the oneshot+timer produced 8367 journal lines a day of systemd start/stop noise. now Type=notify with an internal ticker, logging transitions only. hardware sits behind sensor.Sensor; internal/monitor is pure, so the shutdown state machine is tested without a pi. four guards, each tested, because a false poweroff of a box with no physical access is worse than a missed one: - a failed read resets the arming window rather than pausing it - voltage must actually fall across the window, else it is a stuck sensor. this is the only defence against the ac line reading 0 while mains is connected, so it is load-bearing - a settle period stops a restart loop acting on early readings - flapping ac cannot accumulate verified on hardware 2026-08-09: after poweroff on battery the x1208 starts the pi again when mains returns, with no button press. that was the risk that could have made this feature unsafe. a failed tick rewrites the previous sample with sensor_healthy 0 and the failure counter, so last_update still freezes for the staleness alert while the failure stays visible. module path moved to git.mial.net. debian units and the compose overlay deleted; deployment lives in the infra repo.
89 lines
2.0 KiB
Go
89 lines
2.0 KiB
Go
package sensor
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import (
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"fmt"
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"sync"
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"time"
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)
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// Step is one scripted outcome for a Fake.
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type Step struct {
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Reading Reading
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Err error
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// Block holds the Read for this long before returning, so callers can
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// exercise their read deadline.
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Block time.Duration
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}
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// Fake is a scripted Sensor for tests and for `just run-fake`. It replays
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// Steps in order and repeats the last one once the script runs out.
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type Fake struct {
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mu sync.Mutex
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steps []Step
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index int
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closed bool
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// Now supplies the timestamp when a Step leaves Reading.At zero.
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Now func() time.Time
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}
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// NewFake returns a Fake that replays steps.
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func NewFake(steps ...Step) *Fake {
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return &Fake{steps: steps, Now: time.Now}
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}
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// Read returns the next scripted outcome.
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func (f *Fake) Read() (Reading, error) {
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f.mu.Lock()
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if f.closed {
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f.mu.Unlock()
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return Reading{}, fmt.Errorf("read after close")
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}
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if len(f.steps) == 0 {
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f.mu.Unlock()
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return Reading{}, fmt.Errorf("fake sensor has no steps")
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}
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step := f.steps[f.index]
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if f.index < len(f.steps)-1 {
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f.index++
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}
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now := f.Now
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f.mu.Unlock()
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if step.Block > 0 {
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time.Sleep(step.Block)
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}
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if step.Err != nil {
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return Reading{}, step.Err
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}
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r := step.Reading
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if r.At.IsZero() {
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r.At = now()
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}
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return r, nil
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}
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// Close marks the Fake closed; later reads fail.
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func (f *Fake) Close() error {
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f.mu.Lock()
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defer f.mu.Unlock()
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f.closed = true
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return nil
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}
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// Discharging returns a script that starts on mains and then drains, which is
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// the sequence the shutdown state machine must accept.
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func Discharging(mainsTicks, batteryTicks int) *Fake {
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steps := make([]Step, 0, mainsTicks+batteryTicks)
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for i := 0; i < mainsTicks; i++ {
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steps = append(steps, Step{Reading: Reading{ACPresent: true, Volts: 4.10, SOC: 100}})
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}
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for i := 0; i < batteryTicks; i++ {
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steps = append(steps, Step{Reading: Reading{
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ACPresent: false,
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Volts: 3.60 - float64(i)*0.02,
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SOC: float64(30 - i),
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}})
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}
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return NewFake(steps...)
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}
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