OpenID Connect (OIDC) identity and OAuth 2.0 provider with pluggable connectors
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// Code generated by ent, DO NOT EDIT.
package db
import (
"context"
"fmt"
"math"
"entgo.io/ent"
"entgo.io/ent/dialect/sql"
"entgo.io/ent/dialect/sql/sqlgraph"
"entgo.io/ent/schema/field"
"github.com/dexidp/dex/storage/ent/db/keys"
"github.com/dexidp/dex/storage/ent/db/predicate"
)
// KeysQuery is the builder for querying Keys entities.
type KeysQuery struct {
config
ctx *QueryContext
order []keys.OrderOption
inters []Interceptor
predicates []predicate.Keys
// intermediate query (i.e. traversal path).
sql *sql.Selector
path func(context.Context) (*sql.Selector, error)
}
// Where adds a new predicate for the KeysQuery builder.
func (_q *KeysQuery) Where(ps ...predicate.Keys) *KeysQuery {
_q.predicates = append(_q.predicates, ps...)
return _q
}
// Limit the number of records to be returned by this query.
func (_q *KeysQuery) Limit(limit int) *KeysQuery {
_q.ctx.Limit = &limit
return _q
}
// Offset to start from.
func (_q *KeysQuery) Offset(offset int) *KeysQuery {
_q.ctx.Offset = &offset
return _q
}
// Unique configures the query builder to filter duplicate records on query.
// By default, unique is set to true, and can be disabled using this method.
func (_q *KeysQuery) Unique(unique bool) *KeysQuery {
_q.ctx.Unique = &unique
return _q
}
// Order specifies how the records should be ordered.
func (_q *KeysQuery) Order(o ...keys.OrderOption) *KeysQuery {
_q.order = append(_q.order, o...)
return _q
}
// First returns the first Keys entity from the query.
// Returns a *NotFoundError when no Keys was found.
func (_q *KeysQuery) First(ctx context.Context) (*Keys, error) {
nodes, err := _q.Limit(1).All(setContextOp(ctx, _q.ctx, ent.OpQueryFirst))
if err != nil {
return nil, err
}
if len(nodes) == 0 {
return nil, &NotFoundError{keys.Label}
}
return nodes[0], nil
}
// FirstX is like First, but panics if an error occurs.
func (_q *KeysQuery) FirstX(ctx context.Context) *Keys {
node, err := _q.First(ctx)
if err != nil && !IsNotFound(err) {
panic(err)
}
return node
}
// FirstID returns the first Keys ID from the query.
// Returns a *NotFoundError when no Keys ID was found.
func (_q *KeysQuery) FirstID(ctx context.Context) (id string, err error) {
var ids []string
if ids, err = _q.Limit(1).IDs(setContextOp(ctx, _q.ctx, ent.OpQueryFirstID)); err != nil {
return
}
if len(ids) == 0 {
err = &NotFoundError{keys.Label}
return
}
return ids[0], nil
}
// FirstIDX is like FirstID, but panics if an error occurs.
func (_q *KeysQuery) FirstIDX(ctx context.Context) string {
id, err := _q.FirstID(ctx)
if err != nil && !IsNotFound(err) {
panic(err)
}
return id
}
// Only returns a single Keys entity found by the query, ensuring it only returns one.
// Returns a *NotSingularError when more than one Keys entity is found.
// Returns a *NotFoundError when no Keys entities are found.
func (_q *KeysQuery) Only(ctx context.Context) (*Keys, error) {
nodes, err := _q.Limit(2).All(setContextOp(ctx, _q.ctx, ent.OpQueryOnly))
if err != nil {
return nil, err
}
switch len(nodes) {
case 1:
return nodes[0], nil
case 0:
return nil, &NotFoundError{keys.Label}
default:
return nil, &NotSingularError{keys.Label}
}
}
// OnlyX is like Only, but panics if an error occurs.
func (_q *KeysQuery) OnlyX(ctx context.Context) *Keys {
node, err := _q.Only(ctx)
if err != nil {
panic(err)
}
return node
}
// OnlyID is like Only, but returns the only Keys ID in the query.
// Returns a *NotSingularError when more than one Keys ID is found.
// Returns a *NotFoundError when no entities are found.
func (_q *KeysQuery) OnlyID(ctx context.Context) (id string, err error) {
var ids []string
if ids, err = _q.Limit(2).IDs(setContextOp(ctx, _q.ctx, ent.OpQueryOnlyID)); err != nil {
return
}
switch len(ids) {
case 1:
id = ids[0]
case 0:
err = &NotFoundError{keys.Label}
default:
err = &NotSingularError{keys.Label}
}
return
}
// OnlyIDX is like OnlyID, but panics if an error occurs.
func (_q *KeysQuery) OnlyIDX(ctx context.Context) string {
id, err := _q.OnlyID(ctx)
if err != nil {
panic(err)
}
return id
}
// All executes the query and returns a list of KeysSlice.
func (_q *KeysQuery) All(ctx context.Context) ([]*Keys, error) {
ctx = setContextOp(ctx, _q.ctx, ent.OpQueryAll)
if err := _q.prepareQuery(ctx); err != nil {
return nil, err
}
qr := querierAll[[]*Keys, *KeysQuery]()
return withInterceptors[[]*Keys](ctx, _q, qr, _q.inters)
}
// AllX is like All, but panics if an error occurs.
func (_q *KeysQuery) AllX(ctx context.Context) []*Keys {
nodes, err := _q.All(ctx)
if err != nil {
panic(err)
}
return nodes
}
// IDs executes the query and returns a list of Keys IDs.
func (_q *KeysQuery) IDs(ctx context.Context) (ids []string, err error) {
if _q.ctx.Unique == nil && _q.path != nil {
_q.Unique(true)
}
ctx = setContextOp(ctx, _q.ctx, ent.OpQueryIDs)
if err = _q.Select(keys.FieldID).Scan(ctx, &ids); err != nil {
return nil, err
}
return ids, nil
}
// IDsX is like IDs, but panics if an error occurs.
func (_q *KeysQuery) IDsX(ctx context.Context) []string {
ids, err := _q.IDs(ctx)
if err != nil {
panic(err)
}
return ids
}
// Count returns the count of the given query.
func (_q *KeysQuery) Count(ctx context.Context) (int, error) {
ctx = setContextOp(ctx, _q.ctx, ent.OpQueryCount)
if err := _q.prepareQuery(ctx); err != nil {
return 0, err
}
return withInterceptors[int](ctx, _q, querierCount[*KeysQuery](), _q.inters)
}
// CountX is like Count, but panics if an error occurs.
func (_q *KeysQuery) CountX(ctx context.Context) int {
count, err := _q.Count(ctx)
if err != nil {
panic(err)
}
return count
}
// Exist returns true if the query has elements in the graph.
func (_q *KeysQuery) Exist(ctx context.Context) (bool, error) {
ctx = setContextOp(ctx, _q.ctx, ent.OpQueryExist)
switch _, err := _q.FirstID(ctx); {
case IsNotFound(err):
return false, nil
case err != nil:
return false, fmt.Errorf("db: check existence: %w", err)
default:
return true, nil
}
}
// ExistX is like Exist, but panics if an error occurs.
func (_q *KeysQuery) ExistX(ctx context.Context) bool {
exist, err := _q.Exist(ctx)
if err != nil {
panic(err)
}
return exist
}
// Clone returns a duplicate of the KeysQuery builder, including all associated steps. It can be
// used to prepare common query builders and use them differently after the clone is made.
func (_q *KeysQuery) Clone() *KeysQuery {
if _q == nil {
return nil
}
return &KeysQuery{
config: _q.config,
ctx: _q.ctx.Clone(),
order: append([]keys.OrderOption{}, _q.order...),
inters: append([]Interceptor{}, _q.inters...),
predicates: append([]predicate.Keys{}, _q.predicates...),
// clone intermediate query.
sql: _q.sql.Clone(),
path: _q.path,
}
}
// GroupBy is used to group vertices by one or more fields/columns.
// It is often used with aggregate functions, like: count, max, mean, min, sum.
//
// Example:
//
// var v []struct {
// VerificationKeys []storage.VerificationKey `json:"verification_keys,omitempty"`
// Count int `json:"count,omitempty"`
// }
//
// client.Keys.Query().
// GroupBy(keys.FieldVerificationKeys).
// Aggregate(db.Count()).
// Scan(ctx, &v)
func (_q *KeysQuery) GroupBy(field string, fields ...string) *KeysGroupBy {
_q.ctx.Fields = append([]string{field}, fields...)
grbuild := &KeysGroupBy{build: _q}
grbuild.flds = &_q.ctx.Fields
grbuild.label = keys.Label
grbuild.scan = grbuild.Scan
return grbuild
}
// Select allows the selection one or more fields/columns for the given query,
// instead of selecting all fields in the entity.
//
// Example:
//
// var v []struct {
// VerificationKeys []storage.VerificationKey `json:"verification_keys,omitempty"`
// }
//
// client.Keys.Query().
// Select(keys.FieldVerificationKeys).
// Scan(ctx, &v)
func (_q *KeysQuery) Select(fields ...string) *KeysSelect {
_q.ctx.Fields = append(_q.ctx.Fields, fields...)
sbuild := &KeysSelect{KeysQuery: _q}
sbuild.label = keys.Label
sbuild.flds, sbuild.scan = &_q.ctx.Fields, sbuild.Scan
return sbuild
}
// Aggregate returns a KeysSelect configured with the given aggregations.
func (_q *KeysQuery) Aggregate(fns ...AggregateFunc) *KeysSelect {
return _q.Select().Aggregate(fns...)
}
func (_q *KeysQuery) prepareQuery(ctx context.Context) error {
for _, inter := range _q.inters {
if inter == nil {
return fmt.Errorf("db: uninitialized interceptor (forgotten import db/runtime?)")
}
if trv, ok := inter.(Traverser); ok {
if err := trv.Traverse(ctx, _q); err != nil {
return err
}
}
}
for _, f := range _q.ctx.Fields {
if !keys.ValidColumn(f) {
return &ValidationError{Name: f, err: fmt.Errorf("db: invalid field %q for query", f)}
}
}
if _q.path != nil {
prev, err := _q.path(ctx)
if err != nil {
return err
}
_q.sql = prev
}
return nil
}
func (_q *KeysQuery) sqlAll(ctx context.Context, hooks ...queryHook) ([]*Keys, error) {
var (
nodes = []*Keys{}
_spec = _q.querySpec()
)
_spec.ScanValues = func(columns []string) ([]any, error) {
return (*Keys).scanValues(nil, columns)
}
_spec.Assign = func(columns []string, values []any) error {
node := &Keys{config: _q.config}
nodes = append(nodes, node)
return node.assignValues(columns, values)
}
for i := range hooks {
hooks[i](ctx, _spec)
}
if err := sqlgraph.QueryNodes(ctx, _q.driver, _spec); err != nil {
return nil, err
}
if len(nodes) == 0 {
return nodes, nil
}
return nodes, nil
}
func (_q *KeysQuery) sqlCount(ctx context.Context) (int, error) {
_spec := _q.querySpec()
_spec.Node.Columns = _q.ctx.Fields
if len(_q.ctx.Fields) > 0 {
_spec.Unique = _q.ctx.Unique != nil && *_q.ctx.Unique
}
return sqlgraph.CountNodes(ctx, _q.driver, _spec)
}
func (_q *KeysQuery) querySpec() *sqlgraph.QuerySpec {
_spec := sqlgraph.NewQuerySpec(keys.Table, keys.Columns, sqlgraph.NewFieldSpec(keys.FieldID, field.TypeString))
_spec.From = _q.sql
if unique := _q.ctx.Unique; unique != nil {
_spec.Unique = *unique
} else if _q.path != nil {
_spec.Unique = true
}
if fields := _q.ctx.Fields; len(fields) > 0 {
_spec.Node.Columns = make([]string, 0, len(fields))
_spec.Node.Columns = append(_spec.Node.Columns, keys.FieldID)
for i := range fields {
if fields[i] != keys.FieldID {
_spec.Node.Columns = append(_spec.Node.Columns, fields[i])
}
}
}
if ps := _q.predicates; len(ps) > 0 {
_spec.Predicate = func(selector *sql.Selector) {
for i := range ps {
ps[i](selector)
}
}
}
if limit := _q.ctx.Limit; limit != nil {
_spec.Limit = *limit
}
if offset := _q.ctx.Offset; offset != nil {
_spec.Offset = *offset
}
if ps := _q.order; len(ps) > 0 {
_spec.Order = func(selector *sql.Selector) {
for i := range ps {
ps[i](selector)
}
}
}
return _spec
}
func (_q *KeysQuery) sqlQuery(ctx context.Context) *sql.Selector {
builder := sql.Dialect(_q.driver.Dialect())
t1 := builder.Table(keys.Table)
columns := _q.ctx.Fields
if len(columns) == 0 {
columns = keys.Columns
}
selector := builder.Select(t1.Columns(columns...)...).From(t1)
if _q.sql != nil {
selector = _q.sql
selector.Select(selector.Columns(columns...)...)
}
if _q.ctx.Unique != nil && *_q.ctx.Unique {
selector.Distinct()
}
for _, p := range _q.predicates {
p(selector)
}
for _, p := range _q.order {
p(selector)
}
if offset := _q.ctx.Offset; offset != nil {
// limit is mandatory for offset clause. We start
// with default value, and override it below if needed.
selector.Offset(*offset).Limit(math.MaxInt32)
}
if limit := _q.ctx.Limit; limit != nil {
selector.Limit(*limit)
}
return selector
}
// KeysGroupBy is the group-by builder for Keys entities.
type KeysGroupBy struct {
selector
build *KeysQuery
}
// Aggregate adds the given aggregation functions to the group-by query.
func (_g *KeysGroupBy) Aggregate(fns ...AggregateFunc) *KeysGroupBy {
_g.fns = append(_g.fns, fns...)
return _g
}
// Scan applies the selector query and scans the result into the given value.
func (_g *KeysGroupBy) Scan(ctx context.Context, v any) error {
ctx = setContextOp(ctx, _g.build.ctx, ent.OpQueryGroupBy)
if err := _g.build.prepareQuery(ctx); err != nil {
return err
}
return scanWithInterceptors[*KeysQuery, *KeysGroupBy](ctx, _g.build, _g, _g.build.inters, v)
}
func (_g *KeysGroupBy) sqlScan(ctx context.Context, root *KeysQuery, v any) error {
selector := root.sqlQuery(ctx).Select()
aggregation := make([]string, 0, len(_g.fns))
for _, fn := range _g.fns {
aggregation = append(aggregation, fn(selector))
}
if len(selector.SelectedColumns()) == 0 {
columns := make([]string, 0, len(*_g.flds)+len(_g.fns))
for _, f := range *_g.flds {
columns = append(columns, selector.C(f))
}
columns = append(columns, aggregation...)
selector.Select(columns...)
}
selector.GroupBy(selector.Columns(*_g.flds...)...)
if err := selector.Err(); err != nil {
return err
}
rows := &sql.Rows{}
query, args := selector.Query()
if err := _g.build.driver.Query(ctx, query, args, rows); err != nil {
return err
}
defer rows.Close()
return sql.ScanSlice(rows, v)
}
// KeysSelect is the builder for selecting fields of Keys entities.
type KeysSelect struct {
*KeysQuery
selector
}
// Aggregate adds the given aggregation functions to the selector query.
func (_s *KeysSelect) Aggregate(fns ...AggregateFunc) *KeysSelect {
_s.fns = append(_s.fns, fns...)
return _s
}
// Scan applies the selector query and scans the result into the given value.
func (_s *KeysSelect) Scan(ctx context.Context, v any) error {
ctx = setContextOp(ctx, _s.ctx, ent.OpQuerySelect)
if err := _s.prepareQuery(ctx); err != nil {
return err
}
return scanWithInterceptors[*KeysQuery, *KeysSelect](ctx, _s.KeysQuery, _s, _s.inters, v)
}
func (_s *KeysSelect) sqlScan(ctx context.Context, root *KeysQuery, v any) error {
selector := root.sqlQuery(ctx)
aggregation := make([]string, 0, len(_s.fns))
for _, fn := range _s.fns {
aggregation = append(aggregation, fn(selector))
}
switch n := len(*_s.selector.flds); {
case n == 0 && len(aggregation) > 0:
selector.Select(aggregation...)
case n != 0 && len(aggregation) > 0:
selector.AppendSelect(aggregation...)
}
rows := &sql.Rows{}
query, args := selector.Query()
if err := _s.driver.Query(ctx, query, args, rows); err != nil {
return err
}
defer rows.Close()
return sql.ScanSlice(rows, v)
}