rpc.proto 28 KB

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  1. syntax = "proto3";
  2. package etcdserverpb;
  3. import "gogoproto/gogo.proto";
  4. import "etcd/mvcc/mvccpb/kv.proto";
  5. import "etcd/auth/authpb/auth.proto";
  6. // for grpc-gateway
  7. import "google/api/annotations.proto";
  8. option (gogoproto.marshaler_all) = true;
  9. option (gogoproto.unmarshaler_all) = true;
  10. service KV {
  11. // Range gets the keys in the range from the key-value store.
  12. rpc Range(RangeRequest) returns (RangeResponse) {
  13. option (google.api.http) = {
  14. post: "/v3alpha/kv/range"
  15. body: "*"
  16. };
  17. }
  18. // Put puts the given key into the key-value store.
  19. // A put request increments the revision of the key-value store
  20. // and generates one event in the event history.
  21. rpc Put(PutRequest) returns (PutResponse) {
  22. option (google.api.http) = {
  23. post: "/v3alpha/kv/put"
  24. body: "*"
  25. };
  26. }
  27. // DeleteRange deletes the given range from the key-value store.
  28. // A delete request increments the revision of the key-value store
  29. // and generates a delete event in the event history for every deleted key.
  30. rpc DeleteRange(DeleteRangeRequest) returns (DeleteRangeResponse) {
  31. option (google.api.http) = {
  32. post: "/v3alpha/kv/deleterange"
  33. body: "*"
  34. };
  35. }
  36. // Txn processes multiple requests in a single transaction.
  37. // A txn request increments the revision of the key-value store
  38. // and generates events with the same revision for every completed request.
  39. // It is not allowed to modify the same key several times within one txn.
  40. rpc Txn(TxnRequest) returns (TxnResponse) {
  41. option (google.api.http) = {
  42. post: "/v3alpha/kv/txn"
  43. body: "*"
  44. };
  45. }
  46. // Compact compacts the event history in the etcd key-value store. The key-value
  47. // store should be periodically compacted or the event history will continue to grow
  48. // indefinitely.
  49. rpc Compact(CompactionRequest) returns (CompactionResponse) {
  50. option (google.api.http) = {
  51. post: "/v3alpha/kv/compaction"
  52. body: "*"
  53. };
  54. }
  55. }
  56. service Watch {
  57. // Watch watches for events happening or that have happened. Both input and output
  58. // are streams; the input stream is for creating and canceling watchers and the output
  59. // stream sends events. One watch RPC can watch on multiple key ranges, streaming events
  60. // for several watches at once. The entire event history can be watched starting from the
  61. // last compaction revision.
  62. rpc Watch(stream WatchRequest) returns (stream WatchResponse) {
  63. option (google.api.http) = {
  64. post: "/v3alpha/watch"
  65. body: "*"
  66. };
  67. }
  68. }
  69. service Lease {
  70. // LeaseGrant creates a lease which expires if the server does not receive a keepAlive
  71. // within a given time to live period. All keys attached to the lease will be expired and
  72. // deleted if the lease expires. Each expired key generates a delete event in the event history.
  73. rpc LeaseGrant(LeaseGrantRequest) returns (LeaseGrantResponse) {
  74. option (google.api.http) = {
  75. post: "/v3alpha/lease/grant"
  76. body: "*"
  77. };
  78. }
  79. // LeaseRevoke revokes a lease. All keys attached to the lease will expire and be deleted.
  80. rpc LeaseRevoke(LeaseRevokeRequest) returns (LeaseRevokeResponse) {
  81. option (google.api.http) = {
  82. post: "/v3alpha/kv/lease/revoke"
  83. body: "*"
  84. };
  85. }
  86. // LeaseKeepAlive keeps the lease alive by streaming keep alive requests from the client
  87. // to the server and streaming keep alive responses from the server to the client.
  88. rpc LeaseKeepAlive(stream LeaseKeepAliveRequest) returns (stream LeaseKeepAliveResponse) {
  89. option (google.api.http) = {
  90. post: "/v3alpha/lease/keepalive"
  91. body: "*"
  92. };
  93. }
  94. // LeaseTimeToLive retrieves lease information.
  95. rpc LeaseTimeToLive(LeaseTimeToLiveRequest) returns (LeaseTimeToLiveResponse) {
  96. option (google.api.http) = {
  97. post: "/v3alpha/kv/lease/timetolive"
  98. body: "*"
  99. };
  100. }
  101. // TODO(xiangli) List all existing Leases?
  102. }
  103. service Cluster {
  104. // MemberAdd adds a member into the cluster.
  105. rpc MemberAdd(MemberAddRequest) returns (MemberAddResponse) {
  106. option (google.api.http) = {
  107. post: "/v3alpha/cluster/member/add"
  108. body: "*"
  109. };
  110. }
  111. // MemberRemove removes an existing member from the cluster.
  112. rpc MemberRemove(MemberRemoveRequest) returns (MemberRemoveResponse) {
  113. option (google.api.http) = {
  114. post: "/v3alpha/cluster/member/remove"
  115. body: "*"
  116. };
  117. }
  118. // MemberUpdate updates the member configuration.
  119. rpc MemberUpdate(MemberUpdateRequest) returns (MemberUpdateResponse) {
  120. option (google.api.http) = {
  121. post: "/v3alpha/cluster/member/update"
  122. body: "*"
  123. };
  124. }
  125. // MemberList lists all the members in the cluster.
  126. rpc MemberList(MemberListRequest) returns (MemberListResponse) {
  127. option (google.api.http) = {
  128. post: "/v3alpha/cluster/member/list"
  129. body: "*"
  130. };
  131. }
  132. }
  133. service Maintenance {
  134. // Alarm activates, deactivates, and queries alarms regarding cluster health.
  135. rpc Alarm(AlarmRequest) returns (AlarmResponse) {
  136. option (google.api.http) = {
  137. post: "/v3alpha/maintenance/alarm"
  138. body: "*"
  139. };
  140. }
  141. // Status gets the status of the member.
  142. rpc Status(StatusRequest) returns (StatusResponse) {
  143. option (google.api.http) = {
  144. post: "/v3alpha/maintenance/status"
  145. body: "*"
  146. };
  147. }
  148. // Defragment defragments a member's backend database to recover storage space.
  149. rpc Defragment(DefragmentRequest) returns (DefragmentResponse) {
  150. option (google.api.http) = {
  151. post: "/v3alpha/maintenance/defragment"
  152. body: "*"
  153. };
  154. }
  155. // Hash returns the hash of the local KV state for consistency checking purpose.
  156. // This is designed for testing; do not use this in production when there
  157. // are ongoing transactions.
  158. rpc Hash(HashRequest) returns (HashResponse) {
  159. option (google.api.http) = {
  160. post: "/v3alpha/maintenance/hash"
  161. body: "*"
  162. };
  163. }
  164. // Snapshot sends a snapshot of the entire backend from a member over a stream to a client.
  165. rpc Snapshot(SnapshotRequest) returns (stream SnapshotResponse) {
  166. option (google.api.http) = {
  167. post: "/v3alpha/maintenance/snapshot"
  168. body: "*"
  169. };
  170. }
  171. }
  172. service Auth {
  173. // AuthEnable enables authentication.
  174. rpc AuthEnable(AuthEnableRequest) returns (AuthEnableResponse) {
  175. option (google.api.http) = {
  176. post: "/v3alpha/auth/enable"
  177. body: "*"
  178. };
  179. }
  180. // AuthDisable disables authentication.
  181. rpc AuthDisable(AuthDisableRequest) returns (AuthDisableResponse) {
  182. option (google.api.http) = {
  183. post: "/v3alpha/auth/disable"
  184. body: "*"
  185. };
  186. }
  187. // Authenticate processes an authenticate request.
  188. rpc Authenticate(AuthenticateRequest) returns (AuthenticateResponse) {
  189. option (google.api.http) = {
  190. post: "/v3alpha/auth/authenticate"
  191. body: "*"
  192. };
  193. }
  194. // UserAdd adds a new user.
  195. rpc UserAdd(AuthUserAddRequest) returns (AuthUserAddResponse) {
  196. option (google.api.http) = {
  197. post: "/v3alpha/auth/user/add"
  198. body: "*"
  199. };
  200. }
  201. // UserGet gets detailed user information.
  202. rpc UserGet(AuthUserGetRequest) returns (AuthUserGetResponse) {
  203. option (google.api.http) = {
  204. post: "/v3alpha/auth/user/get"
  205. body: "*"
  206. };
  207. }
  208. // UserList gets a list of all users.
  209. rpc UserList(AuthUserListRequest) returns (AuthUserListResponse) {
  210. option (google.api.http) = {
  211. post: "/v3alpha/auth/user/list"
  212. body: "*"
  213. };
  214. }
  215. // UserDelete deletes a specified user.
  216. rpc UserDelete(AuthUserDeleteRequest) returns (AuthUserDeleteResponse) {
  217. option (google.api.http) = {
  218. post: "/v3alpha/auth/user/delete"
  219. body: "*"
  220. };
  221. }
  222. // UserChangePassword changes the password of a specified user.
  223. rpc UserChangePassword(AuthUserChangePasswordRequest) returns (AuthUserChangePasswordResponse) {
  224. option (google.api.http) = {
  225. post: "/v3alpha/auth/user/changepw"
  226. body: "*"
  227. };
  228. }
  229. // UserGrant grants a role to a specified user.
  230. rpc UserGrantRole(AuthUserGrantRoleRequest) returns (AuthUserGrantRoleResponse) {
  231. option (google.api.http) = {
  232. post: "/v3alpha/auth/user/grant"
  233. body: "*"
  234. };
  235. }
  236. // UserRevokeRole revokes a role of specified user.
  237. rpc UserRevokeRole(AuthUserRevokeRoleRequest) returns (AuthUserRevokeRoleResponse) {
  238. option (google.api.http) = {
  239. post: "/v3alpha/auth/user/revoke"
  240. body: "*"
  241. };
  242. }
  243. // RoleAdd adds a new role.
  244. rpc RoleAdd(AuthRoleAddRequest) returns (AuthRoleAddResponse) {
  245. option (google.api.http) = {
  246. post: "/v3alpha/auth/role/add"
  247. body: "*"
  248. };
  249. }
  250. // RoleGet gets detailed role information.
  251. rpc RoleGet(AuthRoleGetRequest) returns (AuthRoleGetResponse) {
  252. option (google.api.http) = {
  253. post: "/v3alpha/auth/role/get"
  254. body: "*"
  255. };
  256. }
  257. // RoleList gets lists of all roles.
  258. rpc RoleList(AuthRoleListRequest) returns (AuthRoleListResponse) {
  259. option (google.api.http) = {
  260. post: "/v3alpha/auth/role/list"
  261. body: "*"
  262. };
  263. }
  264. // RoleDelete deletes a specified role.
  265. rpc RoleDelete(AuthRoleDeleteRequest) returns (AuthRoleDeleteResponse) {
  266. option (google.api.http) = {
  267. post: "/v3alpha/auth/role/delete"
  268. body: "*"
  269. };
  270. }
  271. // RoleGrantPermission grants a permission of a specified key or range to a specified role.
  272. rpc RoleGrantPermission(AuthRoleGrantPermissionRequest) returns (AuthRoleGrantPermissionResponse) {
  273. option (google.api.http) = {
  274. post: "/v3alpha/auth/role/grant"
  275. body: "*"
  276. };
  277. }
  278. // RoleRevokePermission revokes a key or range permission of a specified role.
  279. rpc RoleRevokePermission(AuthRoleRevokePermissionRequest) returns (AuthRoleRevokePermissionResponse) {
  280. option (google.api.http) = {
  281. post: "/v3alpha/auth/role/revoke"
  282. body: "*"
  283. };
  284. }
  285. }
  286. message ResponseHeader {
  287. // cluster_id is the ID of the cluster which sent the response.
  288. uint64 cluster_id = 1;
  289. // member_id is the ID of the member which sent the response.
  290. uint64 member_id = 2;
  291. // revision is the key-value store revision when the request was applied.
  292. int64 revision = 3;
  293. // raft_term is the raft term when the request was applied.
  294. uint64 raft_term = 4;
  295. }
  296. message RangeRequest {
  297. enum SortOrder {
  298. NONE = 0; // default, no sorting
  299. ASCEND = 1; // lowest target value first
  300. DESCEND = 2; // highest target value first
  301. }
  302. enum SortTarget {
  303. KEY = 0;
  304. VERSION = 1;
  305. CREATE = 2;
  306. MOD = 3;
  307. VALUE = 4;
  308. }
  309. // key is the first key for the range. If range_end is not given, the request only looks up key.
  310. bytes key = 1;
  311. // range_end is the upper bound on the requested range [key, range_end).
  312. // If range_end is '\0', the range is all keys >= key.
  313. // If the range_end is one bit larger than the given key,
  314. // then the range requests get the all keys with the prefix (the given key).
  315. // If both key and range_end are '\0', then range requests returns all keys.
  316. bytes range_end = 2;
  317. // limit is a limit on the number of keys returned for the request.
  318. int64 limit = 3;
  319. // revision is the point-in-time of the key-value store to use for the range.
  320. // If revision is less or equal to zero, the range is over the newest key-value store.
  321. // If the revision has been compacted, ErrCompacted is returned as a response.
  322. int64 revision = 4;
  323. // sort_order is the order for returned sorted results.
  324. SortOrder sort_order = 5;
  325. // sort_target is the key-value field to use for sorting.
  326. SortTarget sort_target = 6;
  327. // serializable sets the range request to use serializable member-local reads.
  328. // Range requests are linearizable by default; linearizable requests have higher
  329. // latency and lower throughput than serializable requests but reflect the current
  330. // consensus of the cluster. For better performance, in exchange for possible stale reads,
  331. // a serializable range request is served locally without needing to reach consensus
  332. // with other nodes in the cluster.
  333. bool serializable = 7;
  334. // keys_only when set returns only the keys and not the values.
  335. bool keys_only = 8;
  336. // count_only when set returns only the count of the keys in the range.
  337. bool count_only = 9;
  338. }
  339. message RangeResponse {
  340. ResponseHeader header = 1;
  341. // kvs is the list of key-value pairs matched by the range request.
  342. // kvs is empty when count is requested.
  343. repeated mvccpb.KeyValue kvs = 2;
  344. // more indicates if there are more keys to return in the requested range.
  345. bool more = 3;
  346. // count is set to the number of keys within the range when requested.
  347. int64 count = 4;
  348. }
  349. message PutRequest {
  350. // key is the key, in bytes, to put into the key-value store.
  351. bytes key = 1;
  352. // value is the value, in bytes, to associate with the key in the key-value store.
  353. bytes value = 2;
  354. // lease is the lease ID to associate with the key in the key-value store. A lease
  355. // value of 0 indicates no lease.
  356. int64 lease = 3;
  357. // If prev_kv is set, etcd gets the previous key-value pair before changing it.
  358. // The previous key-value pair will be returned in the put response.
  359. bool prev_kv = 4;
  360. }
  361. message PutResponse {
  362. ResponseHeader header = 1;
  363. // if prev_kv is set in the request, the previous key-value pair will be returned.
  364. mvccpb.KeyValue prev_kv = 2;
  365. }
  366. message DeleteRangeRequest {
  367. // key is the first key to delete in the range.
  368. bytes key = 1;
  369. // range_end is the key following the last key to delete for the range [key, range_end).
  370. // If range_end is not given, the range is defined to contain only the key argument.
  371. // If range_end is '\0', the range is all keys greater than or equal to the key argument.
  372. bytes range_end = 2;
  373. // If prev_kv is set, etcd gets the previous key-value pairs before deleting it.
  374. // The previous key-value pairs will be returned in the delte response.
  375. bool prev_kv = 3;
  376. }
  377. message DeleteRangeResponse {
  378. ResponseHeader header = 1;
  379. // deleted is the number of keys deleted by the delete range request.
  380. int64 deleted = 2;
  381. // if prev_kv is set in the request, the previous key-value pairs will be returned.
  382. repeated mvccpb.KeyValue prev_kvs = 3;
  383. }
  384. message RequestOp {
  385. // request is a union of request types accepted by a transaction.
  386. oneof request {
  387. RangeRequest request_range = 1;
  388. PutRequest request_put = 2;
  389. DeleteRangeRequest request_delete_range = 3;
  390. }
  391. }
  392. message ResponseOp {
  393. // response is a union of response types returned by a transaction.
  394. oneof response {
  395. RangeResponse response_range = 1;
  396. PutResponse response_put = 2;
  397. DeleteRangeResponse response_delete_range = 3;
  398. }
  399. }
  400. message Compare {
  401. enum CompareResult {
  402. EQUAL = 0;
  403. GREATER = 1;
  404. LESS = 2;
  405. }
  406. enum CompareTarget {
  407. VERSION = 0;
  408. CREATE = 1;
  409. MOD = 2;
  410. VALUE= 3;
  411. }
  412. // result is logical comparison operation for this comparison.
  413. CompareResult result = 1;
  414. // target is the key-value field to inspect for the comparison.
  415. CompareTarget target = 2;
  416. // key is the subject key for the comparison operation.
  417. bytes key = 3;
  418. oneof target_union {
  419. // version is the version of the given key
  420. int64 version = 4;
  421. // create_revision is the creation revision of the given key
  422. int64 create_revision = 5;
  423. // mod_revision is the last modified revision of the given key.
  424. int64 mod_revision = 6;
  425. // value is the value of the given key, in bytes.
  426. bytes value = 7;
  427. }
  428. }
  429. // From google paxosdb paper:
  430. // Our implementation hinges around a powerful primitive which we call MultiOp. All other database
  431. // operations except for iteration are implemented as a single call to MultiOp. A MultiOp is applied atomically
  432. // and consists of three components:
  433. // 1. A list of tests called guard. Each test in guard checks a single entry in the database. It may check
  434. // for the absence or presence of a value, or compare with a given value. Two different tests in the guard
  435. // may apply to the same or different entries in the database. All tests in the guard are applied and
  436. // MultiOp returns the results. If all tests are true, MultiOp executes t op (see item 2 below), otherwise
  437. // it executes f op (see item 3 below).
  438. // 2. A list of database operations called t op. Each operation in the list is either an insert, delete, or
  439. // lookup operation, and applies to a single database entry. Two different operations in the list may apply
  440. // to the same or different entries in the database. These operations are executed
  441. // if guard evaluates to
  442. // true.
  443. // 3. A list of database operations called f op. Like t op, but executed if guard evaluates to false.
  444. message TxnRequest {
  445. // compare is a list of predicates representing a conjunction of terms.
  446. // If the comparisons succeed, then the success requests will be processed in order,
  447. // and the response will contain their respective responses in order.
  448. // If the comparisons fail, then the failure requests will be processed in order,
  449. // and the response will contain their respective responses in order.
  450. repeated Compare compare = 1;
  451. // success is a list of requests which will be applied when compare evaluates to true.
  452. repeated RequestOp success = 2;
  453. // failure is a list of requests which will be applied when compare evaluates to false.
  454. repeated RequestOp failure = 3;
  455. }
  456. message TxnResponse {
  457. ResponseHeader header = 1;
  458. // succeeded is set to true if the compare evaluated to true or false otherwise.
  459. bool succeeded = 2;
  460. // responses is a list of responses corresponding to the results from applying
  461. // success if succeeded is true or failure if succeeded is false.
  462. repeated ResponseOp responses = 3;
  463. }
  464. // CompactionRequest compacts the key-value store up to a given revision. All superseded keys
  465. // with a revision less than the compaction revision will be removed.
  466. message CompactionRequest {
  467. // revision is the key-value store revision for the compaction operation.
  468. int64 revision = 1;
  469. // physical is set so the RPC will wait until the compaction is physically
  470. // applied to the local database such that compacted entries are totally
  471. // removed from the backend database.
  472. bool physical = 2;
  473. }
  474. message CompactionResponse {
  475. ResponseHeader header = 1;
  476. }
  477. message HashRequest {
  478. }
  479. message HashResponse {
  480. ResponseHeader header = 1;
  481. // hash is the hash value computed from the responding member's key-value store.
  482. uint32 hash = 2;
  483. }
  484. message SnapshotRequest {
  485. }
  486. message SnapshotResponse {
  487. // header has the current key-value store information. The first header in the snapshot
  488. // stream indicates the point in time of the snapshot.
  489. ResponseHeader header = 1;
  490. // remaining_bytes is the number of blob bytes to be sent after this message
  491. uint64 remaining_bytes = 2;
  492. // blob contains the next chunk of the snapshot in the snapshot stream.
  493. bytes blob = 3;
  494. }
  495. message WatchRequest {
  496. // request_union is a request to either create a new watcher or cancel an existing watcher.
  497. oneof request_union {
  498. WatchCreateRequest create_request = 1;
  499. WatchCancelRequest cancel_request = 2;
  500. }
  501. }
  502. message WatchCreateRequest {
  503. // key is the key to register for watching.
  504. bytes key = 1;
  505. // range_end is the end of the range [key, range_end) to watch. If range_end is not given,
  506. // only the key argument is watched. If range_end is equal to '\0', all keys greater than
  507. // or equal to the key argument are watched.
  508. bytes range_end = 2;
  509. // start_revision is an optional revision to watch from (inclusive). No start_revision is "now".
  510. int64 start_revision = 3;
  511. // progress_notify is set so that the etcd server will periodically send a WatchResponse with
  512. // no events to the new watcher if there are no recent events. It is useful when clients
  513. // wish to recover a disconnected watcher starting from a recent known revision.
  514. // The etcd server may decide how often it will send notifications based on current load.
  515. bool progress_notify = 4;
  516. enum FilterType {
  517. // filter out put event.
  518. NOPUT = 0;
  519. // filter out delete event.
  520. NODELETE = 1;
  521. }
  522. // filters filter the events at server side before it sends back to the watcher.
  523. repeated FilterType filters = 5;
  524. // If prev_kv is set, created watcher gets the previous KV before the event happens.
  525. // If the previous KV is already compacted, nothing will be returned.
  526. bool prev_kv = 6;
  527. }
  528. message WatchCancelRequest {
  529. // watch_id is the watcher id to cancel so that no more events are transmitted.
  530. int64 watch_id = 1;
  531. }
  532. message WatchResponse {
  533. ResponseHeader header = 1;
  534. // watch_id is the ID of the watcher that corresponds to the response.
  535. int64 watch_id = 2;
  536. // created is set to true if the response is for a create watch request.
  537. // The client should record the watch_id and expect to receive events for
  538. // the created watcher from the same stream.
  539. // All events sent to the created watcher will attach with the same watch_id.
  540. bool created = 3;
  541. // canceled is set to true if the response is for a cancel watch request.
  542. // No further events will be sent to the canceled watcher.
  543. bool canceled = 4;
  544. // compact_revision is set to the minimum index if a watcher tries to watch
  545. // at a compacted index.
  546. //
  547. // This happens when creating a watcher at a compacted revision or the watcher cannot
  548. // catch up with the progress of the key-value store.
  549. //
  550. // The client should treat the watcher as canceled and should not try to create any
  551. // watcher with the same start_revision again.
  552. int64 compact_revision = 5;
  553. repeated mvccpb.Event events = 11;
  554. }
  555. message LeaseGrantRequest {
  556. // TTL is the advisory time-to-live in seconds.
  557. int64 TTL = 1;
  558. // ID is the requested ID for the lease. If ID is set to 0, the lessor chooses an ID.
  559. int64 ID = 2;
  560. }
  561. message LeaseGrantResponse {
  562. ResponseHeader header = 1;
  563. // ID is the lease ID for the granted lease.
  564. int64 ID = 2;
  565. // TTL is the server chosen lease time-to-live in seconds.
  566. int64 TTL = 3;
  567. string error = 4;
  568. }
  569. message LeaseRevokeRequest {
  570. // ID is the lease ID to revoke. When the ID is revoked, all associated keys will be deleted.
  571. int64 ID = 1;
  572. }
  573. message LeaseRevokeResponse {
  574. ResponseHeader header = 1;
  575. }
  576. message LeaseKeepAliveRequest {
  577. // ID is the lease ID for the lease to keep alive.
  578. int64 ID = 1;
  579. }
  580. message LeaseKeepAliveResponse {
  581. ResponseHeader header = 1;
  582. // ID is the lease ID from the keep alive request.
  583. int64 ID = 2;
  584. // TTL is the new time-to-live for the lease.
  585. int64 TTL = 3;
  586. }
  587. message LeaseTimeToLiveRequest {
  588. // ID is the lease ID for the lease.
  589. int64 ID = 1;
  590. // keys is true to query all the keys attached to this lease.
  591. bool keys = 2;
  592. }
  593. message LeaseTimeToLiveResponse {
  594. ResponseHeader header = 1;
  595. // ID is the lease ID from the keep alive request.
  596. int64 ID = 2;
  597. // TTL is the remaining TTL in seconds for the lease; the lease will expire in under TTL+1 seconds.
  598. int64 TTL = 3;
  599. // GrantedTTL is the initial granted time in seconds upon lease creation/renewal.
  600. int64 grantedTTL = 4;
  601. // Keys is the list of keys attached to this lease.
  602. repeated bytes keys = 5;
  603. }
  604. message Member {
  605. // ID is the member ID for this member.
  606. uint64 ID = 1;
  607. // name is the human-readable name of the member. If the member is not started, the name will be an empty string.
  608. string name = 2;
  609. // peerURLs is the list of URLs the member exposes to the cluster for communication.
  610. repeated string peerURLs = 3;
  611. // clientURLs is the list of URLs the member exposes to clients for communication. If the member is not started, clientURLs will be empty.
  612. repeated string clientURLs = 4;
  613. }
  614. message MemberAddRequest {
  615. // peerURLs is the list of URLs the added member will use to communicate with the cluster.
  616. repeated string peerURLs = 1;
  617. }
  618. message MemberAddResponse {
  619. ResponseHeader header = 1;
  620. // member is the member information for the added member.
  621. Member member = 2;
  622. }
  623. message MemberRemoveRequest {
  624. // ID is the member ID of the member to remove.
  625. uint64 ID = 1;
  626. }
  627. message MemberRemoveResponse {
  628. ResponseHeader header = 1;
  629. }
  630. message MemberUpdateRequest {
  631. // ID is the member ID of the member to update.
  632. uint64 ID = 1;
  633. // peerURLs is the new list of URLs the member will use to communicate with the cluster.
  634. repeated string peerURLs = 2;
  635. }
  636. message MemberUpdateResponse{
  637. ResponseHeader header = 1;
  638. }
  639. message MemberListRequest {
  640. }
  641. message MemberListResponse {
  642. ResponseHeader header = 1;
  643. // members is a list of all members associated with the cluster.
  644. repeated Member members = 2;
  645. }
  646. message DefragmentRequest {
  647. }
  648. message DefragmentResponse {
  649. ResponseHeader header = 1;
  650. }
  651. enum AlarmType {
  652. NONE = 0; // default, used to query if any alarm is active
  653. NOSPACE = 1; // space quota is exhausted
  654. }
  655. message AlarmRequest {
  656. enum AlarmAction {
  657. GET = 0;
  658. ACTIVATE = 1;
  659. DEACTIVATE = 2;
  660. }
  661. // action is the kind of alarm request to issue. The action
  662. // may GET alarm statuses, ACTIVATE an alarm, or DEACTIVATE a
  663. // raised alarm.
  664. AlarmAction action = 1;
  665. // memberID is the ID of the member associated with the alarm. If memberID is 0, the
  666. // alarm request covers all members.
  667. uint64 memberID = 2;
  668. // alarm is the type of alarm to consider for this request.
  669. AlarmType alarm = 3;
  670. }
  671. message AlarmMember {
  672. // memberID is the ID of the member associated with the raised alarm.
  673. uint64 memberID = 1;
  674. // alarm is the type of alarm which has been raised.
  675. AlarmType alarm = 2;
  676. }
  677. message AlarmResponse {
  678. ResponseHeader header = 1;
  679. // alarms is a list of alarms associated with the alarm request.
  680. repeated AlarmMember alarms = 2;
  681. }
  682. message StatusRequest {
  683. }
  684. message StatusResponse {
  685. ResponseHeader header = 1;
  686. // version is the cluster protocol version used by the responding member.
  687. string version = 2;
  688. // dbSize is the size of the backend database, in bytes, of the responding member.
  689. int64 dbSize = 3;
  690. // leader is the member ID which the responding member believes is the current leader.
  691. uint64 leader = 4;
  692. // raftIndex is the current raft index of the responding member.
  693. uint64 raftIndex = 5;
  694. // raftTerm is the current raft term of the responding member.
  695. uint64 raftTerm = 6;
  696. }
  697. message AuthEnableRequest {
  698. }
  699. message AuthDisableRequest {
  700. }
  701. message AuthenticateRequest {
  702. string name = 1;
  703. string password = 2;
  704. }
  705. message AuthUserAddRequest {
  706. string name = 1;
  707. string password = 2;
  708. }
  709. message AuthUserGetRequest {
  710. string name = 1;
  711. }
  712. message AuthUserDeleteRequest {
  713. // name is the name of the user to delete.
  714. string name = 1;
  715. }
  716. message AuthUserChangePasswordRequest {
  717. // name is the name of the user whose password is being changed.
  718. string name = 1;
  719. // password is the new password for the user.
  720. string password = 2;
  721. }
  722. message AuthUserGrantRoleRequest {
  723. // user is the name of the user which should be granted a given role.
  724. string user = 1;
  725. // role is the name of the role to grant to the user.
  726. string role = 2;
  727. }
  728. message AuthUserRevokeRoleRequest {
  729. string name = 1;
  730. string role = 2;
  731. }
  732. message AuthRoleAddRequest {
  733. // name is the name of the role to add to the authentication system.
  734. string name = 1;
  735. }
  736. message AuthRoleGetRequest {
  737. string role = 1;
  738. }
  739. message AuthUserListRequest {
  740. }
  741. message AuthRoleListRequest {
  742. }
  743. message AuthRoleDeleteRequest {
  744. string role = 1;
  745. }
  746. message AuthRoleGrantPermissionRequest {
  747. // name is the name of the role which will be granted the permission.
  748. string name = 1;
  749. // perm is the permission to grant to the role.
  750. authpb.Permission perm = 2;
  751. }
  752. message AuthRoleRevokePermissionRequest {
  753. string role = 1;
  754. string key = 2;
  755. string range_end = 3;
  756. }
  757. message AuthEnableResponse {
  758. ResponseHeader header = 1;
  759. }
  760. message AuthDisableResponse {
  761. ResponseHeader header = 1;
  762. }
  763. message AuthenticateResponse {
  764. ResponseHeader header = 1;
  765. // token is an authorized token that can be used in succeeding RPCs
  766. string token = 2;
  767. }
  768. message AuthUserAddResponse {
  769. ResponseHeader header = 1;
  770. }
  771. message AuthUserGetResponse {
  772. ResponseHeader header = 1;
  773. repeated string roles = 2;
  774. }
  775. message AuthUserDeleteResponse {
  776. ResponseHeader header = 1;
  777. }
  778. message AuthUserChangePasswordResponse {
  779. ResponseHeader header = 1;
  780. }
  781. message AuthUserGrantRoleResponse {
  782. ResponseHeader header = 1;
  783. }
  784. message AuthUserRevokeRoleResponse {
  785. ResponseHeader header = 1;
  786. }
  787. message AuthRoleAddResponse {
  788. ResponseHeader header = 1;
  789. }
  790. message AuthRoleGetResponse {
  791. ResponseHeader header = 1;
  792. repeated authpb.Permission perm = 2;
  793. }
  794. message AuthRoleListResponse {
  795. ResponseHeader header = 1;
  796. repeated string roles = 2;
  797. }
  798. message AuthUserListResponse {
  799. ResponseHeader header = 1;
  800. repeated string users = 2;
  801. }
  802. message AuthRoleDeleteResponse {
  803. ResponseHeader header = 1;
  804. }
  805. message AuthRoleGrantPermissionResponse {
  806. ResponseHeader header = 1;
  807. }
  808. message AuthRoleRevokePermissionResponse {
  809. ResponseHeader header = 1;
  810. }