lessor.go 15 KB

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  1. // Copyright 2015 The etcd Authors
  2. //
  3. // Licensed under the Apache License, Version 2.0 (the "License");
  4. // you may not use this file except in compliance with the License.
  5. // You may obtain a copy of the License at
  6. //
  7. // http://www.apache.org/licenses/LICENSE-2.0
  8. //
  9. // Unless required by applicable law or agreed to in writing, software
  10. // distributed under the License is distributed on an "AS IS" BASIS,
  11. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. // See the License for the specific language governing permissions and
  13. // limitations under the License.
  14. package lease
  15. import (
  16. "encoding/binary"
  17. "errors"
  18. "math"
  19. "sort"
  20. "sync"
  21. "sync/atomic"
  22. "time"
  23. "github.com/coreos/etcd/lease/leasepb"
  24. "github.com/coreos/etcd/mvcc/backend"
  25. "github.com/coreos/etcd/pkg/monotime"
  26. )
  27. const (
  28. // NoLease is a special LeaseID representing the absence of a lease.
  29. NoLease = LeaseID(0)
  30. )
  31. var (
  32. leaseBucketName = []byte("lease")
  33. forever = monotime.Time(math.MaxInt64)
  34. ErrNotPrimary = errors.New("not a primary lessor")
  35. ErrLeaseNotFound = errors.New("lease not found")
  36. ErrLeaseExists = errors.New("lease already exists")
  37. )
  38. // TxnDelete is a TxnWrite that only permits deletes. Defined here
  39. // to avoid circular dependency with mvcc.
  40. type TxnDelete interface {
  41. DeleteRange(key, end []byte) (n, rev int64)
  42. End()
  43. }
  44. // RangeDeleter is a TxnDelete constructor.
  45. type RangeDeleter func() TxnDelete
  46. type LeaseID int64
  47. // Lessor owns leases. It can grant, revoke, renew and modify leases for lessee.
  48. type Lessor interface {
  49. // SetRangeDeleter lets the lessor create TxnDeletes to the store.
  50. // Lessor deletes the items in the revoked or expired lease by creating
  51. // new TxnDeletes.
  52. SetRangeDeleter(rd RangeDeleter)
  53. // Grant grants a lease that expires at least after TTL seconds.
  54. Grant(id LeaseID, ttl int64) (*Lease, error)
  55. // Revoke revokes a lease with given ID. The item attached to the
  56. // given lease will be removed. If the ID does not exist, an error
  57. // will be returned.
  58. Revoke(id LeaseID) error
  59. // Attach attaches given leaseItem to the lease with given LeaseID.
  60. // If the lease does not exist, an error will be returned.
  61. Attach(id LeaseID, items []LeaseItem) error
  62. // GetLease returns LeaseID for given item.
  63. // If no lease found, NoLease value will be returned.
  64. GetLease(item LeaseItem) LeaseID
  65. // Detach detaches given leaseItem from the lease with given LeaseID.
  66. // If the lease does not exist, an error will be returned.
  67. Detach(id LeaseID, items []LeaseItem) error
  68. // Promote promotes the lessor to be the primary lessor. Primary lessor manages
  69. // the expiration and renew of leases.
  70. // Newly promoted lessor renew the TTL of all lease to extend + previous TTL.
  71. Promote(extend time.Duration)
  72. // Demote demotes the lessor from being the primary lessor.
  73. Demote()
  74. // Renew renews a lease with given ID. It returns the renewed TTL. If the ID does not exist,
  75. // an error will be returned.
  76. Renew(id LeaseID) (int64, error)
  77. // Lookup gives the lease at a given lease id, if any
  78. Lookup(id LeaseID) *Lease
  79. // ExpiredLeasesC returns a chan that is used to receive expired leases.
  80. ExpiredLeasesC() <-chan []*Lease
  81. // Recover recovers the lessor state from the given backend and RangeDeleter.
  82. Recover(b backend.Backend, rd RangeDeleter)
  83. // Stop stops the lessor for managing leases. The behavior of calling Stop multiple
  84. // times is undefined.
  85. Stop()
  86. }
  87. // lessor implements Lessor interface.
  88. // TODO: use clockwork for testability.
  89. type lessor struct {
  90. mu sync.Mutex
  91. // demotec is set when the lessor is the primary.
  92. // demotec will be closed if the lessor is demoted.
  93. demotec chan struct{}
  94. // TODO: probably this should be a heap with a secondary
  95. // id index.
  96. // Now it is O(N) to loop over the leases to find expired ones.
  97. // We want to make Grant, Revoke, and findExpiredLeases all O(logN) and
  98. // Renew O(1).
  99. // findExpiredLeases and Renew should be the most frequent operations.
  100. leaseMap map[LeaseID]*Lease
  101. itemMap map[LeaseItem]LeaseID
  102. // When a lease expires, the lessor will delete the
  103. // leased range (or key) by the RangeDeleter.
  104. rd RangeDeleter
  105. // backend to persist leases. We only persist lease ID and expiry for now.
  106. // The leased items can be recovered by iterating all the keys in kv.
  107. b backend.Backend
  108. // minLeaseTTL is the minimum lease TTL that can be granted for a lease. Any
  109. // requests for shorter TTLs are extended to the minimum TTL.
  110. minLeaseTTL int64
  111. expiredC chan []*Lease
  112. // stopC is a channel whose closure indicates that the lessor should be stopped.
  113. stopC chan struct{}
  114. // doneC is a channel whose closure indicates that the lessor is stopped.
  115. doneC chan struct{}
  116. }
  117. func NewLessor(b backend.Backend, minLeaseTTL int64) Lessor {
  118. return newLessor(b, minLeaseTTL)
  119. }
  120. func newLessor(b backend.Backend, minLeaseTTL int64) *lessor {
  121. l := &lessor{
  122. leaseMap: make(map[LeaseID]*Lease),
  123. itemMap: make(map[LeaseItem]LeaseID),
  124. b: b,
  125. minLeaseTTL: minLeaseTTL,
  126. // expiredC is a small buffered chan to avoid unnecessary blocking.
  127. expiredC: make(chan []*Lease, 16),
  128. stopC: make(chan struct{}),
  129. doneC: make(chan struct{}),
  130. }
  131. l.initAndRecover()
  132. go l.runLoop()
  133. return l
  134. }
  135. // isPrimary indicates if this lessor is the primary lessor. The primary
  136. // lessor manages lease expiration and renew.
  137. //
  138. // in etcd, raft leader is the primary. Thus there might be two primary
  139. // leaders at the same time (raft allows concurrent leader but with different term)
  140. // for at most a leader election timeout.
  141. // The old primary leader cannot affect the correctness since its proposal has a
  142. // smaller term and will not be committed.
  143. //
  144. // TODO: raft follower do not forward lease management proposals. There might be a
  145. // very small window (within second normally which depends on go scheduling) that
  146. // a raft follow is the primary between the raft leader demotion and lessor demotion.
  147. // Usually this should not be a problem. Lease should not be that sensitive to timing.
  148. func (le *lessor) isPrimary() bool {
  149. return le.demotec != nil
  150. }
  151. func (le *lessor) SetRangeDeleter(rd RangeDeleter) {
  152. le.mu.Lock()
  153. defer le.mu.Unlock()
  154. le.rd = rd
  155. }
  156. func (le *lessor) Grant(id LeaseID, ttl int64) (*Lease, error) {
  157. if id == NoLease {
  158. return nil, ErrLeaseNotFound
  159. }
  160. // TODO: when lessor is under high load, it should give out lease
  161. // with longer TTL to reduce renew load.
  162. l := &Lease{
  163. ID: id,
  164. ttl: ttl,
  165. itemSet: make(map[LeaseItem]struct{}),
  166. revokec: make(chan struct{}),
  167. }
  168. le.mu.Lock()
  169. defer le.mu.Unlock()
  170. if _, ok := le.leaseMap[id]; ok {
  171. return nil, ErrLeaseExists
  172. }
  173. if l.ttl < le.minLeaseTTL {
  174. l.ttl = le.minLeaseTTL
  175. }
  176. if le.isPrimary() {
  177. l.refresh(0)
  178. } else {
  179. l.forever()
  180. }
  181. le.leaseMap[id] = l
  182. l.persistTo(le.b)
  183. return l, nil
  184. }
  185. func (le *lessor) Revoke(id LeaseID) error {
  186. le.mu.Lock()
  187. l := le.leaseMap[id]
  188. if l == nil {
  189. le.mu.Unlock()
  190. return ErrLeaseNotFound
  191. }
  192. defer close(l.revokec)
  193. // unlock before doing external work
  194. le.mu.Unlock()
  195. if le.rd == nil {
  196. return nil
  197. }
  198. txn := le.rd()
  199. // sort keys so deletes are in same order among all members,
  200. // otherwise the backened hashes will be different
  201. keys := l.Keys()
  202. sort.StringSlice(keys).Sort()
  203. for _, key := range keys {
  204. txn.DeleteRange([]byte(key), nil)
  205. }
  206. le.mu.Lock()
  207. defer le.mu.Unlock()
  208. delete(le.leaseMap, l.ID)
  209. // lease deletion needs to be in the same backend transaction with the
  210. // kv deletion. Or we might end up with not executing the revoke or not
  211. // deleting the keys if etcdserver fails in between.
  212. le.b.BatchTx().UnsafeDelete(leaseBucketName, int64ToBytes(int64(l.ID)))
  213. txn.End()
  214. return nil
  215. }
  216. // Renew renews an existing lease. If the given lease does not exist or
  217. // has expired, an error will be returned.
  218. func (le *lessor) Renew(id LeaseID) (int64, error) {
  219. le.mu.Lock()
  220. unlock := func() { le.mu.Unlock() }
  221. defer func() { unlock() }()
  222. if !le.isPrimary() {
  223. // forward renew request to primary instead of returning error.
  224. return -1, ErrNotPrimary
  225. }
  226. demotec := le.demotec
  227. l := le.leaseMap[id]
  228. if l == nil {
  229. return -1, ErrLeaseNotFound
  230. }
  231. if l.expired() {
  232. le.mu.Unlock()
  233. unlock = func() {}
  234. select {
  235. // A expired lease might be pending for revoking or going through
  236. // quorum to be revoked. To be accurate, renew request must wait for the
  237. // deletion to complete.
  238. case <-l.revokec:
  239. return -1, ErrLeaseNotFound
  240. // The expired lease might fail to be revoked if the primary changes.
  241. // The caller will retry on ErrNotPrimary.
  242. case <-demotec:
  243. return -1, ErrNotPrimary
  244. case <-le.stopC:
  245. return -1, ErrNotPrimary
  246. }
  247. }
  248. l.refresh(0)
  249. return l.ttl, nil
  250. }
  251. func (le *lessor) Lookup(id LeaseID) *Lease {
  252. le.mu.Lock()
  253. defer le.mu.Unlock()
  254. return le.leaseMap[id]
  255. }
  256. func (le *lessor) Promote(extend time.Duration) {
  257. le.mu.Lock()
  258. defer le.mu.Unlock()
  259. le.demotec = make(chan struct{})
  260. // refresh the expiries of all leases.
  261. for _, l := range le.leaseMap {
  262. l.refresh(extend)
  263. }
  264. }
  265. func (le *lessor) Demote() {
  266. le.mu.Lock()
  267. defer le.mu.Unlock()
  268. // set the expiries of all leases to forever
  269. for _, l := range le.leaseMap {
  270. l.forever()
  271. }
  272. if le.demotec != nil {
  273. close(le.demotec)
  274. le.demotec = nil
  275. }
  276. }
  277. // Attach attaches items to the lease with given ID. When the lease
  278. // expires, the attached items will be automatically removed.
  279. // If the given lease does not exist, an error will be returned.
  280. func (le *lessor) Attach(id LeaseID, items []LeaseItem) error {
  281. le.mu.Lock()
  282. defer le.mu.Unlock()
  283. l := le.leaseMap[id]
  284. if l == nil {
  285. return ErrLeaseNotFound
  286. }
  287. l.mu.Lock()
  288. for _, it := range items {
  289. l.itemSet[it] = struct{}{}
  290. le.itemMap[it] = id
  291. }
  292. l.mu.Unlock()
  293. return nil
  294. }
  295. func (le *lessor) GetLease(item LeaseItem) LeaseID {
  296. le.mu.Lock()
  297. id := le.itemMap[item]
  298. le.mu.Unlock()
  299. return id
  300. }
  301. // Detach detaches items from the lease with given ID.
  302. // If the given lease does not exist, an error will be returned.
  303. func (le *lessor) Detach(id LeaseID, items []LeaseItem) error {
  304. le.mu.Lock()
  305. defer le.mu.Unlock()
  306. l := le.leaseMap[id]
  307. if l == nil {
  308. return ErrLeaseNotFound
  309. }
  310. l.mu.Lock()
  311. for _, it := range items {
  312. delete(l.itemSet, it)
  313. delete(le.itemMap, it)
  314. }
  315. l.mu.Unlock()
  316. return nil
  317. }
  318. func (le *lessor) Recover(b backend.Backend, rd RangeDeleter) {
  319. le.mu.Lock()
  320. defer le.mu.Unlock()
  321. le.b = b
  322. le.rd = rd
  323. le.leaseMap = make(map[LeaseID]*Lease)
  324. le.itemMap = make(map[LeaseItem]LeaseID)
  325. le.initAndRecover()
  326. }
  327. func (le *lessor) ExpiredLeasesC() <-chan []*Lease {
  328. return le.expiredC
  329. }
  330. func (le *lessor) Stop() {
  331. close(le.stopC)
  332. <-le.doneC
  333. }
  334. func (le *lessor) runLoop() {
  335. defer close(le.doneC)
  336. for {
  337. var ls []*Lease
  338. le.mu.Lock()
  339. if le.isPrimary() {
  340. ls = le.findExpiredLeases()
  341. }
  342. le.mu.Unlock()
  343. if len(ls) != 0 {
  344. select {
  345. case <-le.stopC:
  346. return
  347. case le.expiredC <- ls:
  348. default:
  349. // the receiver of expiredC is probably busy handling
  350. // other stuff
  351. // let's try this next time after 500ms
  352. }
  353. }
  354. select {
  355. case <-time.After(500 * time.Millisecond):
  356. case <-le.stopC:
  357. return
  358. }
  359. }
  360. }
  361. // findExpiredLeases loops all the leases in the leaseMap and returns the expired
  362. // leases that needed to be revoked.
  363. func (le *lessor) findExpiredLeases() []*Lease {
  364. leases := make([]*Lease, 0, 16)
  365. for _, l := range le.leaseMap {
  366. // TODO: probably should change to <= 100-500 millisecond to
  367. // make up committing latency.
  368. if l.expired() {
  369. leases = append(leases, l)
  370. }
  371. }
  372. return leases
  373. }
  374. func (le *lessor) initAndRecover() {
  375. tx := le.b.BatchTx()
  376. tx.Lock()
  377. tx.UnsafeCreateBucket(leaseBucketName)
  378. _, vs := tx.UnsafeRange(leaseBucketName, int64ToBytes(0), int64ToBytes(math.MaxInt64), 0)
  379. // TODO: copy vs and do decoding outside tx lock if lock contention becomes an issue.
  380. for i := range vs {
  381. var lpb leasepb.Lease
  382. err := lpb.Unmarshal(vs[i])
  383. if err != nil {
  384. tx.Unlock()
  385. panic("failed to unmarshal lease proto item")
  386. }
  387. ID := LeaseID(lpb.ID)
  388. if lpb.TTL < le.minLeaseTTL {
  389. lpb.TTL = le.minLeaseTTL
  390. }
  391. le.leaseMap[ID] = &Lease{
  392. ID: ID,
  393. ttl: lpb.TTL,
  394. // itemSet will be filled in when recover key-value pairs
  395. // set expiry to forever, refresh when promoted
  396. itemSet: make(map[LeaseItem]struct{}),
  397. expiry: forever,
  398. revokec: make(chan struct{}),
  399. }
  400. }
  401. tx.Unlock()
  402. le.b.ForceCommit()
  403. }
  404. type Lease struct {
  405. ID LeaseID
  406. ttl int64 // time to live in seconds
  407. // expiry is time when lease should expire; must be 64-bit aligned.
  408. expiry monotime.Time
  409. // mu protects concurrent accesses to itemSet
  410. mu sync.RWMutex
  411. itemSet map[LeaseItem]struct{}
  412. revokec chan struct{}
  413. }
  414. func (l *Lease) expired() bool {
  415. return l.Remaining() <= 0
  416. }
  417. func (l *Lease) persistTo(b backend.Backend) {
  418. key := int64ToBytes(int64(l.ID))
  419. lpb := leasepb.Lease{ID: int64(l.ID), TTL: int64(l.ttl)}
  420. val, err := lpb.Marshal()
  421. if err != nil {
  422. panic("failed to marshal lease proto item")
  423. }
  424. b.BatchTx().Lock()
  425. b.BatchTx().UnsafePut(leaseBucketName, key, val)
  426. b.BatchTx().Unlock()
  427. }
  428. // TTL returns the TTL of the Lease.
  429. func (l *Lease) TTL() int64 {
  430. return l.ttl
  431. }
  432. // refresh refreshes the expiry of the lease.
  433. func (l *Lease) refresh(extend time.Duration) {
  434. t := monotime.Now().Add(extend + time.Duration(l.ttl)*time.Second)
  435. atomic.StoreUint64((*uint64)(&l.expiry), uint64(t))
  436. }
  437. // forever sets the expiry of lease to be forever.
  438. func (l *Lease) forever() { atomic.StoreUint64((*uint64)(&l.expiry), uint64(forever)) }
  439. // Keys returns all the keys attached to the lease.
  440. func (l *Lease) Keys() []string {
  441. l.mu.RLock()
  442. keys := make([]string, 0, len(l.itemSet))
  443. for k := range l.itemSet {
  444. keys = append(keys, k.Key)
  445. }
  446. l.mu.RUnlock()
  447. return keys
  448. }
  449. // Remaining returns the remaining time of the lease.
  450. func (l *Lease) Remaining() time.Duration {
  451. t := monotime.Time(atomic.LoadUint64((*uint64)(&l.expiry)))
  452. return time.Duration(t - monotime.Now())
  453. }
  454. type LeaseItem struct {
  455. Key string
  456. }
  457. func int64ToBytes(n int64) []byte {
  458. bytes := make([]byte, 8)
  459. binary.BigEndian.PutUint64(bytes, uint64(n))
  460. return bytes
  461. }
  462. // FakeLessor is a fake implementation of Lessor interface.
  463. // Used for testing only.
  464. type FakeLessor struct{}
  465. func (fl *FakeLessor) SetRangeDeleter(dr RangeDeleter) {}
  466. func (fl *FakeLessor) Grant(id LeaseID, ttl int64) (*Lease, error) { return nil, nil }
  467. func (fl *FakeLessor) Revoke(id LeaseID) error { return nil }
  468. func (fl *FakeLessor) Attach(id LeaseID, items []LeaseItem) error { return nil }
  469. func (fl *FakeLessor) GetLease(item LeaseItem) LeaseID { return 0 }
  470. func (fl *FakeLessor) Detach(id LeaseID, items []LeaseItem) error { return nil }
  471. func (fl *FakeLessor) Promote(extend time.Duration) {}
  472. func (fl *FakeLessor) Demote() {}
  473. func (fl *FakeLessor) Renew(id LeaseID) (int64, error) { return 10, nil }
  474. func (le *FakeLessor) Lookup(id LeaseID) *Lease { return nil }
  475. func (fl *FakeLessor) ExpiredLeasesC() <-chan []*Lease { return nil }
  476. func (fl *FakeLessor) Recover(b backend.Backend, rd RangeDeleter) {}
  477. func (fl *FakeLessor) Stop() {}