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https://github.com/featurebasedb/featurebase.git
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We centralize the creation paths for test indexes, fields, etcetera so they all have a common path, all using standard test holders. There's still two versions, one for test.* functions and one for internal. They do share a TestHolderConfig though. Large hunks of the related APIs are simplified/streamlined. * Fragments are always created with a Field and don't need a workaround in case they don't have it. * Creation of test fragments, etc., use optional FieldOptions but don't specify names because they're all using new holders for each thing created anyway. This dramatically reduces the complexity of the calls. * test fragments are created inside test views which are created inside test fields, etcetera, so everything is using the same logic; test views aren't bypassing the other layers, they're creating themselves normally within a field. * Quite a few things now use the standard runtime/production logic instead of being custom workarounds; for instance, instead of `mustOpenMutexFragment` creating a fragment and then creating a mutex vector for it, we just create a mutex-typed field and have the normal runtime code do this. * Similarly, we now use the same field creation logic that production does, instead of having our own test-only thing that validates field names directly, so our test that we're validating field names is actually testing the runtime code. Yay. * fragSpec goes away. it was a replacement for fragProxy which existed to solve memory allocation problems but replaced them with interface overhead problems. Now we just have pointers to things and maintain valid data structures. * Many panics are now Fatal or Fatalf calls. * Some specific bugs fixed, like a cluster which was requested and then had its first node directly overwritten, which isn't valid with shared clusters. * Drop the temp-dir test flag and TempDir variable, we can just use $TMPDIR. * Drop a benchmark of "write file to disk" that was purely a benchmark of file write speed, not a benchmark of rendering the data that needs to be written. * Drop the unused "flags" parameter to fragment creation, which was only used back when we changed the BSI format. * Use holder.Txf() rather than index.Txf(). The TxFactory has to be holder-level anyway, referring to it via the index is misleading. * Test holders automatically close themselves and delete themselves, we remove various other things that thought they were responsible for deleting themselves.
328 lines
9.1 KiB
Go
328 lines
9.1 KiB
Go
// Copyright 2022 Molecula Corp. (DBA FeatureBase).
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// SPDX-License-Identifier: Apache-2.0
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package pilosa_test
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import (
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"context"
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"fmt"
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"math/rand"
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"os"
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"reflect"
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"testing"
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"time"
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pilosa "github.com/molecula/featurebase/v3"
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"github.com/molecula/featurebase/v3/disco"
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"github.com/molecula/featurebase/v3/pql"
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"github.com/molecula/featurebase/v3/test"
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"github.com/pkg/errors"
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)
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// ShardWidth is a helper reference to use when testing.
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const ShardWidth = pilosa.ShardWidth
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// Ensure index can open and retrieve a field.
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func TestIndex_CreateFieldIfNotExists(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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// Create field.
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f, err := index.CreateFieldIfNotExists("f")
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if err != nil {
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t.Fatal(err)
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} else if f == nil {
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t.Fatal("expected field")
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}
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// Retrieve existing field.
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other, err := index.CreateFieldIfNotExists("f")
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if err != nil {
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t.Fatal(err)
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} else if f.Field != other.Field {
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t.Fatal("field mismatch")
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}
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if f.Field != index.Field("f") {
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t.Fatal("field mismatch")
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}
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}
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func TestIndex_CreateField(t *testing.T) {
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// Ensure time quantum can be set appropriately on a new field.
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t.Run("TimeQuantum", func(t *testing.T) {
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t.Run("Explicit", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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// Create field with explicit quantum.
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f, err := index.CreateField("f", pilosa.OptFieldTypeTime(pilosa.TimeQuantum("YMDH"), "0"))
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if err != nil {
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t.Fatal(err)
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} else if q := f.TimeQuantum(); q != pilosa.TimeQuantum("YMDH") {
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t.Fatalf("unexpected field time quantum: %s", q)
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}
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})
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})
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// Ensure time quantum can be set appropriately on a new field.
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t.Run("TimeQuantumNoStandardView", func(t *testing.T) {
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t.Run("Explicit", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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// Create field with explicit quantum with no standard view
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f, err := index.CreateField("f", pilosa.OptFieldTypeTime(pilosa.TimeQuantum("YMDH"), "0", true))
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if err != nil {
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t.Fatal(err)
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} else if q := f.TimeQuantum(); q != pilosa.TimeQuantum("YMDH") {
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t.Fatalf("unexpected field time quantum: %s", q)
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}
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})
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})
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// Ensure field can include range columns.
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t.Run("BSIFields", func(t *testing.T) {
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t.Run("Int", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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// Create field with schema and verify it exists.
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if f, err := index.CreateField("f", pilosa.OptFieldTypeInt(-990, 1000)); err != nil {
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t.Fatal(err)
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} else if !reflect.DeepEqual(f.Type(), pilosa.FieldTypeInt) {
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t.Fatalf("unexpected type: %#v", f.Type())
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}
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// Reopen the index & verify the fields are loaded.
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if err := index.Reopen(); err != nil {
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t.Fatal(err)
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} else if f := index.Field("f"); !reflect.DeepEqual(f.Type(), pilosa.FieldTypeInt) {
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t.Fatalf("unexpected type after reopen: %#v", f.Type())
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}
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})
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t.Run("Timestamp", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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// Create field with schema and verify it exists.
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if f, err := index.CreateField("f", pilosa.OptFieldTypeTimestamp(pilosa.DefaultEpoch, pilosa.TimeUnitSeconds)); err != nil {
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t.Fatal(err)
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} else if !reflect.DeepEqual(f.Type(), pilosa.FieldTypeTimestamp) {
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t.Fatalf("unexpected type: %#v", f.Type())
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}
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// Reopen the index & verify the fields are loaded.
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if err := index.Reopen(); err != nil {
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t.Fatal(err)
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} else if f := index.Field("f"); !reflect.DeepEqual(f.Type(), pilosa.FieldTypeTimestamp) {
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t.Fatalf("unexpected type after reopen: %#v", f.Type())
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}
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})
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// TODO: These errors don't apply here. Instead, we need these tests
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// on field creation FieldOptions validation.
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/*
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t.Run("ErrRangeCacheAllowed", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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if _, err := index.CreateField("f", pilosa.FieldOptions{
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CacheType: pilosa.CacheTypeRanked,
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}); err != nil {
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t.Fatal(err)
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}
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})
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t.Run("BSIFieldsWithCacheTypeNone", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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if _, err := index.CreateField("f", pilosa.FieldOptions{
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CacheType: pilosa.CacheTypeNone,
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CacheSize: uint32(5),
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}); err != nil {
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t.Fatal(err)
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}
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})
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t.Run("ErrFieldFieldsAllowed", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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if _, err := index.CreateField("f", pilosa.FieldOptions{
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Fields: []*pilosa.Field{
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{Name: "field0", Type: pilosa.FieldTypeInt},
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},
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}); err != nil {
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t.Fatal(err)
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}
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})
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t.Run("ErrFieldNameRequired", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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if _, err := index.CreateField("f", pilosa.FieldOptions{
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Fields: []*pilosa.Field{
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{Name: "", Type: pilosa.FieldTypeInt},
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},
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}); err != pilosa.ErrFieldNameRequired {
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t.Fatal(err)
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}
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})
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t.Run("ErrInvalidFieldType", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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if _, err := index.CreateField("f", pilosa.FieldOptions{
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Fields: []*pilosa.Field{
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{Name: "field0", Type: "bad_type"},
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},
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}); err != pilosa.ErrInvalidFieldType {
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t.Fatal(err)
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}
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})
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t.Run("ErrInvalidBSIGroupRange", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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if _, err := index.CreateField("f", pilosa.FieldOptions{
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Fields: []*pilosa.Field{
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{Name: "field0", Type: pilosa.FieldTypeInt, Min: 100, Max: 50},
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},
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}); err != pilosa.ErrInvalidBSIGroupRange {
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t.Fatal(err)
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}
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})
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*/
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})
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t.Run("WithKeys", func(t *testing.T) {
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// Don't allow an int field to be created with keys=true
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t.Run("IntField", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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_, err := index.CreateField("f", pilosa.OptFieldTypeInt(-1, 1), pilosa.OptFieldKeys())
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if errors.Cause(err) != pilosa.ErrIntFieldWithKeys {
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t.Fatal("int field cannot be created with keys=true")
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}
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})
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// Don't allow a decimal field to be created with keys=true
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t.Run("DecimalField", func(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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_, err := index.CreateField("f", pilosa.OptFieldTypeDecimal(1, pql.NewDecimal(-1, 0), pql.NewDecimal(1, 0)), pilosa.OptFieldKeys())
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if errors.Cause(err) != pilosa.ErrDecimalFieldWithKeys {
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t.Fatal("decimal field cannot be created with keys=true")
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}
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})
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})
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}
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// Ensure index can delete a field.
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func TestIndex_DeleteField(t *testing.T) {
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_, index := test.MustOpenIndex(t)
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// Create field.
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if _, err := index.CreateFieldIfNotExists("f"); err != nil {
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t.Fatal(err)
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}
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// Delete field & verify it's gone.
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if err := index.DeleteField("f"); err != nil {
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t.Fatal(err)
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} else if index.Field("f") != nil {
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t.Fatal("expected nil field")
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}
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// Delete again to make sure it errors.
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err := index.DeleteField("f")
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if !isNotFoundError(err) {
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t.Fatalf("expected 'field not found' error, got: %#v", err)
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}
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}
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// Ensure index can validate its name.
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func TestIndex_InvalidName(t *testing.T) {
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holder := test.NewHolder(t).Holder
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index, err := pilosa.NewIndex(holder, holder.IndexPath("ABC"), "ABC")
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if err == nil {
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t.Fatalf("should have gotten an error on index name with caps")
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}
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if index != nil {
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t.Fatalf("unexpected index name %v", index)
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}
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}
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func isNotFoundError(err error) bool {
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root := errors.Cause(err)
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_, ok := root.(pilosa.NotFoundError)
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return ok
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}
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// Ensure that after node/cluster restart, deleting and recreating a field
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// does not cause a deadlock
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// This is a regression test after a customer experienced the same deadlock.
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// For details, check out https://molecula.atlassian.net/browse/CORE-919
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func TestIndex_RecreateFieldOnRestart(t *testing.T) {
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c := test.MustRunUnsharedCluster(t, 1)
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defer c.Close()
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// create index
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indexName := fmt.Sprintf("idx_%d", rand.Uint64())
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holder := c.GetHolder(0)
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_, err := holder.CreateIndex(indexName, pilosa.IndexOptions{
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Keys: false,
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})
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if err != nil {
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t.Fatal(err)
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}
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// create field
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fieldName := fmt.Sprintf("field_%d", rand.Uint64())
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_, err = c.GetNode(0).API.CreateField(context.Background(), indexName, fieldName)
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if err != nil {
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t.Fatal(err)
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}
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// set value
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_, err = c.GetNode(0).API.Query(context.Background(), &pilosa.QueryRequest{
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Index: indexName,
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Query: fmt.Sprintf(`Set(1, %s=1)`, fieldName),
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})
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if err != nil {
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t.Fatal(err)
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}
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// restart node
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node := c.GetNode(0)
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if err := node.Reopen(); err != nil {
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t.Fatal(err)
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}
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if err := c.AwaitState(disco.ClusterStateNormal, 10*time.Second); err != nil {
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t.Fatalf("restarting cluster: %v", err)
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}
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// delete field
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err = c.GetNode(0).API.DeleteField(context.Background(), indexName, fieldName)
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if err != nil {
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t.Fatal(err)
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}
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// recreate field
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errCh := make(chan error)
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go func() {
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_, err := c.GetNode(0).API.CreateField(context.Background(), indexName,
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fieldName)
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errCh <- err
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}()
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select {
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case <-time.After(10 * time.Second):
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// We have to use os.Exit here instead of t.Fatal or panic since
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// on panic, deferred statements are still ran. Given that
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// we have deferred cluster.Close(), it deadlocks on the same
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// issue this test is, well, is testing on.
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// With os.Exit, the process exits at that point without running the
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// deferred actions. This is more of a work-around fix to make the
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// test meaningful on timeout.
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t.Logf("recreating field took too long")
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os.Exit(1)
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case err := <-errCh:
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if err != nil {
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t.Fatal(err)
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}
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}
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}
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