mirror of
				https://github.com/riscv-software-src/opensbi
				synced 2025-11-04 14:00:31 +00:00 
			
		
		
		
	This removes redundant hartid to hartindex conversions from four call sites and provides a net reduction in code size. Signed-off-by: Samuel Holland <samuel.holland@sifive.com> Reviewed-by: Anup Patel <anup@brainfault.org>
		
			
				
	
	
		
			420 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			420 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
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// SPDX-License-Identifier: BSD-2-Clause
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/*
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 * fdt_fixup.c - Flat Device Tree parsing helper routines
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 * Implement helper routines to parse FDT nodes on top of
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 * libfdt for OpenSBI usage
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 *
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 * Copyright (C) 2020 Bin Meng <bmeng.cn@gmail.com>
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 */
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#include <libfdt.h>
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#include <sbi/sbi_console.h>
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#include <sbi/sbi_domain.h>
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#include <sbi/sbi_math.h>
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#include <sbi/sbi_hart.h>
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#include <sbi/sbi_scratch.h>
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#include <sbi/sbi_string.h>
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#include <sbi/sbi_error.h>
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#include <sbi_utils/fdt/fdt_fixup.h>
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#include <sbi_utils/fdt/fdt_pmu.h>
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#include <sbi_utils/fdt/fdt_helper.h>
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int fdt_add_cpu_idle_states(void *fdt, const struct sbi_cpu_idle_state *state)
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{
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	int cpu_node, cpus_node, err, idle_states_node;
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	uint32_t count, phandle;
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	err = fdt_open_into(fdt, fdt, fdt_totalsize(fdt) + 1024);
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	if (err < 0)
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		return err;
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	err = fdt_find_max_phandle(fdt, &phandle);
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	phandle++;
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	if (err < 0)
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		return err;
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	cpus_node = fdt_path_offset(fdt, "/cpus");
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	if (cpus_node < 0)
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		return cpus_node;
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	/* Do nothing if the idle-states node already exists. */
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	idle_states_node = fdt_subnode_offset(fdt, cpus_node, "idle-states");
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	if (idle_states_node >= 0)
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		return 0;
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	/* Create the idle-states node and its child nodes. */
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	idle_states_node = fdt_add_subnode(fdt, cpus_node, "idle-states");
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	if (idle_states_node < 0)
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		return idle_states_node;
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	for (count = 0; state->name; count++, phandle++, state++) {
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		int idle_state_node;
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		idle_state_node = fdt_add_subnode(fdt, idle_states_node,
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						  state->name);
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		if (idle_state_node < 0)
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			return idle_state_node;
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		fdt_setprop_string(fdt, idle_state_node, "compatible",
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				   "riscv,idle-state");
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		fdt_setprop_u32(fdt, idle_state_node,
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				"riscv,sbi-suspend-param",
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				state->suspend_param);
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		if (state->local_timer_stop)
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			fdt_setprop_empty(fdt, idle_state_node,
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					  "local-timer-stop");
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		fdt_setprop_u32(fdt, idle_state_node, "entry-latency-us",
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				state->entry_latency_us);
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		fdt_setprop_u32(fdt, idle_state_node, "exit-latency-us",
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				state->exit_latency_us);
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		fdt_setprop_u32(fdt, idle_state_node, "min-residency-us",
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				state->min_residency_us);
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		if (state->wakeup_latency_us)
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			fdt_setprop_u32(fdt, idle_state_node,
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					"wakeup-latency-us",
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					state->wakeup_latency_us);
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		fdt_setprop_u32(fdt, idle_state_node, "phandle", phandle);
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	}
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	if (count == 0)
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		return 0;
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	/* Link each cpu node to the idle state nodes. */
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	fdt_for_each_subnode(cpu_node, fdt, cpus_node) {
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		const char *device_type;
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		fdt32_t *value;
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		/* Only process child nodes with device_type = "cpu". */
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		device_type = fdt_getprop(fdt, cpu_node, "device_type", NULL);
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		if (!device_type || strcmp(device_type, "cpu"))
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			continue;
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		/* Allocate space for the list of phandles. */
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		err = fdt_setprop_placeholder(fdt, cpu_node, "cpu-idle-states",
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					      count * sizeof(phandle),
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					      (void **)&value);
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		if (err < 0)
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			return err;
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		/* Fill in the phandles of the idle state nodes. */
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		for (uint32_t i = 0; i < count; ++i)
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			value[i] = cpu_to_fdt32(phandle - count + i);
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	}
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	return 0;
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}
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void fdt_cpu_fixup(void *fdt)
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{
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	struct sbi_domain *dom = sbi_domain_thishart_ptr();
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	int err, cpu_offset, cpus_offset, len;
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	const char *mmu_type;
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	u32 hartid, hartindex;
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	err = fdt_open_into(fdt, fdt, fdt_totalsize(fdt) + 32);
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	if (err < 0)
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		return;
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	cpus_offset = fdt_path_offset(fdt, "/cpus");
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	if (cpus_offset < 0)
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		return;
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	fdt_for_each_subnode(cpu_offset, fdt, cpus_offset) {
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		err = fdt_parse_hart_id(fdt, cpu_offset, &hartid);
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		if (err)
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			continue;
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		if (!fdt_node_is_enabled(fdt, cpu_offset))
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			continue;
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		/*
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		 * Disable a HART DT node if one of the following is true:
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		 * 1. The HART is not assigned to the current domain
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		 * 2. MMU is not available for the HART
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		 */
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		hartindex = sbi_hartid_to_hartindex(hartid);
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		mmu_type = fdt_getprop(fdt, cpu_offset, "mmu-type", &len);
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		if (!sbi_domain_is_assigned_hart(dom, hartindex) ||
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		    !mmu_type || !len)
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			fdt_setprop_string(fdt, cpu_offset, "status",
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					   "disabled");
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	}
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}
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static void fdt_domain_based_fixup_one(void *fdt, int nodeoff)
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{
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	int rc;
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	uint64_t reg_addr, reg_size;
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	struct sbi_domain *dom = sbi_domain_thishart_ptr();
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	rc = fdt_get_node_addr_size(fdt, nodeoff, 0, ®_addr, ®_size);
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	if (rc < 0 || !reg_addr || !reg_size)
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		return;
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	if (!sbi_domain_check_addr(dom, reg_addr, dom->next_mode,
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				    SBI_DOMAIN_READ | SBI_DOMAIN_WRITE)) {
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		rc = fdt_open_into(fdt, fdt, fdt_totalsize(fdt) + 32);
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		if (rc < 0)
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			return;
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		fdt_setprop_string(fdt, nodeoff, "status", "disabled");
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	}
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}
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static void fdt_fixup_node(void *fdt, const char *compatible)
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{
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	int noff = 0;
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	while ((noff = fdt_node_offset_by_compatible(fdt, noff,
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						     compatible)) >= 0)
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		fdt_domain_based_fixup_one(fdt, noff);
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}
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void fdt_aplic_fixup(void *fdt)
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{
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	fdt_fixup_node(fdt, "riscv,aplic");
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}
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void fdt_imsic_fixup(void *fdt)
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{
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	fdt_fixup_node(fdt, "riscv,imsics");
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}
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void fdt_plic_fixup(void *fdt)
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{
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	u32 *cells;
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	int i, cells_count;
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	int plic_off;
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	plic_off = fdt_node_offset_by_compatible(fdt, 0, "sifive,plic-1.0.0");
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	if (plic_off < 0) {
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		plic_off = fdt_node_offset_by_compatible(fdt, 0, "riscv,plic0");
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		if (plic_off < 0)
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			return;
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	}
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	cells = (u32 *)fdt_getprop(fdt, plic_off,
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				   "interrupts-extended", &cells_count);
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	if (!cells)
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		return;
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	cells_count = cells_count / sizeof(u32);
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	if (!cells_count)
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		return;
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	for (i = 0; i < (cells_count / 2); i++) {
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		if (fdt32_to_cpu(cells[2 * i + 1]) == IRQ_M_EXT)
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			cells[2 * i + 1] = cpu_to_fdt32(0xffffffff);
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	}
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}
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static int fdt_resv_memory_update_node(void *fdt, unsigned long addr,
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				       unsigned long size, int index,
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				       int parent)
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{
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	int na = fdt_address_cells(fdt, 0);
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	int ns = fdt_size_cells(fdt, 0);
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	fdt32_t addr_high, addr_low;
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	fdt32_t size_high, size_low;
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	int subnode, err;
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	fdt32_t reg[4];
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	fdt32_t *val;
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	char name[32];
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	addr_high = (u64)addr >> 32;
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	addr_low = addr;
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	size_high = (u64)size >> 32;
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	size_low = size;
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	if (na > 1 && addr_high)
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		sbi_snprintf(name, sizeof(name),
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			     "mmode_resv%d@%x,%x", index,
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			     addr_high, addr_low);
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	else
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		sbi_snprintf(name, sizeof(name),
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			     "mmode_resv%d@%x", index,
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			     addr_low);
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	subnode = fdt_add_subnode(fdt, parent, name);
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	if (subnode < 0)
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		return subnode;
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	/*
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	 * Tell operating system not to create a virtual
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	 * mapping of the region as part of its standard
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	 * mapping of system memory.
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	 */
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	err = fdt_setprop_empty(fdt, subnode, "no-map");
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	if (err < 0)
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		return err;
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	/* encode the <reg> property value */
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	val = reg;
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	if (na > 1)
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		*val++ = cpu_to_fdt32(addr_high);
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	*val++ = cpu_to_fdt32(addr_low);
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	if (ns > 1)
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		*val++ = cpu_to_fdt32(size_high);
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	*val++ = cpu_to_fdt32(size_low);
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	err = fdt_setprop(fdt, subnode, "reg", reg,
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			  (na + ns) * sizeof(fdt32_t));
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	if (err < 0)
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		return err;
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	return 0;
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}
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/**
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 * We use PMP to protect OpenSBI firmware to safe-guard it from buggy S-mode
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 * software, see pmp_init() in lib/sbi/sbi_hart.c. The protected memory region
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 * information needs to be conveyed to S-mode software (e.g.: operating system)
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 * via some well-known method.
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 *
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 * With device tree, this can be done by inserting a child node of the reserved
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 * memory node which is used to specify one or more regions of reserved memory.
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 *
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 * For the reserved memory node bindings, see Linux kernel documentation at
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 * Documentation/devicetree/bindings/reserved-memory/reserved-memory.txt
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 *
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 * Some additional memory spaces may be protected by platform codes via PMP as
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 * well, and corresponding child nodes will be inserted.
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 */
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int fdt_reserved_memory_fixup(void *fdt)
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{
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	struct sbi_domain_memregion *reg;
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	struct sbi_domain *dom = sbi_domain_thishart_ptr();
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	unsigned long filtered_base[PMP_COUNT] = { 0 };
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	unsigned char filtered_order[PMP_COUNT] = { 0 };
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	unsigned long addr, size;
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	int err, parent, i, j;
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	int na = fdt_address_cells(fdt, 0);
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	int ns = fdt_size_cells(fdt, 0);
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	/*
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	 * Expand the device tree to accommodate new node
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	 * by the following estimated size:
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	 *
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	 * Each PMP memory region entry occupies 64 bytes.
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	 * With 16 PMP memory regions we need 64 * 16 = 1024 bytes.
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	 */
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	err = fdt_open_into(fdt, fdt, fdt_totalsize(fdt) + 1024);
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	if (err < 0)
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		return err;
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	/* try to locate the reserved memory node */
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	parent = fdt_path_offset(fdt, "/reserved-memory");
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	if (parent < 0) {
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		/* if such node does not exist, create one */
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		parent = fdt_add_subnode(fdt, 0, "reserved-memory");
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		if (parent < 0)
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			return parent;
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		/*
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		 * reserved-memory node has 3 required properties:
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		 * - #address-cells: the same value as the root node
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		 * - #size-cells: the same value as the root node
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		 * - ranges: should be empty
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		 */
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		err = fdt_setprop_empty(fdt, parent, "ranges");
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		if (err < 0)
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			return err;
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		err = fdt_setprop_u32(fdt, parent, "#size-cells", ns);
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		if (err < 0)
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			return err;
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		err = fdt_setprop_u32(fdt, parent, "#address-cells", na);
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		if (err < 0)
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			return err;
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	}
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	/*
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	 * We assume the given device tree does not contain any memory region
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	 * child node protected by PMP. Normally PMP programming happens at
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	 * M-mode firmware. The memory space used by OpenSBI is protected.
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	 * Some additional memory spaces may be protected by domain memory
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	 * regions.
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	 *
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	 * With above assumption, we create child nodes directly.
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	 */
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	i = 0;
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	sbi_domain_for_each_memregion(dom, reg) {
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		/* Ignore MMIO or READABLE or WRITABLE or EXECUTABLE regions */
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		if (reg->flags & SBI_DOMAIN_MEMREGION_MMIO)
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			continue;
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		if (reg->flags & SBI_DOMAIN_MEMREGION_SU_READABLE)
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			continue;
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		if (reg->flags & SBI_DOMAIN_MEMREGION_SU_WRITABLE)
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			continue;
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		if (reg->flags & SBI_DOMAIN_MEMREGION_SU_EXECUTABLE)
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			continue;
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		if (i >= PMP_COUNT) {
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			sbi_printf("%s: Too many memory regions to fixup.\n",
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				   __func__);
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			return SBI_ENOSPC;
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		}
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		bool overlap = false;
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		addr = reg->base;
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		for (j = 0; j < i; j++) {
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			if (addr == filtered_base[j]
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			    && filtered_order[j] < reg->order) {
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				overlap = true;
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				filtered_order[j] = reg->order;
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				break;
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			}
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		}
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		if (!overlap) {
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			filtered_base[i] = reg->base;
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			filtered_order[i] = reg->order;
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			i++;
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		}
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	}
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	for (j = 0; j < i; j++) {
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		addr = filtered_base[j];
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		size = 1UL << filtered_order[j];
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		fdt_resv_memory_update_node(fdt, addr, size, j, parent);
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	}
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	return 0;
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}
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void fdt_config_fixup(void *fdt)
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{
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	int chosen_offset, config_offset;
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	chosen_offset = fdt_path_offset(fdt, "/chosen");
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	if (chosen_offset < 0)
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		return;
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	config_offset = fdt_node_offset_by_compatible(fdt, chosen_offset, "opensbi,config");
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	if (config_offset < 0)
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		return;
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	fdt_nop_node(fdt, config_offset);
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}
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void fdt_fixups(void *fdt)
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{
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	fdt_aplic_fixup(fdt);
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	fdt_imsic_fixup(fdt);
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						|
	fdt_plic_fixup(fdt);
 | 
						|
 | 
						|
	fdt_reserved_memory_fixup(fdt);
 | 
						|
 | 
						|
#ifndef CONFIG_FDT_FIXUPS_PRESERVE_PMU_NODE
 | 
						|
	fdt_pmu_fixup(fdt);
 | 
						|
#endif
 | 
						|
 | 
						|
	fdt_config_fixup(fdt);
 | 
						|
}
 |