2.0 KiB
2.0 KiB
K14 — Software timer and the timer daemon task
Position
- Series: FreeRTOS C++
- Lesson: L13, card K14
- Duration: 30 minutes
- Policies: one-shot and periodic
- Static timer/task storage; heap delta zero
Outcome
The student separates command queue acceptance from callback execution, observes timer-daemon context, measures one-shot and periodic timelines, and states the lifetime contract for a typed callback context.
Lesson plan
| Time | Mode | Evidence |
|---|---|---|
| 0–5 | wrapper contract | non-copy, explicit start, typed context |
| 5–10 | command queue | two starts accepted before scheduler, callbacks zero |
| 10–15 | initial timeline | periodic ticks 2 and 4 |
| 15–20 | reset/change | one-shot reset at 1 expires at 6; period 2→3 at 4 |
| 20–25 | daemon proof | current handle/name and separate callback stack |
| 25–30 | stop/lifetime | periodic tick 7, then inactive; no fourth callback |
Acceptance
- OneShotTimer and PeriodicTimer encode reload policy in the type;
- wrapper is neither copyable nor movable and start is explicit;
- xTimerCreateStatic uses caller-owned control blocks in .bss;
- both start commands return accepted while callback snapshot is still zero;
- reset/change/stop acceptance is recorded separately from execution;
- periodic callback ticks are exactly 2, 4 and 7;
- reset at tick 1 moves one-shot expiry to tick 6 and it becomes inactive;
- callback runs on timer daemon handle/name and a separate stack;
- stopping the periodic timer prevents a fourth callback;
- heap before/after timer creation is identical and target exits with PASS.
Main traps
- A callback runs in the timer service task, not in an ISR.
- pdPASS means the daemon queue accepted a command, not that it executed.
- Blocking or long work in one callback delays every software timer.
- Timer ID/context and StaticTimer_t storage must outlive pending work.
- Destroying a wrapper cannot synchronously prove queued deletion completed.