318 lines
7.4 KiB
C
318 lines
7.4 KiB
C
/* $NetBSD: arm_fdt.c,v 1.21 2023/04/07 08:55:30 skrll Exp $ */
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/*-
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* Copyright (c) 2017 Jared D. McNeill <jmcneill@invisible.ca>
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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
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* are met:
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* 1. 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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* 2. 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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*
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* THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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* IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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* OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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* IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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* INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
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* BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
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* LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
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* AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
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* OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
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* OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
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* SUCH DAMAGE.
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*/
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#include "opt_arm_timer.h"
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#include "opt_efi.h"
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#include "opt_modular.h"
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#include <sys/cdefs.h>
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__KERNEL_RCSID(0, "$NetBSD: arm_fdt.c,v 1.21 2023/04/07 08:55:30 skrll Exp $");
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#include <sys/param.h>
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#include <sys/systm.h>
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#include <sys/cpu.h>
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#include <sys/device.h>
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#include <sys/kmem.h>
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#include <sys/bus.h>
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#include <sys/module.h>
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#include <uvm/uvm_extern.h>
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#include <dev/fdt/fdtvar.h>
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#include <dev/ofw/openfirm.h>
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#include <arm/fdt/arm_fdtvar.h>
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#include <arm/locore.h>
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#ifdef EFI_RUNTIME
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#include <arm/arm/efi_runtime.h>
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#include <dev/clock_subr.h>
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#endif
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static int arm_fdt_match(device_t, cfdata_t, void *);
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static void arm_fdt_attach(device_t, device_t, void *);
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static void arm_fdt_irq_default_handler(void *);
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static void arm_fdt_fiq_default_handler(void *);
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#ifdef EFI_RUNTIME
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static void arm_fdt_efi_init(device_t);
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static int arm_fdt_efi_rtc_gettime(todr_chip_handle_t, struct clock_ymdhms *);
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static int arm_fdt_efi_rtc_settime(todr_chip_handle_t, struct clock_ymdhms *);
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static struct todr_chip_handle efi_todr;
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#endif
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CFATTACH_DECL_NEW(arm_fdt, 0,
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arm_fdt_match, arm_fdt_attach, NULL, NULL);
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struct arm_fdt_cpu_hatch_cb {
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TAILQ_ENTRY(arm_fdt_cpu_hatch_cb) next;
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void (*cb)(void *, struct cpu_info *);
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void *priv;
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};
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static TAILQ_HEAD(, arm_fdt_cpu_hatch_cb) arm_fdt_cpu_hatch_cbs =
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TAILQ_HEAD_INITIALIZER(arm_fdt_cpu_hatch_cbs);
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static void (*_arm_fdt_irq_handler)(void *) = arm_fdt_irq_default_handler;
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static void (*_arm_fdt_fiq_handler)(void *) = arm_fdt_fiq_default_handler;
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static void (*_arm_fdt_timer_init)(void) = NULL;
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int
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arm_fdt_match(device_t parent, cfdata_t cf, void *aux)
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{
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return 1;
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}
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void
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arm_fdt_attach(device_t parent, device_t self, void *aux)
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{
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const struct fdt_platform *plat = fdt_platform_find();
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struct fdt_attach_args faa;
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aprint_naive("\n");
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aprint_normal("\n");
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DISABLE_INTERRUPT();
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#ifdef EFI_RUNTIME
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arm_fdt_efi_init(self);
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#endif
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plat->fp_init_attach_args(&faa);
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faa.faa_name = "";
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faa.faa_phandle = OF_peer(0);
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config_found(self, &faa, NULL, CFARGS_NONE);
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}
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void
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arm_fdt_cpu_hatch_register(void *priv, void (*cb)(void *, struct cpu_info *))
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{
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struct arm_fdt_cpu_hatch_cb *c;
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c = kmem_alloc(sizeof(*c), KM_SLEEP);
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c->priv = priv;
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c->cb = cb;
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TAILQ_INSERT_TAIL(&arm_fdt_cpu_hatch_cbs, c, next);
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}
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void
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arm_fdt_cpu_hatch(struct cpu_info *ci)
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{
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struct arm_fdt_cpu_hatch_cb *c;
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TAILQ_FOREACH(c, &arm_fdt_cpu_hatch_cbs, next)
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c->cb(c->priv, ci);
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}
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static void
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arm_fdt_irq_default_handler(void *frame)
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{
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panic("No IRQ handler installed");
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}
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static void
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arm_fdt_fiq_default_handler(void *frame)
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{
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panic("No FIQ handler installed");
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}
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void
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arm_fdt_irq_set_handler(void (*irq_handler)(void *))
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{
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KASSERT(_arm_fdt_irq_handler == arm_fdt_irq_default_handler);
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_arm_fdt_irq_handler = irq_handler;
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}
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void
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arm_fdt_fiq_set_handler(void (*fiq_handler)(void *))
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{
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KASSERT(_arm_fdt_fiq_handler == arm_fdt_fiq_default_handler);
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_arm_fdt_fiq_handler = fiq_handler;
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}
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void
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arm_fdt_irq_handler(void *tf)
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{
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_arm_fdt_irq_handler(tf);
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}
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void
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arm_fdt_fiq_handler(void *tf)
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{
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_arm_fdt_fiq_handler(tf);
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}
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void
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arm_fdt_timer_register(void (*timerfn)(void))
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{
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if (_arm_fdt_timer_init != NULL) {
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#ifdef DIAGNOSTIC
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aprint_verbose("%s: timer already registered\n", __func__);
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#endif
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return;
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}
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_arm_fdt_timer_init = timerfn;
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}
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#ifdef __HAVE_GENERIC_CPU_INITCLOCKS
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void
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cpu_initclocks(void)
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{
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if (_arm_fdt_timer_init == NULL)
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panic("cpu_initclocks: no timer registered");
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_arm_fdt_timer_init();
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ENABLE_INTERRUPT();
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}
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#endif
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void
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arm_fdt_module_init(void)
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{
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#ifdef MODULAR
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const int chosen = OF_finddevice("/chosen");
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const char *module_name;
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const uint64_t *data;
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u_int index;
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paddr_t pa;
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vaddr_t va;
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int len;
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if (chosen == -1)
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return;
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data = fdtbus_get_prop(chosen, "netbsd,modules", &len);
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if (data == NULL)
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return;
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for (index = 0; index < len / 16; index++, data += 2) {
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module_name = fdtbus_get_string_index(chosen,
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"netbsd,module-names", index);
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if (module_name == NULL)
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break;
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const paddr_t startpa = (paddr_t)be64dec(data + 0);
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const size_t size = (size_t)be64dec(data + 1);
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const paddr_t endpa = round_page(startpa + size);
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const vaddr_t startva = uvm_km_alloc(kernel_map, endpa - startpa,
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0, UVM_KMF_VAONLY | UVM_KMF_NOWAIT);
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if (startva == 0) {
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printf("ERROR: Cannot allocate VA for module %s\n",
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module_name);
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continue;
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}
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for (pa = startpa, va = startva;
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pa < endpa;
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pa += PAGE_SIZE, va += PAGE_SIZE) {
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pmap_kenter_pa(va, pa, VM_PROT_ALL, 0);
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}
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pmap_update(pmap_kernel());
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module_prime(module_name, (void *)(uintptr_t)startva, size);
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}
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#endif /* !MODULAR */
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}
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#ifdef EFI_RUNTIME
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static void
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arm_fdt_efi_init(device_t dev)
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{
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uint64_t efi_system_table;
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struct efi_tm tm;
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int error;
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const int chosen = OF_finddevice("/chosen");
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if (chosen < 0)
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return;
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if (of_getprop_uint64(chosen, "netbsd,uefi-system-table", &efi_system_table) != 0)
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return;
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error = arm_efirt_init(efi_system_table);
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if (error)
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return;
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aprint_debug_dev(dev, "EFI system table at %#" PRIx64 "\n", efi_system_table);
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if (arm_efirt_gettime(&tm, NULL) == 0) {
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aprint_normal_dev(dev, "using EFI runtime services for RTC\n");
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efi_todr.cookie = NULL;
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efi_todr.todr_gettime_ymdhms = arm_fdt_efi_rtc_gettime;
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efi_todr.todr_settime_ymdhms = arm_fdt_efi_rtc_settime;
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todr_attach(&efi_todr);
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}
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}
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static int
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arm_fdt_efi_rtc_gettime(todr_chip_handle_t tch, struct clock_ymdhms *dt)
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{
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struct efi_tm tm;
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efi_status status;
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status = arm_efirt_gettime(&tm, NULL);
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if (status != 0)
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return EIO;
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dt->dt_year = tm.tm_year;
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dt->dt_mon = tm.tm_mon;
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dt->dt_day = tm.tm_mday;
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dt->dt_wday = 0;
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dt->dt_hour = tm.tm_hour;
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dt->dt_min = tm.tm_min;
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dt->dt_sec = tm.tm_sec;
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return 0;
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}
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static int
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arm_fdt_efi_rtc_settime(todr_chip_handle_t tch, struct clock_ymdhms *dt)
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{
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struct efi_tm tm;
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efi_status status;
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memset(&tm, 0, sizeof(tm));
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tm.tm_year = dt->dt_year;
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tm.tm_mon = dt->dt_mon;
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tm.tm_mday = dt->dt_day;
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tm.tm_hour = dt->dt_hour;
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tm.tm_min = dt->dt_min;
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tm.tm_sec = dt->dt_sec;
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status = arm_efirt_settime(&tm);
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if (status != 0)
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return EIO;
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return 0;
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}
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#endif
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