mirror of https://github.com/ARMmbed/mbed-os.git
				
				
				
			
		
			
				
	
	
		
			347 lines
		
	
	
		
			8.6 KiB
		
	
	
	
		
			C++
		
	
	
			
		
		
	
	
			347 lines
		
	
	
		
			8.6 KiB
		
	
	
	
		
			C++
		
	
	
/* mbed Microcontroller Library
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 * Copyright (c) 2017 ARM Limited
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 *
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 * Licensed under the Apache License, Version 2.0 (the "License");
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 * you may not use this file except in compliance with the License.
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 * You may obtain a copy of the License at
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 *
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 *     http://www.apache.org/licenses/LICENSE-2.0
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 *
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 * Unless required by applicable law or agreed to in writing, software
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 * distributed under the License is distributed on an "AS IS" BASIS,
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 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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 * See the License for the specific language governing permissions and
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 * limitations under the License.
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 */
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#include "MBRBlockDevice.h"
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#include "platform/mbed_critical.h"
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#include "platform/mbed_assert.h"
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#include <algorithm>
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namespace mbed {
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// On disk structures, all entries are little endian
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MBED_PACKED(struct) mbr_entry {
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    uint8_t status;
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    uint8_t chs_start[3];
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    uint8_t type;
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    uint8_t chs_stop[3];
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    uint32_t lba_offset;
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    uint32_t lba_size;
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};
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MBED_PACKED(struct) mbr_table {
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    struct mbr_entry entries[4];
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    uint8_t signature[2];
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};
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// Little-endian conversion, should compile to noop
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// if system is little-endian
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static inline uint32_t tole32(uint32_t a)
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{
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    union {
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        uint32_t u32;
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        uint8_t u8[4];
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    } w;
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    w.u8[0] = a >>  0;
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    w.u8[1] = a >>  8;
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    w.u8[2] = a >> 16;
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    w.u8[3] = a >> 24;
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    return w.u32;
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}
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static inline uint32_t fromle32(uint32_t a)
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{
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    return tole32(a);
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}
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static void tochs(uint32_t lba, uint8_t chs[3])
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{
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    uint32_t sector = std::min<uint32_t>(lba, 0xfffffd)+1;
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    chs[0] = (sector >> 6) & 0xff;
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    chs[1] = ((sector >> 0) & 0x3f) | ((sector >> 16) & 0xc0);
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    chs[2] = (sector >> 14) & 0xff;
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}
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// Partition after address are turned into absolute
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// addresses, assumes bd is initialized
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static int partition_absolute(
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        BlockDevice *bd, int part, uint8_t type,
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        bd_size_t offset, bd_size_t size)
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{
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    // Allocate smallest buffer necessary to write MBR
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    uint32_t buffer_size = std::max<uint32_t>(bd->get_program_size(), sizeof(struct mbr_table));
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    uint8_t *buffer = new uint8_t[buffer_size];
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    // Check for existing MBR
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    int err = bd->read(buffer, 512-buffer_size, buffer_size);
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    if (err) {
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        delete[] buffer;
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        return err;
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    }
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    struct mbr_table *table = reinterpret_cast<struct mbr_table*>(
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            &buffer[buffer_size - sizeof(struct mbr_table)]);
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    if (table->signature[0] != 0x55 || table->signature[1] != 0xaa) {
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        // Setup default values for MBR
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        table->signature[0] = 0x55;
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        table->signature[1] = 0xaa;
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        memset(table->entries, 0, sizeof(table->entries));
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    }
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    // Setup new partition
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    MBED_ASSERT(part >= 1 && part <= 4);
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    table->entries[part-1].status = 0x00; // inactive (not bootable)
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    table->entries[part-1].type = type;
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    // lba dimensions
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    MBED_ASSERT(bd->is_valid_erase(offset, size));
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    uint32_t sector = std::max<uint32_t>(bd->get_erase_size(), 512);
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    uint32_t lba_offset = offset / sector;
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    uint32_t lba_size = size / sector;
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    table->entries[part-1].lba_offset = tole32(lba_offset);
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    table->entries[part-1].lba_size = tole32(lba_size);
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    // chs dimensions
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    tochs(lba_offset,            table->entries[part-1].chs_start);
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    tochs(lba_offset+lba_size-1, table->entries[part-1].chs_stop);
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    // Check that we don't overlap other entries
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    for (int i = 1; i <= 4; i++) {
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        if (i != part && table->entries[i-1].type != 0x00) {
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            uint32_t neighbor_lba_offset = fromle32(table->entries[i-1].lba_offset);
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            uint32_t neighbor_lba_size = fromle32(table->entries[i-1].lba_size);
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            MBED_ASSERT(
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                    (lba_offset >= neighbor_lba_offset + neighbor_lba_size) ||
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                    (lba_offset + lba_size <= neighbor_lba_offset));
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            (void)neighbor_lba_offset;
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            (void)neighbor_lba_size;
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        }
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    }
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    // Write out MBR
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    err = bd->erase(0, bd->get_erase_size());
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    if (err) {
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        delete[] buffer;
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        return err;
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    }
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    err = bd->program(buffer, 512-buffer_size, buffer_size);
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    delete[] buffer;
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    return err;
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}
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int MBRBlockDevice::partition(BlockDevice *bd, int part, uint8_t type, bd_addr_t start)
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{
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    int err = bd->init();
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    if (err) {
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        return err;
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    }
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    // Calculate dimensions
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    bd_size_t offset = ((int64_t)start < 0) ? -start : start;
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    bd_size_t size = bd->size();
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    if (offset < 512) {
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        offset += std::max<uint32_t>(bd->get_erase_size(), 512);
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    }
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    size -= offset;
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    err = partition_absolute(bd, part, type, offset, size);
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    if (err) {
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        return err;
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    }
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    err = bd->deinit();
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    if (err) {
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        return err;
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    }
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    return 0;
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}
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int MBRBlockDevice::partition(BlockDevice *bd, int part, uint8_t type,
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        bd_addr_t start, bd_addr_t stop)
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{
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    int err = bd->init();
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    if (err) {
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        return err;
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    }
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    // Calculate dimensions
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    bd_size_t offset = ((int64_t)start < 0) ? -start : start;
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    bd_size_t size = ((int64_t)stop < 0) ? -stop : stop;
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    if (offset < 512) {
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        offset += std::max<uint32_t>(bd->get_erase_size(), 512);
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    }
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    size -= offset;
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    err = partition_absolute(bd, part, type, offset, size);
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    if (err) {
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        return err;
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    }
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    err = bd->deinit();
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    if (err) {
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        return err;
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    }
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    return 0;
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}
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MBRBlockDevice::MBRBlockDevice(BlockDevice *bd, int part)
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    : _bd(bd), _part(part), _init_ref_count(0)
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{
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    MBED_ASSERT(_part >= 1 && _part <= 4);
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}
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int MBRBlockDevice::init()
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{
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    uint32_t val = core_util_atomic_incr_u32(&_init_ref_count, 1);
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    if (val != 1) {
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        return BD_ERROR_OK;
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    }
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    int err = _bd->init();
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    if (err) {
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        return err;
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    }
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    // Allocate smallest buffer necessary to write MBR
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    uint32_t buffer_size = std::max<uint32_t>(_bd->get_read_size(), sizeof(struct mbr_table));
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    uint8_t *buffer = new uint8_t[buffer_size];
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    err = _bd->read(buffer, 512-buffer_size, buffer_size);
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    if (err) {
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        delete[] buffer;
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        return err;
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    }
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    // Check for valid table
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    struct mbr_table *table = reinterpret_cast<struct mbr_table*>(
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            &buffer[buffer_size - sizeof(struct mbr_table)]);
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    if (table->signature[0] != 0x55 || table->signature[1] != 0xaa) {
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        delete[] buffer;
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        return BD_ERROR_INVALID_MBR;
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    }
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    // Check for valid entry
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    // 0x00 = no entry
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    // 0x05, 0x0f = extended partitions, currently not supported
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    if ((table->entries[_part-1].type == 0x00 ||
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         table->entries[_part-1].type == 0x05 ||
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         table->entries[_part-1].type == 0x0f)) {
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        delete[] buffer;
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        return BD_ERROR_INVALID_PARTITION;
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    }
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    // Get partition attributes
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    bd_size_t sector = std::max<uint32_t>(_bd->get_erase_size(), 512);
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    _type = table->entries[_part-1].type;
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    _offset = fromle32(table->entries[_part-1].lba_offset) * sector;
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    _size   = fromle32(table->entries[_part-1].lba_size)   * sector;
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    // Check that block addresses are valid
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    if (!_bd->is_valid_erase(_offset, _size)) {
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        delete[] buffer;
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        return BD_ERROR_INVALID_PARTITION;
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    }
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    delete[] buffer;
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    return 0;
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}
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int MBRBlockDevice::deinit()
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{
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    uint32_t val = core_util_atomic_decr_u32(&_init_ref_count, 1);
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    if (val) {
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        return BD_ERROR_OK;
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    }
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    return _bd->deinit();
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}
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int MBRBlockDevice::sync()
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{
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    return _bd->sync();
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}
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int MBRBlockDevice::read(void *b, bd_addr_t addr, bd_size_t size)
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{
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    MBED_ASSERT(is_valid_read(addr, size));
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    return _bd->read(b, addr + _offset, size);
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}
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int MBRBlockDevice::program(const void *b, bd_addr_t addr, bd_size_t size)
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{
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    MBED_ASSERT(is_valid_program(addr, size));
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    return _bd->program(b, addr + _offset, size);
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}
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int MBRBlockDevice::erase(bd_addr_t addr, bd_size_t size)
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{
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    MBED_ASSERT(is_valid_erase(addr, size));
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    return _bd->erase(addr + _offset, size);
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}
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bd_size_t MBRBlockDevice::get_read_size() const
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{
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    return _bd->get_read_size();
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}
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bd_size_t MBRBlockDevice::get_program_size() const
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{
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    return _bd->get_program_size();
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}
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bd_size_t MBRBlockDevice::get_erase_size() const
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{
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    return _bd->get_erase_size();
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}
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bd_size_t MBRBlockDevice::get_erase_size(bd_addr_t addr) const
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{
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    return _bd->get_erase_size(_offset + addr);
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}
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int MBRBlockDevice::get_erase_value() const
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{
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    return _bd->get_erase_value();
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}
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bd_size_t MBRBlockDevice::size() const
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{
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    return _size;
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}
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bd_size_t MBRBlockDevice::get_partition_start() const
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{
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    return _offset;
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}
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bd_size_t MBRBlockDevice::get_partition_stop() const
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{
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    return _offset+_size;
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}
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uint8_t MBRBlockDevice::get_partition_type() const
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{
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    return _type;
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}
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int MBRBlockDevice::get_partition_number() const
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{
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    return _part;
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}
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} // namespace mbed
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