Add core runtime: event bus, services, app lifecycle

lib/core is hardware-independent and unit-tested on the host:
- EventBus: fixed-size thread-safe queue, delivered on the UI task by
  dispatch(); drops newest when full and counts drops
- Service / ServiceManager: cooperative ticking at per-service intervals,
  no catch-up bursts, safe across millis() wraparound
- App / AppManager: one foreground App, Home always to Launcher, Back
  offered to the App first, hidden Apps, redraw requests
- KeyEvent: logical keys for the upcoming input layer

Firmware main loop now ticks services and dispatches events.

Co-Authored-By: Claude Opus 5.5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01EhqxQ49eCju4CzKYNjZzwT
This commit is contained in:
2026-10-02 09:10:10 +02:00
co-authored by Claude Opus 5.5
parent b293197ace
commit ae0726b7f9
14 changed files with 810 additions and 0 deletions
+37
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#pragma once
#include "key_event.h"
namespace roro {
class Canvas; // provided by the widget kit
// A foreground, user-facing program (see CONTEXT.md). Exactly one App is on screen at a time.
class App {
public:
virtual ~App() = default;
virtual void onEnter() {}
virtual void onExit() {}
// Return true if the key was consumed. An unconsumed Back leaves the App.
virtual bool onKey(const KeyEvent& event) {
(void)event;
return false;
}
virtual void draw(Canvas& canvas) = 0;
void requestRedraw() { redraw_ = true; }
bool consumeRedraw() {
bool r = redraw_;
redraw_ = false;
return r;
}
private:
bool redraw_ = false;
};
} // namespace roro
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#include "app_manager.h"
#include <cstring>
namespace roro {
AppManager::AppManager(App& launcher) : launcher_(launcher), foreground_(&launcher) {}
void AppManager::registerApp(const AppInfo& info) { apps_.push_back(info); }
std::vector<const AppInfo*> AppManager::visibleApps() const {
std::vector<const AppInfo*> visible;
for (auto& info : apps_)
if (!info.hidden) visible.push_back(&info);
return visible;
}
void AppManager::begin() {
foreground_ = &launcher_;
launcher_.onEnter();
redraw_ = true;
}
bool AppManager::open(const char* id) {
for (auto& info : apps_) {
if (std::strcmp(info.id, id) == 0) {
switchTo(*info.app);
return true;
}
}
return false;
}
void AppManager::home() { switchTo(launcher_); }
void AppManager::handleKey(const KeyEvent& event) {
if (event.key == Key::Home) {
home();
return;
}
bool consumed = foreground_->onKey(event);
if (!consumed && event.key == Key::Back) home();
}
bool AppManager::takeRedraw() {
bool r = redraw_ | foreground_->consumeRedraw();
redraw_ = false;
return r;
}
void AppManager::switchTo(App& app) {
if (&app == foreground_) return;
foreground_->onExit();
foreground_ = &app;
foreground_->onEnter();
redraw_ = true;
}
} // namespace roro
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#pragma once
#include <vector>
#include "app.h"
namespace roro {
struct AppInfo {
const char* id;
const char* title;
bool hidden; // not listed in the Launcher, but can still be opened
App* app;
};
// Owns which App is in the foreground and routes keys. Home always returns to the Launcher;
// Back is offered to the App first and returns to the Launcher if the App doesn't consume it.
class AppManager {
public:
explicit AppManager(App& launcher);
void registerApp(const AppInfo& info);
std::vector<const AppInfo*> visibleApps() const;
void begin();
bool open(const char* id);
void home();
void handleKey(const KeyEvent& event);
App& foreground() const { return *foreground_; }
// True once after the screen needs redrawing (App switch, or the App asked for it).
bool takeRedraw();
private:
void switchTo(App& app);
App& launcher_;
App* foreground_;
std::vector<AppInfo> apps_;
bool redraw_ = true;
};
} // namespace roro
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#pragma once
#include <cstdint>
#include <cstring>
namespace roro {
// Everything Services announce to the UI. Add new kinds before Count.
enum class EventType : uint8_t {
BatteryChanged, // a = percent, b = millivolts
Notification, // text = message, a = NotificationLevel
StorageThreshold, // a = usage percent, b = threshold crossed (80 / 90 / 100)
SettingChanged, // text = setting key
Count
};
// Small, fixed-size and copyable so it can cross tasks through a queue without allocating.
struct Event {
static constexpr size_t kTextCapacity = 48;
EventType type;
int32_t a = 0;
int32_t b = 0;
char text[kTextCapacity] = {};
static Event withValues(EventType type, int32_t a, int32_t b = 0) {
Event e{type};
e.a = a;
e.b = b;
return e;
}
static Event withText(EventType type, const char* text, int32_t a = 0) {
Event e{type};
e.a = a;
std::strncpy(e.text, text, kTextCapacity - 1);
return e;
}
};
} // namespace roro
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#include "event_bus.h"
namespace roro {
EventBus::EventBus(size_t capacity) : queue_(capacity) {}
bool EventBus::publish(const Event& event) {
std::lock_guard<std::mutex> lock(mutex_);
if (count_ == queue_.size()) {
dropped_++;
return false;
}
queue_[(head_ + count_) % queue_.size()] = event;
count_++;
return true;
}
void EventBus::subscribe(EventType type, Handler handler) {
handlers_[static_cast<size_t>(type)].push_back(std::move(handler));
}
size_t EventBus::dispatch() {
size_t pending;
{
std::lock_guard<std::mutex> lock(mutex_);
pending = count_;
}
for (size_t i = 0; i < pending; i++) {
Event event;
{
std::lock_guard<std::mutex> lock(mutex_);
event = queue_[head_];
head_ = (head_ + 1) % queue_.size();
count_--;
}
for (auto& handler : handlers_[static_cast<size_t>(event.type)]) handler(event);
}
return pending;
}
uint32_t EventBus::dropped() const {
std::lock_guard<std::mutex> lock(mutex_);
return dropped_;
}
} // namespace roro
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#pragma once
#include <array>
#include <functional>
#include <mutex>
#include <vector>
#include "event.h"
namespace roro {
// Services publish from any task; the UI task calls dispatch() to deliver events to subscribers.
// Subscribe only during setup, from the UI task.
class EventBus {
public:
using Handler = std::function<void(const Event&)>;
explicit EventBus(size_t capacity = 32);
// Thread-safe. Returns false (and counts a drop) if the queue is full.
bool publish(const Event& event);
void subscribe(EventType type, Handler handler);
// Delivers the events queued before this call; events published meanwhile wait for the next one.
// Returns how many events were delivered.
size_t dispatch();
uint32_t dropped() const;
private:
std::vector<Event> queue_;
size_t head_ = 0;
size_t count_ = 0;
uint32_t dropped_ = 0;
mutable std::mutex mutex_;
std::array<std::vector<Handler>, static_cast<size_t>(EventType::Count)> handlers_;
};
} // namespace roro
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#pragma once
#include <cstdint>
namespace roro {
// Logical keys, already translated from the physical keyboard (Fn combos, Esc position, etc.).
enum class Key : uint8_t {
Char, // a printable character in `ch` (Unicode code point, accents already composed)
Up,
Down,
Left,
Right,
Select,
Back,
Home,
Tab,
Delete,
};
struct KeyEvent {
Key key = Key::Char;
uint32_t ch = 0;
bool shift = false;
bool ctrl = false;
bool alt = false;
static KeyEvent of(Key key) {
KeyEvent e;
e.key = key;
return e;
}
static KeyEvent character(uint32_t codePoint) {
KeyEvent e;
e.ch = codePoint;
return e;
}
};
} // namespace roro
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#pragma once
#include <cstdint>
namespace roro {
// A long-lived background capability (see CONTEXT.md). Services are ticked cooperatively from the
// main loop; one that needs real concurrency (e.g. the radio) may run its own task internally and
// report through the EventBus.
class Service {
public:
virtual ~Service() = default;
virtual const char* name() const = 0;
virtual void start() {}
virtual void stop() {}
virtual void tick(uint32_t nowMs) { (void)nowMs; }
virtual uint32_t tickIntervalMs() const { return 1000; }
};
} // namespace roro
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#include "service_manager.h"
namespace roro {
void ServiceManager::add(Service& service) { entries_.push_back({&service, 0, true}); }
void ServiceManager::startAll(uint32_t nowMs) {
for (auto& e : entries_) {
e.service->start();
e.lastTickMs = nowMs;
e.due = true;
}
running_ = true;
}
void ServiceManager::stopAll() {
for (auto it = entries_.rbegin(); it != entries_.rend(); ++it) it->service->stop();
running_ = false;
}
void ServiceManager::tick(uint32_t nowMs) {
if (!running_) return;
for (auto& e : entries_) {
// Unsigned subtraction keeps working across the 49-day millis() wraparound.
if (e.due || nowMs - e.lastTickMs >= e.service->tickIntervalMs()) {
e.due = false;
e.lastTickMs = nowMs;
e.service->tick(nowMs);
}
}
}
} // namespace roro
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#pragma once
#include <vector>
#include "service.h"
namespace roro {
class ServiceManager {
public:
void add(Service& service);
// Starts services in the order added; each gets its first tick on the next tick() call.
void startAll(uint32_t nowMs);
// Stops services in reverse order.
void stopAll();
// Ticks every service whose interval has elapsed. Missed intervals are not replayed.
void tick(uint32_t nowMs);
private:
struct Entry {
Service* service;
uint32_t lastTickMs;
bool due;
};
std::vector<Entry> entries_;
bool running_ = false;
};
} // namespace roro
+9
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@@ -1,8 +1,13 @@
// roro9stack — boot stub: proves toolchain, display and keyboard. // roro9stack — boot stub: proves toolchain, display and keyboard.
#include <M5Cardputer.h> #include <M5Cardputer.h>
#include "event_bus.h"
#include "service_manager.h"
#include "version.h" #include "version.h"
static roro::EventBus bus;
static roro::ServiceManager services;
void setup() { void setup() {
auto cfg = M5.config(); auto cfg = M5.config();
M5Cardputer.begin(cfg, true); // true = enable keyboard M5Cardputer.begin(cfg, true); // true = enable keyboard
@@ -19,6 +24,7 @@ void setup() {
d.drawString("Press keys...", 8, 56); d.drawString("Press keys...", 8, 56);
Serial.begin(115200); Serial.begin(115200);
services.startAll(millis());
} }
static void printStatus() { static void printStatus() {
@@ -34,6 +40,9 @@ void loop() {
printStatus(); printStatus();
} }
services.tick(millis());
bus.dispatch();
M5Cardputer.update(); M5Cardputer.update();
if (M5Cardputer.Keyboard.isChange() && M5Cardputer.Keyboard.isPressed()) { if (M5Cardputer.Keyboard.isChange() && M5Cardputer.Keyboard.isPressed()) {
auto state = M5Cardputer.Keyboard.keysState(); auto state = M5Cardputer.Keyboard.keysState();
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#include <unity.h>
#include <string>
#include <vector>
#include "app_manager.h"
using namespace roro;
void setUp() {}
void tearDown() {}
struct FakeApp : App {
explicit FakeApp(std::vector<std::string>* log, const char* tag) : log_(log), tag_(tag) {}
void onEnter() override { log_->push_back(std::string("enter ") + tag_); }
void onExit() override { log_->push_back(std::string("exit ") + tag_); }
bool onKey(const KeyEvent& e) override {
keys.push_back(e);
return handles;
}
void draw(Canvas&) override {}
std::vector<KeyEvent> keys;
bool handles = false;
private:
std::vector<std::string>* log_;
const char* tag_;
};
struct Fixture {
std::vector<std::string> log;
FakeApp launcher{&log, "launcher"};
FakeApp notes{&log, "notes"};
FakeApp demo{&log, "demo"};
AppManager manager{launcher};
Fixture() {
manager.registerApp({"notes", "Notes", false, &notes});
manager.registerApp({"demo", "Demo", true, &demo});
manager.begin();
log.clear();
}
};
void test_launcher_is_in_foreground_after_begin() {
std::vector<std::string> log;
FakeApp launcher(&log, "launcher");
AppManager m(launcher);
m.begin();
TEST_ASSERT_EQUAL_PTR(&launcher, &m.foreground());
TEST_ASSERT_EQUAL_STRING("enter launcher", log[0].c_str());
}
void test_open_switches_foreground_with_exit_then_enter() {
Fixture f;
TEST_ASSERT_TRUE(f.manager.open("notes"));
TEST_ASSERT_EQUAL_PTR(&f.notes, &f.manager.foreground());
std::vector<std::string> expected = {"exit launcher", "enter notes"};
TEST_ASSERT_TRUE(f.log == expected);
}
void test_open_unknown_app_keeps_current_foreground() {
Fixture f;
TEST_ASSERT_FALSE(f.manager.open("nope"));
TEST_ASSERT_EQUAL_PTR(&f.launcher, &f.manager.foreground());
TEST_ASSERT_TRUE(f.log.empty());
}
void test_opening_the_foreground_app_again_does_nothing() {
Fixture f;
f.manager.open("notes");
f.log.clear();
TEST_ASSERT_TRUE(f.manager.open("notes"));
TEST_ASSERT_TRUE(f.log.empty());
}
void test_home_key_always_returns_to_launcher_without_reaching_the_app() {
Fixture f;
f.manager.open("notes");
f.notes.handles = true;
f.manager.handleKey(KeyEvent::of(Key::Home));
TEST_ASSERT_EQUAL_PTR(&f.launcher, &f.manager.foreground());
TEST_ASSERT_EQUAL(0, f.notes.keys.size());
}
void test_back_goes_to_the_app_first_and_it_can_keep_it() {
Fixture f;
f.manager.open("notes");
f.notes.handles = true; // e.g. leaving a sub-screen inside the app
f.manager.handleKey(KeyEvent::of(Key::Back));
TEST_ASSERT_EQUAL_PTR(&f.notes, &f.manager.foreground());
TEST_ASSERT_EQUAL(1, f.notes.keys.size());
}
void test_unhandled_back_returns_to_launcher() {
Fixture f;
f.manager.open("notes");
f.manager.handleKey(KeyEvent::of(Key::Back));
TEST_ASSERT_EQUAL_PTR(&f.launcher, &f.manager.foreground());
}
void test_back_on_launcher_stays_on_launcher() {
Fixture f;
f.manager.handleKey(KeyEvent::of(Key::Back));
TEST_ASSERT_EQUAL_PTR(&f.launcher, &f.manager.foreground());
TEST_ASSERT_TRUE(f.log.empty());
}
void test_other_keys_go_to_the_foreground_app() {
Fixture f;
f.manager.open("notes");
f.manager.handleKey(KeyEvent::character('a'));
TEST_ASSERT_EQUAL(1, f.notes.keys.size());
TEST_ASSERT_EQUAL('a', f.notes.keys[0].ch);
}
void test_visible_apps_exclude_hidden_ones_and_keep_registration_order() {
Fixture f;
auto visible = f.manager.visibleApps();
TEST_ASSERT_EQUAL(1, visible.size());
TEST_ASSERT_EQUAL_STRING("notes", visible[0]->id);
TEST_ASSERT_TRUE(f.manager.open("demo")); // hidden apps can still be opened
}
void test_switching_apps_requests_a_redraw() {
Fixture f;
f.manager.takeRedraw();
f.manager.open("notes");
TEST_ASSERT_TRUE(f.manager.takeRedraw());
TEST_ASSERT_FALSE(f.manager.takeRedraw());
}
void test_app_can_request_its_own_redraw() {
Fixture f;
f.manager.open("notes");
f.manager.takeRedraw();
f.notes.requestRedraw();
TEST_ASSERT_TRUE(f.manager.takeRedraw());
TEST_ASSERT_FALSE(f.manager.takeRedraw());
}
int main() {
UNITY_BEGIN();
RUN_TEST(test_launcher_is_in_foreground_after_begin);
RUN_TEST(test_open_switches_foreground_with_exit_then_enter);
RUN_TEST(test_open_unknown_app_keeps_current_foreground);
RUN_TEST(test_opening_the_foreground_app_again_does_nothing);
RUN_TEST(test_home_key_always_returns_to_launcher_without_reaching_the_app);
RUN_TEST(test_back_goes_to_the_app_first_and_it_can_keep_it);
RUN_TEST(test_unhandled_back_returns_to_launcher);
RUN_TEST(test_back_on_launcher_stays_on_launcher);
RUN_TEST(test_other_keys_go_to_the_foreground_app);
RUN_TEST(test_visible_apps_exclude_hidden_ones_and_keep_registration_order);
RUN_TEST(test_switching_apps_requests_a_redraw);
RUN_TEST(test_app_can_request_its_own_redraw);
return UNITY_END();
}
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#include <unity.h>
#include <string>
#include <vector>
#include "event_bus.h"
using namespace roro;
void setUp() {}
void tearDown() {}
void test_published_events_are_delivered_on_dispatch_not_before() {
EventBus bus(8);
int calls = 0;
bus.subscribe(EventType::BatteryChanged, [&](const Event&) { calls++; });
bus.publish(Event{EventType::BatteryChanged});
TEST_ASSERT_EQUAL(0, calls);
TEST_ASSERT_EQUAL(1, bus.dispatch());
TEST_ASSERT_EQUAL(1, calls);
}
void test_only_subscribers_of_the_event_type_are_called() {
EventBus bus(8);
int battery = 0, notification = 0;
bus.subscribe(EventType::BatteryChanged, [&](const Event&) { battery++; });
bus.subscribe(EventType::Notification, [&](const Event&) { notification++; });
bus.publish(Event{EventType::Notification});
bus.dispatch();
TEST_ASSERT_EQUAL(0, battery);
TEST_ASSERT_EQUAL(1, notification);
}
void test_every_subscriber_of_a_type_is_called_in_subscription_order() {
EventBus bus(8);
std::vector<int> order;
bus.subscribe(EventType::Notification, [&](const Event&) { order.push_back(1); });
bus.subscribe(EventType::Notification, [&](const Event&) { order.push_back(2); });
bus.publish(Event{EventType::Notification});
bus.dispatch();
TEST_ASSERT_EQUAL(2, order.size());
TEST_ASSERT_EQUAL(1, order[0]);
TEST_ASSERT_EQUAL(2, order[1]);
}
void test_events_keep_publish_order_and_payload() {
EventBus bus(8);
std::vector<int32_t> values;
bus.subscribe(EventType::BatteryChanged, [&](const Event& e) { values.push_back(e.a); });
bus.publish(Event::withValues(EventType::BatteryChanged, 80));
bus.publish(Event::withValues(EventType::BatteryChanged, 79));
bus.dispatch();
TEST_ASSERT_EQUAL(2, values.size());
TEST_ASSERT_EQUAL(80, values[0]);
TEST_ASSERT_EQUAL(79, values[1]);
}
void test_text_payload_is_copied_and_truncated_safely() {
EventBus bus(8);
std::string received;
bus.subscribe(EventType::Notification, [&](const Event& e) { received = e.text; });
std::string longText(200, 'x');
bus.publish(Event::withText(EventType::Notification, longText.c_str()));
bus.dispatch();
TEST_ASSERT_EQUAL(Event::kTextCapacity - 1, received.size());
}
void test_full_queue_drops_newest_and_counts_drops() {
EventBus bus(2);
std::vector<int32_t> values;
bus.subscribe(EventType::BatteryChanged, [&](const Event& e) { values.push_back(e.a); });
TEST_ASSERT_TRUE(bus.publish(Event::withValues(EventType::BatteryChanged, 1)));
TEST_ASSERT_TRUE(bus.publish(Event::withValues(EventType::BatteryChanged, 2)));
TEST_ASSERT_FALSE(bus.publish(Event::withValues(EventType::BatteryChanged, 3)));
TEST_ASSERT_EQUAL(1, bus.dropped());
bus.dispatch();
TEST_ASSERT_EQUAL(2, values.size());
TEST_ASSERT_EQUAL(2, values[1]);
}
void test_events_published_during_dispatch_wait_for_next_dispatch() {
EventBus bus(8);
int notifications = 0;
bus.subscribe(EventType::BatteryChanged,
[&](const Event&) { bus.publish(Event{EventType::Notification}); });
bus.subscribe(EventType::Notification, [&](const Event&) { notifications++; });
bus.publish(Event{EventType::BatteryChanged});
TEST_ASSERT_EQUAL(1, bus.dispatch());
TEST_ASSERT_EQUAL(0, notifications);
TEST_ASSERT_EQUAL(1, bus.dispatch());
TEST_ASSERT_EQUAL(1, notifications);
}
int main() {
UNITY_BEGIN();
RUN_TEST(test_published_events_are_delivered_on_dispatch_not_before);
RUN_TEST(test_only_subscribers_of_the_event_type_are_called);
RUN_TEST(test_every_subscriber_of_a_type_is_called_in_subscription_order);
RUN_TEST(test_events_keep_publish_order_and_payload);
RUN_TEST(test_text_payload_is_copied_and_truncated_safely);
RUN_TEST(test_full_queue_drops_newest_and_counts_drops);
RUN_TEST(test_events_published_during_dispatch_wait_for_next_dispatch);
return UNITY_END();
}
@@ -0,0 +1,127 @@
#include <unity.h>
#include <string>
#include <vector>
#include "service_manager.h"
using namespace roro;
void setUp() {}
void tearDown() {}
struct FakeService : Service {
FakeService(const char* n, uint32_t interval, std::vector<std::string>* log)
: n_(n), interval_(interval), log_(log) {}
const char* name() const override { return n_; }
uint32_t tickIntervalMs() const override { return interval_; }
void start() override { log_->push_back(std::string("start ") + n_); }
void stop() override { log_->push_back(std::string("stop ") + n_); }
void tick(uint32_t nowMs) override {
ticks.push_back(nowMs);
log_->push_back(std::string("tick ") + n_);
}
std::vector<uint32_t> ticks;
private:
const char* n_;
uint32_t interval_;
std::vector<std::string>* log_;
};
void test_services_start_in_order_and_stop_in_reverse() {
std::vector<std::string> log;
FakeService a("a", 100, &log), b("b", 100, &log);
ServiceManager m;
m.add(a);
m.add(b);
m.startAll(0);
m.stopAll();
std::vector<std::string> expected = {"start a", "start b", "stop b", "stop a"};
TEST_ASSERT_TRUE(log == expected);
}
void test_service_ticks_immediately_after_start_then_at_its_interval() {
std::vector<std::string> log;
FakeService s("s", 100, &log);
ServiceManager m;
m.add(s);
m.startAll(0);
for (uint32_t t = 0; t <= 250; t += 10) m.tick(t);
TEST_ASSERT_EQUAL(3, s.ticks.size());
TEST_ASSERT_EQUAL(0, s.ticks[0]);
TEST_ASSERT_EQUAL(100, s.ticks[1]);
TEST_ASSERT_EQUAL(200, s.ticks[2]);
}
void test_each_service_keeps_its_own_interval() {
std::vector<std::string> log;
FakeService fast("fast", 10, &log), slow("slow", 100, &log);
ServiceManager m;
m.add(fast);
m.add(slow);
m.startAll(0);
for (uint32_t t = 0; t < 100; t += 10) m.tick(t);
TEST_ASSERT_EQUAL(10, fast.ticks.size());
TEST_ASSERT_EQUAL(1, slow.ticks.size());
}
void test_late_tick_does_not_cause_a_burst_of_catch_up_ticks() {
std::vector<std::string> log;
FakeService s("s", 100, &log);
ServiceManager m;
m.add(s);
m.startAll(0);
m.tick(0);
m.tick(1000); // UI stalled for a second
m.tick(1010);
TEST_ASSERT_EQUAL(2, s.ticks.size());
}
void test_ticking_survives_millis_wraparound() {
std::vector<std::string> log;
FakeService s("s", 100, &log);
ServiceManager m;
m.add(s);
const uint32_t nearWrap = 0xFFFFFFFFu - 50;
m.startAll(nearWrap);
m.tick(nearWrap);
m.tick(nearWrap + 60); // wrapped, only 60 ms elapsed
m.tick(nearWrap + 100); // wrapped, 100 ms elapsed
TEST_ASSERT_EQUAL(2, s.ticks.size());
}
void test_services_are_not_ticked_before_start_or_after_stop() {
std::vector<std::string> log;
FakeService s("s", 10, &log);
ServiceManager m;
m.add(s);
m.tick(0);
m.startAll(0);
m.stopAll();
m.tick(100);
TEST_ASSERT_EQUAL(0, s.ticks.size());
}
int main() {
UNITY_BEGIN();
RUN_TEST(test_services_start_in_order_and_stop_in_reverse);
RUN_TEST(test_service_ticks_immediately_after_start_then_at_its_interval);
RUN_TEST(test_each_service_keeps_its_own_interval);
RUN_TEST(test_late_tick_does_not_cause_a_burst_of_catch_up_ticks);
RUN_TEST(test_ticking_survives_millis_wraparound);
RUN_TEST(test_services_are_not_ticked_before_start_or_after_stop);
return UNITY_END();
}