// 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 import ( "fmt" "math" "os" "path/filepath" "reflect" "strconv" "strings" "testing" "time" "github.com/pilosa/pilosa/v2/pql" "github.com/pilosa/pilosa/v2/roaring" "github.com/pilosa/pilosa/v2/testhook" ) // Ensure a bsiGroup can adjust to its baseValue. func TestBSIGroup_BaseValue(t *testing.T) { b0 := &bsiGroup{ Name: "b0", Type: bsiGroupTypeInt, Base: -100, BitDepth: 10, Min: -1000, Max: 1000, } b1 := &bsiGroup{ Name: "b1", Type: bsiGroupTypeInt, Base: 0, BitDepth: 8, Min: -255, Max: 255, } b2 := &bsiGroup{ Name: "b2", Type: bsiGroupTypeInt, Base: 100, BitDepth: 11, Min: math.MinInt64, Max: math.MaxInt64, } t.Run("Normal Condition", func(t *testing.T) { for i, tt := range []struct { f *bsiGroup op pql.Token val int64 expBaseValue int64 expOutOfRange bool }{ // LT {b0, pql.LT, 5, 105, false}, {b0, pql.LT, -8, 92, false}, {b0, pql.LT, -108, -8, false}, {b0, pql.LT, 1005, 1024, false}, {b0, pql.LT, 0, 100, false}, {b1, pql.LT, 5, 5, false}, {b1, pql.LT, -8, -8, false}, {b1, pql.LT, 1005, 256, false}, {b1, pql.LT, 0, 0, false}, {b2, pql.LT, 5, -95, false}, {b2, pql.LT, -8, -108, false}, {b2, pql.LT, 105, 5, false}, {b2, pql.LT, 1105, 1005, false}, // GT {b0, pql.GT, -5, 95, false}, {b0, pql.GT, 5, 105, false}, {b0, pql.GT, 905, 1005, false}, {b0, pql.GT, 0, 100, false}, {b1, pql.GT, 5, 5, false}, {b1, pql.GT, -8, -8, false}, {b1, pql.GT, 1005, 0, true}, {b1, pql.GT, 0, 0, false}, {b1, pql.GT, -300, -256, false}, {b2, pql.GT, 5, -95, false}, {b2, pql.GT, -8, -108, false}, {b2, pql.GT, 105, 5, false}, {b2, pql.GT, 1105, 1005, false}, // EQ {b0, pql.EQ, -105, -5, false}, {b0, pql.EQ, 5, 105, false}, {b0, pql.EQ, 905, 1005, false}, {b0, pql.EQ, 0, 100, false}, {b1, pql.EQ, 5, 5, false}, {b1, pql.EQ, -8, -8, false}, {b1, pql.EQ, 1005, 0, true}, {b1, pql.EQ, 0, 0, false}, {b2, pql.EQ, 5, -95, false}, {b2, pql.EQ, -8, -108, false}, {b2, pql.EQ, 105, 5, false}, {b2, pql.EQ, 1105, 1005, false}, } { t.Run(fmt.Sprint(i), func(t *testing.T) { bv, oor := tt.f.baseValue(tt.op, tt.val) if oor != tt.expOutOfRange || !reflect.DeepEqual(bv, tt.expBaseValue) { t.Errorf("%s) baseValue(%s, %v)=(%v, %v), expected (%v, %v)", tt.f.Name, tt.op, tt.val, bv, oor, tt.expBaseValue, tt.expOutOfRange) } }) } }) t.Run("Between Condition", func(t *testing.T) { for i, tt := range []struct { f *bsiGroup predMin int64 predMax int64 expBaseValueMin int64 expBaseValueMax int64 expOutOfRange bool }{ {b0, -205, -105, -105, -5, false}, {b0, -105, 80, -5, 180, false}, {b0, 5, 20, 105, 120, false}, {b0, 20, 1005, 120, 1023, false}, {b0, 1005, 2000, 0, 0, true}, {b1, -105, -5, -105, -5, false}, {b1, -5, 20, -5, 20, false}, {b1, 5, 20, 5, 20, false}, {b1, 20, 1005, 20, 255, false}, {b1, 1005, 2000, 0, 0, true}, {b1, 0, -1, 0, 0, true}, {b2, 5, 95, -95, -5, false}, {b2, 95, 120, -5, 20, false}, {b2, 105, 120, 5, 20, false}, {b2, 120, 1105, 20, 1005, false}, {b2, 1105, 2000, 1005, 1900, false}, } { min, max, oor := tt.f.baseValueBetween(tt.predMin, tt.predMax) if !reflect.DeepEqual(min, tt.expBaseValueMin) || !reflect.DeepEqual(max, tt.expBaseValueMax) || oor != tt.expOutOfRange { t.Errorf("%d. %s) baseValueBetween(%v, %v)=(%v, %v, %v), expected (%v, %v, %v)", i, tt.f.Name, tt.predMin, tt.predMax, min, max, oor, tt.expBaseValueMin, tt.expBaseValueMax, tt.expOutOfRange) } } }) } // Ensure field can open and retrieve a view. func TestField_DeleteView(t *testing.T) { f := OpenField(t, OptFieldTypeDefault()) defer f.Close() viewName := viewStandard + "_v" // Create view. view, err := f.createViewIfNotExists(viewName) if err != nil { t.Fatal(err) } else if view == nil { t.Fatal("expected view") } err = f.deleteView(viewName) if err != nil { t.Fatal(err) } if f.view(viewName) != nil { t.Fatal("view still exists in field") } // Recreate view with same name, verify that the old view was not reused. view2, err := f.createViewIfNotExists(viewName) if err != nil { t.Fatal(err) } else if view == view2 { t.Fatal("failed to create new view") } } // TestField represents a test wrapper for Field. type TestField struct { *Field parent *Index tb testing.TB } // NewTestField returns a new instance of TestField d/0. func NewTestField(t *testing.T, opts FieldOption) *TestField { path, err := testhook.TempDirInDir(t, *TempDir, "pilosa-field-") if err != nil { t.Fatal(err) } h := NewHolder(path, nil) panicOn(h.Open()) idx, err := h.CreateIndex("i", IndexOptions{}) if err != nil { panic(err) } field, err := idx.CreateField("f", opts) if err != nil { t.Fatal(err) } tf := &TestField{Field: field, parent: idx, tb: t} testhook.Cleanup(t, func() { h.Close() }) return tf } // OpenField returns a new, opened field at a temporary path. func OpenField(t *testing.T, opts FieldOption) *TestField { f := NewTestField(t, opts) return f } // Close closes the field and removes the underlying data. func (f *TestField) Close() error { if f.idx != nil { panicOn(f.idx.holder.txf.CloseIndex(f.idx)) } defer os.RemoveAll(f.Path()) return f.Field.Close() } // Reopen closes the index and reopens it. func (f *TestField) Reopen() error { name := f.Field.Name() if err := f.parent.Close(); err != nil { f.parent = nil return err } if err := f.parent.Open(); err != nil { f.parent = nil return err } f.Field = f.parent.Field(name) return nil } func (f *TestField) MustSetBit(tx Tx, row, col uint64, ts ...time.Time) { if len(ts) == 0 { _, err := f.Field.SetBit(tx, row, col, nil) if err != nil { panic(err) } } for _, t := range ts { _, err := f.Field.SetBit(tx, row, col, &t) if err != nil { panic(err) } } } // Ensure field can open and retrieve a view. func TestField_CreateViewIfNotExists(t *testing.T) { f := OpenField(t, OptFieldTypeDefault()) defer f.Close() // Create view. view, err := f.createViewIfNotExists("v") if err != nil { t.Fatal(err) } else if view == nil { t.Fatal("expected view") } // Retrieve existing view. view2, err := f.createViewIfNotExists("v") if err != nil { t.Fatal(err) } else if view != view2 { t.Fatal("view mismatch") } if view != f.view("v") { t.Fatal("view mismatch") } } func TestField_SetTimeQuantum(t *testing.T) { f := OpenField(t, OptFieldTypeTime(TimeQuantum(""))) defer f.Close() // Set & retrieve time quantum. if err := f.setTimeQuantum(TimeQuantum("YMDH")); err != nil { t.Fatal(err) } else if q := f.TimeQuantum(); q != TimeQuantum("YMDH") { t.Fatalf("unexpected quantum: %s", q) } // Reload field and verify that it is persisted. if err := f.Reopen(); err != nil { t.Fatal(err) } else if q := f.TimeQuantum(); q != TimeQuantum("YMDH") { t.Fatalf("unexpected quantum (reopen): %s", q) } } func TestField_RowTime(t *testing.T) { f := OpenField(t, OptFieldTypeTime(TimeQuantum(""))) defer f.Close() // Obtain transaction. tx := f.idx.holder.txf.NewTx(Txo{Write: writable, Index: f.idx, Field: f.Field, Shard: 0}) defer tx.Rollback() if err := f.setTimeQuantum(TimeQuantum("YMDH")); err != nil { t.Fatal(err) } f.MustSetBit(tx, 1, 1, time.Date(2010, time.January, 5, 12, 0, 0, 0, time.UTC)) f.MustSetBit(tx, 1, 2, time.Date(2011, time.January, 5, 12, 0, 0, 0, time.UTC)) f.MustSetBit(tx, 1, 3, time.Date(2010, time.February, 5, 12, 0, 0, 0, time.UTC)) f.MustSetBit(tx, 1, 4, time.Date(2010, time.January, 6, 12, 0, 0, 0, time.UTC)) f.MustSetBit(tx, 1, 5, time.Date(2010, time.January, 5, 13, 0, 0, 0, time.UTC)) panicOn(tx.Commit()) // obtain 2nd transaction to read it back. tx = f.idx.holder.txf.NewTx(Txo{Write: !writable, Index: f.idx, Field: f.Field, Shard: 0}) defer tx.Rollback() if r, err := f.RowTime(tx, 1, time.Date(2010, time.November, 5, 12, 0, 0, 0, time.UTC), "Y"); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(r.Columns(), []uint64{1, 3, 4, 5}) { t.Fatalf("wrong columns: %#v", r.Columns()) } if r, err := f.RowTime(tx, 1, time.Date(2010, time.February, 7, 13, 0, 0, 0, time.UTC), "YM"); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(r.Columns(), []uint64{3}) { t.Fatalf("wrong columns: %#v", r.Columns()) } if r, err := f.RowTime(tx, 1, time.Date(2010, time.February, 7, 13, 0, 0, 0, time.UTC), "M"); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(r.Columns(), []uint64{3}) { t.Fatalf("wrong columns: %#v", r.Columns()) } if r, err := f.RowTime(tx, 1, time.Date(2010, time.January, 5, 12, 0, 0, 0, time.UTC), "MD"); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(r.Columns(), []uint64{1, 5}) { t.Fatalf("wrong columns: %#v", r.Columns()) } if r, err := f.RowTime(tx, 1, time.Date(2010, time.January, 5, 13, 0, 0, 0, time.UTC), "MDH"); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(r.Columns(), []uint64{5}) { t.Fatalf("wrong columns: %#v", r.Columns()) } } func TestField_PersistAvailableShards(t *testing.T) { availableShardFileFlushDuration.Set(200 * time.Millisecond) //shorten the default time to force a file write f := OpenField(t, OptFieldTypeDefault()) defer f.Close() // bm represents remote available shards. bm := roaring.NewBitmap(1, 2, 3) if err := f.AddRemoteAvailableShards(bm); err != nil { t.Fatal(err) } time.Sleep(2 * availableShardFileFlushDuration.Get()) // Reload field and verify that shard data is persisted. if err := f.Reopen(); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(f.remoteAvailableShards.Slice(), bm.Slice()) { t.Fatalf("unexpected available shards (reopen). expected: %v, but got: %v", bm.Slice(), f.remoteAvailableShards.Slice()) } } func TestField_CorruptAvailableShards(t *testing.T) { availableShardFileFlushDuration.Set(200 * time.Millisecond) //shorten the default time to force a file write f := OpenField(t, OptFieldTypeDefault()) defer f.Close() // bm represents remote available shards. bm := roaring.NewBitmap(1, 2, 3) if err := f.AddRemoteAvailableShards(bm); err != nil { t.Fatal(err) } time.Sleep(2 * availableShardFileFlushDuration.Get()) path := filepath.Join(f.path, ".available.shards") avail, err := os.OpenFile(path, os.O_APPEND|os.O_WRONLY, 0644) if err != nil { t.Fatal(err) } n, err := avail.Write([]byte{23}) if err != nil || n != 1 { t.Fatal(err) } avail.Close() // Reload field and verify that shard data is persisted. if err := f.Reopen(); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(f.remoteAvailableShards.Slice(), []uint64(nil)) { t.Fatalf("unexpected available shards (reopen). expected: %#v, but got: %#v", []uint64{}, f.remoteAvailableShards.Slice()) } } func TestField_TruncatedAvailableShards(t *testing.T) { availableShardFileFlushDuration.Set(200 * time.Millisecond) //shorten the default time to force a file write f := OpenField(t, OptFieldTypeDefault()) defer f.Close() // bm represents remote available shards. bm := roaring.NewBitmap(1, 2, 3) if err := f.AddRemoteAvailableShards(bm); err != nil { t.Fatal(err) } time.Sleep(2 * availableShardFileFlushDuration.Get()) path := filepath.Join(f.path, ".available.shards") avail, err := os.OpenFile(path, os.O_TRUNC|os.O_WRONLY, 0644) if err != nil { t.Fatal(err) } avail.Close() // Reload field and verify that shard data is persisted. if err := f.Reopen(); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(f.remoteAvailableShards.Slice(), []uint64(nil)) { t.Fatalf("unexpected available shards (reopen). expected: %#v, but got: %#v", []uint64{}, f.remoteAvailableShards.Slice()) } } // Ensure that persisting available shards having a smaller footprint (for example, // when going from a bitmap to a smaller, RLE representation) succeeds. func TestField_PersistAvailableShardsFootprint(t *testing.T) { availableShardFileFlushDuration.Set(200 * time.Millisecond) //shorten the default time to force a file write f := OpenField(t, OptFieldTypeDefault()) defer f.Close() // bm represents remote available shards. bm := roaring.NewBitmap() for i := uint64(0); i < 1204; i += 2 { _, err := bm.Add(i) if err != nil { t.Fatalf("adding bits: %v", err) } } if err := f.AddRemoteAvailableShards(bm); err != nil { t.Fatal(err) } time.Sleep(2 * availableShardFileFlushDuration.Get()) // Reload field and verify that shard data is persisted. if err := f.Reopen(); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(f.remoteAvailableShards.Slice(), bm.Slice()) { t.Fatalf("unexpected available shards (reopen). expected: %v, \n but got: %v", bm.Slice(), f.remoteAvailableShards.Slice()) } bm1 := roaring.NewBitmap() for i := uint64(1); i < 1204; i += 2 { _, err := bm1.Add(i) if err != nil { t.Fatalf("adding bits: %v", err) } } if err := f.AddRemoteAvailableShards(bm1); err != nil { t.Fatal(err) } // Reload field and verify that shard data is persisted. result := bm.Union(bm1) if err := f.Reopen(); err != nil { t.Fatal(err) } else if !reflect.DeepEqual(f.remoteAvailableShards.Slice(), result.Slice()) { t.Fatalf("unexpected available shards (reopen). expected: %v, but got: %v", bm.Slice(), f.remoteAvailableShards.Slice()) } } // Ensure that FieldOptions.Base defaults to the correct value. func TestBSIGroup_BaseDefaultValue(t *testing.T) { for i, tt := range []struct { min int64 max int64 expBase int64 }{ {100, 200, 100}, {-100, 100, 0}, {-200, -100, -100}, } { fn := OptFieldTypeInt(tt.min, tt.max) // Apply functional option. fo := FieldOptions{} err := fn(&fo) if err != nil { t.Fatalf("test %d, applying functional option: %s", i, err.Error()) } if fo.Base != tt.expBase { t.Fatalf("test %d, unexpected FieldOptions.Base value. expected: %d, but got: %d", i, tt.expBase, fo.Base) } } } func TestField_ApplyOptions(t *testing.T) { for i, tt := range []struct { opts FieldOptions expOpts FieldOptions }{ { FieldOptions{ Type: FieldTypeSet, CacheType: CacheTypeNone, CacheSize: 0, }, FieldOptions{ Type: FieldTypeSet, CacheType: CacheTypeNone, CacheSize: 0, }, }, } { fld := &Field{} fld.options = *applyDefaultOptions(&FieldOptions{}) if err := fld.applyOptions(tt.opts); err != nil { t.Fatal(err) } if fld.options.CacheType != tt.expOpts.CacheType { t.Fatalf("test %d, unexpected FieldOptions.CacheType value. expected: %s, but got: %s", i, tt.expOpts.CacheType, fld.options.CacheType) } else if fld.options.CacheSize != tt.expOpts.CacheSize { t.Fatalf("test %d, unexpected FieldOptions.CacheSize value. expected: %d, but got: %d", i, tt.expOpts.CacheSize, fld.options.CacheSize) } } } // Ensure that importValue handles requiredDepth correctly. // This test sets the same column value to 1, then 8, then 1. // A previous bug was incorrectly determining bitDepth based // on the values in the import, and not taking existing values // into consideration. This would cause an import of 1/8/1 // to result in a value of 9 instead of 1. func TestBSIGroup_importValue(t *testing.T) { f := OpenField(t, OptFieldTypeInt(-100, 200)) defer f.Close() qcx := f.idx.holder.txf.NewQcx() defer qcx.Abort() options := &ImportOptions{} for i, tt := range []struct { columnIDs []uint64 values []int64 checkVal int64 expCols []uint64 }{ { []uint64{100}, []int64{1}, 1, []uint64{100}, }, { []uint64{100}, []int64{8}, 8, []uint64{100}, }, { []uint64{100}, []int64{1}, 1, []uint64{100}, }, } { if err := f.importValue(qcx, tt.columnIDs, tt.values, options); err != nil { t.Fatalf("test %d, importing values: %s", i, err.Error()) } panicOn(qcx.Finish()) if row, err := f.Range(qcx, f.name, pql.EQ, tt.checkVal); err != nil { t.Fatalf("test %d, getting range: %s", i, err.Error()) } else if !reflect.DeepEqual(row.Columns(), tt.expCols) { t.Fatalf("test %d, expected columns: %v, but got: %v", i, tt.expCols, row.Columns()) } panicOn(qcx.Finish()) } // loop } func TestIntField_MinMaxForShard(t *testing.T) { f := OpenField(t, OptFieldTypeInt(-100, 200)) defer f.Close() qcx := f.idx.holder.txf.NewQcx() defer qcx.Abort() options := &ImportOptions{} for i, test := range []struct { name string columnIDs []uint64 values []int64 expMax ValCount expMin ValCount }{ { name: "zero", columnIDs: []uint64{}, values: []int64{}, }, { name: "single", columnIDs: []uint64{1}, values: []int64{10}, expMax: ValCount{Val: 10, Count: 1}, expMin: ValCount{Val: 10, Count: 1}, }, { name: "twovals", columnIDs: []uint64{1, 2}, values: []int64{10, 20}, expMax: ValCount{Val: 20, Count: 1}, expMin: ValCount{Val: 10, Count: 1}, }, { name: "multiplecounts", columnIDs: []uint64{1, 2, 3, 4, 5}, values: []int64{10, 20, 10, 10, 20}, expMax: ValCount{Val: 20, Count: 2}, expMin: ValCount{Val: 10, Count: 3}, }, { name: "middlevals", columnIDs: []uint64{1, 2, 3, 4, 5, 6, 7, 8, 9, 10}, values: []int64{10, 20, 10, 10, 20, 11, 12, 11, 13, 11}, expMax: ValCount{Val: 20, Count: 2}, expMin: ValCount{Val: 10, Count: 3}, }, { name: "middlevals", columnIDs: []uint64{1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 100000000, 100000001}, values: []int64{10, 20, 10, 10, 20, 11, 12, 11, 13, 11, 44, 1}, expMax: ValCount{Val: 20, Count: 2}, expMin: ValCount{Val: 10, Count: 3}, }, } { t.Run(test.name+strconv.Itoa(i), func(t *testing.T) { if err := f.importValue(qcx, test.columnIDs, test.values, options); err != nil { t.Fatalf("test %d, importing values: %s", i, err.Error()) } panicOn(qcx.Finish()) shard := uint64(0) tx := f.idx.holder.txf.NewTx(Txo{Write: !writable, Index: f.idx, Field: f.Field, Shard: shard}) // Rollback below manually, because we are in a loop. maxvc, err := f.MaxForShard(tx, shard, nil) if err != nil { t.Fatalf("getting max for shard: %v", err) } if maxvc != test.expMax { t.Fatalf("max expected:\n%+v\ngot:\n%+v", test.expMax, maxvc) } minvc, err := f.MinForShard(tx, shard, nil) if err != nil { t.Fatalf("getting min for shard: %v", err) } if minvc != test.expMin { t.Fatalf("min expected:\n%+v\ngot:\n%+v", test.expMin, minvc) } tx.Rollback() }) } } // Ensure we get errors when they are expected. func TestDecimalField_MinMaxBoundaries(t *testing.T) { th := newTestHolder(t) for i, test := range []struct { scale int64 min pql.Decimal max pql.Decimal expErr bool }{ { scale: 3, min: pql.NewDecimal(math.MinInt64, 0), max: pql.NewDecimal(math.MaxInt64, 0), expErr: true, }, { scale: 3, min: pql.NewDecimal(math.MinInt64, 3), max: pql.NewDecimal(math.MaxInt64, 3), expErr: false, }, { scale: 3, min: pql.NewDecimal(44, 0), max: pql.NewDecimal(88, 0), expErr: false, }, { scale: 3, min: pql.NewDecimal(-44, 0), max: pql.NewDecimal(88, 0), expErr: false, }, { scale: 19, min: pql.NewDecimal(1, 0), max: pql.NewDecimal(2, 0), expErr: true, }, { scale: 19, min: pql.NewDecimal(math.MinInt64, 18), max: pql.NewDecimal(math.MaxInt64, 18), expErr: true, }, { scale: 0, min: pql.NewDecimal(1, 20), max: pql.NewDecimal(2, 20), expErr: true, }, { scale: 0, min: pql.NewDecimal(1, -1), max: pql.NewDecimal(2, -1), expErr: false, }, { scale: 0, min: pql.NewDecimal(1, -19), max: pql.NewDecimal(2, -19), expErr: true, }, } { t.Run("minmax"+strconv.Itoa(i), func(t *testing.T) { _, err := NewField(th, "no-path", "i", "f", OptFieldTypeDecimal(test.scale, test.min, test.max)) if err != nil && test.expErr { if !strings.Contains(err.Error(), "is not supported") { t.Fatal(err) } } else if err != nil && !test.expErr { t.Fatalf("did not expect error, but got: %s", err) } else if err == nil && test.expErr { t.Fatal("expected error, but got none") } }) } } func TestDecimalField_MinMaxForShard(t *testing.T) { f := OpenField(t, OptFieldTypeDecimal(3)) defer f.Close() qcx := f.idx.holder.txf.NewQcx() defer qcx.Abort() options := &ImportOptions{} for i, test := range []struct { name string columnIDs []uint64 values []float64 expMax ValCount expMin ValCount }{ { name: "zero", columnIDs: []uint64{}, values: []float64{}, }, { name: "single", columnIDs: []uint64{1}, values: []float64{10.1}, expMax: ValCount{DecimalVal: &pql.Decimal{Value: 10100, Scale: 3}, Count: 1}, expMin: ValCount{DecimalVal: &pql.Decimal{Value: 10100, Scale: 3}, Count: 1}, }, { name: "twovals", columnIDs: []uint64{1, 2}, values: []float64{10.1, 20.2}, expMax: ValCount{DecimalVal: &pql.Decimal{Value: 20200, Scale: 3}, Count: 1}, expMin: ValCount{DecimalVal: &pql.Decimal{Value: 10100, Scale: 3}, Count: 1}, }, { name: "multiplecounts", columnIDs: []uint64{1, 2, 3, 4, 5}, values: []float64{10.1, 20.2, 10.1, 10.1, 20.2}, expMax: ValCount{DecimalVal: &pql.Decimal{Value: 20200, Scale: 3}, Count: 2}, expMin: ValCount{DecimalVal: &pql.Decimal{Value: 10100, Scale: 3}, Count: 3}, }, { name: "middlevals", columnIDs: []uint64{1, 2, 3, 4, 5, 6, 7, 8, 9, 10}, values: []float64{10.1, 20.2, 10.1, 10.1, 20.2, 11, 12, 11, 13, 11}, expMax: ValCount{DecimalVal: &pql.Decimal{Value: 20200, Scale: 3}, Count: 2}, expMin: ValCount{DecimalVal: &pql.Decimal{Value: 10100, Scale: 3}, Count: 3}, }, { name: "another shard", columnIDs: []uint64{1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 100000000, 100000001}, values: []float64{10.1, 20.2, 10.1, 10.1, 20.2, 11, 12, 11, 13, 11, 44.39, 0.23}, expMax: ValCount{DecimalVal: &pql.Decimal{Value: 20200, Scale: 3}, Count: 2}, expMin: ValCount{DecimalVal: &pql.Decimal{Value: 10100, Scale: 3}, Count: 3}, }, } { t.Run(test.name+strconv.Itoa(i), func(t *testing.T) { if err := f.importFloatValue(qcx, test.columnIDs, test.values, options); err != nil { t.Fatalf("test %d, importing values: %s", i, err.Error()) } shard := uint64(0) tx := f.idx.holder.txf.NewTx(Txo{Write: !writable, Index: f.idx, Field: f.Field, Shard: shard}) defer tx.Rollback() maxvc, err := f.MaxForShard(tx, shard, nil) if err != nil { t.Fatalf("getting max for shard: %v", err) } if !reflect.DeepEqual(maxvc, test.expMax) { t.Fatalf("max expected:\n%+v\ngot:\n%+v", test.expMax, maxvc) } minvc, err := f.MinForShard(tx, shard, nil) if err != nil { t.Fatalf("getting min for shard: %v", err) } if !reflect.DeepEqual(minvc, test.expMin) { t.Fatalf("min expected:\n%+v\ngot:\n%+v", test.expMin, minvc) } }) } } func TestBSIGroup_TxReopenDB(t *testing.T) { f := OpenField(t, OptFieldTypeInt(-100, 200)) defer f.Close() qcx := f.idx.holder.txf.NewQcx() defer qcx.Abort() options := &ImportOptions{} for i, tt := range []struct { columnIDs []uint64 values []int64 checkVal int64 expCols []uint64 }{ { []uint64{100}, []int64{1}, 1, []uint64{100}, }, { []uint64{100}, []int64{8}, 8, []uint64{100}, }, { []uint64{100}, []int64{1}, 1, []uint64{100}, }, } { if err := f.importValue(qcx, tt.columnIDs, tt.values, options); err != nil { t.Fatalf("test %d, importing values: %s", i, err.Error()) } panicOn(qcx.Finish()) if row, err := f.Range(qcx, f.name, pql.EQ, tt.checkVal); err != nil { t.Fatalf("test %d, getting range: %s", i, err.Error()) } else if !reflect.DeepEqual(row.Columns(), tt.expCols) { t.Fatalf("test %d, expected columns: %v, but got: %v", i, tt.expCols, row.Columns()) } panicOn(qcx.Finish()) } // loop // the test: can we re-open a BSI fragment under Tx store _ = f.Reopen() }