* Add AEAD (AES-CCM) authenticated encryption for PSK channels Extend PSK channel encryption with optional AES-CCM authenticated encryption (use_aead flag in ChannelSettings). When enabled, messages include a 12-byte authentication tag that prevents forgery, bit-flipping, and injection attacks by anyone with the channel PSK. Changes: - Add encryptPacketCCM/decryptPacketCCM to CryptoEngine with key promotion (16-byte keys zero-padded to 32 for AESSmall256 compat) - Move AES-CCM primitives (aes-ccm.h/cpp, aesSetKey, aesEncrypt) outside PKI guard so they're available unconditionally - Add isAEADEnabled() to Channels with hash differentiation (XOR 0xAE) - Add AEAD encrypt/decrypt branches in Router perhapsEncode/perhapsDecode with no CTR fallback on AEAD channels - Add use_aead field to channel.pb.h (bool, tag 8) - Add MESHTASTIC_AEAD_OVERHEAD constant to RadioInterface.h - Add comprehensive test suite: round-trip (AES-128/256), tamper detection (ciphertext, tag, sweep), wrong PSK, wrong sender, packet-too-small, deterministic output verification Addresses firmware#4030. * Apply clang-format to match project style * Guard AEAD path against empty PSK and check encrypt return value - Add early return in encryptPacketCCM/decryptPacketCCM when psk.length == 0, preventing null dereference in aesSetKey - Check encryptPacketCCM return value in Router::perhapsEncode (both PKI and non-PKI paths), returning BAD_REQUEST on failure instead of silently transmitting corrupt packets - Add unit test for empty PSK (encrypt and decrypt must return false without crashing) * Use true AES-128 for 16-byte PSKs instead of promoting to AES-256 aesSetKey now dispatches based on key length: 16 bytes creates AESSmall128, 32 bytes creates AESSmall256. The aes member type changes from AESSmall256 to BlockCipher (polymorphic base class). This removes the unnecessary key promotion that added two extra AES rounds (14 vs 12) with no security benefit since the entropy stays at 128 bits for 16-byte keys. encryptPacketCCM/decryptPacketCCM now pass psk.length directly to aes_ccm_ae/aes_ccm_ad instead of promoting to 32. New tests: ECB AES-128 with NIST vectors, AEAD test verifying AES-128 and AES-256 produce different ciphertexts with same key material and cross-key decryption fails. * Reject the invalid-key sentinel in the AEAD paths CryptoKey documents length == -1 as "invalid key - do not use", but the AEAD guards only tested for 0. Since length is int8_t and the aes_ccm_* key length parameter is size_t, a -1 would widen into a huge unsigned length and be handed to the cipher instead of being rejected. Both callers in Router.cpp are gated on a non-negative channel hash, and generateHash() already returns -1 exactly when getKey() yields an invalid key, so the sentinel cannot reach these functions today. Guard against it anyway rather than relying on callers to keep that invariant. * Tie MESHTASTIC_AEAD_OVERHEAD to CryptoEngine::AEAD_TAG_SIZE The packet-size boundary checks in perhapsEncode/perhapsDecode budget for MESHTASTIC_AEAD_OVERHEAD, but the tag actually written is AEAD_TAG_SIZE. Nothing tied the two together, so changing one would have silently produced oversized packets or truncated payloads. Assert they match instead of coupling RadioInterface.h to CryptoEngine. Also trims the sentinel comment to the two-line limit in AGENTS.md. * Add RFC 3610 known-answer vectors and widen the tamper sweep Packet Vectors #1, #2 and #7 pin aes_ccm_ae()/aes_ccm_ad() to published data rather than to their own output, covering M=8 and M=10, a trailing partial block in every case, and rejection of a modified AAD. Test 1 in test_AES_CCM_AEAD is relabelled as the smoke test it actually is. The per-byte tamper loop now walks the whole buffer including the tag, instead of only the first four ciphertext bytes. * Cover the second nonce input and tighten the AEAD test buffers Test 10 only ever varied fromNode, leaving packetId — the other half of the nonce — unexercised. It now checks each one wrong on its own, both wrong, and both right, so the negative assertions cannot pass vacuously. The undersized-packet test wrote into a one-byte buffer and only survived because decryptPacketCCM() returns before touching it; size it for the whole input so a regressed length guard fails an assertion instead of the stack. Also assert makePsk() cannot overrun CryptoKey::bytes. * Rewrite Unicode dashes to ASCII in AEAD comments The ascii-dash formatter that landed in develop rewrites U+2014/U+2013 to an ASCII hyphen. Three files on this branch still carried em dashes in comments, so Trunk Check went red once develop was merged in. Comments only, no code change. * Authenticate sender and destination IDs as AEAD associated data The nonce binds the sender and the packet id, but nothing bound the destination, so `to` could be rewritten in flight and the tag would still validate. Pass `from || to` as associated data to aes_ccm_ae/aes_ccm_ad so a redirected packet fails authentication. The hop fields stay out of the AAD on purpose: relays legitimately rewrite hop_limit, hop_start, relay_node and next_hop. Adds a sub-test covering redirection to another node and promotion of a unicast to a broadcast; both must be rejected, and the unmodified destination must still round-trip. This changes the on-the-wire format for AEAD packets. Nothing ships with use_aead yet, so there is no deployed traffic to stay compatible with. * fix(crypto): repair EXCLUDE_PKI builds and guard AEAD channel config aes-ccm.cpp is compiled in every build now and calls CryptoEngine::aesSetKey and CryptoEngine::aesEncrypt, whose definitions were still inside the !(MESHTASTIC_EXCLUDE_PKI) block in CryptoEngine.cpp, so MESHTASTIC_EXCLUDE_PKI=1 failed at the link step. Move both definitions outside the guard, and move the pending-public-key declarations back inside it next to the fields they read. fixupChannel() clears use_aead on a channel that resolves to no key material. That combination kept a valid-looking channel hash while every encode returned BAD_REQUEST and every decode dropped, with nothing in the config to show why. encryptPacketCCM/decryptPacketCCM are virtual, so a platform engine can back them with hardware CCM the way it already overrides encryptAESCtr. perhapsEncode() carries one copy of the AEAD/CTR branch instead of an identical copy in each arm of the MESHTASTIC_EXCLUDE_PKI ifdef. Tests: three use_aead cases in test_channel_keys covering the hash split, the no-key clear, and a secondary that borrows the primary's key. * fix(crypto): move CryptoEngine::hash out of the PKI guard hash() is plain SHA256, and PortduinoGlue calls it unguarded to derive a MAC address from the CH341 serial, so MESHTASTIC_EXCLUDE_PKI=1 failed to compile. With this and the previous commit that build links clean. * fix(channels): resolve primaryIndex before hashing in onConfigChanged A keyless secondary resolves its key through primaryIndex, so fixing up channels in the same pass that finds the primary hashed the early slots against the previous one and cleared their use_aead against a key they do in fact inherit. Split the pass, and re-run the fixups in the no-primary restore path, which moves the primary after the fact. Also splits the thirteen AES-CCM AEAD scenarios into separate test functions so a Unity failure names the one that broke. * chore(crypto): trim the AEAD maintainer commits Shortens three comments that outgrew the one-to-two line house rule, drops a truncated sentence and the braces around a single return in perhapsEncode(), and removes a channel test that the moved-primary regression test already covers. No behaviour change. --------- Co-authored-by: Thomas Göttgens <tgoettgens@gmail.com>
Native Unit Tests - Authoring Guide
This directory contains C++ unit tests that run on the host machine via PlatformIO's native environment. Tests use the Unity framework.
Running Tests
Preferred: use bin/run-tests.sh - it defaults to the coverage env, cross-checks the number of suites that actually ran, and emits an unambiguous RED/AMBER/GREEN verdict:
./bin/run-tests.sh # all suites
./bin/run-tests.sh -f test_traffic_management # single suite
./bin/run-tests.sh -f test_traffic_management > /tmp/test_out.txt 2>&1; tail -5 /tmp/test_out.txt
Exit codes: 0 = GREEN, 1 = RED, 2 = AMBER, 3 = FILTERED.
The harness is Linux-only, by choice. bin/run-tests.sh and the per-suite isolation it drives need bash 4+ and GNU coreutils/find (find -printf, md5sum), and the script refuses to start anywhere else rather than degrade quietly - a shared-state check that silently mis-hashes a sandbox still prints a verdict, and that verdict would be worthless. The native-macos PlatformIO env is a build target for meshtasticd, not a test host; the isolation wrapper is registered for env:native and env:coverage only. On macOS or Windows, run the suite in a container: ./bin/test-native-docker.sh.
-f is not a gate. A filtered run can pass while a full run fails, because filtering removes the suites that create the state a later suite trips over. Iterate with -f; gate on a full run.
Sanitizers are per env. coverage (the default) has ASan/LSan; native has none, verified. -e native runs are not sanitized.
A signal name in the output is not a crash. exit(UNITY_END()) returns the failure count and PlatformIO renders it as a signal number (4 -> SIGILL, 5 -> SIGTRAP), reporting the suite [ERRORED]. Match it against the failure count before assuming a fault.
Suite order is randomisable, and reproducible. --shuffle runs the suites in a seeded random order; --seed <n> replays an exact one. The seed defaults to the commit SHA - one order per commit, so a red is replayable and attributable rather than flaky - and is printed at the start of the run and on the RESULT: line. On failure the full order is printed, because for an order-dependent failure the order is the diagnostic. A single green seed is not evidence of order independence; vary it.
./bin/run-tests.sh --shuffle # seed from HEAD, printed
./bin/run-tests.sh --seed 2855893161 # replay that exact order
Randomisation costs one pio invocation per suite (about 4.7s each), because PlatformIO orders suites by its own directory walk and -f only selects.
Copilot interface note: When running tests via the Copilot chat interface, edits made through the chat may not be reflected in the on-disk files that the test binary reads. If tests pass in chat but fail locally (or vice versa), verify the files on disk match what you expect before trusting the result. Always confirm with a local terminal run.
Never add --without-building to a test run. PlatformIO links every native test program to the single $BUILD_DIR/$PROGNAME path and attributes Unity output by text alone, so a run that only builds beforehand executes whichever suite was linked last under every suite's name - all reporting PASSED. Build once with --without-testing to warm the shared src objects if you like; the run itself must still build. bin/check-test-attribution.py grades the JUnit reports for exactly this and is wired into both bin/run-tests.sh (RED) and CI.
Raw pio test (no sanitizers, no verdict logic) - use when you need to override the env or inspect verbose Unity output:
# All test suites
pio test -e native
# Single suite
pio test -e native -f test_your_module
# Verbose (shows build errors in detail)
pio test -e native -f test_your_module -vvv
Never pipe through | tail -N to shorten output. PlatformIO prints build errors at the top of output and test results at the bottom; tail will show stale cached results from a prior successful build while hiding the compile error that caused the current run to fail.
Preferred pattern for raw pio - redirect to file, then grep:
# Redirect all output to a file; grep for errors and results after it exits
pio test -e native -f test_your_module > /tmp/test_out.txt 2>&1
echo "exit: $?"
grep -E 'error:|PASS|FAIL|succeeded|failed' /tmp/test_out.txt
tail -15 /tmp/test_out.txt
Why: piping through | grep line-buffers the output and suppresses all progress until the process exits, making it look hung. The redirect approach lets the build stream normally while still giving you filtered results afterwards.
Viewing verbose test output without truncation (e.g. TEST_MESSAGE group headers):
/tmp/meshtastic-pio-venv/bin/python -m platformio test -e coverage --filter test_mesh_beacon -vv 2>&1 | grep -v "[[:space:]]SKIPPED$"
The -vv flag makes Unity emit INFO: lines from TEST_MESSAGE calls; piping through grep -v SKIPPED removes the noise from platform feature gates while keeping all PASS/FAIL/INFO lines visible.
externally-managed-environment error on Ubuntu/Debian:
If pio test fails immediately with error: externally-managed-environment, the system pio binary is using the OS Python which newer distros lock down. Use PlatformIO's own venv instead:
~/.platformio/penv/bin/python -m platformio test -e native -f test_your_module > /tmp/test_out.txt 2>&1
grep -E 'error:|PASS|FAIL|succeeded|failed' /tmp/test_out.txt
tail -15 /tmp/test_out.txt
Helper Scripts (Useful Shortcuts)
These wrappers are handy when local host dependencies are missing or when you want repeatable commands.
# Run native tests in Docker (recommended on macOS / non-Linux hosts)
./bin/test-native-docker.sh
# Pass normal PlatformIO test args through to Dockerized test run
./bin/test-native-docker.sh -f test_your_module
# Force Docker image rebuild (after dependency changes)
./bin/test-native-docker.sh --rebuild
# Run simulator integration check (build native first)
pio run -e native && ./bin/test-simulator.sh
# Build and run meshtasticd natively
./bin/native-run.sh
# Build and run under gdbserver on localhost:2345
./bin/native-gdbserver.sh
# Build native release artifact into ./release/
./bin/build-native.sh native
Notes:
- The repository script name is
./bin/test-simulator.sh(there is notest-native-simulator.sh). ./bin/test-native-docker.shis the closest match to CI behavior for native tests and avoids host package setup.
System Dependencies (Ubuntu/Debian)
The native build requires several system libraries. Install them all at once:
sudo apt-get install -y \
libbluetooth-dev libgpiod-dev libyaml-cpp-dev libjsoncpp-dev openssl libssl-dev \
libulfius-dev liborcania-dev libusb-1.0-0-dev libi2c-dev libuv1-dev
See .github/actions/setup-native/action.yml for the canonical list.
Creating a New Test Suite
1. Directory Structure
test/test_your_module/test_main.cpp
One file per suite. No per-test platformio.ini is needed - tests build under the [env:native] environment defined in the root platformio.ini.
2. File Skeleton
#include "MeshTypes.h" // Include BEFORE TestUtil.h (provides NodeNum, etc.)
#include "TestUtil.h" // initializeTestEnvironment(), testDelay()
#include <unity.h>
#if YOUR_FEATURE_GUARD // Same #if guard as the module under test
#include "FSCommon.h"
#include "gps/RTC.h"
#include "mesh/NodeDB.h"
#include "modules/YourModule.h"
#include <cstdio> // required for printf() - used for blank-line group separators
#include <cstring>
#include <memory>
// --- Test output helpers ---
// printf() writes directly to stdout and appears in -vv output as a plain line (no prefix).
// Use it for blank-line group separators: printf("\n");
// TEST_MESSAGE() emits a "file:line:INFO: <text>" line - visible at -vv and above.
// Use TEST_MSG_FMT for formatted diagnostic lines inside tests.
#define MSG_BUF_LEN 200
#define TEST_MSG_FMT(fmt, ...) do { \
char _buf[MSG_BUF_LEN]; \
snprintf(_buf, sizeof(_buf), fmt, __VA_ARGS__); \
TEST_MESSAGE(_buf); \
} while(0)
// --- Tests ---
void test_example()
{
TEST_MESSAGE("=== Example test ===");
TEST_ASSERT_TRUE(true);
}
// --- Unity lifecycle ---
void setUp(void) { /* runs before every test */ }
void tearDown(void) { /* runs after every test */ }
void setup()
{
initializeTestEnvironment(); // MUST call - sets up RTC, OSThread, console
UNITY_BEGIN();
printf("\n=== Example group ===\n"); // header line to help find tests
RUN_TEST(test_example);
exit(UNITY_END()); // REQUIRED - a bare UNITY_END() leaves the process running
}
void loop() {}
#else // !YOUR_FEATURE_GUARD
void setUp(void) {}
void tearDown(void) {}
void setup()
{
initializeTestEnvironment();
UNITY_BEGIN();
exit(UNITY_END());
}
void loop() {}
#endif
3. Terminate with exit(UNITY_END()), on every branch
A bare UNITY_END() does not end the suite - it ends the reporting. setup() returns, the runtime goes on calling loop(), and the process runs forever. PlatformIO does not notice: it reads the Unity summary off stdout, reports the suite PASSED and moves to the next one, so the run is green while the binary is still resident. Nothing surfaces it, and the leak is one process per suite per run.
The consequences are worse than an idle process:
- The per-suite sandbox is deleted underneath a live process, so its CLEAN/DIRTY verdict says what the suite had written by the time the harness stopped looking, not what it left behind.
.gcdacoverage data and LeakSanitizer's report are both flushed byatexithandlers, so a suite that never exits contributes no coverage and gets no leak check - silently.- Each survivor pins its own deleted binary on disk (~94 MB), which
ducannot see.
So: exit(UNITY_END()) in every setup() branch, including the #else of a feature or architecture guard where the suite does nothing. The empty-suite branch is the easiest one to get wrong, because it looks like there is nothing to clean up.
4. Feature Guard
Wrap the entire test body in the same #if guard the module uses (e.g. #if HAS_VARIABLE_HOPS, #if !MESHTASTIC_EXCLUDE_GPS). When the feature is disabled, the #else branch produces an empty passing suite.
Common Patterns
MockNodeDB
Most module tests need to inject nodes with controlled hop distances and ages:
class MockNodeDB : public NodeDB
{
public:
void clearTestNodes()
{
testNodes.clear();
numMeshNodes = 0;
}
void addTestNode(NodeNum num, uint8_t hopsAway, bool hasHops,
uint32_t ageSecs, bool viaMqtt = false)
{
meshtastic_NodeInfoLite node = meshtastic_NodeInfoLite_init_zero;
node.num = num;
node.has_hops_away = hasHops;
node.hops_away = hopsAway;
nodeInfoLiteSetBit(&node, NODEINFO_BITFIELD_VIA_MQTT_MASK, viaMqtt);
node.last_heard = getTime() - ageSecs;
testNodes.push_back(node);
meshNodes = &testNodes;
numMeshNodes = testNodes.size();
}
std::vector<meshtastic_NodeInfoLite> testNodes;
};
static MockNodeDB *mockNodeDB = nullptr;
Set nodeDB = mockNodeDB; in setUp().
Test Shim (Exposing Protected/Private Members)
Subclass the module under test to make protected methods callable and private members writable:
class YourModuleTestShim : public YourModule
{
public:
// Pull protected methods into public scope via using.
// IMPORTANT: using requires the method to be protected (or public) in the base -
// friend alone does NOT satisfy this. See pitfall #6.
using YourModule::runOnce;
using YourModule::someProtectedMethod;
// Wrap private members with setter methods (friend grants direct access here).
void setPrivateField(int x) { privateField = x; }
};
For methods you want to expose via using, use the conditional access-specifier pattern in the header - not plain friend:
// In YourModule.h, inside the class body:
#ifdef PIO_UNIT_TESTING
protected:
#else
private:
#endif
bool someMethod();
For private member variables that a shim setter needs to touch directly, friend is sufficient (no using involved):
// In YourModule.h, inside the class body:
#ifdef PIO_UNIT_TESTING
friend class YourModuleTestShim;
#endif
Global Singleton Lifecycle
Most modules use a global pointer (extern YourModule *yourModule;). Manage it carefully:
void setUp(void) {
// ... setup ...
}
void tearDown(void) {
yourModule = nullptr; // prevent dangling pointer between tests
}
void test_something() {
auto shim = std::unique_ptr<YourModuleTestShim>(new YourModuleTestShim());
yourModule = shim.get();
// ... test ...
yourModule = nullptr;
}
Pitfalls and How to Avoid Them
1. Persisted Filesystem State
You are handed a clean sandbox. Declare what you write.
Each suite runs inside its own scratch $HOME (bin/pio-test-isolate.sh), so state cannot reach the next suite. The files in play are wider than module state, and all but the last live under ~/.portduino/default/prefs/:
| File | Written by |
|---|---|
nodes.proto |
any NodeDB save - including incidental ones from removeNodeByNum(), resetNodes(), nodeDBSelfCare(), and the constructor itself when the file is absent |
config.proto, module.proto, channels.proto, device.proto |
config/channel saves, admin handlers |
warm.dat |
WarmNodeStore::saveIfDirty(), on the node-DB save cadence |
transmit_history.dat |
retransmission tracking |
/prefs/<module>.bin |
per-module saveState() |
NodeDB's constructor calls loadFromDisk(), so any suite that constructs one inherits whatever is there.
What you have to do:
-
Nothing, if your suite is self-contained. That is the default and what almost every suite wants.
-
If your suite mutates persisted state on purpose, add a line to
test/state-manifest.tsvwith a reason:test_nodedb_blocked state=per-suite writes=nodes.proto,warm.dat saturates the DB to test the protected-node capAn undeclared write is reported as DIRTY and grades the run AMBER. A declared write that never happens is reported as MISSING - a warning, and a useful one: it catches persistence that silently stopped working.
-
Use
state=per-suiteonly if a test genuinely needs to observe the previous test's write (persistence round-trips, migration ladders). It relaxes per-test checking to the suite boundary, so make it a deliberate choice rather than an accident ofsetUp().
Deleting your own state in setUp() is still fine and still a good habit for intra-suite isolation - it is just no longer what stands between you and the next suite:
void setUp(void) {
// ...
#ifdef FSCom
FSCom.remove("/prefs/your_module.bin");
#endif
}
2. A Shared Fixture Is Not a Fixture
If your suite touches globals the code under test writes - nodeDB, config, owner, devicestate, channelFile - build and restore them in setUp/tearDown for every test, not just the ones that seem to need it. An opt-in fixture that only some tests arm leaves the rest sharing one never-reset object, and "the other tests set their own state and are unaffected" is a claim that quietly stops being true as tests are added.
test/test_admin_radio/test_main.cpp is the worked example:
void setUp(void) {
// ...
replaceAdminRadioGlobals(); // saves the globals, installs a fresh NodeDB
}
void tearDown(void) {
restoreAdminRadioGlobals(); // restores them, deletes the NodeDB, re-runs initRegion()
// ...
}
A fresh NodeDB per test costs real time (loadFromDisk() plus, when the region is set, key generation) - in that suite roughly 7% of a ~7½-minute run. Pay it. If a test genuinely needs to observe the previous test's state, that is what state=per-suite in test/state-manifest.tsv is for; say so there rather than achieving it by omission.
3. File-Scope Mutable Globals Persist Across Tests
Variables like static uint8_t someDenominator = 8; in the module .cpp file retain mutations from previous tests. This is distinct from member variables - it affects all instances.
Fix: Add a static void resetGlobal() method to the module and call it in setUp().
4. Randomness Breaks Determinism
If the module uses rand() for jitter or similar, test results become non-reproducible.
Fix: Add a static enable/disable flag:
// Module header:
static void setJitter(bool enabled) { s_jitterEnabled = enabled; }
// Test setUp:
YourModule::setJitter(false);
// Test tearDown:
YourModule::setJitter(true);
5. Time-Dependent Logic Produces Zeros
Rolling averages weighted by elapsedMs / ONE_HOUR_MS collapse to zero when tests complete in microseconds. Sample windows, EMA alphas, and interval-based accumulators all suffer from this.
Fix: Expose the timestamp via friend access and simulate realistic elapsed time:
// In test shim:
void setWindowStartMs(uint32_t ms) { windowStartMs = ms; }
// In test:
shim.setWindowStartMs(millis() - 3600000UL); // pretend 1 hour elapsed
6. Capacity Limits Cause Cascading Failures
Fixed-size data structures (hash sets, ring buffers) overflow when tests inject more data than fits. This triggers early flushes with near-zero time fractions, compounding the time-dependent-zeros problem.
Fix: Simulate multiple realistic time windows rather than one massive burst. Let adaptive mechanisms (if any) self-tune over several rolls.
7. Granting test access to private/protected members
PlatformIO defines PIO_UNIT_TESTING during pio test builds. Several production headers (TransmitHistory.h, CryptoEngine.h, MQTT.h, RTC.h) use this to gate test-only visibility changes. PlatformIO also defines UNIT_TEST in the same builds for backward compatibility, but that spelling is deprecated - always use PIO_UNIT_TESTING in new code. The established pattern for exposing a private method to a test shim without widening production visibility:
#ifdef PIO_UNIT_TESTING
protected:
#else
private:
#endif
bool myMethod();
Critical C++ rule: a using declaration in a derived class (e.g. using Base::myMethod) requires myMethod to be protected or public in the base - friend alone does not satisfy this. Adding friend class TestShim while leaving the method private will still fail to compile. Use the conditional access-specifier pattern above, not friend.
setUp/tearDown Checklist
- Create and clear MockNodeDB (if needed)
- Zero global configs:
config,moduleConfig,myNodeInfo - Set
nodeDB = mockNodeDB - Delete your own persisted state files (
FSCom.remove(...)) for intra-suite isolation - cross-suite isolation is already guaranteed, see Pitfall 1 - Declare deliberate writes to shared state in
test/state-manifest.tsv, with a reason - Reset file-scope mutable globals
- Reset mock clock to a safe base value (e.g.
mockTime = ONE_HOUR_MS) - prevents unsigned subtraction underflow in time-dependent logic - Disable randomness/jitter flags
- In
tearDown: null the global singleton pointer, restore flags
Test Organization
A well-structured test suite follows this pattern:
- Topology/scenario builders - static helper functions that set up specific test conditions
- Injection helpers - simulate realistic traffic, time, or event patterns
- Scenario tests - each builds a scenario, runs the module, asserts on outcomes
- Lifecycle tests - state persistence, startup from blank, restart recovery
- Summary test (optional) - emits a scenario table into the log for quick CI review
Not a Unity suite: bin/test-config-check.sh
Portduino YAML validation is tested by driving a built meshtasticd rather than by a
Unity suite, because what it asserts - the exit status and printed report of
meshtasticd --check, and the fact that a normal run still refuses a bad config - are
properties of the process, not of a linkable function. Fixtures live in
test/fixtures/portduino-config/ (see the README there); CI runs it in
test_native.yml. It is not a test_* directory, so it sits outside the suite count the
harness derives from test/.
pio run -e native && ./bin/test-config-check.sh
Existing Test Suites
This table is a description, not an inventory. The canonical suite total is the number of
test_* directories under test/, detected on the fly by bin/run-tests.sh on every full run
and cross-checked against the suites that actually ran. That derived count is the only number
that should be trusted or quoted. Entries below carry per-suite descriptions the count cannot;
do not infer completeness from the row count.
| Suite | Module Under Test |
|---|---|
test_admin_radio |
Admin + LoRa region config |
test_fscommon_getfiles |
Bounded file-manifest walk |
test_atak |
ATAK integration |
test_crypto |
CryptoEngine |
test_default |
Default configuration helpers |
test_hop_scaling |
Hop scaling algorithm |
test_http_content_handler |
HTTP handling |
test_mac_from_string |
MAC address parsing |
test_mesh_module |
Module framework |
test_meshpacket_serializer |
Packet serialization |
test_mqtt |
MQTT integration |
test_packet_history |
Packet history tracking |
test_position_precision |
Position precision helpers |
test_radio |
Radio interface |
test_serial |
Serial communication |
test_module_config |
AdminModule module config |
test_tak_config |
TAK (ATAK) team/role values |
test_traffic_management |
Traffic management |
test_transmit_history |
Retransmission tracking |
test_type_conversions |
NodeDB v25 type conversions |
test_utf8 |
UTF-8 utilities |