Files
gosentry/src/app/service.go
T
mixeme 428f018fe1 T5.2: Introduce autostart.Manager interface + per-platform impls
Define Manager with Set/Status in autostart.go; add concrete types
(windowsManager, linuxManager, otherManager) in the per-platform files.
Service gains a manager field wired by Open() via autostart.New();
AutostartStatus and ApplyAutostart delegate to it instead of calling
package-level functions directly. Tests that don't need autostart get a
nil manager, which is safe (no-op returns).

Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
2026-06-22 07:22:41 +03:00

179 lines
6.5 KiB
Go

package app
import (
"context"
"sync"
"time"
"gitea.mixdep.ru/mix/gosentry/src/domain"
"gitea.mixdep.ru/mix/gosentry/src/platform/autostart"
"gitea.mixdep.ru/mix/gosentry/src/runner"
"gitea.mixdep.ru/mix/gosentry/src/scheduler"
"gitea.mixdep.ru/mix/gosentry/src/storage"
)
// Service is the application-service layer: the single owner of GoSentry's
// in-memory state. It holds the durable jobs slice, the transient runtime map
// keyed by Job.ID, and a reference to the store that persists them. All access
// to that state goes through a mutex so the GUI and the scheduler can no longer
// race on a shared *[]Job.
//
// State ownership and the locking contract were established in T3.1; the
// event/observer machinery in T3.2. T3.3 added the state-mutating intents
// (CreateJob, UpdateJob, DeleteJob, SetEnabled, RunNow, SetGlobalPause,
// UpdateSettings) in operations.go: the Service is the sole writer of job and
// runtime state, persisting through the store and announcing changes via events.
//
// T3.4 makes the Service drive scheduling too. It owns the timing loop through a
// scheduler.Scheduler that calls RunDue on every tick; the scheduler holds no
// job state and never touches the slice directly. The old shared *[]domain.Job
// between GUI and scheduler is gone — both go through the Service.
//
// Locking contract: mu is a plain, non-reentrant mutex. Exported methods take
// it; unexported helpers ending in "Locked" assume the caller already holds it.
// The Service must never call back into the UI (or any code that might re-enter
// the Service) while holding mu — in particular emit() is always called after
// mu is released.
type Service struct {
mu sync.Mutex
store *storage.Store
jobs []domain.Job
runtimes map[int]*domain.JobRuntime
// schedules caches a parsed Schedule per job ID so timing math does not
// re-parse the schedule string on every use. paused is the global pause flag.
// Both are guarded by mu.
schedules map[int]domain.Schedule
paused bool
// runJob is the run seam. It defaults to runner.RunJob and is overridden in
// tests with a fake so the run paths can be exercised without spawning real
// processes. ctx is the lifecycle context passed to runs; Start replaces it
// with a cancelable context so Stop can abort in-flight runs, and until Start
// it is context.Background().
runJob func(ctx context.Context, job *domain.Job, trigger string, logsDir string) domain.RunRecord
ctx context.Context
// sched is the timing loop installed by Start; cancel tears down ctx on Stop.
// Both are guarded by mu.
sched *scheduler.Scheduler
cancel context.CancelFunc
// manager is the platform autostart implementation. It is nil in tests that
// do not exercise autostart; Open() wires it via autostart.New().
manager autostart.Manager
// observers and their guard live in events.go. dispatchMu is separate from mu
// so that emitting an event never requires (or is held under) the state lock:
// the Service must release mu before dispatching, per the locking contract.
dispatchMu sync.Mutex
observers []Observer
}
// NewService wires the Service to a loaded store and its jobs. It builds the
// initial runtime map from the durable jobs so every job has transient state
// from the moment the Service exists, and parses each job's schedule once. The
// store is the Service's sole channel to persistence.
func NewService(store *storage.Store, jobs []domain.Job) *Service {
s := &Service{
store: store,
jobs: jobs,
runtimes: domain.NewRuntimes(jobs),
schedules: make(map[int]domain.Schedule, len(jobs)),
runJob: runner.RunJob,
ctx: context.Background(),
}
// Parse every schedule once, then compute each job's first next-run so the
// Service is ready to schedule the moment it exists — mirroring the old
// scheduler's reset-on-construction. No lock is needed: construction is
// single-threaded, before Start launches the timing loop.
now := time.Now()
for index := range s.jobs {
job := &s.jobs[index]
s.parseScheduleLocked(job)
s.refreshNextRunFromLocked(job, s.runtimes[job.ID], now)
}
return s
}
// Start begins scheduling with the real wall clock. It is the production entry
// point; tests should call StartWith and supply a fake clock instead. Start is
// expected once, during setup, before any concurrent use.
func (s *Service) Start() {
s.StartWith(scheduler.NewRealClock())
}
// StartWith begins scheduling driven by the given clock; every tick calls
// RunDue. Used by tests to inject a fake clock.
func (s *Service) StartWith(clock scheduler.Clock) {
s.mu.Lock()
ctx, cancel := context.WithCancel(context.Background())
s.ctx = ctx
s.cancel = cancel
s.sched = scheduler.NewScheduler(clock, s.RunDue)
sched := s.sched
s.mu.Unlock()
sched.Start()
}
// Stop halts scheduling and cancels the run context so in-flight runs see a
// canceled context. It is safe to call when Start was never called.
func (s *Service) Stop() {
s.mu.Lock()
sched := s.sched
cancel := s.cancel
s.mu.Unlock()
if sched != nil {
sched.Stop()
}
if cancel != nil {
cancel()
}
}
// Open loads the store and constructs a Service from it in one step. It is the
// convenience entry point for the application; tests inject a pre-built store
// via NewService instead.
func Open() (*Service, error) {
store, jobs, err := storage.OpenStore()
if err != nil {
return nil, err
}
svc := NewService(store, jobs)
svc.manager = autostart.New()
return svc, nil
}
// Store returns the underlying store. It is exposed so callers that still need
// resolved paths and config (the GUI, during the transition) can reach them;
// later phases narrow this surface.
func (s *Service) Store() *storage.Store {
return s.store
}
// Jobs returns a copy of the durable jobs slice. Returning a copy keeps callers
// from mutating Service-owned state behind its back: the Service stays the sole
// writer.
func (s *Service) Jobs() []domain.Job {
s.mu.Lock()
defer s.mu.Unlock()
jobs := make([]domain.Job, len(s.jobs))
copy(jobs, s.jobs)
return jobs
}
// Runtime returns the transient runtime state for a job ID, or nil if no job
// with that ID is loaded. The returned pointer is the live runtime; reads of it
// are only safe while no concurrent mutation is in flight. The scheduler now
// drives the Service rather than sharing state, so the remaining concurrent
// reader is the UI listener, which T4.1 marshals onto the main thread.
func (s *Service) Runtime(id int) *domain.JobRuntime {
s.mu.Lock()
defer s.mu.Unlock()
return s.runtimes[id]
}