Files
easyai-ai-gateway/apps/api/internal/runner/queue_worker.go
T
wangbo 6c5daf29ca perf(queue): 按策略动态扩缩异步 Worker
将 River 执行容量按平台模型与用户组的有效并发策略动态调整,并为长任务续租、并发租约原子抢占和限流退避补充保护。\n\n统一平台模型限流继承语义,兼容历史 platformLimits/modelLimits,并为三个迁移图像模型建立独立并发租约。补充管理端显式继承/覆盖配置、指标、单元测试及隔离 PostgreSQL 验收。\n\n验证:go test ./... -count=1;pnpm lint;pnpm test;pnpm build;隔离 PostgreSQL 并发原子性/续租测试;128 任务与三分钟长任务动态 Worker 验收。
2026-07-24 12:26:56 +08:00

434 lines
13 KiB
Go

package runner
import (
"context"
"errors"
"fmt"
"os"
"strings"
"time"
"github.com/easyai/easyai-ai-gateway/apps/api/internal/auth"
"github.com/easyai/easyai-ai-gateway/apps/api/internal/store"
"github.com/google/uuid"
"github.com/jackc/pgx/v5"
"github.com/riverqueue/river"
"github.com/riverqueue/river/riverdriver/riverpgxv5"
"github.com/riverqueue/river/rivermigrate"
"github.com/riverqueue/river/rivertype"
)
const asyncTaskQueueName = "gateway_tasks"
type asyncTaskArgs struct {
TaskID string `json:"task_id" river:"unique"`
}
type asyncExecutionClient interface {
Start(context.Context) error
Stop(context.Context) error
StopAndCancel(context.Context) error
}
func (asyncTaskArgs) Kind() string { return "gateway_task_run" }
type asyncTaskWorker struct {
river.WorkerDefaults[asyncTaskArgs]
service *Service
}
func (w *asyncTaskWorker) Work(ctx context.Context, job *river.Job[asyncTaskArgs]) error {
task, err := w.service.store.GetTask(ctx, job.Args.TaskID)
if err != nil {
return err
}
if task.Status == "succeeded" || task.Status == "failed" || task.Status == "cancelled" {
return nil
}
executionToken := uuid.NewString()
result, runErr := w.service.executeWithToken(ctx, task, authUserFromTask(task), nil, executionToken)
if runErr == nil {
w.service.logger.Debug("river async task completed", "taskID", task.ID, "status", result.Task.Status, "riverJobID", job.ID)
return nil
}
if errors.Is(runErr, store.ErrTaskExecutionLeaseUnavailable) {
w.service.logger.Debug("river async task execution lease already held", "taskID", task.ID, "riverJobID", job.ID)
return nil
}
if errors.Is(runErr, store.ErrTaskExecutionManualReview) {
w.service.logger.Warn("river async task moved to manual review after ambiguous upstream submission", "taskID", task.ID, "riverJobID", job.ID)
return nil
}
var queuedErr *TaskQueuedError
if errors.As(runErr, &queuedErr) {
return river.JobSnooze(queuedErr.Delay)
}
if ctx.Err() != nil {
task.ExecutionToken = executionToken
queued, queueErr := w.service.requeueInterruptedAsyncTask(context.WithoutCancel(ctx), task)
if queueErr != nil {
return queueErr
}
w.service.logger.Debug("river async task interrupted and requeued", "taskID", task.ID, "status", queued.Status, "riverJobID", job.ID)
return river.JobSnooze(0)
}
w.service.logger.Warn("river async task completed with failure", "taskID", task.ID, "error", runErr, "riverJobID", job.ID)
return nil
}
func (s *Service) StartAsyncQueueWorker(ctx context.Context) {
if err := s.startRiverQueue(ctx); err != nil {
s.logger.Error("start river async queue failed", "error", err)
panic(err)
}
}
func (s *Service) startRiverQueue(ctx context.Context) error {
driver := riverpgxv5.New(s.store.Pool())
migrator, err := rivermigrate.New(driver, nil)
if err != nil {
return err
}
if _, err := migrator.Migrate(ctx, rivermigrate.DirectionUp, nil); err != nil {
return err
}
controlClient, err := river.NewClient(driver, &river.Config{
ID: asyncWorkerID() + "-control",
Logger: s.logger,
TestOnly: s.cfg.AppEnv == "test",
})
if err != nil {
return err
}
snapshot, err := s.loadAsyncWorkerCapacity(ctx)
if err != nil {
return fmt.Errorf("calculate initial async worker capacity: %w", err)
}
executionClient, err := s.makeAsyncExecutionClient(snapshot.Capacity)
if err != nil {
return err
}
if err := executionClient.Start(ctx); err != nil {
cleanupCtx, cancel := context.WithTimeout(context.Background(), 10*time.Second)
_ = executionClient.StopAndCancel(cleanupCtx)
cancel()
return err
}
s.riverMu.Lock()
s.riverControlClient = controlClient
s.riverExecutionClient = executionClient
s.riverWorkerCapacity = snapshot.Capacity
s.riverDrainingClients = make(map[asyncExecutionClient]struct{})
s.riverMu.Unlock()
s.observeAsyncWorkerCapacity(snapshot)
s.logger.Info("async worker capacity initialized",
"capacity", snapshot.Capacity,
"desiredCapacity", snapshot.Desired,
"hardLimit", snapshot.HardLimit,
"enabledModels", snapshot.EnabledModels,
"unlimitedModels", snapshot.UnlimitedModels,
"modelDesired", snapshot.ModelDesired,
"enabledGroups", snapshot.EnabledGroups,
"unlimitedGroups", snapshot.UnlimitedGroups,
"groupDesired", snapshot.GroupDesired,
"capped", snapshot.Capped,
)
if err := s.recoverAsyncRiverJobs(ctx); err != nil {
cleanupCtx, cancel := context.WithTimeout(context.Background(), 10*time.Second)
_ = executionClient.StopAndCancel(cleanupCtx)
cancel()
return err
}
go s.refreshAsyncWorkerCapacity(ctx)
go s.stopAsyncWorkersOnShutdown(ctx)
return nil
}
func (s *Service) newRiverAsyncExecutionClient(capacity int) (*river.Client[pgx.Tx], error) {
workers := river.NewWorkers()
if err := river.AddWorkerSafely(workers, &asyncTaskWorker{service: s}); err != nil {
return nil, err
}
return river.NewClient(riverpgxv5.New(s.store.Pool()), &river.Config{
ID: fmt.Sprintf("%s-exec-%d-%d", asyncWorkerID(), capacity, time.Now().UnixNano()),
JobTimeout: -1,
Logger: s.logger,
CompletedJobRetentionPeriod: 24 * time.Hour,
Queues: map[string]river.QueueConfig{
asyncTaskQueueName: {MaxWorkers: capacity},
},
// Provider-backed media jobs commonly poll for 10-20 minutes. River may
// execute a still-running job again once this window elapses, so keep the
// rescue horizon above the longest configured provider poll timeout.
RescueStuckJobsAfter: time.Hour,
TestOnly: s.cfg.AppEnv == "test",
Workers: workers,
})
}
func (s *Service) makeAsyncExecutionClient(capacity int) (asyncExecutionClient, error) {
if s.asyncClientFactory != nil {
return s.asyncClientFactory(capacity)
}
return s.newRiverAsyncExecutionClient(capacity)
}
func (s *Service) loadAsyncWorkerCapacity(ctx context.Context) (store.AsyncWorkerCapacitySnapshot, error) {
if s.asyncCapacityLoader != nil {
return s.asyncCapacityLoader(ctx, s.cfg.AsyncWorkerHardLimit)
}
return s.store.AsyncWorkerCapacity(ctx, s.cfg.AsyncWorkerHardLimit)
}
func (s *Service) refreshAsyncWorkerCapacity(ctx context.Context) {
ticker := time.NewTicker(time.Duration(s.cfg.AsyncWorkerRefreshIntervalSeconds) * time.Second)
defer ticker.Stop()
for {
select {
case <-ctx.Done():
return
case <-ticker.C:
s.resizeAsyncWorkerCapacity(ctx)
}
}
}
func (s *Service) resizeAsyncWorkerCapacity(ctx context.Context) {
snapshot, err := s.loadAsyncWorkerCapacity(ctx)
if err != nil {
s.observeAsyncWorkerResize("refresh_failed")
s.logger.Warn("refresh async worker capacity failed; keeping current client", "error", err)
return
}
s.riverMu.RLock()
currentCapacity := s.riverWorkerCapacity
s.riverMu.RUnlock()
s.observeAsyncWorkerCapacity(snapshot)
if snapshot.Capacity == currentCapacity {
return
}
newClient, err := s.makeAsyncExecutionClient(snapshot.Capacity)
if err != nil {
s.observeAsyncWorkerResize("create_failed")
s.logger.Warn("create replacement async worker client failed; keeping current client",
"error", err, "currentCapacity", currentCapacity, "desiredCapacity", snapshot.Capacity)
return
}
if err := newClient.Start(ctx); err != nil {
cleanupCtx, cancel := context.WithTimeout(context.Background(), 10*time.Second)
_ = newClient.StopAndCancel(cleanupCtx)
cancel()
s.observeAsyncWorkerResize("start_failed")
s.logger.Warn("start replacement async worker client failed; keeping current client",
"error", err, "currentCapacity", currentCapacity, "desiredCapacity", snapshot.Capacity)
return
}
if ctx.Err() != nil {
cleanupCtx, cancel := context.WithTimeout(context.Background(), 10*time.Second)
_ = newClient.StopAndCancel(cleanupCtx)
cancel()
return
}
s.riverMu.Lock()
oldClient := s.riverExecutionClient
s.riverExecutionClient = newClient
s.riverWorkerCapacity = snapshot.Capacity
if oldClient != nil {
if s.riverDrainingClients == nil {
s.riverDrainingClients = make(map[asyncExecutionClient]struct{})
}
s.riverDrainingClients[oldClient] = struct{}{}
}
s.riverMu.Unlock()
s.observeAsyncWorkerResize("success")
s.logger.Info("async worker capacity resized",
"previousCapacity", currentCapacity,
"capacity", snapshot.Capacity,
"desiredCapacity", snapshot.Desired,
"hardLimit", snapshot.HardLimit,
"modelDesired", snapshot.ModelDesired,
"groupDesired", snapshot.GroupDesired,
"capped", snapshot.Capped,
)
if oldClient != nil {
go s.drainAsyncWorkerClient(oldClient)
}
}
func (s *Service) drainAsyncWorkerClient(client asyncExecutionClient) {
stopCtx, cancel := context.WithTimeout(context.Background(), time.Hour)
defer cancel()
if err := client.Stop(stopCtx); err != nil {
s.logger.Warn("gracefully drain previous async worker client failed", "error", err)
}
s.riverMu.Lock()
delete(s.riverDrainingClients, client)
s.riverMu.Unlock()
}
func (s *Service) stopAsyncWorkersOnShutdown(ctx context.Context) {
<-ctx.Done()
s.riverMu.Lock()
clients := make([]asyncExecutionClient, 0, 1+len(s.riverDrainingClients))
if s.riverExecutionClient != nil {
clients = append(clients, s.riverExecutionClient)
}
for client := range s.riverDrainingClients {
clients = append(clients, client)
}
s.riverExecutionClient = nil
s.riverDrainingClients = nil
s.riverMu.Unlock()
for _, client := range clients {
stopCtx, cancel := context.WithTimeout(context.Background(), 10*time.Second)
if err := client.StopAndCancel(stopCtx); err != nil {
s.logger.Warn("stop river async queue failed", "error", err)
}
cancel()
}
}
func (s *Service) asyncControlClient() *river.Client[pgx.Tx] {
s.riverMu.RLock()
defer s.riverMu.RUnlock()
return s.riverControlClient
}
func (s *Service) observeAsyncWorkerCapacity(snapshot store.AsyncWorkerCapacitySnapshot) {
observer, ok := s.billingMetrics.(interface {
SetAsyncWorkerCapacity(current, desired, hardLimit int, capped bool)
})
if ok {
observer.SetAsyncWorkerCapacity(snapshot.Capacity, snapshot.Desired, snapshot.HardLimit, snapshot.Capped)
}
}
func (s *Service) observeAsyncWorkerResize(outcome string) {
observer, ok := s.billingMetrics.(interface {
ObserveAsyncWorkerResize(string)
})
if ok {
observer.ObserveAsyncWorkerResize(outcome)
}
}
func (s *Service) EnqueueAsyncTask(ctx context.Context, task store.GatewayTask) error {
riverClient := s.asyncControlClient()
if riverClient == nil {
return errors.New("river async queue is not started")
}
result, err := riverClient.Insert(ctx, asyncTaskArgs{TaskID: task.ID}, asyncTaskInsertOpts(task))
if err != nil {
return err
}
if result.Job != nil {
return s.store.SetTaskRiverJobID(ctx, task.ID, result.Job.ID)
}
return nil
}
func (s *Service) WakeAsyncQueueAfter(ctx context.Context, delay time.Duration) {
}
func (s *Service) RunAsyncTask(ctx context.Context, task store.GatewayTask, user *auth.User) {
if err := s.EnqueueAsyncTask(ctx, task); err != nil {
s.logger.Warn("enqueue river async task failed", "taskID", task.ID, "error", err)
}
}
func (s *Service) recoverAsyncRiverJobs(ctx context.Context) error {
riverClient := s.asyncControlClient()
if riverClient == nil {
return errors.New("river async queue is not started")
}
items, err := s.store.ListRecoverableAsyncTasks(ctx, 1000)
if err != nil {
return err
}
for _, item := range items {
result, err := riverClient.Insert(ctx, asyncTaskArgs{TaskID: item.ID}, asyncTaskRecoveryInsertOpts(item, time.Now()))
if err != nil {
return err
}
if result.Job != nil {
if err := s.store.SetTaskRiverJobID(ctx, item.ID, result.Job.ID); err != nil {
return err
}
}
}
if len(items) > 0 {
s.logger.Info("river async queue recovered persisted tasks", "count", len(items))
}
return nil
}
func asyncTaskInsertOpts(task store.GatewayTask) *river.InsertOpts {
priority := 2
if task.ID == "" {
priority = 3
}
return &river.InsertOpts{
MaxAttempts: 1000,
Priority: priority,
Queue: asyncTaskQueueName,
Tags: []string{"gateway-task"},
UniqueOpts: river.UniqueOpts{
ByArgs: true,
ByQueue: true,
ByState: []rivertype.JobState{
rivertype.JobStateAvailable,
rivertype.JobStatePending,
rivertype.JobStateRetryable,
rivertype.JobStateRunning,
rivertype.JobStateScheduled,
},
},
}
}
func asyncTaskRecoveryInsertOpts(item store.AsyncTaskQueueItem, now time.Time) *river.InsertOpts {
opts := asyncTaskInsertOpts(store.GatewayTask{ID: item.ID})
if item.NextRunAt.After(now) {
opts.ScheduledAt = item.NextRunAt
}
// A replacement process must not be blocked by a River row that the dead
// process left in running state. PostgreSQL execution leases still ensure
// that only one recovery job can call the upstream provider.
opts.UniqueOpts = river.UniqueOpts{}
return opts
}
func authUserFromTask(task store.GatewayTask) *auth.User {
roles := []string{"user"}
if strings.TrimSpace(task.UserID) == "" {
roles = nil
}
return &auth.User{
ID: firstNonEmptyString(task.GatewayUserID, task.UserID),
Roles: roles,
TenantID: task.TenantID,
GatewayTenantID: task.GatewayTenantID,
TenantKey: task.TenantKey,
Source: firstNonEmptyString(task.UserSource, "gateway"),
GatewayUserID: task.GatewayUserID,
UserGroupID: task.UserGroupID,
UserGroupKey: task.UserGroupKey,
APIKeyID: task.APIKeyID,
APIKeyName: task.APIKeyName,
APIKeyPrefix: task.APIKeyPrefix,
}
}
func asyncWorkerID() string {
host, _ := os.Hostname()
host = strings.TrimSpace(host)
if host == "" {
host = "localhost"
}
return fmt.Sprintf("%s:%d:%d", host, os.Getpid(), time.Now().UnixNano())
}
var _ river.Worker[asyncTaskArgs] = (*asyncTaskWorker)(nil)