// Copyright 2017 Pilosa Corp. // // Licensed under the Apache License, Version 2.0 (the "License"); // you may not use this file except in compliance with the License. // You may obtain a copy of the License at // // http://www.apache.org/licenses/LICENSE-2.0 // // Unless required by applicable law or agreed to in writing, software // distributed under the License is distributed on an "AS IS" BASIS, // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. // See the License for the specific language governing permissions and // limitations under the License. package pilosa_test import ( "bytes" "context" "errors" "fmt" "math" "math/rand" "reflect" "strings" "testing" "time" pilosa "github.com/molecula/featurebase/v2" "github.com/molecula/featurebase/v2/boltdb" "github.com/molecula/featurebase/v2/http" "github.com/molecula/featurebase/v2/server" "github.com/molecula/featurebase/v2/shardwidth" "github.com/molecula/featurebase/v2/test" . "github.com/molecula/featurebase/v2/vprint" // nolint:staticcheck ) func TestAPI_Import(t *testing.T) { c := test.MustRunCluster(t, 3, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node0"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateStore(boltdb.OpenTranslateStore), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node1"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateStore(boltdb.OpenTranslateStore), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node2"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateStore(boltdb.OpenTranslateStore), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, ) defer c.Close() m0 := c.GetNode(0) m1 := c.GetNode(1) t.Run("RowIDColumnKey", func(t *testing.T) { ctx := context.Background() indexName := "rick" fieldName := "f" index, err := m0.API.CreateIndex(ctx, indexName, pilosa.IndexOptions{Keys: true, TrackExistence: true}) if err != nil { t.Fatalf("creating index: %v", err) } if index.CreatedAt() == 0 { t.Fatal("index createdAt is empty") } field, err := m0.API.CreateField(ctx, indexName, fieldName, pilosa.OptFieldTypeSet(pilosa.DefaultCacheType, 100)) if err != nil { t.Fatalf("creating field: %v", err) } if field.CreatedAt() == 0 { t.Fatal("field createdAt is empty") } rowID := uint64(1) timestamp := int64(0) // Generate some keyed records. rowIDs := []uint64{} timestamps := []int64{} N := 10 for i := 1; i <= N; i++ { rowIDs = append(rowIDs, rowID) timestamps = append(timestamps, timestamp) } // Keys are sharded so ordering is not guaranteed. colKeys := []string{"col10", "col8", "col9", "col6", "col7", "col4", "col5", "col2", "col3", "col1"} colKeys = colKeys[:N] // Import data with keys to the primary and verify that it gets // translated and forwarded to the owner of shard 0 (node1; because of offsetModHasher) req := &pilosa.ImportRequest{ Index: indexName, IndexCreatedAt: index.CreatedAt(), Field: fieldName, FieldCreatedAt: field.CreatedAt(), Shard: 0, // import is all on shard 0, why are we making lots of other shards? b/c this is not a restriction. RowIDs: rowIDs, ColumnKeys: colKeys, Timestamps: timestamps, } qcx := m0.API.Txf().NewQcx() if err := m0.API.Import(ctx, qcx, req); err != nil { t.Fatal(err) } PanicOn(qcx.Finish()) pql := fmt.Sprintf("Row(%s=%d)", fieldName, rowID) // Query node0. if res, err := m0.API.Query(ctx, &pilosa.QueryRequest{Index: indexName, Query: pql}); err != nil { t.Fatal(err) } else if keys := res.Results[0].(*pilosa.Row).Keys; !reflect.DeepEqual(keys, colKeys) { t.Fatalf("expected colKeys='%#v'; observed column keys: %#v", colKeys, keys) } // Query node1. if err := test.RetryUntil(5*time.Second, func() error { if res, err := m1.API.Query(ctx, &pilosa.QueryRequest{Index: indexName, Query: pql}); err != nil { return err } else if keys := res.Results[0].(*pilosa.Row).Keys; !reflect.DeepEqual(keys, colKeys) { return fmt.Errorf("unexpected column keys: %#v", keys) } return nil }); err != nil { t.Fatal(err) } }) // Relies on the previous test creating an index with TrackExistence and // adding some data. t.Run("SchemaHasNoExists", func(t *testing.T) { schema, err := m1.API.Schema(context.Background(), false) if err != nil { t.Fatal(err) } for _, f := range schema[0].Fields { if f.Name == "_exists" { t.Fatalf("found _exists field in schema") } if strings.HasPrefix(f.Name, "_") { t.Fatalf("found internal field '%s' in schema output", f.Name) } } }) } func TestAPI_ImportValue(t *testing.T) { c := test.MustRunCluster(t, 3, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node0"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node1"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node2"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, ) defer c.Close() coord := c.GetPrimary() m0 := c.GetNode(0) m1 := c.GetNode(1) m2 := c.GetNode(2) t.Run("ValColumnKey", func(t *testing.T) { ctx := context.Background() index := "valck" field := "f" _, err := coord.API.CreateIndex(ctx, index, pilosa.IndexOptions{Keys: true}) if err != nil { t.Fatalf("creating index: %v", err) } _, err = coord.API.CreateField(ctx, index, field, pilosa.OptFieldTypeInt(math.MinInt64, math.MaxInt64)) if err != nil { t.Fatalf("creating field: %v", err) } // Generate some keyed records. values := []int64{} for i := 1; i <= 10; i++ { values = append(values, int64(i)) } // Column keys are sharded so their order is not guaranteed. colKeys := []string{"col10", "col8", "col9", "col6", "col7", "col4", "col5", "col2", "col3", "col1"} // Import data with keys to the primary and verify that it gets // translated and forwarded to the owner of shard 0 (node1; because of offsetModHasher) req := &pilosa.ImportValueRequest{ Index: index, Field: field, ColumnKeys: colKeys, Values: values, } qcx := coord.API.Txf().NewQcx() if err := coord.API.ImportValue(ctx, qcx, req); err != nil { t.Fatal(err) } PanicOn(qcx.Finish()) pql := fmt.Sprintf("Row(%s>0)", field) // Query node0. if res, err := m0.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: pql}); err != nil { t.Fatal(err) } else if keys := res.Results[0].(*pilosa.Row).Keys; !reflect.DeepEqual(keys, colKeys) { t.Fatalf("unexpected column keys: %+v", keys) } // Query node1. if err := test.RetryUntil(5*time.Second, func() error { if res, err := m1.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: pql}); err != nil { return err } else if keys := res.Results[0].(*pilosa.Row).Keys; !reflect.DeepEqual(keys, colKeys) { return fmt.Errorf("unexpected column keys: %+v", keys) } return nil }); err != nil { t.Fatal(err) } }) t.Run("ValIntEmpty", func(t *testing.T) { ctx := context.Background() index := "valintempty" field := "fld" createIndexForTest(index, coord, t) createFieldForTest(index, field, coord, t) // Column keys are sharded so their order is not guaranteed. colKeys := []string{"col2", "col1", "col3"} // Import without data, verify that it succeeds req := &pilosa.ImportValueRequest{ Index: index, Field: field, } qcx1 := coord.API.Txf().NewQcx() if err := coord.API.ImportValue(ctx, qcx1, req); err != nil { t.Fatal(err) } PanicOn(qcx1.Finish()) // Import without data but with columnkeys, verify that it errors req.ColumnKeys = colKeys qcx2 := coord.API.Txf().NewQcx() if err := coord.API.ImportValue(ctx, qcx2, req); err == nil { t.Fatal("expected error but succeeded") } PanicOn(qcx2.Finish()) }) t.Run("ValDecimalField", func(t *testing.T) { ctx := context.Background() index := "valdec" field := "fdec" _, err := m2.API.CreateIndex(ctx, index, pilosa.IndexOptions{}) if err != nil { t.Fatalf("creating index: %v", err) } _, err = m2.API.CreateField(ctx, index, field, pilosa.OptFieldTypeDecimal(1)) if err != nil { t.Fatalf("creating field: %v", err) } // Generate some records. values := []float64{} colIDs := []uint64{} for i := 0; i < 10; i++ { values = append(values, float64(i)+0.1) colIDs = append(colIDs, uint64(i)) } // Import data with keys to node1 and verify that it gets translated and // forwarded to the owner of shard 0 (node0; because of offsetModHasher) req := &pilosa.ImportValueRequest{ Index: index, Field: field, ColumnIDs: colIDs, FloatValues: values, } qcx := m0.API.Txf().NewQcx() if err := m0.API.ImportValue(ctx, qcx, req); err != nil { t.Fatal(err) } PanicOn(qcx.Finish()) query := fmt.Sprintf("Row(%s>6)", field) // Query node0. if res, err := m0.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: query}); err != nil { t.Fatal(err) } else if ids := res.Results[0].(*pilosa.Row).Columns(); !reflect.DeepEqual(ids, colIDs[6:]) { t.Fatalf("unexpected column keys: observerd %+v; expected '%+v'", ids, colIDs[6:]) } }) t.Run("ValDecimalFieldNegativeScale", func(t *testing.T) { ctx := context.Background() index := "valdecneg" field := "fdecneg" _, err := m0.API.CreateIndex(ctx, index, pilosa.IndexOptions{}) if err != nil { t.Fatalf("creating index: %v", err) } _, err = m0.API.CreateField(ctx, index, field, pilosa.OptFieldTypeDecimal(-1)) if err == nil { t.Fatal("expected error creating field") } }) t.Run("ValTimestampField", func(t *testing.T) { ctx := context.Background() index := "valts" field := "fts" _, err := m1.API.CreateIndex(ctx, index, pilosa.IndexOptions{}) if err != nil { t.Fatalf("creating index: %v", err) } _, err = m1.API.CreateField(ctx, index, field, pilosa.OptFieldTypeTimestamp(pilosa.DefaultEpoch, pilosa.TimeUnitSeconds)) if err != nil { t.Fatalf("creating field: %v", err) } // Generate some records. values := []time.Time{} colIDs := []uint64{} for i := 0; i < 10; i++ { values = append(values, pilosa.MinTimestamp.Add(time.Duration(i)*time.Second)) colIDs = append(colIDs, uint64(i)) } // Import data with keys to node1 and verify that it gets translated and // forwarded to the owner of shard 0 (node0; because of offsetModHasher) req := &pilosa.ImportValueRequest{ Index: index, Field: field, ColumnIDs: colIDs, TimestampValues: values, } qcx := m2.API.Txf().NewQcx() if err := m2.API.ImportValue(ctx, qcx, req); err != nil { t.Fatal(err) } PanicOn(qcx.Finish()) query := fmt.Sprintf("Row(%s>='1833-11-24T17:31:50Z')", field) // 6s after MinTimestamp // Query node0. if res, err := m0.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: query}); err != nil { t.Fatal(err) } else if ids := res.Results[0].(*pilosa.Row).Columns(); !reflect.DeepEqual(ids, colIDs[6:]) { t.Fatalf("unexpected column keys: observerd %+v; expected '%+v'", ids, colIDs[6:]) } }) t.Run("ValStringField", func(t *testing.T) { ctx := context.Background() index := "valstr" field := "fstr" fgnIndex := "fgnvalstr" _, err := coord.API.CreateIndex(ctx, index, pilosa.IndexOptions{}) if err != nil { t.Fatalf("creating index: %v", err) } _, err = coord.API.CreateIndex(ctx, fgnIndex, pilosa.IndexOptions{Keys: true}) if err != nil { t.Fatalf("creating foreign index: %v", err) } _, err = coord.API.CreateField(ctx, index, field, pilosa.OptFieldTypeInt(0, math.MaxInt64), pilosa.OptFieldForeignIndex(fgnIndex), ) if err != nil { t.Fatalf("creating field: %v", err) } // Generate some keyed records. values := []string{} colIDs := []uint64{} for i := 0; i < 10; i++ { value := fmt.Sprintf("strval-%d", (i)*100+10) values = append(values, value) colIDs = append(colIDs, uint64(i)) } // Import data with keys to the node0 and verify that it gets translated // and forwarded to the owner of shard 0 (node1; because of // offsetModHasher) req := &pilosa.ImportValueRequest{ Index: index, Field: field, ColumnIDs: colIDs, StringValues: values, } qcx := m0.API.Txf().NewQcx() if err := m0.API.ImportValue(ctx, qcx, req); err != nil { t.Fatal(err) } PanicOn(qcx.Finish()) pql := fmt.Sprintf(`Row(%s=="strval-110")`, field) // Query node1. if res, err := m1.API.Query(ctx, &pilosa.QueryRequest{Index: index, Query: pql}); err != nil { t.Fatal(err) } else if ids := res.Results[0].(*pilosa.Row).Columns(); !reflect.DeepEqual(ids, []uint64{1}) { t.Fatalf("unexpected columns: observerd %+v; expected '%+v'", ids, []uint64{1}) } }) } func TestAPI_Ingest(t *testing.T) { ctx, cancel := context.WithCancel(context.Background()) defer cancel() c := test.MustRunCluster(t, 1, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node0"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, ) defer c.Close() coord := c.GetPrimary() // m0 := c.GetNode(0) // m1 := c.GetNode(1) // m2 := c.GetNode(2) index := "ingest" setField := "set" timeField := "tq" _, err := coord.API.CreateIndex(ctx, index, pilosa.IndexOptions{Keys: false}) if err != nil { t.Fatalf("creating index: %v", err) } _, err = coord.API.CreateField(ctx, index, setField, pilosa.OptFieldTypeSet("none", 0)) if err != nil { t.Fatalf("creating field: %v", err) } _, err = coord.API.CreateField(ctx, index, timeField, pilosa.OptFieldTypeTime("YMD")) if err != nil { t.Fatalf("creating field: %v", err) } sampleJson := []byte(` [ { "action": "set", "records": { "2": { "set": [2], "tq": { "time": "2006-01-02T15:04:05.999999999Z", "values": [6] } }, "5": { "set": [3] }, "8": { "set": [3] }, "1": { "set": [2], "tq": { "time": "2006-01-02T15:04:05.999999999Z", "values": [3, 4] } }, "4": { "set": [3, 7] } } }, { "action": "clear", "record_ids": [ 5, 6, 7 ], "fields": [ "tq", "set" ] }, { "action": "write", "records": { "8": { "tq": { "time": "2006-01-02T15:04:05.999999999Z", "values": [3, 4] } }, "9": { "set": [7, 3] } } }, { "action": "delete", "record_ids": [ 9 ] } ] `) // just for set row 3: // first operation should set it for 4, 5, and 8. // clear operation should clear it for 5, 6, and 7, leaving it still set for 4 and 8. // the write operation should clear set for record 8, even though record 8 doesn't // contain that field in that op, because set is present in record 9, which also // gets row 3 set. but then we delete 9. // so after all that we expect Row(set=3) to be 4... sampleBuf := bytes.NewBuffer(sampleJson) qcx := coord.API.Txf().NewQcx() defer func() { if err := qcx.Finish(); err != nil { t.Fatalf("finishing qcx: %v", err) } }() err = coord.API.IngestOperations(ctx, qcx, index, sampleBuf) if err != nil { t.Fatalf("importing data: %v", err) } query := "Row(set=3)" res, err := coord.API.Query(context.Background(), &pilosa.QueryRequest{Index: index, Query: query}) if err != nil { t.Errorf("query: %v", err) } r := res.Results[0].(*pilosa.Row).Columns() if len(r) != 1 || r[0] != 4 { t.Fatalf("expected row with 4 set, got %d", r) } } // ingestBenchmarkHelper makes it easier to exclude this from benchmark computations // and profiles. func ingestBenchmarkHelper() []byte { buf := &bytes.Buffer{} buf.WriteString(`[{"action": "write", "records": {`) comma := "" now := time.Now().Add(-3840000 * time.Second) for i := 0; i < 1000000; i++ { then := now.Add(time.Duration(rand.Int63n(1234567)) * time.Second) fmt.Fprintf(buf, `%s"%d": { "set": [%d, %d], "int": %d, "tq": { "time": "%s", "values": %d } }`, comma, i, i%2, (i%4)+2, rand.Int63n(163840), then.Format(time.RFC3339), rand.Int63n(25)) comma = ", " } buf.WriteString(`}}]`) data := buf.Bytes() return data } func BenchmarkIngest(b *testing.B) { b.StopTimer() data := ingestBenchmarkHelper() ctx, cancel := context.WithCancel(context.Background()) defer cancel() c := test.MustRunCluster(b, 1, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node0"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, ) defer c.Close() coord := c.GetPrimary() m0 := c.GetNode(0) // m1 := c.GetNode(1) // m2 := c.GetNode(2) index := "ingest" setField := "set" intField := "int" tqField := "tq" _, err := coord.API.CreateIndex(ctx, index, pilosa.IndexOptions{Keys: false}) if err != nil { b.Fatalf("creating index: %v", err) } _, err = coord.API.CreateField(ctx, index, setField, pilosa.OptFieldTypeSet("none", 0)) if err != nil { b.Fatalf("creating field: %v", err) } _, err = coord.API.CreateField(ctx, index, intField, pilosa.OptFieldTypeInt(0, 163840)) if err != nil { b.Fatalf("creating field: %v", err) } _, err = coord.API.CreateField(ctx, index, tqField, pilosa.OptFieldTypeTime("YMDH")) if err != nil { b.Fatalf("creating field: %v", err) } b.ReportAllocs() b.StartTimer() for i := 0; i < b.N; i++ { qcx := m0.API.Txf().NewQcx() defer qcx.Abort() err = coord.API.IngestOperations(ctx, qcx, index, bytes.NewBuffer(data)) if err != nil { b.Fatalf("ingest: %v", err) } err = qcx.Finish() if err != nil { b.Fatalf("finish: %v", err) } } } // offsetModHasher represents a simple, mod-based hashing offset by 1. type offsetModHasher struct{} func (*offsetModHasher) Hash(key uint64, n int) int { return int(key+1) % n } func (*offsetModHasher) Name() string { return "mod" } func TestAPI_ClearFlagForImportAndImportValues(t *testing.T) { c := test.MustRunCluster(t, 1, []server.CommandOption{ server.OptCommandServerOptions( pilosa.OptServerNodeID("node0"), pilosa.OptServerClusterHasher(&offsetModHasher{}), pilosa.OptServerOpenTranslateReader(http.GetOpenTranslateReaderFunc(nil)), )}, ) defer c.Close() // plan: // 1. set a bit // 2. clear with Import() using the ImportRequest.Clear flag // 3. verifiy the clear is done. // repeat for ImportValueRequest and ImportValues() m0 := c.GetNode(0) m0api := m0.API ctx := context.Background() index := "i" fieldAcct0 := "acct0" opts := pilosa.OptFieldTypeInt(-1000, 1000) _, err := m0api.CreateIndex(ctx, index, pilosa.IndexOptions{}) if err != nil { t.Fatalf("creating index: %v", err) } _, err = m0api.CreateField(ctx, index, fieldAcct0, opts) if err != nil { t.Fatalf("creating fieldAcct0: %v", err) } iraField := "ira" // set field. iraRowID := uint64(3) _, err = m0api.CreateField(ctx, index, iraField) if err != nil { t.Fatalf("creating fieldIRA: %v", err) } acctOwnerID := uint64(78) // ColumnID shard := acctOwnerID / ShardWidth acct0bal := int64(500) ivr0 := &pilosa.ImportValueRequest{ Index: index, Field: fieldAcct0, Shard: shard, ColumnIDs: []uint64{acctOwnerID}, Values: []int64{acct0bal}, } ir0 := &pilosa.ImportRequest{ Index: index, Field: iraField, Shard: shard, ColumnIDs: []uint64{acctOwnerID}, RowIDs: []uint64{iraRowID}, } qcx := m0api.Txf().NewQcx() if err := m0api.Import(ctx, qcx, ir0.Clone()); err != nil { t.Fatal(err) } if err := m0api.ImportValue(ctx, qcx, ivr0.Clone()); err != nil { t.Fatal(err) } PanicOn(qcx.Finish()) bitIsSet := func() bool { query := fmt.Sprintf("Row(%v=%v)", iraField, iraRowID) res, err := m0api.Query(context.Background(), &pilosa.QueryRequest{Index: index, Query: query}) PanicOn(err) cols := res.Results[0].(*pilosa.Row).Columns() for i := range cols { if cols[i] == acctOwnerID { return true } } return false } if !bitIsSet() { PanicOn("IRA bit should have been set") } queryAcct := func(m0api *pilosa.API, acctOwnerID uint64, fieldAcct0, index string) (acctBal int64) { query := fmt.Sprintf("FieldValue(field=%v, column=%v)", fieldAcct0, acctOwnerID) res, err := m0api.Query(context.Background(), &pilosa.QueryRequest{Index: index, Query: query}) PanicOn(err) if len(res.Results) == 0 { return 0 } valCount := res.Results[0].(pilosa.ValCount) return valCount.Val } bal := queryAcct(m0api, acctOwnerID, fieldAcct0, index) if bal != acct0bal { PanicOn(fmt.Sprintf("expected %v, observed %v starting acct0 balance", acct0bal, bal)) } // clear the bit qcx = m0api.Txf().NewQcx() ir0.Clear = true if err := m0api.Import(ctx, qcx, ir0); err != nil { t.Fatal(err) } PanicOn(qcx.Finish()) if bitIsSet() { PanicOn("IRA bit should have been cleared") } // clear the BSI qcx = m0api.Txf().NewQcx() ivr0.Clear = true if err := m0api.ImportValue(ctx, qcx, ivr0); err != nil { t.Fatal(err) } PanicOn(qcx.Finish()) bal = queryAcct(m0api, acctOwnerID, fieldAcct0, index) if bal != 0 { PanicOn(fmt.Sprintf("expected %v, observed %v starting acct0 balance", acct0bal, 0)) } } func TestAPI_IDAlloc(t *testing.T) { c := test.MustRunCluster(t, 3) defer c.Close() primary := c.GetPrimary().API t.Run("Normal", func(t *testing.T) { key := pilosa.IDAllocKey{ Index: "normal", Key: "key", } var session [32]byte _, err := rand.Read(session[:]) if err != nil { t.Fatalf("obtaining random bytes: %v", err) } const toReserve = 2 ids, err := primary.ReserveIDs(key, session, ^uint64(0), toReserve) if err != nil { t.Fatalf("reserving IDs: %v", err) } var numIds uint64 for _, idr := range ids { numIds += (idr.Last - idr.First) + 1 } if numIds != toReserve { t.Errorf("expected %d ids but got %d: %v", toReserve, numIds, ids) } err = primary.CommitIDs(key, session, numIds) if err != nil { t.Fatalf("committing IDs: %v", err) } err = primary.ResetIDAlloc(key.Index) if err != nil { t.Fatalf("resetting ID alloc: %v", err) } }) t.Run("Offset", func(t *testing.T) { key := pilosa.IDAllocKey{ Index: "offset", Key: "key", } var session [32]byte _, err := rand.Read(session[:]) if err != nil { t.Fatalf("obtaining random bytes: %v", err) } ids, err := primary.ReserveIDs(key, session, 0, 2) if err != nil { t.Fatalf("reserving IDs: %v", err) } { var numIds uint64 for _, idr := range ids { numIds += (idr.Last - idr.First) + 1 } if numIds != 2 { t.Errorf("expected %d ids but got %d: %v", 2, numIds, ids) } } _, err = rand.Read(session[:]) if err != nil { t.Fatalf("obtaining random bytes: %v", err) } ids2, err := primary.ReserveIDs(key, session, 1, 2) if err != nil { t.Fatalf("reserving IDs with partially increased offset: %v", err) } var numIds uint64 for _, idr := range ids2 { numIds += (idr.Last - idr.First) + 1 } if numIds != 2 { t.Errorf("expected %d ids but got %d: %v", 2, numIds, ids2) } if prevEnd, newStart := ids[len(ids)-1].Last, ids2[0].First; prevEnd != newStart { t.Errorf("expected reuse of last ID (%d), but started with %d", prevEnd, newStart) } err = primary.CommitIDs(key, session, numIds) if err != nil { t.Errorf("committing IDs: %v", err) } _, err = rand.Read(session[:]) if err != nil { t.Fatalf("obtaining random bytes: %v", err) } ids3, err := primary.ReserveIDs(key, session, 0, 2) var esync pilosa.ErrIDOffsetDesync if errors.As(err, &esync) { if esync.Requested != 0 { t.Errorf("incorrect requested offset in error: provided %d but got %d", 0, esync.Requested) } if esync.Base != 3 { t.Errorf("incorrect base offset: expected %d but got %d", 3, esync.Base) } } else if err == nil { t.Errorf("successfully re-reserved at a committed offset: %v", ids3) } else { t.Fatalf("unexpected error when reserving committed IDs: %v", err) } err = primary.ResetIDAlloc(key.Index) if err != nil { t.Fatalf("resetting ID alloc: %v", err) } }) } func TestAPI_SchemaDetailsOff(t *testing.T) { cluster := test.MustRunCluster(t, 2) defer cluster.Close() cmd := cluster.GetNode(0) err := cmd.API.SetAPIOptions(pilosa.OptAPISchemaDetailsOn(false)) if err != nil { t.Fatalf("could not toggle schema details to off: %v", err) } schema, err := cmd.API.SchemaDetails(context.Background()) if err != nil { t.Fatalf("getting schema: %v", err) } for _, i := range schema { for _, f := range i.Fields { if f.Cardinality != nil { t.Fatalf("expected nil cardinality, got: %v", *f.Cardinality) } } } } type mutexCheckIndex struct { index *pilosa.Index indexName string createdAt int64 fields map[bool]mutexCheckField } type mutexCheckField struct { fieldName string field *pilosa.Field createdAt int64 } func TestAPI_MutexCheck(t *testing.T) { c := test.MustNewCluster(t, 3) for _, c := range c.Nodes { c.Config.Cluster.ReplicaN = 2 } if err := c.Start(); err != nil { t.Fatalf("starting cluster: %v", err) } defer c.Close() m0 := c.GetNode(0) nodesByID := make(map[string]*test.Command, 3) qcxsByID := make(map[string]*pilosa.Qcx, 3) for i := 0; i < 3; i++ { node := c.GetNode(i) id := node.API.NodeID() nodesByID[id] = node } indexes := make(map[bool]mutexCheckIndex) ctx := context.Background() for _, keyedIndex := range []bool{false, true} { indexName := fmt.Sprintf("i%t", keyedIndex) index, err := m0.API.CreateIndex(ctx, indexName, pilosa.IndexOptions{Keys: keyedIndex, TrackExistence: true}) if err != nil { t.Fatalf("creating index: %v", err) } if index.CreatedAt() == 0 { t.Fatal("index createdAt is empty") } indexData := mutexCheckIndex{indexName: indexName, index: index, fields: make(map[bool]mutexCheckField), createdAt: index.CreatedAt()} for _, keyedField := range []bool{false, true} { fieldName := fmt.Sprintf("f%t", keyedField) var field *pilosa.Field if keyedField { field, err = m0.API.CreateField(ctx, indexName, fieldName, pilosa.OptFieldTypeMutex(pilosa.CacheTypeNone, 0), pilosa.OptFieldKeys()) } else { field, err = m0.API.CreateField(ctx, indexName, fieldName, pilosa.OptFieldTypeMutex(pilosa.CacheTypeNone, 0)) } if err != nil { t.Fatalf("creating field: %v", err) } if field.CreatedAt() == 0 { t.Fatal("field createdAt is empty") } indexData.fields[keyedField] = mutexCheckField{fieldName: fieldName, field: field, createdAt: field.CreatedAt()} } indexes[keyedIndex] = indexData } rowIDs := []uint64{0, 1, 2, 3} colIDs := []uint64{0, 1, 2, 3} rowKeysBase := []string{"v0", "v1", "v2", "v3"} colKeysBase := []string{"c0", "c1", "c2", "c3"} const nShards = 10 // now, try the same thing for each combination of keyed/unkeyed. we // share code between keyed/unkeyed fields, but for indexes, the logic // is fundamentally different because we can't know shards in advance. indexData := indexes[false] for keyedField, fieldData := range indexData.fields { t.Run(fmt.Sprintf("%s-%s", indexData.indexName, fieldData.fieldName), func(t *testing.T) { for id, node := range nodesByID { qcxsByID[id] = node.API.Txf().NewQcx() } for shard := uint64(0); shard < nShards; shard++ { // restore row/col ID values which can get altered by imports for i := range rowIDs { rowIDs[i] = uint64(i) colIDs[i] = (shard << shardwidth.Exponent) + uint64(i) + (shard % 4) } req := &pilosa.ImportRequest{ Index: indexData.indexName, IndexCreatedAt: indexData.createdAt, Field: fieldData.fieldName, FieldCreatedAt: fieldData.createdAt, Shard: shard, ColumnIDs: colIDs, } if keyedField { req.RowKeys = rowKeysBase } else { req.RowIDs = rowIDs } nodesForShard, err := m0.API.ShardNodes(ctx, indexData.indexName, shard) if err != nil { t.Fatalf("obtaining shard list: %v", err) } if len(nodesForShard) < 1 { t.Fatalf("no nodes for shard %d", shard) } node := nodesByID[nodesForShard[0].ID] if err := node.API.Import(ctx, qcxsByID[nodesForShard[0].ID], req); err != nil { t.Fatalf("importing data: %v", err) } } // and then we break the mutex and close the Qcxs for id, node := range nodesByID { field, err := node.API.Field(ctx, indexData.indexName, fieldData.fieldName) if err != nil { t.Fatalf("requesting field %s from node %s: %v", fieldData.fieldName, id, err) } pilosa.CorruptAMutex(t, field, qcxsByID[id]) err = qcxsByID[id].Finish() if err != nil { t.Fatalf("closing out transaction on node %s: %v", id, err) } } qcx := m0.API.Txf().NewQcx() defer qcx.Abort() // first two shards of each group of 4 should have a collision in // position 1 expected := map[uint64]bool{ (0 << shardwidth.Exponent) + 1: true, (1 << shardwidth.Exponent) + 1: true, (4 << shardwidth.Exponent) + 1: true, (5 << shardwidth.Exponent) + 1: true, (8 << shardwidth.Exponent) + 1: true, (9 << shardwidth.Exponent) + 1: true, } results, err := m0.API.MutexCheck(ctx, qcx, indexData.indexName, fieldData.fieldName, true, 0) if err != nil { t.Fatalf("checking mutexes: %v", err) } if keyedField { mapped, ok := results.(map[uint64][]string) if !ok { t.Fatalf("expected map[uint64][]string, got %T", results) } seen := 0 for k, v := range mapped { seen++ if !expected[k] { t.Fatalf("expected all collisions to be 1 shards (s %% 4 in [0,1]), got %d", k) } if len(v) != 2 { t.Fatalf("expected exactly two collisions") } } if seen != len(expected) { t.Fatalf("expected exactly %d records to have collisions", len(expected)) } } else { mapped, ok := results.(map[uint64][]uint64) if !ok { t.Fatalf("expected map[uint64][]uint64, got %T", results) } seen := 0 for k, v := range mapped { seen++ if !expected[k] { t.Fatalf("expected all collisions to be 1 shards (s %% 4 in [0,1]), got %d", k) } if len(v) != 2 { t.Fatalf("expected exactly two collisions") } } if seen != len(expected) { t.Fatalf("expected exactly %d records to have collisions, got %d", len(expected), seen) } } // and let's try with no details and a limit of 3... results, err = m0.API.MutexCheck(ctx, qcx, indexData.indexName, fieldData.fieldName, false, 3) if err != nil { t.Fatalf("checking mutexes: %v", err) } mapped, ok := results.([]uint64) if !ok { t.Fatalf("expected []uint64, got %T", results) } seen := 0 for _, k := range mapped { seen++ if !expected[k] { t.Fatalf("expected all collisions to be position 1 in shards (s %% 4 in [0,1]), got %d", k) } } if seen != 3 { t.Fatalf("expected results limited to 3, got %d", seen) } }) } indexData = indexes[true] for keyedField, fieldData := range indexData.fields { t.Run(fmt.Sprintf("%s-%s", indexData.indexName, fieldData.fieldName), func(t *testing.T) { for id, node := range nodesByID { qcxsByID[id] = node.API.Txf().NewQcx() } req := &pilosa.ImportRequest{ Index: indexData.indexName, IndexCreatedAt: indexData.createdAt, Field: fieldData.fieldName, FieldCreatedAt: fieldData.createdAt, Shard: 0, // ignored when using keys } rowKeys := make([]string, 0, len(rowKeysBase)*nShards) colKeys := make([]string, 0, len(rowKeysBase)*nShards) rowIDs = rowIDs[:0] for shard := uint64(0); shard < nShards; shard++ { for i := range rowKeysBase { colKeys = append(colKeys, fmt.Sprintf("s%d-%s", shard, colKeysBase[i])) if keyedField { rowKeys = append(rowKeys, rowKeysBase[i]) } else { rowIDs = append(rowIDs, uint64(i)) } } } req.ColumnKeys = colKeys if keyedField { req.RowKeys = rowKeys } else { req.RowIDs = rowIDs } var id string var node *test.Command for id, node = range nodesByID { break } if err := node.API.Import(ctx, qcxsByID[id], req); err != nil { t.Fatalf("importing data: %v", err) } expected, err := node.API.FindIndexKeys(ctx, indexData.indexName, colKeys...) if err != nil { t.Fatalf("looking up index keys: %v", err) } for key, id := range expected { // CorruptAMutex should only corrupt things in position 1 of their // shards... if id%(1<