493 lines
14 KiB
Go
493 lines
14 KiB
Go
package service
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import (
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"context"
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"fmt"
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"sync"
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"github.com/jeremytregunna/kevo/pkg/common/iterator"
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"github.com/jeremytregunna/kevo/pkg/engine"
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pb "github.com/jeremytregunna/kevo/proto/kevo"
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)
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// TxRegistry is the interface we need for the transaction registry
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type TxRegistry interface {
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Begin(ctx context.Context, eng *engine.Engine, readOnly bool) (string, error)
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Get(txID string) (engine.Transaction, bool)
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Remove(txID string)
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}
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// KevoServiceServer implements the gRPC KevoService interface
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type KevoServiceServer struct {
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pb.UnimplementedKevoServiceServer
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engine *engine.Engine
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txRegistry TxRegistry
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activeTx sync.Map // map[string]engine.Transaction
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txMu sync.Mutex
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compactionSem chan struct{} // Semaphore for limiting concurrent compactions
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maxKeySize int // Maximum allowed key size
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maxValueSize int // Maximum allowed value size
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maxBatchSize int // Maximum number of operations in a batch
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maxTransactions int // Maximum number of concurrent transactions
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transactionTTL int64 // Maximum time in seconds a transaction can be idle
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activeTransCount int32 // Count of active transactions
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}
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// NewKevoServiceServer creates a new KevoServiceServer
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func NewKevoServiceServer(engine *engine.Engine, txRegistry TxRegistry) *KevoServiceServer {
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return &KevoServiceServer{
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engine: engine,
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txRegistry: txRegistry,
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compactionSem: make(chan struct{}, 1), // Allow only one compaction at a time
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maxKeySize: 4096, // 4KB
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maxValueSize: 10 * 1024 * 1024, // 10MB
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maxBatchSize: 1000,
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maxTransactions: 1000,
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transactionTTL: 300, // 5 minutes
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}
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}
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// Get retrieves a value for a given key
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func (s *KevoServiceServer) Get(ctx context.Context, req *pb.GetRequest) (*pb.GetResponse, error) {
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if len(req.Key) == 0 || len(req.Key) > s.maxKeySize {
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return nil, fmt.Errorf("invalid key size")
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}
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value, err := s.engine.Get(req.Key)
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if err != nil {
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return &pb.GetResponse{Found: false}, nil
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}
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return &pb.GetResponse{
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Value: value,
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Found: true,
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}, nil
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}
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// Put stores a key-value pair
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func (s *KevoServiceServer) Put(ctx context.Context, req *pb.PutRequest) (*pb.PutResponse, error) {
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if len(req.Key) == 0 || len(req.Key) > s.maxKeySize {
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return nil, fmt.Errorf("invalid key size")
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}
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if len(req.Value) > s.maxValueSize {
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return nil, fmt.Errorf("value too large")
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}
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if err := s.engine.Put(req.Key, req.Value); err != nil {
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return &pb.PutResponse{Success: false}, err
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}
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return &pb.PutResponse{Success: true}, nil
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}
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// Delete removes a key-value pair
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func (s *KevoServiceServer) Delete(ctx context.Context, req *pb.DeleteRequest) (*pb.DeleteResponse, error) {
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if len(req.Key) == 0 || len(req.Key) > s.maxKeySize {
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return nil, fmt.Errorf("invalid key size")
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}
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if err := s.engine.Delete(req.Key); err != nil {
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return &pb.DeleteResponse{Success: false}, err
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}
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return &pb.DeleteResponse{Success: true}, nil
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}
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// BatchWrite performs multiple operations in a batch
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func (s *KevoServiceServer) BatchWrite(ctx context.Context, req *pb.BatchWriteRequest) (*pb.BatchWriteResponse, error) {
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if len(req.Operations) == 0 {
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return &pb.BatchWriteResponse{Success: true}, nil
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}
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if len(req.Operations) > s.maxBatchSize {
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return nil, fmt.Errorf("batch size exceeds maximum allowed (%d)", s.maxBatchSize)
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}
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// Start a transaction for atomic batch operations
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tx, err := s.engine.BeginTransaction(false) // Read-write transaction
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if err != nil {
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return &pb.BatchWriteResponse{Success: false}, fmt.Errorf("failed to start transaction: %w", err)
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}
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// Ensure we either commit or rollback
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defer func() {
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if err != nil {
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tx.Rollback()
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}
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}()
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// Process each operation
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for _, op := range req.Operations {
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if len(op.Key) == 0 || len(op.Key) > s.maxKeySize {
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err = fmt.Errorf("invalid key size in batch operation")
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return &pb.BatchWriteResponse{Success: false}, err
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}
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switch op.Type {
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case pb.Operation_PUT:
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if len(op.Value) > s.maxValueSize {
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err = fmt.Errorf("value too large in batch operation")
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return &pb.BatchWriteResponse{Success: false}, err
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}
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if err = tx.Put(op.Key, op.Value); err != nil {
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return &pb.BatchWriteResponse{Success: false}, err
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}
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case pb.Operation_DELETE:
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if err = tx.Delete(op.Key); err != nil {
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return &pb.BatchWriteResponse{Success: false}, err
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}
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default:
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err = fmt.Errorf("unknown operation type")
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return &pb.BatchWriteResponse{Success: false}, err
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}
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}
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// Commit the transaction
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if err = tx.Commit(); err != nil {
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return &pb.BatchWriteResponse{Success: false}, err
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}
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return &pb.BatchWriteResponse{Success: true}, nil
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}
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// Scan iterates over a range of keys
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func (s *KevoServiceServer) Scan(req *pb.ScanRequest, stream pb.KevoService_ScanServer) error {
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var limit int32 = 0
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if req.Limit > 0 {
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limit = req.Limit
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}
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// Create a read-only transaction for consistent snapshot
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tx, err := s.engine.BeginTransaction(true)
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if err != nil {
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return fmt.Errorf("failed to begin transaction: %w", err)
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}
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defer tx.Rollback() // Always rollback read-only TX when done
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// Create appropriate iterator based on request parameters
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var iter iterator.Iterator
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if len(req.Prefix) > 0 {
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// Create a prefix iterator
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prefixIter := tx.NewIterator()
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iter = newPrefixIterator(prefixIter, req.Prefix)
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} else if len(req.StartKey) > 0 || len(req.EndKey) > 0 {
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// Create a range iterator
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iter = tx.NewRangeIterator(req.StartKey, req.EndKey)
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} else {
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// Create a full scan iterator
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iter = tx.NewIterator()
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}
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count := int32(0)
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for iter.Next() {
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if limit > 0 && count >= limit {
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break
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}
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if err := stream.Send(&pb.ScanResponse{
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Key: iter.Key(),
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Value: iter.Value(),
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}); err != nil {
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return err
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}
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count++
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}
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return nil
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}
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// prefixIterator wraps another iterator and filters for a prefix
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type prefixIterator struct {
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iter iterator.Iterator
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prefix []byte
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err error
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}
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func newPrefixIterator(iter iterator.Iterator, prefix []byte) *prefixIterator {
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return &prefixIterator{
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iter: iter,
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prefix: prefix,
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}
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}
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func (pi *prefixIterator) Next() bool {
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for pi.iter.Next() {
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// Check if current key has the prefix
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key := pi.iter.Key()
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if len(key) >= len(pi.prefix) &&
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equalByteSlice(key[:len(pi.prefix)], pi.prefix) {
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return true
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}
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}
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return false
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}
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func (pi *prefixIterator) Key() []byte {
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return pi.iter.Key()
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}
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func (pi *prefixIterator) Value() []byte {
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return pi.iter.Value()
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}
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func (pi *prefixIterator) Valid() bool {
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return pi.iter.Valid()
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}
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func (pi *prefixIterator) IsTombstone() bool {
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return pi.iter.IsTombstone()
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}
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func (pi *prefixIterator) SeekToFirst() {
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pi.iter.SeekToFirst()
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}
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func (pi *prefixIterator) SeekToLast() {
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pi.iter.SeekToLast()
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}
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func (pi *prefixIterator) Seek(target []byte) bool {
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return pi.iter.Seek(target)
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}
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// equalByteSlice compares two byte slices for equality
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func equalByteSlice(a, b []byte) bool {
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if len(a) != len(b) {
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return false
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}
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for i := 0; i < len(a); i++ {
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if a[i] != b[i] {
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return false
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}
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}
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return true
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}
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// BeginTransaction starts a new transaction
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func (s *KevoServiceServer) BeginTransaction(ctx context.Context, req *pb.BeginTransactionRequest) (*pb.BeginTransactionResponse, error) {
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txID, err := s.txRegistry.Begin(ctx, s.engine, req.ReadOnly)
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if err != nil {
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return nil, fmt.Errorf("failed to begin transaction: %w", err)
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}
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return &pb.BeginTransactionResponse{
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TransactionId: txID,
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}, nil
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}
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// CommitTransaction commits an ongoing transaction
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func (s *KevoServiceServer) CommitTransaction(ctx context.Context, req *pb.CommitTransactionRequest) (*pb.CommitTransactionResponse, error) {
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tx, exists := s.txRegistry.Get(req.TransactionId)
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if !exists {
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return nil, fmt.Errorf("transaction not found: %s", req.TransactionId)
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}
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if err := tx.Commit(); err != nil {
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return &pb.CommitTransactionResponse{Success: false}, err
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}
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s.txRegistry.Remove(req.TransactionId)
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return &pb.CommitTransactionResponse{Success: true}, nil
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}
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// RollbackTransaction aborts an ongoing transaction
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func (s *KevoServiceServer) RollbackTransaction(ctx context.Context, req *pb.RollbackTransactionRequest) (*pb.RollbackTransactionResponse, error) {
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tx, exists := s.txRegistry.Get(req.TransactionId)
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if !exists {
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return nil, fmt.Errorf("transaction not found: %s", req.TransactionId)
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}
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if err := tx.Rollback(); err != nil {
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return &pb.RollbackTransactionResponse{Success: false}, err
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}
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s.txRegistry.Remove(req.TransactionId)
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return &pb.RollbackTransactionResponse{Success: true}, nil
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}
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// TxGet retrieves a value for a given key within a transaction
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func (s *KevoServiceServer) TxGet(ctx context.Context, req *pb.TxGetRequest) (*pb.TxGetResponse, error) {
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tx, exists := s.txRegistry.Get(req.TransactionId)
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if !exists {
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return nil, fmt.Errorf("transaction not found: %s", req.TransactionId)
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}
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if len(req.Key) == 0 || len(req.Key) > s.maxKeySize {
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return nil, fmt.Errorf("invalid key size")
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}
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value, err := tx.Get(req.Key)
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if err != nil {
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return &pb.TxGetResponse{Found: false}, nil
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}
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return &pb.TxGetResponse{
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Value: value,
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Found: true,
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}, nil
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}
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// TxPut stores a key-value pair within a transaction
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func (s *KevoServiceServer) TxPut(ctx context.Context, req *pb.TxPutRequest) (*pb.TxPutResponse, error) {
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tx, exists := s.txRegistry.Get(req.TransactionId)
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if !exists {
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return nil, fmt.Errorf("transaction not found: %s", req.TransactionId)
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}
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if tx.IsReadOnly() {
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return nil, fmt.Errorf("cannot write to read-only transaction")
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}
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if len(req.Key) == 0 || len(req.Key) > s.maxKeySize {
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return nil, fmt.Errorf("invalid key size")
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}
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if len(req.Value) > s.maxValueSize {
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return nil, fmt.Errorf("value too large")
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}
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if err := tx.Put(req.Key, req.Value); err != nil {
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return &pb.TxPutResponse{Success: false}, err
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}
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return &pb.TxPutResponse{Success: true}, nil
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}
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// TxDelete removes a key-value pair within a transaction
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func (s *KevoServiceServer) TxDelete(ctx context.Context, req *pb.TxDeleteRequest) (*pb.TxDeleteResponse, error) {
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tx, exists := s.txRegistry.Get(req.TransactionId)
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if !exists {
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return nil, fmt.Errorf("transaction not found: %s", req.TransactionId)
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}
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if tx.IsReadOnly() {
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return nil, fmt.Errorf("cannot delete in read-only transaction")
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}
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if len(req.Key) == 0 || len(req.Key) > s.maxKeySize {
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return nil, fmt.Errorf("invalid key size")
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}
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if err := tx.Delete(req.Key); err != nil {
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return &pb.TxDeleteResponse{Success: false}, err
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}
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return &pb.TxDeleteResponse{Success: true}, nil
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}
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// TxScan iterates over a range of keys within a transaction
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func (s *KevoServiceServer) TxScan(req *pb.TxScanRequest, stream pb.KevoService_TxScanServer) error {
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tx, exists := s.txRegistry.Get(req.TransactionId)
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if !exists {
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return fmt.Errorf("transaction not found: %s", req.TransactionId)
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}
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var limit int32 = 0
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if req.Limit > 0 {
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limit = req.Limit
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}
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// Create appropriate iterator based on request parameters
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var iter iterator.Iterator
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if len(req.Prefix) > 0 {
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// Create a prefix iterator
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rawIter := tx.NewIterator()
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iter = newPrefixIterator(rawIter, req.Prefix)
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} else if len(req.StartKey) > 0 || len(req.EndKey) > 0 {
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// Create a range iterator
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iter = tx.NewRangeIterator(req.StartKey, req.EndKey)
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} else {
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// Create a full scan iterator
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iter = tx.NewIterator()
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}
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count := int32(0)
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for iter.Next() {
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if limit > 0 && count >= limit {
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break
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}
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if err := stream.Send(&pb.TxScanResponse{
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Key: iter.Key(),
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Value: iter.Value(),
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}); err != nil {
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return err
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}
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count++
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}
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return nil
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}
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// GetStats retrieves database statistics
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func (s *KevoServiceServer) GetStats(ctx context.Context, req *pb.GetStatsRequest) (*pb.GetStatsResponse, error) {
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// Collect basic stats that we know are available
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keyCount := int64(0)
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sstableCount := int32(0)
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memtableCount := int32(1) // At least 1 active memtable
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// Create a read-only transaction to count keys
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tx, err := s.engine.BeginTransaction(true)
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if err != nil {
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return nil, fmt.Errorf("failed to begin transaction for stats: %w", err)
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}
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defer tx.Rollback()
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// Use an iterator to count keys
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iter := tx.NewIterator()
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// Count keys and estimate size
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var totalSize int64
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for iter.Next() {
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keyCount++
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totalSize += int64(len(iter.Key()) + len(iter.Value()))
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}
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return &pb.GetStatsResponse{
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KeyCount: keyCount,
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StorageSize: totalSize,
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MemtableCount: memtableCount,
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SstableCount: sstableCount,
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WriteAmplification: 1.0, // Placeholder
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ReadAmplification: 1.0, // Placeholder
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}, nil
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}
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// Compact triggers database compaction
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func (s *KevoServiceServer) Compact(ctx context.Context, req *pb.CompactRequest) (*pb.CompactResponse, error) {
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// Use a semaphore to prevent multiple concurrent compactions
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select {
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case s.compactionSem <- struct{}{}:
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// We got the semaphore, proceed with compaction
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defer func() { <-s.compactionSem }()
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default:
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// Semaphore is full, compaction is already running
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return &pb.CompactResponse{Success: false}, fmt.Errorf("compaction is already in progress")
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}
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// For now, Compact just performs a memtable flush as we don't have a public
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// Compact method on the engine yet
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tx, err := s.engine.BeginTransaction(false)
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if err != nil {
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return &pb.CompactResponse{Success: false}, err
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}
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// Do a dummy write to force a flush
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if req.Force {
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err = tx.Put([]byte("__compact_marker__"), []byte("force"))
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if err != nil {
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tx.Rollback()
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return &pb.CompactResponse{Success: false}, err
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}
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}
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err = tx.Commit()
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if err != nil {
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return &pb.CompactResponse{Success: false}, err
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}
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return &pb.CompactResponse{Success: true}, nil
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} |