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When ACPI is enabled over FDT the APs cannot be brought out of reset by the OS using the "FDT spin-table" mechanism, as no FDT is provided to the OS. The APs must be released out of reset in u-boot and then brought up in an ACPI compliant fashion. When ARMV8_MULTIENTRY is specified, the APs are released from reset and will enter U-Boot after it has been relocated as well. By default ARMV8_MULTIENTRY is not selected, keeping existing behaviour. TEST: All APs enter U-Boot when run on qemu-system-aarch64 and on real hardware. Signed-off-by: Patrick Rudolph <patrick.rudolph@9elements.com> Reviewed-by: Simon Glass <sjg@chromium.org> Cc: Matthias Brugger <mbrugger@suse.com> Cc: Peter Robinson <pbrobinson@gmail.com> Cc: Tom Rini <trini@konsulko.com>
214 lines
4.6 KiB
C
214 lines
4.6 KiB
C
// SPDX-License-Identifier: GPL-2.0+
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/*
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* Copyright 2024 9elements GmbH
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*/
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#include <cpu.h>
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#include <cpu_func.h>
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#include <dm.h>
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#include <fdt_support.h>
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#include <acpi/acpigen.h>
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#include <asm/armv8/cpu.h>
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#include <asm/cache.h>
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#include <asm/io.h>
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#include <asm/global_data.h>
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#include <asm/system.h>
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#include <asm-generic/sections.h>
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#include <linux/bitops.h>
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#include <linux/clk-provider.h>
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#include <linux/delay.h>
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#include "armv8_cpu.h"
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DECLARE_GLOBAL_DATA_PTR;
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struct bcm_plat {
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u64 release_addr;
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};
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static int cpu_bcm_get_desc(const struct udevice *dev, char *buf, int size)
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{
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struct cpu_plat *plat = dev_get_parent_plat(dev);
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const char *name;
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if (size < 32)
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return -ENOSPC;
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if (device_is_compatible(dev, "arm,cortex-a53"))
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name = "A53";
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else if (device_is_compatible(dev, "arm,cortex-a72"))
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name = "A72";
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else
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name = "?";
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snprintf(buf, size, "Broadcom Cortex-%s at %u MHz\n",
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name, plat->timebase_freq);
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return 0;
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}
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static int cpu_bcm_get_info(const struct udevice *dev, struct cpu_info *info)
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{
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struct cpu_plat *plat = dev_get_parent_plat(dev);
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info->cpu_freq = plat->timebase_freq * 1000;
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info->features = BIT(CPU_FEAT_L1_CACHE) | BIT(CPU_FEAT_MMU);
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return 0;
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}
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static int cpu_bcm_get_count(const struct udevice *dev)
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{
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return uclass_id_count(UCLASS_CPU);
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}
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static int cpu_bcm_get_vendor(const struct udevice *dev, char *buf, int size)
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{
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snprintf(buf, size, "Broadcom");
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return 0;
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}
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static int cpu_bcm_is_current(struct udevice *dev)
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{
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struct cpu_plat *plat = dev_get_parent_plat(dev);
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if (plat->cpu_id == (read_mpidr() & 0xffff))
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return 1;
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return 0;
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}
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/**
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* bcm_cpu_on - Releases the secondary CPU from it's spintable
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*
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* Write the CPU's spintable mailbox and let the CPU enter U-Boot.
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*
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* @dev: Device to start
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* @return: zero on success or error code on failure.
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*/
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static int bcm_cpu_on(struct udevice *dev)
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{
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struct bcm_plat *plat = dev_get_plat(dev);
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ulong *start_address;
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if (plat->release_addr == ~0ULL)
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return -ENODATA;
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start_address = map_physmem(plat->release_addr, sizeof(uintptr_t), MAP_NOCACHE);
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/* Point secondary CPU to U-Boot entry */
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*start_address = (uintptr_t)_start;
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/* Make sure the other CPUs see the written start address */
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if (!CONFIG_IS_ENABLED(SYS_DCACHE_OFF))
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flush_dcache_all();
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/* Send an event to wake up the secondary CPU. */
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asm("dsb ishst\n"
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"sev");
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unmap_physmem(start_address, MAP_NOCACHE);
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return 0;
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}
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static const struct cpu_ops cpu_bcm_ops = {
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.get_desc = cpu_bcm_get_desc,
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.get_info = cpu_bcm_get_info,
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.get_count = cpu_bcm_get_count,
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.get_vendor = cpu_bcm_get_vendor,
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.is_current = cpu_bcm_is_current,
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};
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static const struct udevice_id cpu_bcm_ids[] = {
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{ .compatible = "arm,cortex-a53" }, /* RPi 3 */
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{ .compatible = "arm,cortex-a72" }, /* RPi 4 */
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{ }
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};
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static int bcm_cpu_bind(struct udevice *dev)
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{
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struct cpu_plat *plat = dev_get_parent_plat(dev);
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plat->cpu_id = dev_read_addr(dev);
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return 0;
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}
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/**
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* bcm_cpu_of_to_plat - Gather spin-table release address
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*
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* Read the spin-table release address to allow all seconary CPUs to enter
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* U-Boot when necessary.
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*
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* @dev: Device to start
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*/
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static int bcm_cpu_of_to_plat(struct udevice *dev)
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{
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struct bcm_plat *plat = dev_get_plat(dev);
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const char *prop;
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if (CONFIG_IS_ENABLED(ARMV8_MULTIENTRY)) {
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plat->release_addr = ~0ULL;
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prop = dev_read_string(dev, "enable-method");
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if (!prop || strcmp(prop, "spin-table"))
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return -ENODEV;
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plat->release_addr = dev_read_u64_default(dev, "cpu-release-addr", ~0ULL);
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if (plat->release_addr == ~0ULL)
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return -ENODEV;
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}
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return 0;
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}
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static int bcm_cpu_probe(struct udevice *dev)
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{
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struct cpu_plat *plat = dev_get_parent_plat(dev);
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struct clk clk;
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int ret;
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/* Get a clock if it exists */
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ret = clk_get_by_index(dev, 0, &clk);
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if (!ret) {
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ret = clk_enable(&clk);
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if (ret && (ret != -ENOSYS || ret != -EOPNOTSUPP))
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return ret;
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ret = clk_get_rate(&clk);
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if (IS_ERR_VALUE(ret))
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return ret;
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plat->timebase_freq = ret;
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}
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/*
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* The armstub holds the secondary CPUs in a spinloop. When
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* ARMV8_MULTIENTRY is enabled release the secondary CPUs and
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* let them enter U-Boot as well.
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*/
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if (CONFIG_IS_ENABLED(ARMV8_MULTIENTRY)) {
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ret = bcm_cpu_on(dev);
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if (ret)
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return ret;
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}
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return ret;
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}
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struct acpi_ops bcm283x_cpu_acpi_ops = {
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.fill_ssdt = armv8_cpu_fill_ssdt,
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.fill_madt = armv8_cpu_fill_madt,
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};
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U_BOOT_DRIVER(cpu_bcm_drv) = {
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.name = "bcm283x_cpu",
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.id = UCLASS_CPU,
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.of_match = cpu_bcm_ids,
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.ops = &cpu_bcm_ops,
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.probe = bcm_cpu_probe,
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.bind = bcm_cpu_bind,
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.of_to_plat = bcm_cpu_of_to_plat,
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.plat_auto = sizeof(struct bcm_plat),
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ACPI_OPS_PTR(&bcm283x_cpu_acpi_ops)
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};
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