Files
VictronBLE/src/victronble_core.c
T
scottp b390c0d579 v0.7.0: pure C core + Zephyr module
- Extract all decode/decrypt into a dependency-free C99 core
 (include/victronble.h, src/victronble_core.c): victronble_decode(),
 is_product_adv/key_matches pre-filters, NAN sentinels, LE accessors.
- AES-128-CTR behind a hook: weak-symbol bundled tiny-AES default,
 runtime override (victronble_set_aes_ctr) for PSA/mbedTLS/hardware.
- Arduino VictronBLE class becomes a thin wrapper over the core
 (registry + nonce dedup + rate limit); public C++ API unchanged,
 NAN converted back to the legacy 0 convention.
- Host test vectors (tests/vectors): openssl-generated ciphertext,
 independent of the bundled AES; all five payload shapes + negatives.
- Zephyr module: zephyr/module.yml + Kconfig (CONFIG_VICTRONBLE) +
 observer backend (victronble_zephyr.{h,c}) — scan cb pre-filters and
 queues, dedicated decode thread, listener callbacks, slow passive
 scan defaults, stats counters. docs/ZEPHYR_PORT.md records the plan.
- library.properties: fix URL (gitea, not the nonexistent GitHub).
2026-08-21 11:59:19 +10:00

383 lines
13 KiB
C

/**
* victronble core — decode + decrypt for Victron Instant Readout adverts.
* Pure C99: no Arduino, no BLE stack, no allocation, no I/O, reentrant.
*
* Byte offsets and bit layouts match the proven ESP32/nRF52 implementation
* in src/VictronBLE.cpp and Victron's "Extra Manufacturer Data" document.
*
* Copyright (c) 2025-2026 Scott Penrose
* License: MIT
*/
#include "victronble.h"
#include <string.h>
#include <math.h>
/* Manufacturer-data layout (offsets from the company ID):
* 0-1 company ID (LE, 0x02E1)
* 2 record type, 0x10 = product advertisement
* 3-4 model ID (LE)
* 5 read-out type
* 6 device record type (victronble_device_type_t)
* 7-8 nonce / data counter (LE)
* 9 key check byte (== key[0])
* 10- AES-128-CTR ciphertext, up to 21 bytes
*/
#define OFF_RECORD 2
#define OFF_MODEL 3
#define OFF_READOUT 5
#define OFF_DEVTYPE 6
#define OFF_NONCE 7
#define OFF_KEYCHECK 9
#define OFF_CIPHER 10
#define PRODUCT_ADV 0x10
static uint16_t get_le16(const uint8_t *p)
{
return (uint16_t)(p[0] | ((uint16_t)p[1] << 8));
}
/* --- AES backend selection ------------------------------------------- */
static victronble_aes_ctr_fn aes_fn;
static void *aes_user;
void victronble_set_aes_ctr(victronble_aes_ctr_fn fn, void *user)
{
aes_fn = fn;
aes_user = user;
}
static int aes_ctr(const uint8_t key[16], const uint8_t iv[16],
const uint8_t *in, uint8_t *out, size_t len)
{
if (aes_fn != NULL) {
return aes_fn(key, iv, in, out, len, aes_user);
}
return victronble_aes_ctr_default(key, iv, in, out, len, NULL);
}
/* --- Pre-filters ------------------------------------------------------ */
bool victronble_is_product_adv(const uint8_t *mfg, size_t len)
{
return mfg != NULL && len >= VICTRONBLE_MIN_MFG_LEN &&
get_le16(mfg) == VICTRONBLE_COMPANY_ID &&
mfg[OFF_RECORD] == PRODUCT_ADV;
}
bool victronble_key_matches(const uint8_t *mfg, size_t len,
const uint8_t key[VICTRONBLE_KEY_LEN])
{
return victronble_is_product_adv(mfg, len) && mfg[OFF_KEYCHECK] == key[0];
}
/* --- Per-type payload decoders ---------------------------------------
* All operate on the decrypted payload, zero-padded to
* VICTRONBLE_MAX_CIPHER_LEN bytes, so length checks always pass at the
* decode() call site; they remain for direct-call safety. */
static bool parse_solar_charger(const uint8_t *d, size_t len,
victronble_solar_charger_t *r)
{
if (len < 12) {
return false;
}
r->state = d[0];
r->error = d[1];
r->battery_voltage = (int16_t)get_le16(d + 2) * 0.01f; /* 0.01 V */
r->battery_current = (int16_t)get_le16(d + 4) * 0.1f; /* 0.1 A */
r->yield_today_wh = (uint32_t)get_le16(d + 6) * 10u; /* 0.01 kWh */
r->pv_power = get_le16(d + 8); /* 1 W */
/* Load current is a 9-bit field (0.1 A units); 0x1FF = no load output */
uint16_t load_raw = get_le16(d + 10) & 0x1FF;
r->load_current = (load_raw != 0x1FF) ? load_raw * 0.1f : NAN;
return true;
}
static bool parse_battery_monitor(const uint8_t *d, size_t len,
victronble_battery_monitor_t *r)
{
/* Bit-packed, not byte-aligned; decoded by bit offset. SOC ends at
* bit 117 (byte 14). */
if (len < 15) {
return false;
}
r->remaining_minutes = get_le16(d); /* bits 0-15 */
r->voltage = (int16_t)get_le16(d + 2) * 0.01f; /* bits 16-31 */
r->alarm = get_le16(d + 4); /* bits 32-47 */
/* Aux value (bits 48-63) interpreted per aux mode (bits 64-65) */
uint16_t aux_raw = get_le16(d + 6);
r->aux_mode = d[8] & 0x03;
r->aux_voltage = (r->aux_mode == 0) ? aux_raw * 0.01f : NAN;
r->temperature = (r->aux_mode == 2) ? aux_raw * 0.01f - 273.15f : NAN;
/* Battery current (bits 66-87), 22-bit signed, 0.001 A units */
int32_t current = (int32_t)(((uint32_t)(d[8] >> 2) & 0x3F) |
((uint32_t)d[9] << 6) |
((uint32_t)d[10] << 14));
if (current & 0x200000) {
current |= (int32_t)0xFFC00000; /* sign extend */
}
r->current = current * 0.001f;
/* Consumed Ah (bits 88-107), 20-bit positive count, 0.1 Ah units,
* reported negative (amp-hours consumed). */
uint32_t consumed = (uint32_t)d[11] | ((uint32_t)d[12] << 8) |
((uint32_t)(d[13] & 0x0F) << 16);
r->consumed_ah = -((float)consumed * 0.1f);
/* SOC (bits 108-117), 10-bit, 0.1 % units */
uint16_t soc = (uint16_t)(((d[13] >> 4) | ((uint16_t)d[14] << 4)) & 0x3FF);
r->soc = soc * 0.1f;
return true;
}
static bool parse_inverter(const uint8_t *d, size_t len,
victronble_inverter_t *r)
{
if (len < 9) {
return false;
}
r->state = d[0];
/* d[1] is the error code on the wire; kept out of the struct for parity
* with the proven implementation, which only surfaced the alarm bits. */
r->battery_voltage = get_le16(d + 2) * 0.01f; /* 10 mV */
r->battery_current = (int16_t)get_le16(d + 4) * 0.01f; /* 10 mA */
int32_t ac_power = (int32_t)((uint32_t)d[6] | ((uint32_t)d[7] << 8) |
((uint32_t)d[8] << 16));
if (ac_power & 0x800000) {
ac_power |= (int32_t)0xFF000000; /* sign extend */
}
r->ac_power = (float)ac_power;
r->alarms = (len > 9) ? d[9] : 0;
return true;
}
static bool parse_dcdc(const uint8_t *d, size_t len, victronble_dcdc_t *r)
{
if (len < 8) {
return false;
}
r->state = d[0];
r->error = d[1];
r->input_voltage = get_le16(d + 2) * 0.01f; /* 10 mV */
r->output_voltage = get_le16(d + 4) * 0.01f; /* 10 mV */
r->output_current = get_le16(d + 6) * 0.01f; /* 10 mA */
return true;
}
static uint32_t read_bits(const uint8_t *d, size_t *bit, uint8_t width)
{
uint32_t value = 0;
for (uint8_t i = 0; i < width; i++) {
size_t b = *bit + i;
value |= (uint32_t)((d[b >> 3] >> (b & 7)) & 0x01) << i;
}
*bit += width;
return value;
}
static bool parse_ac_charger(const uint8_t *d, size_t len,
victronble_ac_charger_t *r)
{
/* Bit-packed: 10 fields, 104 bits ending in byte 12, LSB-first. */
if (len < 13) {
return false;
}
size_t bit = 0;
r->state = (uint8_t)read_bits(d, &bit, 8);
r->error = (uint8_t)read_bits(d, &bit, 8);
uint32_t v1 = read_bits(d, &bit, 13), i1 = read_bits(d, &bit, 11);
uint32_t v2 = read_bits(d, &bit, 13), i2 = read_bits(d, &bit, 11);
uint32_t v3 = read_bits(d, &bit, 13), i3 = read_bits(d, &bit, 11);
uint32_t temp = read_bits(d, &bit, 7);
uint32_t ac_cur = read_bits(d, &bit, 9);
r->voltage1 = (v1 != 0x1FFF) ? v1 * 0.01f : NAN;
r->current1 = (i1 != 0x7FF) ? i1 * 0.1f : NAN;
r->voltage2 = (v2 != 0x1FFF) ? v2 * 0.01f : NAN;
r->current2 = (i2 != 0x7FF) ? i2 * 0.1f : NAN;
r->voltage3 = (v3 != 0x1FFF) ? v3 * 0.01f : NAN;
r->current3 = (i3 != 0x7FF) ? i3 * 0.1f : NAN;
r->temperature = (temp != 0x7F) ? (float)temp - 40.0f : NAN;
r->ac_current = (ac_cur != 0x1FF) ? ac_cur * 0.1f : NAN;
return true;
}
/* --- Decode entry point ----------------------------------------------- */
victronble_err_t victronble_decode(const uint8_t *mfg, size_t len,
const uint8_t key[VICTRONBLE_KEY_LEN],
victronble_record_t *out)
{
if (mfg == NULL || len < VICTRONBLE_MIN_MFG_LEN) {
return VICTRONBLE_ERR_SHORT;
}
if (get_le16(mfg) != VICTRONBLE_COMPANY_ID) {
return VICTRONBLE_ERR_NOT_VICTRON;
}
if (mfg[OFF_RECORD] != PRODUCT_ADV) {
return VICTRONBLE_ERR_NOT_PRODUCT;
}
if (mfg[OFF_KEYCHECK] != key[0]) {
return VICTRONBLE_ERR_KEY_MISMATCH;
}
uint16_t nonce = get_le16(mfg + OFF_NONCE);
/* IV: nonce in the two low bytes (LE), remaining 14 bytes zero. */
uint8_t iv[16] = {0};
iv[0] = (uint8_t)(nonce & 0xFF);
iv[1] = (uint8_t)(nonce >> 8);
/* Decrypt what's on the wire; zero-pad to the full payload size so the
* per-type decoders see a fixed-length buffer (matches the proven
* implementation, which zero-filled the wire struct before copy-in). */
uint8_t plain[VICTRONBLE_MAX_CIPHER_LEN] = {0};
size_t cipher_len = len - OFF_CIPHER;
if (cipher_len > VICTRONBLE_MAX_CIPHER_LEN) {
cipher_len = VICTRONBLE_MAX_CIPHER_LEN;
}
if (aes_ctr(key, iv, mfg + OFF_CIPHER, plain, cipher_len) != 0) {
return VICTRONBLE_ERR_CRYPTO;
}
victronble_record_t rec;
memset(&rec, 0, sizeof(rec));
rec.record_type = mfg[OFF_DEVTYPE];
rec.model_id = get_le16(mfg + OFF_MODEL);
rec.readout_type = mfg[OFF_READOUT];
rec.nonce = nonce;
bool ok = false;
switch (mfg[OFF_DEVTYPE]) {
case VICTRONBLE_DEV_SOLAR_CHARGER:
rec.type = VICTRONBLE_DEV_SOLAR_CHARGER;
ok = parse_solar_charger(plain, sizeof(plain), &rec.u.solar);
break;
case VICTRONBLE_DEV_BATTERY_MONITOR:
rec.type = VICTRONBLE_DEV_BATTERY_MONITOR;
ok = parse_battery_monitor(plain, sizeof(plain), &rec.u.batmon);
break;
case VICTRONBLE_DEV_INVERTER:
case VICTRONBLE_DEV_INVERTER_RS:
case VICTRONBLE_DEV_MULTI_RS:
case VICTRONBLE_DEV_VE_BUS:
rec.type = VICTRONBLE_DEV_INVERTER;
ok = parse_inverter(plain, sizeof(plain), &rec.u.inverter);
break;
case VICTRONBLE_DEV_DCDC_CONVERTER:
rec.type = VICTRONBLE_DEV_DCDC_CONVERTER;
ok = parse_dcdc(plain, sizeof(plain), &rec.u.dcdc);
break;
case VICTRONBLE_DEV_AC_CHARGER:
rec.type = VICTRONBLE_DEV_AC_CHARGER;
ok = parse_ac_charger(plain, sizeof(plain), &rec.u.ac);
break;
default:
return VICTRONBLE_ERR_UNSUPPORTED;
}
if (!ok) {
return VICTRONBLE_ERR_SHORT;
}
*out = rec;
return VICTRONBLE_OK;
}
/* --- Helpers ----------------------------------------------------------- */
static int hex_nibble(char c)
{
if (c >= '0' && c <= '9') {
return c - '0';
}
if (c >= 'a' && c <= 'f') {
return c - 'a' + 10;
}
if (c >= 'A' && c <= 'F') {
return c - 'A' + 10;
}
return -1;
}
bool victronble_parse_key(const char *hex, uint8_t key[VICTRONBLE_KEY_LEN])
{
if (hex == NULL || strlen(hex) != VICTRONBLE_KEY_LEN * 2) {
return false;
}
for (size_t i = 0; i < VICTRONBLE_KEY_LEN; i++) {
int hi = hex_nibble(hex[i * 2]);
int lo = hex_nibble(hex[i * 2 + 1]);
if (hi < 0 || lo < 0) {
return false;
}
key[i] = (uint8_t)((hi << 4) | lo);
}
return true;
}
const char *victronble_strerror(victronble_err_t err)
{
switch (err) {
case VICTRONBLE_OK: return "ok";
case VICTRONBLE_ERR_NOT_VICTRON: return "not victron";
case VICTRONBLE_ERR_SHORT: return "truncated";
case VICTRONBLE_ERR_NOT_PRODUCT: return "not product adv";
case VICTRONBLE_ERR_KEY_MISMATCH: return "key mismatch";
case VICTRONBLE_ERR_UNSUPPORTED: return "unsupported type";
case VICTRONBLE_ERR_CRYPTO: return "crypto error";
default: return "unknown error";
}
}
const char *victronble_device_type_str(victronble_device_type_t type)
{
switch (type) {
case VICTRONBLE_DEV_SOLAR_CHARGER: return "solar charger";
case VICTRONBLE_DEV_BATTERY_MONITOR: return "battery monitor";
case VICTRONBLE_DEV_INVERTER: return "inverter";
case VICTRONBLE_DEV_DCDC_CONVERTER: return "dc-dc converter";
case VICTRONBLE_DEV_SMART_LITHIUM: return "smart lithium";
case VICTRONBLE_DEV_INVERTER_RS: return "inverter rs";
case VICTRONBLE_DEV_GX_DEVICE: return "gx device";
case VICTRONBLE_DEV_AC_CHARGER: return "ac charger";
case VICTRONBLE_DEV_BATTERY_PROTECT: return "battery protect";
case VICTRONBLE_DEV_LYNX_SMART_BMS: return "lynx smart bms";
case VICTRONBLE_DEV_MULTI_RS: return "multi rs";
case VICTRONBLE_DEV_VE_BUS: return "ve.bus";
case VICTRONBLE_DEV_DC_ENERGY_METER: return "dc energy meter";
case VICTRONBLE_DEV_ORION_XS: return "orion xs";
default: return "unknown";
}
}
const char *victronble_state_str(uint8_t state)
{
switch (state) {
case VICTRONBLE_STATE_OFF: return "off";
case VICTRONBLE_STATE_LOW_POWER: return "low";
case VICTRONBLE_STATE_FAULT: return "fault";
case VICTRONBLE_STATE_BULK: return "bulk";
case VICTRONBLE_STATE_ABSORPTION: return "abs";
case VICTRONBLE_STATE_FLOAT: return "float";
case VICTRONBLE_STATE_STORAGE: return "store";
case VICTRONBLE_STATE_EQUALIZE: return "eq";
case VICTRONBLE_STATE_INVERTING: return "invert";
case VICTRONBLE_STATE_POWER_SUPPLY: return "psu";
case VICTRONBLE_STATE_EXTERNAL_CONTROL: return "ext";
default: return "?";
}
}