mirror of
https://github.com/seaweedfs/seaweedfs.git
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* shell: add volume.balance -byDiskUsage to balance by actual data The default balancer ranks servers by slot density, dividing used volumes by MaxVolumeCount. When MaxVolumeCount is configured higher than the disk can hold, a physically near-full server looks nearly empty and gets picked as the move target, so balancing drains less-full servers onto an already-full one. -byDiskUsage ranks servers by the actual data they hold (sum of volume sizes) instead, so the fullest-by-data server is treated as full and balancing drains it. It assumes comparable disk sizes per disk type and still respects each server's free volume slots. Default behavior is unchanged. * plumb physical disk usage into topology, gate volume.balance on it Volume servers now report each disk's filesystem total/free bytes in the heartbeat, and the master stores them in DiskInfo. volume.balance uses them to skip any move target whose disk is already near full (-maxDiskUsagePercent, default 90), so an over-configured maxVolumeCount can no longer make a physically full server look empty and get drained onto. The gate judges each server against its own disk, so heterogeneous disk sizes are fine; servers that do not report bytes fall back to slot-only behavior. Rust seaweed-volume mirrors the heartbeat reporting. * admin: report real physical disk capacity when volume servers provide it The dashboard estimated server capacity as maxVolumeCount * volumeSizeLimit, which overstates it when maxVolumeCount is set higher than the disk holds. Prefer the filesystem capacity now reported per disk, falling back to the estimate for servers that do not report it. * worker: gate automatic balance on physical disk fullness too The maintenance balance worker selects the least slot-utilized server as the move destination, so an over-configured maxVolumeCount makes a physically full server look empty and get drained onto — the same defect as the shell command. Now that DiskInfo carries real disk bytes, skip any destination whose disk is at/above 90% used (per server, against its own disk); a full server can still be a source. When every candidate destination is full, create no tasks. Servers that do not report disk bytes are not gated. * balance: share the physical-disk-fullness gate between shell and worker The shell volume.balance command and the maintenance balance worker each grew their own copy of the disk-fullness gate (targetDiskTooFull / destinationDiskTooFull) and a maxDiskUsagePercent=90 constant. Pull both into weed/topology/balancer (DiskTooFullAfter + DefaultMaxDiskUsagePercent) so the policy has one home and the two balancers can't drift. * balance: harden the physical-disk gate Guard against a nil DiskInfo in the byte/slot lookups. Let a zero disk-capacity report clear previously stored bytes (0 means "not reported" for bytes, unlike maxVolumeCount), so a server that stops reporting falls back to slot-only instead of trusting stale capacity. In the worker, charge each planned move's bytes to its destination within a detection cycle so the gate sees a target fill up rather than only its heartbeat-time free space. Note the per-location capacity summing assumes one location per filesystem (the used ratio the gate relies on stays correct regardless; absolute capacity can over-report).
515 lines
13 KiB
Protocol Buffer
515 lines
13 KiB
Protocol Buffer
syntax = "proto3";
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package master_pb;
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option go_package = "github.com/seaweedfs/seaweedfs/weed/pb/master_pb";
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import "volume_server.proto";
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//////////////////////////////////////////////////
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service Seaweed {
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rpc SendHeartbeat (stream Heartbeat) returns (stream HeartbeatResponse) {
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}
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rpc KeepConnected (stream KeepConnectedRequest) returns (stream KeepConnectedResponse) {
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}
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rpc LookupVolume (LookupVolumeRequest) returns (LookupVolumeResponse) {
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}
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rpc Assign (AssignRequest) returns (AssignResponse) {
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}
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rpc StreamAssign (stream AssignRequest) returns (stream AssignResponse) {
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}
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rpc Statistics (StatisticsRequest) returns (StatisticsResponse) {
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}
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rpc CollectionList (CollectionListRequest) returns (CollectionListResponse) {
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}
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rpc CollectionDelete (CollectionDeleteRequest) returns (CollectionDeleteResponse) {
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}
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rpc VolumeList (VolumeListRequest) returns (VolumeListResponse) {
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}
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rpc LookupEcVolume (LookupEcVolumeRequest) returns (LookupEcVolumeResponse) {
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}
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rpc VacuumVolume (VacuumVolumeRequest) returns (VacuumVolumeResponse) {
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}
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rpc DisableVacuum (DisableVacuumRequest) returns (DisableVacuumResponse) {
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}
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rpc EnableVacuum (EnableVacuumRequest) returns (EnableVacuumResponse) {
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}
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rpc VolumeMarkReadonly (VolumeMarkReadonlyRequest) returns (VolumeMarkReadonlyResponse) {
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}
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rpc GetMasterConfiguration (GetMasterConfigurationRequest) returns (GetMasterConfigurationResponse) {
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}
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rpc ListClusterNodes (ListClusterNodesRequest) returns (ListClusterNodesResponse) {
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}
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rpc LeaseAdminToken (LeaseAdminTokenRequest) returns (LeaseAdminTokenResponse) {
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}
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rpc ReleaseAdminToken (ReleaseAdminTokenRequest) returns (ReleaseAdminTokenResponse) {
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}
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rpc Ping (PingRequest) returns (PingResponse) {
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}
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rpc RaftListClusterServers (RaftListClusterServersRequest) returns (RaftListClusterServersResponse) {
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}
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rpc RaftAddServer (RaftAddServerRequest) returns (RaftAddServerResponse) {
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}
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rpc RaftRemoveServer (RaftRemoveServerRequest) returns (RaftRemoveServerResponse) {
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}
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rpc RaftLeadershipTransfer (RaftLeadershipTransferRequest) returns (RaftLeadershipTransferResponse) {
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}
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rpc VolumeGrow (VolumeGrowRequest) returns (VolumeGrowResponse) {
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}
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}
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//////////////////////////////////////////////////
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message DiskTag {
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uint32 disk_id = 1;
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repeated string tags = 2;
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// Physical disk descriptor, reported for every location including empty ones.
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string type = 3;
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int64 max_volume_count = 4;
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}
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message Heartbeat {
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string ip = 1;
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uint32 port = 2;
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string public_url = 3;
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uint64 max_file_key = 5;
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string data_center = 6;
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string rack = 7;
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uint32 admin_port = 8;
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repeated VolumeInformationMessage volumes = 9;
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// delta volumes
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repeated VolumeShortInformationMessage new_volumes = 10;
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repeated VolumeShortInformationMessage deleted_volumes = 11;
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bool has_no_volumes = 12;
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// erasure coding
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repeated VolumeEcShardInformationMessage ec_shards = 16;
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// delta erasure coding shards
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repeated VolumeEcShardInformationMessage new_ec_shards = 17;
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repeated VolumeEcShardInformationMessage deleted_ec_shards = 18;
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bool has_no_ec_shards = 19;
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map<string, uint32> max_volume_counts = 4;
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uint32 grpc_port = 20;
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repeated string location_uuids = 21;
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string id = 22; // volume server id, independent of ip:port for stable identification
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// state flags
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volume_server_pb.VolumeServerState state = 23;
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repeated DiskTag disk_tags = 24;
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// physical disk capacity per disk type, in bytes, from the underlying filesystem
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map<string, uint64> disk_total_bytes = 25;
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map<string, uint64> disk_free_bytes = 26;
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}
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message HeartbeatResponse {
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uint64 volume_size_limit = 1;
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string leader = 2;
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string metrics_address = 3;
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uint32 metrics_interval_seconds = 4;
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repeated StorageBackend storage_backends = 5;
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repeated string duplicated_uuids = 6;
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bool preallocate = 7;
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}
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message VolumeInformationMessage {
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uint32 id = 1;
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uint64 size = 2;
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string collection = 3;
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uint64 file_count = 4;
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uint64 delete_count = 5;
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uint64 deleted_byte_count = 6;
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bool read_only = 7;
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uint32 replica_placement = 8;
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uint32 version = 9;
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uint32 ttl = 10;
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uint32 compact_revision = 11;
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int64 modified_at_second = 12;
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string remote_storage_name = 13;
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string remote_storage_key = 14;
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string disk_type = 15;
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uint32 disk_id = 16;
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}
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message VolumeShortInformationMessage {
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uint32 id = 1;
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string collection = 3;
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uint32 replica_placement = 8;
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uint32 version = 9;
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uint32 ttl = 10;
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string disk_type = 15;
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uint32 disk_id = 16;
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}
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message VolumeEcShardInformationMessage {
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uint32 id = 1;
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string collection = 2;
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uint32 ec_index_bits = 3;
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string disk_type = 4;
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uint64 expire_at_sec = 5; // used to record the destruction time of ec volume
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uint32 disk_id = 6;
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repeated int64 shard_sizes = 7; // optimized: sizes for shards in order of set bits in ec_index_bits
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uint64 file_count = 8; // total needles in the .ecx index (live + tombstoned)
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uint64 delete_count = 9; // node-local tombstones in the .ecj deletion journal
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// encode-run identity (unix nanos) from the .vif EcShardConfig; lets the admin
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// group shards by encode generation. Numbered 14 (not 10) to skip the
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// enterprise fork's reserved 10-13.
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int64 encode_ts_ns = 14;
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// fields 15-19 reserved for future upstream open-source additions.
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// fields 20+ are owned by the enterprise fork (e.g. data_shards/parity_shards)
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// and must not be used here without coordination.
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}
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message StorageBackend {
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string type = 1;
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string id = 2;
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map<string, string> properties = 3;
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}
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message Empty {
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}
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message SuperBlockExtra {
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message ErasureCoding {
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uint32 data = 1;
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uint32 parity = 2;
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repeated uint32 volume_ids = 3;
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}
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ErasureCoding erasure_coding = 1;
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}
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message KeepConnectedRequest {
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string client_type = 1;
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string client_address = 3;
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string version = 4;
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string filer_group = 5;
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string data_center = 6;
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string rack = 7;
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}
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message VolumeLocation {
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string url = 1;
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string public_url = 2;
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repeated uint32 new_vids = 3;
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repeated uint32 deleted_vids = 4;
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string leader = 5; // optional when leader is not itself
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string data_center = 6; // optional when DataCenter is in use
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uint32 grpc_port = 7;
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repeated uint32 new_ec_vids = 8;
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repeated uint32 deleted_ec_vids = 9;
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}
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message ClusterNodeUpdate {
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string node_type = 1;
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string address = 2;
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bool is_add = 4;
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string filer_group = 5;
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int64 created_at_ns = 6;
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}
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message KeepConnectedResponse {
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VolumeLocation volume_location = 1;
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ClusterNodeUpdate cluster_node_update = 2;
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LockRingUpdate lock_ring_update = 3;
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}
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// LockRingUpdate is sent by the master to all filers when the lock ring
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// membership changes. The master batches rapid changes (e.g., node drop + join)
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// and sends the complete member list atomically, avoiding intermediate ring
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// states that would cause unnecessary lock churn.
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message LockRingUpdate {
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string filer_group = 1;
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repeated string servers = 2;
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int64 version = 3;
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}
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message LookupVolumeRequest {
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repeated string volume_or_file_ids = 1;
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string collection = 2; // optional, a bit faster if provided.
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}
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message LookupVolumeResponse {
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message VolumeIdLocation {
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string volume_or_file_id = 1;
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repeated Location locations = 2;
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string error = 3;
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string auth = 4;
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}
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repeated VolumeIdLocation volume_id_locations = 1;
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}
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message Location {
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string url = 1;
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string public_url = 2;
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uint32 grpc_port = 3;
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string data_center = 4;
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}
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message AssignRequest {
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uint64 count = 1;
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string replication = 2;
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string collection = 3;
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string ttl = 4;
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string data_center = 5;
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string rack = 6;
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string data_node = 7;
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uint32 memory_map_max_size_mb = 8;
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uint32 writable_volume_count = 9;
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string disk_type = 10;
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uint64 expected_data_size = 11; // hint for size-aware volume selection
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}
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message VolumeGrowRequest {
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uint32 writable_volume_count = 1;
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string replication = 2;
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string collection = 3;
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string ttl = 4;
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string data_center = 5;
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string rack = 6;
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string data_node = 7;
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uint32 memory_map_max_size_mb = 8;
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string disk_type = 9;
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}
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message AssignResponse {
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string fid = 1;
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uint64 count = 4;
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string error = 5;
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string auth = 6;
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repeated Location replicas = 7;
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Location location = 8;
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}
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message StatisticsRequest {
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string replication = 1;
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string collection = 2;
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string ttl = 3;
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string disk_type = 4;
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}
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message StatisticsResponse {
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uint64 total_size = 4;
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uint64 used_size = 5;
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uint64 file_count = 6;
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}
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//
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// collection related
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//
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message Collection {
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string name = 1;
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}
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message CollectionListRequest {
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bool include_normal_volumes = 1;
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bool include_ec_volumes = 2;
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}
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message CollectionListResponse {
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repeated Collection collections = 1;
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}
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message CollectionDeleteRequest {
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string name = 1;
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}
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message CollectionDeleteResponse {
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}
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//
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// volume related
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//
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message DiskInfo {
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string type = 1;
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int64 volume_count = 2;
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int64 max_volume_count = 3;
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int64 free_volume_count = 4;
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int64 active_volume_count = 5;
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repeated VolumeInformationMessage volume_infos = 6;
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repeated VolumeEcShardInformationMessage ec_shard_infos = 7;
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int64 remote_volume_count = 8;
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// On a per-physical-disk DiskInfo (from SplitByPhysicalDisk) this is the disk's
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// identity; on the type-keyed aggregate it is only a representative fallback
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// (the first volume's disk id).
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uint32 disk_id = 9;
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repeated string tags = 10;
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// Max volume count for every physical disk of this type, keyed by disk id,
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// including disks with no volumes or EC shards; recovers empty disks that
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// carry no per-volume/per-shard records.
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map<uint32, int64> max_volume_count_by_disk = 11;
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// physical disk capacity in bytes, from the underlying filesystem (0 if unknown)
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uint64 disk_total_bytes = 12;
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uint64 disk_free_bytes = 13;
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}
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message DataNodeInfo {
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string id = 1;
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map<string, DiskInfo> diskInfos = 2;
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uint32 grpc_port = 3;
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string address = 4; // ip:port for connecting to the volume server
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}
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message RackInfo {
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string id = 1;
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repeated DataNodeInfo data_node_infos = 2;
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map<string, DiskInfo> diskInfos = 3;
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}
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message DataCenterInfo {
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string id = 1;
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repeated RackInfo rack_infos = 2;
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map<string, DiskInfo> diskInfos = 3;
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}
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message TopologyInfo {
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string id = 1;
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repeated DataCenterInfo data_center_infos = 2;
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map<string, DiskInfo> diskInfos = 3;
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}
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message VolumeListRequest {
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}
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message VolumeListResponse {
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TopologyInfo topology_info = 1;
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uint64 volume_size_limit_mb = 2;
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}
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message LookupEcVolumeRequest {
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uint32 volume_id = 1;
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}
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message LookupEcVolumeResponse {
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uint32 volume_id = 1;
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message EcShardIdLocation {
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uint32 shard_id = 1;
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repeated Location locations = 2;
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}
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repeated EcShardIdLocation shard_id_locations = 2;
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}
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message VacuumVolumeRequest {
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float garbage_threshold = 1;
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uint32 volume_id = 2;
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string collection = 3;
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}
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message VacuumVolumeResponse {
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}
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message DisableVacuumRequest {
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bool by_plugin = 1;
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}
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message DisableVacuumResponse {
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}
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message EnableVacuumRequest {
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bool by_plugin = 1;
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}
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message EnableVacuumResponse {
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}
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message VolumeMarkReadonlyRequest {
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string ip = 1;
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uint32 port = 2;
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uint32 volume_id = 4;
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string collection = 5;
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uint32 replica_placement = 6;
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uint32 version = 7;
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uint32 ttl = 8;
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string disk_type = 9;
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bool is_readonly = 10;
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}
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message VolumeMarkReadonlyResponse {
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}
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message GetMasterConfigurationRequest {
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}
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message GetMasterConfigurationResponse {
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string metrics_address = 1;
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uint32 metrics_interval_seconds = 2;
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repeated StorageBackend storage_backends = 3;
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string default_replication = 4;
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string leader = 5;
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uint32 volume_size_limit_m_b = 6;
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bool volume_preallocate = 7;
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// MIGRATION: fields 8-9 help migrate master.toml [master.maintenance] to admin script plugin. Remove after March 2027.
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string maintenance_scripts = 8;
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uint32 maintenance_sleep_minutes = 9;
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}
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message ListClusterNodesRequest {
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string client_type = 1;
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string filer_group = 2;
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int32 limit = 4;
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}
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message ListClusterNodesResponse {
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message ClusterNode {
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string address = 1;
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string version = 2;
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int64 created_at_ns = 4;
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string data_center = 5;
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string rack = 6;
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}
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repeated ClusterNode cluster_nodes = 1;
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}
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message LeaseAdminTokenRequest {
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int64 previous_token = 1;
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int64 previous_lock_time = 2;
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string lock_name = 3;
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string client_name = 4;
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string message = 5;
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}
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message LeaseAdminTokenResponse {
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int64 token = 1;
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int64 lock_ts_ns = 2;
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}
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message ReleaseAdminTokenRequest {
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int64 previous_token = 1;
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int64 previous_lock_time = 2;
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string lock_name = 3;
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}
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message ReleaseAdminTokenResponse {
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}
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message PingRequest {
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string target = 1; // default to ping itself
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string target_type = 2;
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}
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message PingResponse {
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int64 start_time_ns = 1;
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int64 remote_time_ns = 2;
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int64 stop_time_ns = 3;
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}
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message RaftAddServerRequest {
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string id = 1;
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string address = 2;
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bool voter = 3;
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}
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message RaftAddServerResponse {
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}
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message RaftRemoveServerRequest {
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string id = 1;
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bool force = 2;
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}
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message RaftRemoveServerResponse {
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}
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message RaftListClusterServersRequest {
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}
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message RaftListClusterServersResponse {
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message ClusterServers {
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string id = 1;
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string address = 2;
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string suffrage = 3;
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bool isLeader = 4;
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}
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repeated ClusterServers cluster_servers = 1;
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}
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message RaftLeadershipTransferRequest {
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string target_id = 1; // Optional: target server ID. If empty, transfers to any eligible follower
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string target_address = 2; // Optional: target server address. Required if target_id is specified
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}
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message RaftLeadershipTransferResponse {
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string previous_leader = 1;
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string new_leader = 2;
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}
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message VolumeGrowResponse {
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}
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