mirror of
https://github.com/featurebasedb/featurebase.git
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479 lines
14 KiB
Go
479 lines
14 KiB
Go
// Copyright 2022 Molecula Corp. (DBA FeatureBase).
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// SPDX-License-Identifier: Apache-2.0
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package disco
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import (
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"context"
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"fmt"
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"io"
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"path"
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"sync"
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)
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var (
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ErrTooManyResults error = fmt.Errorf("too many results")
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ErrNoResults error = fmt.Errorf("no results")
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ErrKeyDeleted error = fmt.Errorf("key deleted")
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ErrIndexExists error = fmt.Errorf("index already exists")
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ErrIndexDoesNotExist error = fmt.Errorf("index does not exist")
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ErrFieldExists error = fmt.Errorf("field already exists")
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ErrFieldDoesNotExist error = fmt.Errorf("field does not exist")
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ErrViewExists error = fmt.Errorf("view already exists")
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ErrViewDoesNotExist error = fmt.Errorf("view does not exist")
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ErrKeyDoesNotExist error = fmt.Errorf("key does not exist")
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)
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type Peer struct {
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URL string
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ID string
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}
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func (p *Peer) String() string {
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return fmt.Sprintf(`{"ID": "%s", "URL": "%s"}`, p.ID, p.URL)
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}
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type DisCo interface {
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io.Closer
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Start(ctx context.Context) (InitialClusterState, error)
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IsLeader() bool
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ID() string
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Leader() *Peer
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Peers() []*Peer
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DeleteNode(ctx context.Context, id string) error
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}
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type (
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InitialClusterState string
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// ClusterState represents the state returned in the /status endpoint.
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ClusterState string
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)
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const (
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InitialClusterStateNew InitialClusterState = "new"
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InitialClusterStateExisting InitialClusterState = "existing"
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ClusterStateUnknown ClusterState = "UNKNOWN" // default cluster state. It is returned when we are not able to get the real actual state.
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ClusterStateDegraded ClusterState = "DEGRADED" // cluster is running but we've lost some # of hosts >0 but < replicaN. Only read queries are allowed.
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ClusterStateNormal ClusterState = "NORMAL" // cluster is up and running.
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ClusterStateDown ClusterState = "DOWN" // cluster is unable to serve queries.
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)
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type NodeState string
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const (
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NodeStateUnknown NodeState = "UNKNOWN"
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NodeStateStarting NodeState = "STARTING"
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NodeStateStarted NodeState = "STARTED"
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)
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// Schema is a map of all indexes, each of those being a map of fields, then
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// views.
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type Schema map[string]*Index
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// Index is a struct which contains the data encoded for the index as well as
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// for each of its fields.
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type Index struct {
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Data []byte
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Fields map[string]*Field
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}
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// Field is a struct which contains the data encoded for the field as well as
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// for each of its views.
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type Field struct {
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Data []byte
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Views map[string]struct{}
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}
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// Schemator is the source of truth for different schema elements.
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// All nodes will store and retrieve information from the same source,
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// having the same information at the same time.
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type Schemator interface {
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// Schema return the actual pilosa schema. If the schema is not present, an error is returned.
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Schema(ctx context.Context) (Schema, error)
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// Index gets a specific index data by name.
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Index(ctx context.Context, name string) ([]byte, error)
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CreateIndex(ctx context.Context, name string, val []byte) error
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DeleteIndex(ctx context.Context, name string) error
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Field(ctx context.Context, index, field string) ([]byte, error)
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CreateField(ctx context.Context, index, field string, fieldVal []byte) error
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UpdateField(ctx context.Context, index, field string, fieldVal []byte) error
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DeleteField(ctx context.Context, index, field string) error
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View(ctx context.Context, index, field, view string) (bool, error)
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CreateView(ctx context.Context, index, field, view string) error
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DeleteView(ctx context.Context, index, field, view string) error
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}
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// Sharder is an interface used to maintain the set of availableShards bitmaps
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// per field.
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type Sharder interface {
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Shards(ctx context.Context, index, field string) ([][]byte, error)
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SetShards(ctx context.Context, index, field string, shards []byte) error
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}
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// NopDisCo represents a DisCo that doesn't do anything.
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var NopDisCo DisCo = &nopDisCo{}
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type nopDisCo struct{}
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// Close no-op.
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func (n *nopDisCo) Close() error {
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return nil
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}
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// Start is a no-op implementation of the DisCo Start method.
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func (n *nopDisCo) Start(ctx context.Context) (InitialClusterState, error) {
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return InitialClusterStateNew, nil
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}
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// ID is a no-op implementation of the DisCo ID method.
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func (n *nopDisCo) ID() string {
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return ""
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}
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// IsLeader is a no-op implementation of the DisCo IsLeader method.
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func (n *nopDisCo) IsLeader() bool {
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return false
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}
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// Leader is a no-op implementation of the DisCo Leader method.
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func (n *nopDisCo) Leader() *Peer {
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return nil
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}
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// Peers is a no-op implementation of the DisCo Peers method.
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func (n *nopDisCo) Peers() []*Peer {
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return nil
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}
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// DeleteNode a no-op implementation of the DisCo DeleteNode method.
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func (n *nopDisCo) DeleteNode(context.Context, string) error {
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return nil
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}
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// Ensure type implements interface.
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var _ DisCo = &inMemDisCo{}
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func NewInMemDisCo(id string) *inMemDisCo {
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return &inMemDisCo{
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id: id,
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}
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}
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// inMemDisCo represents a DisCo that is aware of itself.
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type inMemDisCo struct {
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id string
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}
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// Close no-op.
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func (n *inMemDisCo) Close() error {
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return nil
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}
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// Start is a no-op implementation of the DisCo Start method.
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func (n *inMemDisCo) Start(ctx context.Context) (InitialClusterState, error) {
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return InitialClusterStateNew, nil
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}
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// ID is a no-op implementation of the DisCo ID method.
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func (n *inMemDisCo) ID() string {
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return n.id
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}
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// IsLeader is a no-op implementation of the DisCo IsLeader method.
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func (n *inMemDisCo) IsLeader() bool {
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return true
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}
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// Leader is a no-op implementation of the DisCo Leader method.
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func (n *inMemDisCo) Leader() *Peer {
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return nil
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}
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// Peers is a no-op implementation of the DisCo Peers method.
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func (n *inMemDisCo) Peers() []*Peer {
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return nil
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}
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// DeleteNode a no-op implementation of the DisCo DeleteNode method.
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func (n *inMemDisCo) DeleteNode(context.Context, string) error {
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return nil
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}
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////////////////////////////////////////////////
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// NopSharder represents a Sharder that doesn't do anything.
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var NopSharder Sharder = &nopSharder{}
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type nopSharder struct{}
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// Shards is a no-op implementation of the Sharder Shards method.
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func (n *nopSharder) Shards(ctx context.Context, index, field string) ([][]byte, error) {
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return nil, nil
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}
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// AddShards is a no-op implementation of the Sharder AddShards method.
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func (n *nopSharder) SetShards(ctx context.Context, index, field string, shards []byte) error {
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return nil
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}
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// NopSchemator represents a Schemator that doesn't do anything.
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var NopSchemator Schemator = &nopSchemator{}
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type nopSchemator struct{}
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// Schema is a no-op implementation of the Schemator Schema method.
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func (*nopSchemator) Schema(ctx context.Context) (Schema, error) { return nil, nil }
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// Index is a no-op implementation of the Schemator Index method.
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func (*nopSchemator) Index(ctx context.Context, name string) ([]byte, error) { return nil, nil }
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// CreateIndex is a no-op implementation of the Schemator CreateIndex method.
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func (*nopSchemator) CreateIndex(ctx context.Context, name string, val []byte) error { return nil }
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// DeleteIndex is a no-op implementation of the Schemator DeleteIndex method.
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func (*nopSchemator) DeleteIndex(ctx context.Context, name string) error {
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return nil
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}
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// Field is a no-op implementation of the Schemator Field method.
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func (*nopSchemator) Field(ctx context.Context, index, field string) ([]byte, error) { return nil, nil }
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// CreateField is a no-op implementation of the Schemator CreateField method.
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func (*nopSchemator) CreateField(ctx context.Context, index, field string, fieldVal []byte) error {
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return nil
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}
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// UpdateField is a no-op implementation of the Schemator UpdateField method.
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func (*nopSchemator) UpdateField(ctx context.Context, index, field string, fieldVal []byte) error {
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return nil
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}
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// DeleteField is a no-op implementation of the Schemator DeleteField method.
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func (*nopSchemator) DeleteField(ctx context.Context, index, field string) error {
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return nil
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}
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// View is a no-op implementation of the Schemator View method.
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func (*nopSchemator) View(ctx context.Context, index, field, view string) (bool, error) {
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return false, nil
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}
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// CreateView is a no-op implementation of the Schemator CreateView method.
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func (*nopSchemator) CreateView(ctx context.Context, index, field, view string) error {
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return nil
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}
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// DeleteView is a no-op implementation of the Schemator DeleteView method.
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func (*nopSchemator) DeleteView(ctx context.Context, index, field, view string) error { return nil }
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type inMemSchemator struct {
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mu sync.RWMutex
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schema Schema
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}
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// NewInMemSchemator instantiates an InMemSchemator
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// this allows new holders to have thier own, and not rely on a shared instance
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func NewInMemSchemator() *inMemSchemator {
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return &inMemSchemator{
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schema: make(Schema),
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}
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}
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// Schema is an in-memory implementation of the Schemator Schema method.
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func (s *inMemSchemator) Schema(ctx context.Context) (Schema, error) {
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s.mu.RLock()
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defer s.mu.RUnlock()
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return s.schema, nil
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}
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// Index is an in-memory implementation of the Schemator Index method.
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func (s *inMemSchemator) Index(ctx context.Context, name string) ([]byte, error) {
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s.mu.RLock()
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defer s.mu.RUnlock()
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idx, ok := s.schema[name]
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if !ok {
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return nil, ErrIndexDoesNotExist
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}
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return idx.Data, nil
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}
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// CreateIndex is an in-memory implementation of the Schemator CreateIndex method.
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func (s *inMemSchemator) CreateIndex(ctx context.Context, name string, val []byte) error {
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s.mu.Lock()
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defer s.mu.Unlock()
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if idx, ok := s.schema[name]; ok {
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// The current logic in pilosa doesn't allow us to return ErrIndexExists
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// here, so for now we just update the Data value if the index already
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// exists.
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idx.Data = val
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return nil
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}
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s.schema[name] = &Index{
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Data: val,
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Fields: make(map[string]*Field),
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}
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return nil
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}
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// DeleteIndex is an in-memory implementation of the Schemator DeleteIndex method.
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func (s *inMemSchemator) DeleteIndex(ctx context.Context, name string) error {
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s.mu.Lock()
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defer s.mu.Unlock()
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delete(s.schema, name)
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return nil
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}
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// Field is an in-memory implementation of the Schemator Field method.
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func (s *inMemSchemator) Field(ctx context.Context, index, field string) ([]byte, error) {
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s.mu.RLock()
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defer s.mu.RUnlock()
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idx, ok := s.schema[index]
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if !ok {
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return nil, ErrIndexDoesNotExist
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}
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fld, ok := idx.Fields[field]
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if !ok {
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return nil, ErrFieldDoesNotExist
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}
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return fld.Data, nil
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}
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// CreateField is an in-memory implementation of the Schemator CreateField method.
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func (s *inMemSchemator) CreateField(ctx context.Context, index, field string, fieldVal []byte) error {
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s.mu.Lock()
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defer s.mu.Unlock()
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idx, ok := s.schema[index]
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if !ok {
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return ErrIndexDoesNotExist
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}
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if fld, ok := idx.Fields[field]; ok {
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// The current logic in pilosa doesn't allow us to return ErrFieldExists
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// here, so for now we just update the Data value if the field already
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// exists.
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fld.Data = fieldVal
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return nil
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}
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idx.Fields[field] = &Field{
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Data: fieldVal,
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Views: make(map[string]struct{}),
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}
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return nil
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}
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func (s *inMemSchemator) UpdateField(ctx context.Context, index, field string, fieldVal []byte) error {
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s.mu.Lock()
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defer s.mu.Unlock()
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idx, ok := s.schema[index]
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if !ok {
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return ErrIndexDoesNotExist
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}
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if fld, ok := idx.Fields[field]; ok {
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// The current logic in pilosa doesn't allow us to return ErrFieldExists
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// here, so for now we just update the Data value if the field already
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// exists.
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fld.Data = fieldVal
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return nil
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} else {
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return ErrFieldDoesNotExist
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}
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}
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// DeleteField is an in-memory implementation of the Schemator DeleteField method.
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func (s *inMemSchemator) DeleteField(ctx context.Context, index, field string) error {
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s.mu.Lock()
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defer s.mu.Unlock()
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idx, ok := s.schema[index]
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if !ok {
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return ErrIndexDoesNotExist
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}
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delete(idx.Fields, field)
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return nil
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}
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// View is an in-memory implementation of the Schemator View method.
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func (s *inMemSchemator) View(ctx context.Context, index, field, view string) (bool, error) {
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s.mu.RLock()
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defer s.mu.RUnlock()
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idx, ok := s.schema[index]
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if !ok {
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return false, ErrIndexDoesNotExist
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}
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fld, ok := idx.Fields[field]
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if !ok {
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return false, ErrFieldDoesNotExist
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}
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_, ok = fld.Views[view]
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return ok, nil
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}
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// CreateView is an in-memory implementation of the Schemator CreateView method.
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func (s *inMemSchemator) CreateView(ctx context.Context, index, field, view string) error {
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s.mu.Lock()
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defer s.mu.Unlock()
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idx, ok := s.schema[index]
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if !ok {
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return ErrIndexDoesNotExist
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}
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fld, ok := idx.Fields[field]
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if !ok {
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return ErrFieldDoesNotExist
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}
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// The current logic in pilosa doesn't allow us to return ErrViewExists
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// here, so for now we just update the value if the view already exists.
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fld.Views[view] = struct{}{}
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return nil
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}
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// DeleteView is an in-memory implementation of the Schemator DeleteView method.
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func (s *inMemSchemator) DeleteView(ctx context.Context, index, field, view string) error {
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s.mu.Lock()
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defer s.mu.Unlock()
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idx, ok := s.schema[index]
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if !ok {
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return ErrIndexDoesNotExist
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}
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fld, ok := idx.Fields[field]
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if !ok {
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return ErrFieldDoesNotExist
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}
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delete(fld.Views, view)
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return nil
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}
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func NewInMemSharder() *inMemSharder {
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return &inMemSharder{
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shards: make(map[string][]byte),
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}
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}
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type inMemSharder struct {
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mu sync.RWMutex
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shards map[string][]byte
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}
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func (s *inMemSharder) Shards(ctx context.Context, index, field string) ([][]byte, error) {
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key := path.Join("/shard/", index, field)
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s.mu.RLock()
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defer s.mu.RUnlock()
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b := s.shards[key]
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if b == nil {
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return nil, nil
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}
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return [][]byte{b}, nil
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}
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func (s *inMemSharder) SetShards(ctx context.Context, index, field string, shards []byte) error {
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key := path.Join("/shard/", index, field)
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s.mu.Lock()
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defer s.mu.Unlock()
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s.shards[key] = make([]byte, len(shards))
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copy(s.shards[key], shards)
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return nil
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}
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