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HaloKeymind/test/test_ota/test_ota_flashplan.cpp
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#include <gtest/gtest.h>
#include <cstring>
#include "helpers/ota/OtaFlashLayout_nrf52.h"
#include "helpers/ota/OtaSdHandoff.h"
using namespace mesh::ota;
// These lock down the nRF52 single-slot staging geometry that OtaStoreFlashNrf52::begin()/
// reopen() rely on. A received `.mota` is placed bottom-aligned below the filesystem region - ExtraFS
// (0xD4000) / InternalFS (0xED000), where the node's user preferences live - and above the running image.
// The prefs region is assumed IMMUTABLE (its bytes are outside the served/hashed self-image), so staging
// or an in-place apply must never reach into it. If a layout constant or the placement math is edited
// inconsistently, these fail here instead of silently corrupting prefs / the app on real hardware.
static constexpr uint32_t APP_V6 = MOTA_NRF52_APP_BASE_S140_V6;
static constexpr uint32_t APP_V7 = MOTA_NRF52_APP_BASE_S140_V7;
static constexpr uint32_t CAP_V6 = MOTA_NRF52_FS_START - (APP_V6 + MOTA_NRF52_INPLACE_MEMORY); // 88 KB
static constexpr uint32_t CAP_V7 = MOTA_NRF52_FS_START - (APP_V7 + MOTA_NRF52_INPLACE_MEMORY); // 84 KB
// A typical running image (~520 KB) leaves room; the container lands strictly within (app_end, FS_START].
TEST(OtaFlashPlan, StagesBelowFilesystemAndAboveApp) {
uint32_t app_end = APP_V6 + 520u * 1024u;
uint32_t start = 0xDEADBEEF;
ASSERT_TRUE(mota_nrf52_stage_plan(64u * 1024u, APP_V6, app_end, start));
EXPECT_GE(start, app_end); // never overlaps the running image
EXPECT_GE(start, APP_V6 + MOTA_NRF52_INPLACE_MEMORY); // never overlaps detools workspace
EXPECT_LE(start + 64u * 1024u, MOTA_NRF52_FS_START); // never reaches into ExtraFS/InternalFS/prefs
EXPECT_EQ(start % MOTA_NRF52_FLASH_PAGE, 0u); // page-aligned (the flash erase unit)
}
// Bottom-aligned: start is the page-aligned FS_START - total_size, so the trailer sits within the
// highest page below the ceiling where the bootloader's downward scan finds it.
TEST(OtaFlashPlan, BottomAlignedBelowCeiling) {
uint32_t start = 0;
uint32_t total = 60000;
ASSERT_TRUE(mota_nrf52_stage_plan(total, APP_V6, APP_V6, start));
EXPECT_EQ(start, (MOTA_NRF52_FS_START - total) & ~(MOTA_NRF52_FLASH_PAGE - 1));
EXPECT_LE(start + total, MOTA_NRF52_FS_START);
EXPECT_GT(start + total, MOTA_NRF52_FS_START - MOTA_NRF52_FLASH_PAGE); // within one page of the ceiling
}
// An exactly-capacity container fills the region above the decoder workspace; one byte more never fits.
TEST(OtaFlashPlan, RejectsOversizedContainer) {
uint32_t start = 0;
ASSERT_TRUE(mota_nrf52_stage_plan(CAP_V6, APP_V6, APP_V6, start));
EXPECT_EQ(start, APP_V6 + MOTA_NRF52_INPLACE_MEMORY);
EXPECT_EQ(start + CAP_V6, MOTA_NRF52_FS_START);
EXPECT_FALSE(mota_nrf52_stage_plan(CAP_V6 + 1, APP_V6, APP_V6, start));
}
// A running image that exceeds detools' fixed in-place memory can never be a valid delta base.
TEST(OtaFlashPlan, RejectsAppLargerThanWorkspace) {
uint32_t app_end = APP_V6 + MOTA_NRF52_INPLACE_MEMORY + 1;
uint32_t start = 0;
EXPECT_FALSE(mota_nrf52_stage_plan(4u * 1024u, APP_V6, app_end, start));
}
// Minimum container is header(8)+trailer(5)=13 bytes; anything smaller is not a container.
TEST(OtaFlashPlan, RejectsUndersizedContainer) {
uint32_t start = 0;
EXPECT_FALSE(mota_nrf52_stage_plan(12, APP_V6, APP_V6, start));
EXPECT_TRUE(mota_nrf52_stage_plan(13, APP_V6, APP_V6, start));
}
// The user-preferences filesystems (ExtraFS @ 0xD4000, InternalFS @ 0xED000) are entirely ABOVE any
// staged container AND above the in-place apply workspace - the immutability the shared-firmware hashes
// depend on. Hard-code the FS addresses here (independent of the layout header) so a future edit to
// FS_START that drifts into a filesystem is caught.
TEST(OtaFlashPlan, PrefsRegionNeverStaged) {
const uint32_t EXTRAFS_START = 0xD4000u; // companion ExtraFS (CustomLFS(0xD4000, 0x19000))
const uint32_t INTERNALFS_START = 0xED000u; // primary LittleFS (holds /com_prefs)
EXPECT_LE(MOTA_NRF52_FS_START, EXTRAFS_START); // staging ceiling at/below the first filesystem
EXPECT_LT(EXTRAFS_START, INTERNALFS_START);
// the largest possible staged container still ends at the ceiling, never into a filesystem
uint32_t start = 0;
ASSERT_TRUE(mota_nrf52_stage_plan(CAP_V6, APP_V6, APP_V6, start));
EXPECT_LE(start + CAP_V6, EXTRAFS_START);
// and the in-place apply workspace ends below the filesystem too
EXPECT_LE(APP_V6 + MOTA_NRF52_INPLACE_MEMORY, EXTRAFS_START);
}
// S140 v7 moves the app start by one page. Runtime linker-base discovery must leave a correspondingly
// smaller but still safe staging region rather than scanning the v6 address and missing EndF.
TEST(OtaFlashPlan, SupportsS140V7RuntimeBase) {
EXPECT_TRUE(mota_nrf52_layout_valid(APP_V7));
EXPECT_EQ(mota_nrf52_stage_capacity(APP_V7), CAP_V7);
uint32_t start = 0;
ASSERT_TRUE(mota_nrf52_stage_plan(CAP_V7, APP_V7, APP_V7 + 520u * 1024u, start));
EXPECT_EQ(start, APP_V7 + MOTA_NRF52_INPLACE_MEMORY);
EXPECT_EQ(start + CAP_V7, MOTA_NRF52_FS_START);
}
// out_start is only written on success - a rejected plan must not clobber the caller's variable.
TEST(OtaFlashPlan, LeavesOutputUntouchedOnReject) {
uint32_t start = 0x1234ABCD;
EXPECT_FALSE(mota_nrf52_stage_plan(CAP_V6 + 1, APP_V6, APP_V6, start));
EXPECT_EQ(start, 0x1234ABCDu);
}
TEST(OtaSdHandoff, EncodesChecksummedRecordAndPreservesSectorTail) {
uint8_t sector[MOTA_SD_SECTOR_SIZE];
std::memset(sector, 0xA5, sizeof(sector));
mota_sd_encode_handoff(sector, 2048, 1234, 630000, 8000000);
EXPECT_EQ(0, std::memcmp(sector, MOTA_SD_HANDOFF_MAGIC, 8));
EXPECT_EQ(mota_sd_rd32(sector + 8), MOTA_SD_HANDOFF_VERSION);
EXPECT_EQ(mota_sd_rd32(sector + 12), 2048u);
EXPECT_EQ(mota_sd_rd32(sector + 16), 1234u);
EXPECT_EQ(mota_sd_rd32(sector + 20), 630000u);
EXPECT_EQ(mota_sd_rd32(sector + 24), ~630000u);
EXPECT_EQ(mota_sd_rd32(sector + 28), 8000000u);
EXPECT_EQ(mota_sd_rd32(sector + 32), mota_sd_crc32(sector, 32));
EXPECT_EQ(sector[MOTA_SD_HANDOFF_LEN], 0xA5); // bytes outside our record are untouched
sector[20] ^= 1u;
EXPECT_NE(mota_sd_rd32(sector + 32), mota_sd_crc32(sector, 32));
}