline);
|
|
}
|
|
}
|
|
}
|