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* first pass tests * more tests * Fix two crafted-admin-packet crashes found by the E5 fuzzer Both are reachable from an authorized admin (local from==0, admin channel, or PKC) - remote DoS: 1. SIGFPE in LoRa config validation. A set_config LoRaConfig with use_preset=false and bandwidth=0 makes freqSlotWidth 0, so numFreqSlots is 0 and `hash(name) % numFreqSlots` (RadioInterface.cpp) divides by zero. Guard the modulo; the existing channel_num check then rejects/ clamps the config. 2. Stack overflow in Channels::getKey. A SECONDARY channel at the primary slot with an empty PSK recursed into getKey(primaryIndex) forever. Skip the primary-key borrow when chIndex == primaryIndex. Re-enable the E5 admin fuzzer to hit both triggers again (use_preset both ways incl. bandwidth 0, plus the set_channel tag) as regression guards. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> * Correct fuzz-test invariants after the crash fixes - E5 admin fuzz: node eviction under a filling NodeDB is legitimate, so assert only the bounded-count invariant, not that a specific seed node survives 6000 mutating ops. - TMM blitz: scope off the nodeinfo direct-response send path (it needs a fully-wired MeshService/phone queue the fixture doesn't provide; the deterministic directResponse tests cover it). The crafted-nodenum rate/unknown/position cache stress is unchanged. clod helped too * realistic tests * test: dedup fuzz RNG into shared test/support/DeterministicRng.h The four in-tree fuzz suites (test_fuzz_decode, test_fuzz_packets, test_hop_scaling, test_traffic_management) each carried a byte-identical copy of the seeded 64-bit LCG (rngSeed/rngNext/rngByte/rngRange). Hoist it into one shared header so there is a single generator to reason about and no risk of the copies drifting. static inline keeps per-suite state per translation unit and avoids -Wunused-function for suites that don't use every helper. Also corrects a stale comment in test_traffic_management (the blitz's nodeinfo direct-response path is intentionally left off). No behavioral change: same constants, same per-suite seeds. clod helped too * test: fuzz uncovered ProtobufModule handlers and the MQTT downlink ingress Extend the in-tree fuzz coverage to packet sources that previously had none: - test_fuzz_packets E8/E9/E10: drive PositionModule, DeviceTelemetryModule and NeighborInfoModule at handleReceivedProtobuf directly (via using-shims, bypassing the ProtobufModule reply/send path so no router is needed). The fixture already stands up nodeDB/service/channels, and nodeStatus/powerStatus are auto-initialized in main.cpp, so no new globals are required. Adds a shared fuzzRxHeader() helper for crafting adversarial RX packet headers. - test_fuzz_decode: add meshtastic_KeyVerification to the decode table. The KeyVerification and StoreForward handler paths are documented as decode-level only, with the concrete reason each is intrinsic (private-state gating / PSRAM + self-pointer wiring), not a fixture gap. - test_mqtt: test_receiveFuzzServiceEnvelope blitzes the non-RF broker-push ingress (onReceiveProto) two ways - raw garbage bytes that must fail envelope decode cleanly, and a well-formed ServiceEnvelope wrapping a crafted inner MeshPacket over crafted channel_id/gateway_id - exercising the channel match, isFromUs, XEdDSA receive policy and perhapsDecode chain. Adds a deliverRaw() passthrough to MQTTUnitTest. All under the coverage env (ASan/LSan). No firmware/src changes. Full sweep GREEN 27/27, 544 cases. clod helped too * Harden LoRa/channel config against crafted admin messages; consolidate test helpers Production (review findings on the hot-fuzz crash fixes): - Clamp bandwidth at the source (clampBandwidthKHz) in checkOrClampConfigLora and applyModemConfig so numFreqSlots can never be 0 for any consumer; a bandwidth-0 set_config previously passed validation and re-armed the SIGFPE on the next applyModemConfig. - Guard applyModemConfig's hash % numFreqSlots (the validator's sibling modulo was fixed earlier but this one was still unguarded). - Enforce the primary-channel invariant in Channels::onConfigChanged: a config demoting every slot now re-promotes the stale SECONDARY slot (keeping its key) or restores the default channel if the slot is DISABLED, instead of leaving every getPrimaryIndex() reader on a non-primary slot. The getKey recursion guard stays as defense-in-depth. Tests: - New test/support/MockMeshService.h and AdminModuleTestShim.h replace four byte-identical mocks and three divergent admin shims (test_mqtt's capturing mock is genuinely different and stays). - DeterministicRng.h: add rngFill() (replaces 14 hand-rolled fill loops) and rngEdgeNodeNum() (unifies the three NodeNum boundary pools). - Extract fuzzChannelSettings() shared by the set_channel case and fuzzBeacon. - fuzzBeacon: the un-terminated branch now fills the whole buffer with non-NUL bytes so the strnlen bound is actually stressed (~50% of iterations, not ~4%). - E6 beacon fuzz: replace the TEST_ASSERT_TRUE(true) tautology with real invariants (handler never consumes; offers land in lastReceivedOffer keyed to the sender). - Trim the seven over-long comment blocks flagged against the 1-2 line rule; the FINDINGS trailer moves to this commit message (see production notes). Full native suite GREEN 27/27 under the coverage (ASan/LSan) env. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> * Clamp UTF-8 char length in the emote walkers; add test_fuzz_emotes A TEXT_MESSAGE payload is opaque protobuf bytes, so PB_VALIDATE_UTF8 never screens it - invalid UTF-8 and truncated multi-byte lead bytes reach the emote/width render path verbatim. EmoteRenderer's walkers advanced by utf8CharLen(lead) without clamping to the bytes actually remaining, so a truncated lead (e.g. a lone 0xF0, which claims 4 bytes) near the end of the buffer made getUtf8ChunkWidth's memcpy read past the string. ASan confirms a heap-buffer-overflow READ from measureStringWithEmotes. Add utf8CharLenClamped() and use it at every walk site (width measure, truncation cut-loop, and the draw-path text-run/chunk builders); the one already-guarded site (matchAtIgnoringModifiers) is unchanged. New test/test_fuzz_emotes drives measureStringWithEmotes and truncateToWidth over adversarial byte strings (biased to embed/end in truncated multi-byte leads) in exact-sized heap buffers so any over-read is a hard ASan fault. Its headless display uses a synthetic font (firstChar 0, fontData centered in a large buffer) so the stock OLEDDisplay::getStringWidth - which indexes the font jump table with a signed char and over-reads for any byte >= 0x80 - does not mask the finding. native-suite-count bumped 27 -> 28. Full native suite GREEN 28/28 under the coverage (ASan/LSan) env. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> * Keep emote width measurement in-bounds for non-ASCII bytes OLEDDisplay::getStringWidth (the utf8=false path EmoteRenderer uses on default builds) indexes the font jump table by (c - firstChar) with a signed char and no bounds check, so any byte outside printable ASCII - high bytes from UTF-8 text, but also a stray control byte like 0x0A - reads outside the font array. On-device this reads adjacent flash and returns a garbage width; under ASan the test_fuzz_emotes fuzzer flags it as a global-buffer-overflow, and it made the non-ASCII width measurement meaningless either way. The OLED driver is a pinned upstream dependency, so guard it firmware-side in EmoteRenderer's getStringWidth helper: measure a sanitized copy where any byte outside [0x20, 0x7E] counts as a '?' placeholder. Printable ASCII is unchanged and the UA/RU lookup path is untouched. test_fuzz_emotes now drives a real ArialMT font instead of the synthetic in-bounds font it needed before this fix, so the suite exercises the true production width path (utf8CharLen clamp + this sanitizer) end to end. The same fuzzer tripped the global-buffer-overflow before this change. Full native suite GREEN 28/28 under the coverage (ASan/LSan) env. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> --------- Co-authored-by: Claude Fable 5 <noreply@anthropic.com>
326 lines
12 KiB
C++
326 lines
12 KiB
C++
#include "MeshRadio.h"
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#include "MeshService.h"
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#include "RadioInterface.h"
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#include "TestUtil.h"
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#include <unity.h>
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#include "meshtastic/config.pb.h"
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#include "support/MockMeshService.h"
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static MockMeshService *mockMeshService;
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// Test shim to expose protected radio parameters set by applyModemConfig()
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class TestableRadioInterface : public RadioInterface
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{
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public:
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TestableRadioInterface() : RadioInterface() {}
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uint8_t getCr() const { return cr; }
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uint8_t getSf() const { return sf; }
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float getBw() const { return bw; }
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// Override reconfigure to call the base which invokes applyModemConfig()
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bool reconfigure() override { return RadioInterface::reconfigure(); }
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// Stubs for pure virtual methods required by RadioInterface
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uint32_t getPacketTime(uint32_t, bool) override { return 0; }
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ErrorCode send(meshtastic_MeshPacket *p) override { return ERRNO_OK; }
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};
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static void test_bwCodeToKHz_specialMappings()
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{
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 7.8f, bwCodeToKHz(8));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 10.4f, bwCodeToKHz(10));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 15.6f, bwCodeToKHz(16));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 20.8f, bwCodeToKHz(21));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 31.25f, bwCodeToKHz(31));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 41.7f, bwCodeToKHz(42));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 62.5f, bwCodeToKHz(62));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 203.125f, bwCodeToKHz(200));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 406.25f, bwCodeToKHz(400));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 812.5f, bwCodeToKHz(800));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 1625.0f, bwCodeToKHz(1600));
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}
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static void test_bwCodeToKHz_passthrough()
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{
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 125.0f, bwCodeToKHz(125));
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TEST_ASSERT_FLOAT_WITHIN(0.0001f, 250.0f, bwCodeToKHz(250));
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}
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static void test_bwCodeToKHz_roundTrip()
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{
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// Round-trip: bwKHzToCode(bwCodeToKHz(code)) should return the original code
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uint16_t codes[] = {8, 10, 16, 21, 31, 42, 62, 200, 400, 800, 1600};
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for (size_t i = 0; i < sizeof(codes) / sizeof(codes[0]); i++) {
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uint16_t code = codes[i];
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float khz = bwCodeToKHz(code);
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uint16_t result = bwKHzToCode(khz);
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TEST_ASSERT_EQUAL_UINT16(code, result);
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}
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}
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static void test_validateConfigLora_noopWhenUsePresetFalse()
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{
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meshtastic_Config_LoRaConfig cfg = meshtastic_Config_LoRaConfig_init_zero;
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cfg.use_preset = false;
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cfg.region = meshtastic_Config_LoRaConfig_RegionCode_US;
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cfg.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_MEDIUM_FAST;
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cfg.bandwidth = 123;
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cfg.spread_factor = 8;
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RadioInterface::validateConfigLora(cfg);
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TEST_ASSERT_EQUAL_UINT16(123, cfg.bandwidth);
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TEST_ASSERT_EQUAL_UINT32(8, cfg.spread_factor);
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TEST_ASSERT_EQUAL(meshtastic_Config_LoRaConfig_ModemPreset_MEDIUM_FAST, cfg.modem_preset);
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}
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static void test_validateConfigLora_validPreset_nonWideRegion()
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{
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meshtastic_Config_LoRaConfig cfg = meshtastic_Config_LoRaConfig_init_zero;
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cfg.use_preset = true;
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cfg.region = meshtastic_Config_LoRaConfig_RegionCode_US;
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cfg.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_MEDIUM_FAST;
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TEST_ASSERT_TRUE(RadioInterface::validateConfigLora(cfg));
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}
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static void test_validateConfigLora_validPreset_wideRegion()
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{
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meshtastic_Config_LoRaConfig cfg = meshtastic_Config_LoRaConfig_init_zero;
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cfg.use_preset = true;
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cfg.region = meshtastic_Config_LoRaConfig_RegionCode_LORA_24;
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cfg.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_MEDIUM_FAST;
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TEST_ASSERT_TRUE(RadioInterface::validateConfigLora(cfg));
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}
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static void test_validateConfigLora_rejectsInvalidPresetForRegion()
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{
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meshtastic_Config_LoRaConfig cfg = meshtastic_Config_LoRaConfig_init_zero;
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cfg.use_preset = true;
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cfg.region = meshtastic_Config_LoRaConfig_RegionCode_EU_868;
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cfg.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_SHORT_TURBO;
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TEST_ASSERT_FALSE(RadioInterface::validateConfigLora(cfg));
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}
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static void test_clampConfigLora_invalidPresetClampedToDefault()
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{
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meshtastic_Config_LoRaConfig cfg = meshtastic_Config_LoRaConfig_init_zero;
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cfg.use_preset = true;
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cfg.region = meshtastic_Config_LoRaConfig_RegionCode_EU_868;
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cfg.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_SHORT_TURBO;
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RadioInterface::clampConfigLora(cfg);
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TEST_ASSERT_EQUAL(meshtastic_Config_LoRaConfig_ModemPreset_LONG_FAST, cfg.modem_preset);
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}
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static void test_clampConfigLora_validPresetUnchanged()
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{
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meshtastic_Config_LoRaConfig cfg = meshtastic_Config_LoRaConfig_init_zero;
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cfg.use_preset = true;
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cfg.region = meshtastic_Config_LoRaConfig_RegionCode_US;
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cfg.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_MEDIUM_FAST;
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RadioInterface::clampConfigLora(cfg);
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TEST_ASSERT_EQUAL(meshtastic_Config_LoRaConfig_ModemPreset_MEDIUM_FAST, cfg.modem_preset);
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}
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// -----------------------------------------------------------------------
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// applyModemConfig() coding rate tests (via reconfigure)
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// -----------------------------------------------------------------------
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static TestableRadioInterface *testRadio;
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// After fresh flash: coding_rate=0, use_preset=true, modem_preset=LONG_FAST
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// CR should come from the preset (5 for LONG_FAST), not from the zero default.
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static void test_applyModemConfig_freshFlashCodingRateNotZero()
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{
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config.lora = meshtastic_Config_LoRaConfig_init_zero;
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config.lora.region = meshtastic_Config_LoRaConfig_RegionCode_US;
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config.lora.use_preset = true;
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config.lora.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_LONG_FAST;
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// coding_rate is 0 (default after init_zero, same as fresh flash)
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testRadio->reconfigure();
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// LONG_FAST preset has cr=5; must never be 0
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TEST_ASSERT_EQUAL_UINT8(5, testRadio->getCr());
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TEST_ASSERT_EQUAL_UINT8(11, testRadio->getSf());
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TEST_ASSERT_FLOAT_WITHIN(0.01f, 250.0f, testRadio->getBw());
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}
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// When coding_rate matches the preset exactly, should still use the preset value
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static void test_applyModemConfig_codingRateMatchesPreset()
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{
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config.lora = meshtastic_Config_LoRaConfig_init_zero;
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config.lora.region = meshtastic_Config_LoRaConfig_RegionCode_US;
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config.lora.use_preset = true;
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config.lora.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_LONG_SLOW;
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config.lora.coding_rate = 8; // LONG_SLOW default is cr=8
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testRadio->reconfigure();
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TEST_ASSERT_EQUAL_UINT8(8, testRadio->getCr());
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}
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// Custom CR higher than preset should be used
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static void test_applyModemConfig_customCodingRateHigherThanPreset()
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{
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config.lora = meshtastic_Config_LoRaConfig_init_zero;
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config.lora.region = meshtastic_Config_LoRaConfig_RegionCode_US;
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config.lora.use_preset = true;
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config.lora.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_LONG_FAST;
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config.lora.coding_rate = 7; // LONG_FAST preset has cr=5, 7 > 5
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testRadio->reconfigure();
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TEST_ASSERT_EQUAL_UINT8(7, testRadio->getCr());
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}
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// Custom CR lower than preset: preset wins (higher is more robust)
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static void test_applyModemConfig_customCodingRateLowerThanPreset()
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{
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config.lora = meshtastic_Config_LoRaConfig_init_zero;
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config.lora.region = meshtastic_Config_LoRaConfig_RegionCode_US;
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config.lora.use_preset = true;
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config.lora.modem_preset = meshtastic_Config_LoRaConfig_ModemPreset_LONG_SLOW;
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config.lora.coding_rate = 5; // LONG_SLOW preset has cr=8, 5 < 8
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testRadio->reconfigure();
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TEST_ASSERT_EQUAL_UINT8(8, testRadio->getCr());
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}
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// -----------------------------------------------------------------------
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// getRegionPresetMap() - region->valid-preset map sent to clients during want_config
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// -----------------------------------------------------------------------
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static size_t countKnownRegions()
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{
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size_t n = 0;
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for (const RegionInfo *r = regions; r->code != meshtastic_Config_LoRaConfig_RegionCode_UNSET; r++)
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n++;
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return n;
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}
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// Every region in the firmware table (except the UNSET sentinel) must appear
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// exactly once in the map, and all counts must stay within the mesh.options bounds
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// (exceeding them would mean nanopb silently truncates the wire message).
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static void test_regionPresetMap_coversAllRegionsWithinBounds()
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{
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meshtastic_LoRaRegionPresetMap map;
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getRegionPresetMap(map);
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const size_t known = countKnownRegions();
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TEST_ASSERT_EQUAL_UINT((unsigned)known, (unsigned)map.region_groups_count);
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// Bounds derived from the generated nanopb arrays (mesh.options max_count), so
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// this stays correct if those bounds change.
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const size_t maxGroups = sizeof(map.groups) / sizeof(map.groups[0]);
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const size_t maxRegions = sizeof(map.region_groups) / sizeof(map.region_groups[0]);
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TEST_ASSERT_GREATER_THAN_UINT(0, map.groups_count);
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TEST_ASSERT_LESS_OR_EQUAL_UINT((unsigned)maxGroups, map.groups_count);
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TEST_ASSERT_LESS_OR_EQUAL_UINT((unsigned)maxRegions, map.region_groups_count);
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// Each known region appears exactly once.
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for (const RegionInfo *r = regions; r->code != meshtastic_Config_LoRaConfig_RegionCode_UNSET; r++) {
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int hits = 0;
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for (pb_size_t i = 0; i < map.region_groups_count; i++)
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if (map.region_groups[i].region == r->code)
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hits++;
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TEST_ASSERT_EQUAL_INT(1, hits);
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}
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}
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// The advertised presets must agree with the live region table: every preset is
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// legal in its region, the default is among them, and the licensed flag matches.
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static void test_regionPresetMap_matchesRegionTable()
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{
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meshtastic_LoRaRegionPresetMap map;
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getRegionPresetMap(map);
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for (pb_size_t i = 0; i < map.region_groups_count; i++) {
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meshtastic_Config_LoRaConfig_RegionCode code = map.region_groups[i].region;
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uint8_t gi = map.region_groups[i].group_index;
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TEST_ASSERT_LESS_THAN_UINT(map.groups_count, gi);
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const meshtastic_LoRaPresetGroup &grp = map.groups[gi];
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const RegionInfo *r = getRegion(code);
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// Group's list is non-empty, within the generated array bound, and is the
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// region's full list.
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const size_t maxPresets = sizeof(grp.presets) / sizeof(grp.presets[0]);
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TEST_ASSERT_GREATER_THAN_UINT(0, grp.presets_count);
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TEST_ASSERT_LESS_OR_EQUAL_UINT((unsigned)maxPresets, grp.presets_count);
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TEST_ASSERT_EQUAL_UINT((unsigned)r->getNumPresets(), (unsigned)grp.presets_count);
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// Every advertised preset is legal in this region.
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for (pb_size_t p = 0; p < grp.presets_count; p++)
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TEST_ASSERT_TRUE(r->supportsPreset(grp.presets[p]));
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// Default preset matches the table, is legal, and is present in the list.
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TEST_ASSERT_EQUAL(r->getDefaultPreset(), grp.default_preset);
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TEST_ASSERT_TRUE(r->supportsPreset(grp.default_preset));
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bool defaultInList = false;
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for (pb_size_t p = 0; p < grp.presets_count; p++)
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if (grp.presets[p] == grp.default_preset)
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defaultInList = true;
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TEST_ASSERT_TRUE(defaultInList);
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// Licensed flag matches the region's profile.
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TEST_ASSERT_EQUAL(r->profile->licensedOnly, grp.licensed_only);
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}
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}
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void setUp(void)
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{
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mockMeshService = new MockMeshService();
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service = mockMeshService;
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// RadioInterface computes slotTimeMsec during construction and expects myRegion to be valid.
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config.lora.region = meshtastic_Config_LoRaConfig_RegionCode_US;
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initRegion();
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testRadio = new TestableRadioInterface();
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}
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void tearDown(void)
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{
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delete testRadio;
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testRadio = nullptr;
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service = nullptr;
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delete mockMeshService;
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mockMeshService = nullptr;
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}
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void setup()
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{
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delay(10);
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delay(2000);
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initializeTestEnvironment();
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UNITY_BEGIN();
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RUN_TEST(test_bwCodeToKHz_specialMappings);
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RUN_TEST(test_bwCodeToKHz_passthrough);
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RUN_TEST(test_bwCodeToKHz_roundTrip);
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RUN_TEST(test_validateConfigLora_noopWhenUsePresetFalse);
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RUN_TEST(test_validateConfigLora_validPreset_nonWideRegion);
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RUN_TEST(test_validateConfigLora_validPreset_wideRegion);
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RUN_TEST(test_validateConfigLora_rejectsInvalidPresetForRegion);
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RUN_TEST(test_clampConfigLora_invalidPresetClampedToDefault);
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RUN_TEST(test_clampConfigLora_validPresetUnchanged);
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RUN_TEST(test_applyModemConfig_freshFlashCodingRateNotZero);
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RUN_TEST(test_applyModemConfig_codingRateMatchesPreset);
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RUN_TEST(test_applyModemConfig_customCodingRateHigherThanPreset);
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RUN_TEST(test_applyModemConfig_customCodingRateLowerThanPreset);
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RUN_TEST(test_regionPresetMap_coversAllRegionsWithinBounds);
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RUN_TEST(test_regionPresetMap_matchesRegionTable);
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exit(UNITY_END());
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}
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void loop() {}
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