lorawan: services: add Fragmented Data Block Transport
This service receives fragmented data (usually firmware images) and stores them in the slot1_partition in the flash. Also update CMakeLists.txt in loramac-node module to be able to use FragDecoder.c Signed-off-by: Martin Jäger <martin@libre.solar>
This commit is contained in:
parent
e85074329e
commit
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7 changed files with 622 additions and 0 deletions
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@ -373,6 +373,24 @@ int lorawan_clock_sync_get(uint32_t *gps_time);
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#endif /* CONFIG_LORAWAN_APP_CLOCK_SYNC */
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#ifdef CONFIG_LORAWAN_FRAG_TRANSPORT
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/**
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* @brief Run Fragmented Data Block Transport service
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*
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* This service receives fragmented data (usually firmware images) and
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* stores them in the image-1 flash partition.
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*
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* After all fragments have been received, the provided callback is invoked.
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*
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* @param transport_finished_cb Callback for notification of finished data transfer.
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*
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* @return 0 if successful, negative errno otherwise.
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*/
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int lorawan_frag_transport_run(void (*transport_finished_cb)(void));
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#endif /* CONFIG_LORAWAN_FRAG_TRANSPORT */
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#ifdef __cplusplus
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}
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#endif
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@ -30,6 +30,8 @@ if(${CONFIG_HAS_SEMTECH_LORAMAC})
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zephyr_library_include_directories(
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${ZEPHYR_LORAMAC_NODE_MODULE_DIR}/src/mac
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${ZEPHYR_LORAMAC_NODE_MODULE_DIR}/src/mac/region
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# required for FUOTA FragDecoder.h
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${ZEPHYR_LORAMAC_NODE_MODULE_DIR}/src/apps/LoRaMac/common/LmHandler/packages
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)
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endif()
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@ -53,6 +55,10 @@ zephyr_library_sources_ifdef(CONFIG_HAS_SEMTECH_LORAMAC
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${ZEPHYR_LORAMAC_NODE_MODULE_DIR}/src/mac/LoRaMacSerializer.c
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)
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zephyr_library_sources_ifdef(CONFIG_LORAWAN_FRAG_TRANSPORT
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${ZEPHYR_LORAMAC_NODE_MODULE_DIR}/src/apps/LoRaMac/common/LmHandler/packages/FragDecoder.c
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)
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zephyr_library_sources_ifdef(CONFIG_HAS_SEMTECH_LORAMAC
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${ZEPHYR_LORAMAC_NODE_MODULE_DIR}/src/mac/region/Region.c
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${ZEPHYR_LORAMAC_NODE_MODULE_DIR}/src/mac/region/RegionCommon.c
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@ -9,6 +9,12 @@ if(CONFIG_LORAWAN_SERVICES)
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clock_sync.c
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)
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zephyr_library_sources_ifdef(
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CONFIG_LORAWAN_FRAG_TRANSPORT
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frag_flash.c
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frag_transport.c
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)
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zephyr_library_sources_ifdef(
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CONFIG_LORAWAN_REMOTE_MULTICAST
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multicast.c
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@ -54,6 +54,90 @@ config LORAWAN_APP_CLOCK_SYNC_PERIODICITY
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Default setting: 24h.
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config LORAWAN_FRAG_TRANSPORT
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bool "Fragmented Data Block Transport"
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select FLASH_MAP
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select FLASH_PAGE_LAYOUT
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select IMG_MANAGER
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help
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Enables the LoRaWAN Fragmented Data Block Transport service
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according to TS004-1.0.0 as published by the LoRa Alliance.
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The used default port for this service is 201.
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DT_CHOSEN_Z_CODE_PARTITION := zephyr,code-partition
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config LORAWAN_FRAG_TRANSPORT_IMAGE_SIZE
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int "Total size of firmware image"
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depends on LORAWAN_FRAG_TRANSPORT
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default $(dt_chosen_reg_size_int,$(DT_CHOSEN_Z_CODE_PARTITION))
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help
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Size of the flash partition for the application firmware image
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in bytes.
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The minimum number of fragments to be transferred is calculated from
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this value divided by the fragment size.
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This setting has significant influence on RAM usage.
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config LORAWAN_FRAG_TRANSPORT_MAX_FRAG_SIZE
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int "Maximum size of transported fragments"
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depends on LORAWAN_FRAG_TRANSPORT
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range 1 239
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default 232
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help
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Maximum size of one fragment transferred during the fragmented data
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block transport session of the FUOTA process. It is chosen on the
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server side.
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The fragment has to fit into the LoRaWAN payload, which can be up to
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242 bytes depending on the region and frequency settings. 3 bytes of
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the payload are consumed for protocol information.
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For some MCUs like the STM32WL the fragment size has to be a multiple
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of 8 (see flash driver for further information).
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This setting has significant influence on RAM usage. If the exact
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fragment size is known, use that value for MIN and MAX config to
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reduce memory consumption.
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config LORAWAN_FRAG_TRANSPORT_MIN_FRAG_SIZE
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int "Minimum size of transported fragments"
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depends on LORAWAN_FRAG_TRANSPORT
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range 1 239
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default 48
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help
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Minimum size of one fragment transferred during the fragmented data
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block transport session of the FUOTA process. It is chosen on the
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server side.
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The fragment has to fit into the LoRaWAN payload, which can be up to
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242 bytes depending on the region and frequency settings. 3 bytes of
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the payload are consumed for protocol information.
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For some MCUs like the STM32WL the fragment size has to be a multiple
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of 8 (see flash driver for further information).
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This setting has significant influence on RAM usage. If the exact
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fragment size is known, use that value for MIN and MAX config to
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reduce memory consumption.
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config LORAWAN_FRAG_TRANSPORT_MAX_REDUNDANCY
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int "Percentage of redundant fragments"
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depends on LORAWAN_FRAG_TRANSPORT
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range 1 100
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default 20
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help
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The built-in forward error correction (FEC) mechanism allows to
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reconstruct missed packages from additional redundant packages
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sent by the server after all packages have been sent.
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This parameter specifies the maximum amount of packet loss (in
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percent) for which it should be possible to reconstruct the full
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firmware image.
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This setting has significant influence on RAM usage.
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config LORAWAN_REMOTE_MULTICAST
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bool "Remote Multicast Setup"
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depends on LORAWAN_APP_CLOCK_SYNC
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129
subsys/lorawan/services/frag_flash.c
Normal file
129
subsys/lorawan/services/frag_flash.c
Normal file
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@ -0,0 +1,129 @@
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/*
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* Copyright (c) 2022-2024 Libre Solar Technologies GmbH
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* Copyright (c) 2022-2024 tado GmbH
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*
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* SPDX-License-Identifier: Apache-2.0
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*/
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#include "frag_flash.h"
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#include <FragDecoder.h>
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#include <zephyr/dfu/mcuboot.h>
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#include <zephyr/kernel.h>
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#include <zephyr/logging/log.h>
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#include <zephyr/storage/flash_map.h>
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LOG_MODULE_REGISTER(lorawan_frag_flash, CONFIG_LORAWAN_SERVICES_LOG_LEVEL);
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#define TARGET_IMAGE_AREA FIXED_PARTITION_ID(slot1_partition)
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struct frag_cache_entry {
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uint32_t addr;
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uint8_t data[FRAG_MAX_SIZE];
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};
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static struct frag_cache_entry frag_cache[FRAG_MAX_REDUNDANCY];
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static uint32_t frag_size;
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static int cached_frags;
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static bool use_cache;
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static const struct flash_area *fa;
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int frag_flash_init(uint32_t fragment_size)
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{
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int err;
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if (fragment_size > FRAG_MAX_SIZE) {
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return -ENOSPC;
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}
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frag_size = fragment_size;
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cached_frags = 0;
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use_cache = false;
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err = flash_area_open(TARGET_IMAGE_AREA, &fa);
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if (err) {
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return err;
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}
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LOG_DBG("Starting to erase flash area");
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err = flash_area_erase(fa, 0, fa->fa_size);
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LOG_DBG("Finished erasing flash area");
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return err;
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}
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int8_t frag_flash_write(uint32_t addr, uint8_t *data, uint32_t size)
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{
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int8_t err = 0;
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if (!use_cache) {
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LOG_DBG("Writing %u bytes to addr 0x%X", size, addr);
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err = flash_area_write(fa, addr, data, size);
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} else {
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LOG_DBG("Caching %u bytes for addr 0x%X", size, addr);
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if (size != frag_size) {
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LOG_ERR("Invalid fragment size %d", size);
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return -EINVAL;
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}
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/* overwrite fragment in cache if existing */
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for (int i = 0; i < cached_frags; i++) {
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if (frag_cache[i].addr == addr) {
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memcpy(frag_cache[i].data, data, size);
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return 0;
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}
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}
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/* otherwise create new cache entry */
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if (cached_frags < ARRAY_SIZE(frag_cache)) {
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frag_cache[cached_frags].addr = addr;
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memcpy(frag_cache[cached_frags].data, data, size);
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cached_frags++;
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} else {
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LOG_ERR("Fragment cache too small");
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err = -ENOSPC;
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}
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}
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return err == 0 ? 0 : -1;
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}
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int8_t frag_flash_read(uint32_t addr, uint8_t *data, uint32_t size)
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{
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for (int i = 0; i < cached_frags; i++) {
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if (frag_cache[i].addr == addr) {
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memcpy(data, frag_cache[i].data, size);
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return 0;
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}
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}
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return flash_area_read(fa, addr, data, size) == 0 ? 0 : -1;
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}
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void frag_flash_use_cache(void)
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{
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use_cache = true;
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}
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void frag_flash_finish(void)
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{
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int err;
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for (int i = 0; i < cached_frags; i++) {
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LOG_DBG("Writing %u bytes to addr 0x%x", frag_size, frag_cache[i].addr);
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flash_area_write(fa, frag_cache[i].addr, frag_cache[i].data, frag_size);
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}
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flash_area_close(fa);
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err = boot_request_upgrade(BOOT_UPGRADE_TEST);
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if (err) {
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LOG_ERR("Failed to request upgrade (err %d)", err);
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}
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}
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69
subsys/lorawan/services/frag_flash.h
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69
subsys/lorawan/services/frag_flash.h
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@ -0,0 +1,69 @@
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/*
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* Copyright (c) 2022-2024 Libre Solar Technologies GmbH
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* Copyright (c) 2022-2024 tado GmbH
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*
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* SPDX-License-Identifier: Apache-2.0
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*/
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#ifndef ZEPHYR_SUBSYS_LORAWAN_SERVICES_FRAG_FLASH_H_
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#define ZEPHYR_SUBSYS_LORAWAN_SERVICES_FRAG_FLASH_H_
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#include <stdint.h>
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/**
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* Initialize flash driver and prepare partition for new firmware image.
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*
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* This function mass-erases the flash partition and may take a while to return.
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*
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* @param frag_size Fragment size used for this session
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*
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* @returns 0 for success, otherwise negative error code
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*/
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int frag_flash_init(uint32_t frag_size);
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/**
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* Write received data fragment to flash.
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*
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* This function is called by FragDecoder from LoRaMAC-node stack.
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*
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* @param addr Flash address relative to start of slot
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* @param data Data buffer
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* @param size Number of bytes in the buffer
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*
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* @returns 0 for success, otherwise negative error code
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*/
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int8_t frag_flash_write(uint32_t addr, uint8_t *data, uint32_t size);
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/**
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* Read back data from flash.
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*
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* This function is called by FragDecoder from LoRaMAC-node stack.
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*
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* @param addr Flash address relative to start of slot
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* @param data Data buffer
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* @param size Number of bytes in the buffer
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*
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* @returns 0 for success, otherwise negative error code
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*/
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int8_t frag_flash_read(uint32_t addr, uint8_t *data, uint32_t size);
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/**
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* Start caching fragments in RAM.
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*
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* Coded/redundant fragments may be overwritten with future fragments,
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* so we have to cache them in RAM instead of flash.
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*
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* This function must be called once all uncoded fragments have been received.
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*/
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void frag_flash_use_cache(void);
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/**
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* Finalize flashing after sufficient fragments have been received.
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*
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* This call will also write cached fragments to flash.
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*
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* After this call the new firmware is ready to be checked and booted.
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*/
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void frag_flash_finish(void);
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#endif /* ZEPHYR_SUBSYS_LORAWAN_SERVICES_FRAG_FLASH_H_ */
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310
subsys/lorawan/services/frag_transport.c
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310
subsys/lorawan/services/frag_transport.c
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@ -0,0 +1,310 @@
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/*
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* Copyright (c) 2022-2024 Libre Solar Technologies GmbH
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* Copyright (c) 2022-2024 tado GmbH
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*
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* Parts of this implementation were inspired by LmhpFragmentation.c from the
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* LoRaMac-node firmware repository https://github.com/Lora-net/LoRaMac-node
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* written by Miguel Luis (Semtech).
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*
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* SPDX-License-Identifier: Apache-2.0
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*/
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#include "frag_flash.h"
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#include "lorawan_services.h"
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#include <LoRaMac.h>
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#include <FragDecoder.h>
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#include <zephyr/lorawan/lorawan.h>
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#include <zephyr/logging/log.h>
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#include <zephyr/random/random.h>
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#include <zephyr/sys/byteorder.h>
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LOG_MODULE_REGISTER(lorawan_frag_transport, CONFIG_LORAWAN_SERVICES_LOG_LEVEL);
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/**
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* Version of LoRaWAN Fragmented Data Block Transport Specification
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*
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* This implementation only supports TS004-1.0.0.
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*/
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#define FRAG_TRANSPORT_VERSION 1
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/**
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* Maximum expected number of frag transport commands per packet
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*
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* The standard states "A message MAY carry more than one command". Even though this was not
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* observed during testing, space for up to 3 packages is reserved.
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*/
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#define FRAG_TRANSPORT_MAX_CMDS_PER_PACKAGE 3
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/* maximum length of frag_transport answers */
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#define FRAG_TRANSPORT_MAX_ANS_LEN 5
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enum frag_transport_commands {
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FRAG_TRANSPORT_CMD_PKG_VERSION = 0x00,
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FRAG_TRANSPORT_CMD_FRAG_STATUS = 0x01,
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FRAG_TRANSPORT_CMD_FRAG_SESSION_SETUP = 0x02,
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FRAG_TRANSPORT_CMD_FRAG_SESSION_DELETE = 0x03,
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FRAG_TRANSPORT_CMD_DATA_FRAGMENT = 0x08,
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};
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struct frag_transport_context {
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/** Stores if a session is active */
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bool is_active;
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union {
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uint8_t frag_session;
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struct {
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/** Multicast groups allowed to input to this frag session */
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uint8_t mc_group_bit_mask: 4;
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/** Identifies this session */
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uint8_t frag_index: 2;
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};
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};
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/** Number of fragments of the data block for this session, max. 2^14-1 */
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uint16_t nb_frag;
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/** Number of fragments received in this session (including coded, uncoded and repeated) */
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uint16_t nb_frag_received;
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/** Size of each fragment in octets */
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uint8_t frag_size;
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union {
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uint8_t control;
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struct {
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/** Random delay for some responses between 0 and 2^(BlockAckDelay + 4) */
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uint8_t block_ack_delay: 3;
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/** Used fragmentation algorithm (0 for forward error correction) */
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uint8_t frag_algo: 3;
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};
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};
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/** Padding in the last fragment if total size is not a multiple of frag_size */
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uint8_t padding;
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/** Application-specific descriptor for the data block, e.g. firmware version */
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uint32_t descriptor;
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/* variables required for FragDecoder.h */
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FragDecoderCallbacks_t decoder_callbacks;
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int32_t decoder_process_status;
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};
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/*
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* The frag decoder is a singleton, so we can only have one ongoing frag session at a time, even
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* though the standard allows up to 4 sessions
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*/
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static struct frag_transport_context ctx;
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/* Callback for notification of finished firmware transfer */
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static void (*finished_cb)(void);
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static void frag_transport_package_callback(uint8_t port, bool data_pending, int16_t rssi,
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int8_t snr, uint8_t len, const uint8_t *rx_buf)
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{
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uint8_t tx_buf[FRAG_TRANSPORT_MAX_CMDS_PER_PACKAGE * FRAG_TRANSPORT_MAX_ANS_LEN];
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uint8_t tx_pos = 0;
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uint8_t rx_pos = 0;
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int ans_delay = 0;
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__ASSERT(port == LORAWAN_PORT_FRAG_TRANSPORT, "Wrong port %d", port);
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while (rx_pos < len) {
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uint8_t command_id = rx_buf[rx_pos++];
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if (sizeof(tx_buf) - tx_pos < FRAG_TRANSPORT_MAX_ANS_LEN) {
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LOG_ERR("insufficient tx_buf size, some requests discarded");
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break;
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}
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||||
|
||||
switch (command_id) {
|
||||
case FRAG_TRANSPORT_CMD_PKG_VERSION:
|
||||
tx_buf[tx_pos++] = FRAG_TRANSPORT_CMD_PKG_VERSION;
|
||||
tx_buf[tx_pos++] = LORAWAN_PACKAGE_ID_FRAG_TRANSPORT_BLOCK;
|
||||
tx_buf[tx_pos++] = FRAG_TRANSPORT_VERSION;
|
||||
break;
|
||||
case FRAG_TRANSPORT_CMD_FRAG_STATUS: {
|
||||
uint8_t frag_status = rx_buf[rx_pos++] & 0x07;
|
||||
uint8_t participants = frag_status & 0x01;
|
||||
uint8_t index = frag_status >> 1;
|
||||
|
||||
LOG_DBG("FragSessionStatusReq index %d, participants: %u", index,
|
||||
participants);
|
||||
|
||||
uint8_t missing_frag = CLAMP(ctx.nb_frag - ctx.nb_frag_received, 0, 255);
|
||||
|
||||
FragDecoderStatus_t decoder_status = FragDecoderGetStatus();
|
||||
uint8_t memory_error = decoder_status.MatrixError;
|
||||
|
||||
if (participants == 1 || missing_frag > 0) {
|
||||
tx_buf[tx_pos++] = FRAG_TRANSPORT_CMD_FRAG_STATUS;
|
||||
tx_buf[tx_pos++] = ctx.nb_frag_received & 0xFF;
|
||||
tx_buf[tx_pos++] =
|
||||
(index << 6) | ((ctx.nb_frag_received >> 8) & 0x3F);
|
||||
tx_buf[tx_pos++] = missing_frag;
|
||||
tx_buf[tx_pos++] = memory_error & 0x01;
|
||||
|
||||
ans_delay = sys_rand32_get() % (1U << (ctx.block_ack_delay + 4));
|
||||
|
||||
LOG_DBG("FragSessionStatusAns index %d, NbFragReceived: %u, "
|
||||
"MissingFrag: %u, MemoryError: %u, delay: %d",
|
||||
index, ctx.nb_frag_received, missing_frag, memory_error,
|
||||
ans_delay);
|
||||
}
|
||||
break;
|
||||
}
|
||||
case FRAG_TRANSPORT_CMD_FRAG_SESSION_SETUP: {
|
||||
uint8_t frag_session = rx_buf[rx_pos++] & 0x3F;
|
||||
uint8_t index = frag_session >> 4;
|
||||
uint8_t status = index << 6;
|
||||
|
||||
if (!ctx.is_active || ctx.frag_index == index) {
|
||||
ctx.frag_session = frag_session;
|
||||
ctx.nb_frag_received = 0;
|
||||
|
||||
ctx.nb_frag = sys_get_le16(rx_buf + rx_pos);
|
||||
rx_pos += sizeof(uint16_t);
|
||||
|
||||
ctx.frag_size = rx_buf[rx_pos++];
|
||||
ctx.control = rx_buf[rx_pos++];
|
||||
ctx.padding = rx_buf[rx_pos++];
|
||||
|
||||
ctx.descriptor = sys_get_le32(rx_buf + rx_pos);
|
||||
rx_pos += sizeof(uint32_t);
|
||||
|
||||
LOG_INF("FragSessionSetupReq index %d, nb_frag: %u, frag_size: %u, "
|
||||
"padding: %u, control: 0x%x, descriptor: 0x%.8x",
|
||||
index, ctx.nb_frag, ctx.frag_size, ctx.padding, ctx.control,
|
||||
ctx.descriptor);
|
||||
} else {
|
||||
/* FragIndex unsupported */
|
||||
status |= BIT(2);
|
||||
|
||||
LOG_WRN("FragSessionSetupReq failed. Session %u still active",
|
||||
ctx.frag_index);
|
||||
}
|
||||
|
||||
if (ctx.frag_algo > 0) {
|
||||
/* FragAlgo unsupported */
|
||||
status |= BIT(0);
|
||||
}
|
||||
|
||||
if (ctx.nb_frag > FRAG_MAX_NB || ctx.frag_size > FRAG_MAX_SIZE ||
|
||||
ctx.nb_frag * ctx.frag_size > FragDecoderGetMaxFileSize()) {
|
||||
/* Not enough memory */
|
||||
status |= BIT(1);
|
||||
}
|
||||
|
||||
/* Descriptor not used: Ignore Wrong Descriptor error */
|
||||
|
||||
if ((status & 0x1F) == 0) {
|
||||
/*
|
||||
* Assign callbacks after initialization to prevent the FragDecoder
|
||||
* from writing byte-wise 0xFF to the entire flash. Instead, erase
|
||||
* flash properly with own implementation.
|
||||
*/
|
||||
ctx.decoder_callbacks.FragDecoderWrite = NULL;
|
||||
ctx.decoder_callbacks.FragDecoderRead = NULL;
|
||||
|
||||
FragDecoderInit(ctx.nb_frag, ctx.frag_size, &ctx.decoder_callbacks);
|
||||
|
||||
ctx.decoder_callbacks.FragDecoderWrite = frag_flash_write;
|
||||
ctx.decoder_callbacks.FragDecoderRead = frag_flash_read;
|
||||
|
||||
frag_flash_init(ctx.frag_size);
|
||||
ctx.is_active = true;
|
||||
ctx.decoder_process_status = FRAG_SESSION_ONGOING;
|
||||
}
|
||||
|
||||
tx_buf[tx_pos++] = FRAG_TRANSPORT_CMD_FRAG_SESSION_SETUP;
|
||||
tx_buf[tx_pos++] = status;
|
||||
break;
|
||||
}
|
||||
case FRAG_TRANSPORT_CMD_FRAG_SESSION_DELETE: {
|
||||
uint8_t index = rx_buf[rx_pos++] & 0x03;
|
||||
uint8_t status = 0x00;
|
||||
|
||||
status |= index;
|
||||
if (!ctx.is_active || ctx.frag_index != index) {
|
||||
/* Session does not exist */
|
||||
status |= BIT(2);
|
||||
} else {
|
||||
ctx.is_active = false;
|
||||
}
|
||||
|
||||
tx_buf[tx_pos++] = FRAG_TRANSPORT_CMD_FRAG_SESSION_DELETE;
|
||||
tx_buf[tx_pos++] = status;
|
||||
break;
|
||||
}
|
||||
case FRAG_TRANSPORT_CMD_DATA_FRAGMENT: {
|
||||
ctx.nb_frag_received++;
|
||||
|
||||
uint16_t frag_index_n = sys_get_le16(rx_buf + rx_pos);
|
||||
|
||||
rx_pos += 2;
|
||||
|
||||
uint16_t frag_counter = frag_index_n & 0x3FFF;
|
||||
uint8_t index = (frag_index_n >> 14) & 0x03;
|
||||
|
||||
if (!ctx.is_active || index != ctx.frag_index) {
|
||||
LOG_DBG("DataFragment received for inactive session %u", index);
|
||||
break;
|
||||
}
|
||||
|
||||
if (ctx.decoder_process_status == FRAG_SESSION_ONGOING) {
|
||||
if (frag_counter > ctx.nb_frag) {
|
||||
/* Additional fragments have to be cached in RAM for
|
||||
* recovery algorithm.
|
||||
*/
|
||||
frag_flash_use_cache();
|
||||
}
|
||||
|
||||
ctx.decoder_process_status = FragDecoderProcess(
|
||||
frag_counter, (uint8_t *)&rx_buf[rx_pos]);
|
||||
}
|
||||
|
||||
LOG_INF("DataFragment %u of %u (%u lost), session: %u, decoder result: %d",
|
||||
frag_counter, ctx.nb_frag, frag_counter - ctx.nb_frag_received,
|
||||
index, ctx.decoder_process_status);
|
||||
|
||||
if (ctx.decoder_process_status >= 0) {
|
||||
/* Positive status corresponds to number of lost (but recovered)
|
||||
* fragments. Value >= 0 means the transport is done.
|
||||
*/
|
||||
frag_flash_finish();
|
||||
|
||||
LOG_INF("Frag Transport finished successfully");
|
||||
|
||||
if (finished_cb != NULL) {
|
||||
finished_cb();
|
||||
}
|
||||
|
||||
ctx.is_active = false;
|
||||
/* avoid processing further fragments */
|
||||
ctx.decoder_process_status = FRAG_SESSION_NOT_STARTED;
|
||||
}
|
||||
|
||||
rx_pos += ctx.frag_size;
|
||||
break;
|
||||
}
|
||||
default:
|
||||
return;
|
||||
}
|
||||
}
|
||||
|
||||
if (tx_pos > 0) {
|
||||
lorawan_services_schedule_uplink(LORAWAN_PORT_FRAG_TRANSPORT, tx_buf, tx_pos,
|
||||
ans_delay);
|
||||
}
|
||||
}
|
||||
|
||||
static struct lorawan_downlink_cb downlink_cb = {
|
||||
.port = (uint8_t)LORAWAN_PORT_FRAG_TRANSPORT,
|
||||
.cb = frag_transport_package_callback,
|
||||
};
|
||||
|
||||
int lorawan_frag_transport_run(void (*transport_finished_cb)(void))
|
||||
{
|
||||
finished_cb = transport_finished_cb;
|
||||
|
||||
/* initialize non-zero static variables */
|
||||
ctx.decoder_process_status = FRAG_SESSION_NOT_STARTED;
|
||||
|
||||
lorawan_register_downlink_callback(&downlink_cb);
|
||||
|
||||
return 0;
|
||||
}
|
||||
Loading…
Reference in a new issue