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Generate list of available ranges by enumerating all possible values that range bits (BPx, TB, ...) can take and using the chip's range decoding function to get the range that is selected by each one. BUG=b:195381327,b:153800563 BRANCH=none TEST=flashrom --wp-list Change-Id: Id51f038f03305c8536d80313e52f77d27835f34d Signed-off-by: Nikolai Artemiev <nartemiev@google.com> Reviewed-on: https://review.coreboot.org/c/flashrom/+/58481 Tested-by: build bot (Jenkins) <no-reply@coreboot.org> Reviewed-by: Nico Huber <nico.h@gmx.de>
415 lines
12 KiB
C
415 lines
12 KiB
C
/*
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* This file is part of the flashrom project.
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*
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* Copyright (C) 2010 Google Inc.
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 2 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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*/
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include "flash.h"
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#include "libflashrom.h"
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#include "chipdrivers.h"
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#include "writeprotect.h"
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/** Read and extract a single bit from the chip's registers */
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static enum flashrom_wp_result read_bit(uint8_t *value, bool *present, struct flashctx *flash, struct reg_bit_info bit)
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{
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*present = bit.reg != INVALID_REG;
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if (*present) {
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if (spi_read_register(flash, bit.reg, value))
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return FLASHROM_WP_ERR_READ_FAILED;
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*value = (*value >> bit.bit_index) & 1;
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} else {
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/* Zero bit, it may be used by compare_ranges(). */
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*value = 0;
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}
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return FLASHROM_WP_OK;
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}
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/** Read all WP configuration bits from the chip's registers. */
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static enum flashrom_wp_result read_wp_bits(struct wp_bits *bits, struct flashctx *flash)
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{
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/*
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* For each WP bit that is included in the chip's register layout, read
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* the register that contains it, extracts the bit's value, and assign
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* it to the appropriate field in the wp_bits structure.
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*/
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const struct reg_bit_map *bit_map = &flash->chip->reg_bits;
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bool ignored;
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size_t i;
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enum flashrom_wp_result ret;
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ret = read_bit(&bits->tb, &bits->tb_bit_present, flash, bit_map->tb);
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if (ret != FLASHROM_WP_OK)
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return ret;
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ret = read_bit(&bits->sec, &bits->sec_bit_present, flash, bit_map->sec);
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if (ret != FLASHROM_WP_OK)
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return ret;
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ret = read_bit(&bits->cmp, &bits->cmp_bit_present, flash, bit_map->cmp);
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if (ret != FLASHROM_WP_OK)
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return ret;
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ret = read_bit(&bits->srp, &bits->srp_bit_present, flash, bit_map->srp);
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if (ret != FLASHROM_WP_OK)
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return ret;
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ret = read_bit(&bits->srl, &bits->srl_bit_present, flash, bit_map->srl);
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if (ret != FLASHROM_WP_OK)
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return ret;
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for (i = 0; i < ARRAY_SIZE(bits->bp); i++) {
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if (bit_map->bp[i].reg == INVALID_REG)
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break;
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bits->bp_bit_count = i + 1;
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ret = read_bit(&bits->bp[i], &ignored, flash, bit_map->bp[i]);
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if (ret != FLASHROM_WP_OK)
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return ret;
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}
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return ret;
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}
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/** Helper function for write_wp_bits(). */
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static void set_reg_bit(
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uint8_t *reg_values, uint8_t *write_masks,
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struct reg_bit_info bit, uint8_t value)
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{
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if (bit.reg != INVALID_REG) {
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reg_values[bit.reg] |= value << bit.bit_index;
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write_masks[bit.reg] |= 1 << bit.bit_index;
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}
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}
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/** Write WP configuration bits to the flash's registers. */
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static enum flashrom_wp_result write_wp_bits(struct flashctx *flash, struct wp_bits bits)
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{
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size_t i;
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const struct reg_bit_map *reg_bits = &flash->chip->reg_bits;
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/* Convert wp_bits to register values and write masks */
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uint8_t reg_values[MAX_REGISTERS] = {0};
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uint8_t write_masks[MAX_REGISTERS] = {0};
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for (i = 0; i < bits.bp_bit_count; i++)
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set_reg_bit(reg_values, write_masks, reg_bits->bp[i], bits.bp[i]);
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set_reg_bit(reg_values, write_masks, reg_bits->tb, bits.tb);
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set_reg_bit(reg_values, write_masks, reg_bits->sec, bits.sec);
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set_reg_bit(reg_values, write_masks, reg_bits->cmp, bits.cmp);
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set_reg_bit(reg_values, write_masks, reg_bits->srp, bits.srp);
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set_reg_bit(reg_values, write_masks, reg_bits->srl, bits.srl);
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/* Write each register */
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for (enum flash_reg reg = STATUS1; reg < MAX_REGISTERS; reg++) {
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if (!write_masks[reg])
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continue;
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uint8_t value;
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if (spi_read_register(flash, reg, &value))
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return FLASHROM_WP_ERR_READ_FAILED;
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value = (value & ~write_masks[reg]) | (reg_values[reg] & write_masks[reg]);
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if (spi_write_register(flash, reg, value))
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return FLASHROM_WP_ERR_WRITE_FAILED;
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}
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/* Verify each register */
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for (enum flash_reg reg = STATUS1; reg < MAX_REGISTERS; reg++) {
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if (!write_masks[reg])
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continue;
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uint8_t value;
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if (spi_read_register(flash, reg, &value))
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return FLASHROM_WP_ERR_READ_FAILED;
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uint8_t actual = value & write_masks[reg];
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uint8_t expected = reg_values[reg] & write_masks[reg];
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if (actual != expected)
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return FLASHROM_WP_ERR_VERIFY_FAILED;
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}
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return FLASHROM_WP_OK;
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}
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/** Get the range selected by a WP configuration. */
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static enum flashrom_wp_result get_wp_range(struct wp_range *range, struct flashctx *flash, const struct wp_bits *bits)
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{
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flash->chip->decode_range(&range->start, &range->len, bits, flashrom_flash_getsize(flash));
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return FLASHROM_WP_OK;
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}
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/** Write protect bit values and the range they will activate. */
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struct wp_range_and_bits {
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struct wp_bits bits;
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struct wp_range range;
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};
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/**
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* Comparator used for sorting ranges in get_ranges_and_wp_bits().
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*
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* Ranges are ordered by these attributes, in decreasing significance:
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* (range length, range start, cmp bit, sec bit, tb bit, bp bits)
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*/
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static int compare_ranges(const void *aa, const void *bb)
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{
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const struct wp_range_and_bits
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*a = (const struct wp_range_and_bits *)aa,
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*b = (const struct wp_range_and_bits *)bb;
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int ord = 0;
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if (ord == 0)
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ord = a->range.len - b->range.len;
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if (ord == 0)
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ord = a->range.start - b->range.start;
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if (ord == 0)
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ord = a->bits.cmp - b->bits.cmp;
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if (ord == 0)
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ord = a->bits.sec - b->bits.sec;
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if (ord == 0)
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ord = a->bits.tb - b->bits.tb;
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for (int i = a->bits.bp_bit_count - 1; i >= 0; i--) {
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if (ord == 0)
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ord = a->bits.bp[i] - b->bits.bp[i];
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}
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return ord;
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}
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static bool can_write_bit(const struct reg_bit_info bit)
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{
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/*
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* TODO: check if the programmer supports writing the register that the
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* bit is in. For example, some chipsets may only allow SR1 to be
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* written.
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*/
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return bit.reg != INVALID_REG && bit.writability == RW;
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}
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/**
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* Enumerate all protection ranges that the chip supports and that are able to
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* be activated, given limitations such as OTP bits or programmer-enforced
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* restrictions. Returns a list of deduplicated wp_range_and_bits structures.
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*
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* Allocates a buffer that must be freed by the caller with free().
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*/
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static enum flashrom_wp_result get_ranges_and_wp_bits(struct flashctx *flash, struct wp_bits bits, struct wp_range_and_bits **ranges, size_t *count)
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{
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const struct reg_bit_map *reg_bits = &flash->chip->reg_bits;
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/*
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* Create a list of bits that affect the chip's protection range in
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* range_bits. Each element is a pointer to a member of the wp_bits
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* structure that will be modified.
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*
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* Some chips have range bits that cannot be changed (e.g. MX25L6473E
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* has a one-time programmable TB bit). Rather than enumerating all
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* possible values for unwritable bits, just read their values from the
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* chip to ensure we only enumerate ranges that are actually available.
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*/
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uint8_t *range_bits[ARRAY_SIZE(bits.bp) + 1 /* TB */ + 1 /* SEC */ + 1 /* CMP */];
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size_t bit_count = 0;
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for (size_t i = 0; i < ARRAY_SIZE(bits.bp); i++) {
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if (can_write_bit(reg_bits->bp[i]))
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range_bits[bit_count++] = &bits.bp[i];
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}
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if (can_write_bit(reg_bits->tb))
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range_bits[bit_count++] = &bits.tb;
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if (can_write_bit(reg_bits->sec))
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range_bits[bit_count++] = &bits.sec;
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if (can_write_bit(reg_bits->cmp))
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range_bits[bit_count++] = &bits.cmp;
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/* Allocate output buffer */
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*count = 1 << bit_count;
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*ranges = calloc(*count, sizeof(struct wp_range_and_bits));
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for (size_t range_index = 0; range_index < *count; range_index++) {
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/*
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* Extract bits from the range index and assign them to members
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* of the wp_bits structure. The loop bounds ensure that all
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* bit combinations will be enumerated.
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*/
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for (size_t i = 0; i < bit_count; i++)
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*range_bits[i] = (range_index >> i) & 1;
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struct wp_range_and_bits *output = &(*ranges)[range_index];
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output->bits = bits;
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enum flashrom_wp_result ret = get_wp_range(&output->range, flash, &bits);
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if (ret != FLASHROM_WP_OK) {
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free(*ranges);
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return ret;
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}
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/* Debug: print range bits and range */
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msg_gspew("Enumerated range: ");
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if (bits.cmp_bit_present)
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msg_gspew("CMP=%u ", bits.cmp);
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if (bits.sec_bit_present)
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msg_gspew("SEC=%u ", bits.sec);
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if (bits.tb_bit_present)
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msg_gspew("TB=%u ", bits.tb);
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for (size_t i = 0; i < bits.bp_bit_count; i++) {
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size_t j = bits.bp_bit_count - i - 1;
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msg_gspew("BP%zu=%u ", j, bits.bp[j]);
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}
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msg_gspew(" start=0x%08zx length=0x%08zx ",
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output->range.start, output->range.len);
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}
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/* Sort ranges. Ensures consistency if there are duplicate ranges. */
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qsort(*ranges, *count, sizeof(struct wp_range_and_bits), compare_ranges);
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/* Remove duplicates */
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size_t output_index = 0;
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struct wp_range *last_range = NULL;
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for (size_t i = 0; i < *count; i++) {
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bool different_to_last =
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(last_range == NULL) ||
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((*ranges)[i].range.start != last_range->start) ||
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((*ranges)[i].range.len != last_range->len);
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if (different_to_last) {
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/* Move range to the next free position */
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(*ranges)[output_index] = (*ranges)[i];
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output_index++;
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/* Keep track of last non-duplicate range */
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last_range = &(*ranges)[i].range;
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}
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}
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/* Reduce count to only include non-duplicate ranges */
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*count = output_index;
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return FLASHROM_WP_OK;
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}
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static bool chip_supported(struct flashctx *flash)
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{
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return (flash->chip != NULL) && (flash->chip->decode_range != NULL);
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}
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enum flashrom_wp_result wp_read_cfg(struct flashrom_wp_cfg *cfg, struct flashctx *flash)
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{
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struct wp_bits bits;
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enum flashrom_wp_result ret = FLASHROM_WP_OK;
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if (!chip_supported(flash))
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ret = FLASHROM_WP_ERR_CHIP_UNSUPPORTED;
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if (ret == FLASHROM_WP_OK)
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ret = read_wp_bits(&bits, flash);
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if (ret == FLASHROM_WP_OK)
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ret = get_wp_range(&cfg->range, flash, &bits);
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/* TODO: implement and get_wp_mode() and call it */
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/*
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if (ret == FLASHROM_WP_OK)
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ret = get_wp_mode(&cfg->mode, &bits);
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*/
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return ret;
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}
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enum flashrom_wp_result wp_write_cfg(struct flashctx *flash, const struct flashrom_wp_cfg *cfg)
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{
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struct wp_bits bits;
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enum flashrom_wp_result ret = FLASHROM_WP_OK;
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if (!chip_supported(flash))
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ret = FLASHROM_WP_ERR_CHIP_UNSUPPORTED;
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if (ret == FLASHROM_WP_OK)
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ret = read_wp_bits(&bits, flash);
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/* Set protection range */
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/* TODO: implement set_wp_range() and use it */
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/*
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if (ret == FLASHROM_WP_OK)
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ret = set_wp_range(&bits, flash, cfg->range);
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if (ret == FLASHROM_WP_OK)
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ret = write_wp_bits(flash, bits);
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*/
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/* Set protection mode */
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/* TODO: implement set_wp_mode() and use it */
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/*
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if (ret == FLASHROM_WP_OK)
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ret = set_wp_mode(&bits, cfg->mode);
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*/
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if (ret == FLASHROM_WP_OK)
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ret = write_wp_bits(flash, bits);
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return ret;
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}
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enum flashrom_wp_result wp_get_available_ranges(struct flashrom_wp_ranges **list, struct flashrom_flashctx *flash)
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{
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struct wp_bits bits;
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struct wp_range_and_bits *range_pairs = NULL;
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size_t count;
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if (!chip_supported(flash))
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return FLASHROM_WP_ERR_CHIP_UNSUPPORTED;
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enum flashrom_wp_result ret = read_wp_bits(&bits, flash);
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if (ret != FLASHROM_WP_OK)
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return ret;
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ret = get_ranges_and_wp_bits(flash, bits, &range_pairs, &count);
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if (ret != FLASHROM_WP_OK)
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return ret;
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*list = calloc(1, sizeof(struct flashrom_wp_ranges));
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struct wp_range *ranges = calloc(count, sizeof(struct wp_range));
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if (!(*list) || !ranges) {
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free(*list);
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free(ranges);
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ret = FLASHROM_WP_ERR_OTHER;
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goto out;
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}
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(*list)->count = count;
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(*list)->ranges = ranges;
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for (size_t i = 0; i < count; i++)
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ranges[i] = range_pairs[i].range;
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out:
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free(range_pairs);
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return ret;
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}
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/** @} */ /* end flashrom-wp */
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