adding validated services? patching forcad_local.py
This commit is contained in:
127
OmCTF-2025/services/block_game/backend/codegen/ent/user/user.go
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127
OmCTF-2025/services/block_game/backend/codegen/ent/user/user.go
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// Code generated by ent, DO NOT EDIT.
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package user
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import (
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"entgo.io/ent/dialect/sql"
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"entgo.io/ent/dialect/sql/sqlgraph"
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)
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const (
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// Label holds the string label denoting the user type in the database.
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Label = "user"
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// FieldID holds the string denoting the id field in the database.
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FieldID = "id"
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// FieldUsername holds the string denoting the username field in the database.
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FieldUsername = "username"
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// FieldPassword holds the string denoting the password field in the database.
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FieldPassword = "password"
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// EdgeOwnedLevels holds the string denoting the ownedlevels edge name in mutations.
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EdgeOwnedLevels = "ownedLevels"
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// EdgeInvitedToLevels holds the string denoting the invitedtolevels edge name in mutations.
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EdgeInvitedToLevels = "invitedToLevels"
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// Table holds the table name of the user in the database.
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Table = "users"
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// OwnedLevelsTable is the table that holds the ownedLevels relation/edge.
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OwnedLevelsTable = "levels"
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// OwnedLevelsInverseTable is the table name for the Level entity.
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// It exists in this package in order to avoid circular dependency with the "level" package.
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OwnedLevelsInverseTable = "levels"
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// OwnedLevelsColumn is the table column denoting the ownedLevels relation/edge.
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OwnedLevelsColumn = "user_owned_levels"
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// InvitedToLevelsTable is the table that holds the invitedToLevels relation/edge. The primary key declared below.
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InvitedToLevelsTable = "user_invitedToLevels"
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// InvitedToLevelsInverseTable is the table name for the Level entity.
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// It exists in this package in order to avoid circular dependency with the "level" package.
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InvitedToLevelsInverseTable = "levels"
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)
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// Columns holds all SQL columns for user fields.
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var Columns = []string{
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FieldID,
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FieldUsername,
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FieldPassword,
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}
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var (
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// InvitedToLevelsPrimaryKey and InvitedToLevelsColumn2 are the table columns denoting the
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// primary key for the invitedToLevels relation (M2M).
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InvitedToLevelsPrimaryKey = []string{"user_id", "level_id"}
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)
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// ValidColumn reports if the column name is valid (part of the table columns).
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func ValidColumn(column string) bool {
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for i := range Columns {
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if column == Columns[i] {
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return true
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}
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}
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return false
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}
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var (
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// UsernameValidator is a validator for the "username" field. It is called by the builders before save.
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UsernameValidator func(string) error
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// PasswordValidator is a validator for the "password" field. It is called by the builders before save.
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PasswordValidator func(string) error
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)
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// OrderOption defines the ordering options for the User queries.
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type OrderOption func(*sql.Selector)
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// ByID orders the results by the id field.
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func ByID(opts ...sql.OrderTermOption) OrderOption {
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return sql.OrderByField(FieldID, opts...).ToFunc()
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}
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// ByUsername orders the results by the username field.
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func ByUsername(opts ...sql.OrderTermOption) OrderOption {
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return sql.OrderByField(FieldUsername, opts...).ToFunc()
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}
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// ByPassword orders the results by the password field.
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func ByPassword(opts ...sql.OrderTermOption) OrderOption {
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return sql.OrderByField(FieldPassword, opts...).ToFunc()
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}
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// ByOwnedLevelsCount orders the results by ownedLevels count.
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func ByOwnedLevelsCount(opts ...sql.OrderTermOption) OrderOption {
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return func(s *sql.Selector) {
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sqlgraph.OrderByNeighborsCount(s, newOwnedLevelsStep(), opts...)
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}
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}
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// ByOwnedLevels orders the results by ownedLevels terms.
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func ByOwnedLevels(term sql.OrderTerm, terms ...sql.OrderTerm) OrderOption {
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return func(s *sql.Selector) {
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sqlgraph.OrderByNeighborTerms(s, newOwnedLevelsStep(), append([]sql.OrderTerm{term}, terms...)...)
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}
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}
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// ByInvitedToLevelsCount orders the results by invitedToLevels count.
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func ByInvitedToLevelsCount(opts ...sql.OrderTermOption) OrderOption {
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return func(s *sql.Selector) {
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sqlgraph.OrderByNeighborsCount(s, newInvitedToLevelsStep(), opts...)
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}
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}
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// ByInvitedToLevels orders the results by invitedToLevels terms.
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func ByInvitedToLevels(term sql.OrderTerm, terms ...sql.OrderTerm) OrderOption {
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return func(s *sql.Selector) {
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sqlgraph.OrderByNeighborTerms(s, newInvitedToLevelsStep(), append([]sql.OrderTerm{term}, terms...)...)
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}
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}
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func newOwnedLevelsStep() *sqlgraph.Step {
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return sqlgraph.NewStep(
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sqlgraph.From(Table, FieldID),
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sqlgraph.To(OwnedLevelsInverseTable, FieldID),
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sqlgraph.Edge(sqlgraph.O2M, false, OwnedLevelsTable, OwnedLevelsColumn),
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)
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}
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func newInvitedToLevelsStep() *sqlgraph.Step {
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return sqlgraph.NewStep(
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sqlgraph.From(Table, FieldID),
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sqlgraph.To(InvitedToLevelsInverseTable, FieldID),
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sqlgraph.Edge(sqlgraph.M2M, false, InvitedToLevelsTable, InvitedToLevelsPrimaryKey...),
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)
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}
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255
OmCTF-2025/services/block_game/backend/codegen/ent/user/where.go
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255
OmCTF-2025/services/block_game/backend/codegen/ent/user/where.go
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@@ -0,0 +1,255 @@
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// Code generated by ent, DO NOT EDIT.
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package user
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import (
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"entgo.io/ent/dialect/sql"
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"entgo.io/ent/dialect/sql/sqlgraph"
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"omctf.ru/block-game-backend/codegen/ent/predicate"
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)
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// ID filters vertices based on their ID field.
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func ID(id int) predicate.User {
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return predicate.User(sql.FieldEQ(FieldID, id))
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}
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// IDEQ applies the EQ predicate on the ID field.
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func IDEQ(id int) predicate.User {
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return predicate.User(sql.FieldEQ(FieldID, id))
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}
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// IDNEQ applies the NEQ predicate on the ID field.
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func IDNEQ(id int) predicate.User {
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return predicate.User(sql.FieldNEQ(FieldID, id))
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}
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// IDIn applies the In predicate on the ID field.
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func IDIn(ids ...int) predicate.User {
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return predicate.User(sql.FieldIn(FieldID, ids...))
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}
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// IDNotIn applies the NotIn predicate on the ID field.
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func IDNotIn(ids ...int) predicate.User {
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return predicate.User(sql.FieldNotIn(FieldID, ids...))
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}
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// IDGT applies the GT predicate on the ID field.
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func IDGT(id int) predicate.User {
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return predicate.User(sql.FieldGT(FieldID, id))
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}
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// IDGTE applies the GTE predicate on the ID field.
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func IDGTE(id int) predicate.User {
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return predicate.User(sql.FieldGTE(FieldID, id))
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}
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// IDLT applies the LT predicate on the ID field.
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func IDLT(id int) predicate.User {
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return predicate.User(sql.FieldLT(FieldID, id))
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}
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// IDLTE applies the LTE predicate on the ID field.
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func IDLTE(id int) predicate.User {
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return predicate.User(sql.FieldLTE(FieldID, id))
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}
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// Username applies equality check predicate on the "username" field. It's identical to UsernameEQ.
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func Username(v string) predicate.User {
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return predicate.User(sql.FieldEQ(FieldUsername, v))
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}
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// Password applies equality check predicate on the "password" field. It's identical to PasswordEQ.
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func Password(v string) predicate.User {
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return predicate.User(sql.FieldEQ(FieldPassword, v))
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}
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// UsernameEQ applies the EQ predicate on the "username" field.
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func UsernameEQ(v string) predicate.User {
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return predicate.User(sql.FieldEQ(FieldUsername, v))
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}
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// UsernameNEQ applies the NEQ predicate on the "username" field.
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func UsernameNEQ(v string) predicate.User {
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return predicate.User(sql.FieldNEQ(FieldUsername, v))
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}
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// UsernameIn applies the In predicate on the "username" field.
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func UsernameIn(vs ...string) predicate.User {
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return predicate.User(sql.FieldIn(FieldUsername, vs...))
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}
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// UsernameNotIn applies the NotIn predicate on the "username" field.
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func UsernameNotIn(vs ...string) predicate.User {
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return predicate.User(sql.FieldNotIn(FieldUsername, vs...))
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}
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// UsernameGT applies the GT predicate on the "username" field.
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func UsernameGT(v string) predicate.User {
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return predicate.User(sql.FieldGT(FieldUsername, v))
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}
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// UsernameGTE applies the GTE predicate on the "username" field.
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func UsernameGTE(v string) predicate.User {
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return predicate.User(sql.FieldGTE(FieldUsername, v))
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}
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// UsernameLT applies the LT predicate on the "username" field.
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func UsernameLT(v string) predicate.User {
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return predicate.User(sql.FieldLT(FieldUsername, v))
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}
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// UsernameLTE applies the LTE predicate on the "username" field.
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func UsernameLTE(v string) predicate.User {
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return predicate.User(sql.FieldLTE(FieldUsername, v))
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}
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// UsernameContains applies the Contains predicate on the "username" field.
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func UsernameContains(v string) predicate.User {
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return predicate.User(sql.FieldContains(FieldUsername, v))
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}
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// UsernameHasPrefix applies the HasPrefix predicate on the "username" field.
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func UsernameHasPrefix(v string) predicate.User {
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return predicate.User(sql.FieldHasPrefix(FieldUsername, v))
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}
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// UsernameHasSuffix applies the HasSuffix predicate on the "username" field.
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func UsernameHasSuffix(v string) predicate.User {
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return predicate.User(sql.FieldHasSuffix(FieldUsername, v))
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}
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// UsernameEqualFold applies the EqualFold predicate on the "username" field.
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func UsernameEqualFold(v string) predicate.User {
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return predicate.User(sql.FieldEqualFold(FieldUsername, v))
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}
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// UsernameContainsFold applies the ContainsFold predicate on the "username" field.
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func UsernameContainsFold(v string) predicate.User {
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return predicate.User(sql.FieldContainsFold(FieldUsername, v))
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}
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// PasswordEQ applies the EQ predicate on the "password" field.
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func PasswordEQ(v string) predicate.User {
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return predicate.User(sql.FieldEQ(FieldPassword, v))
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}
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// PasswordNEQ applies the NEQ predicate on the "password" field.
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func PasswordNEQ(v string) predicate.User {
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return predicate.User(sql.FieldNEQ(FieldPassword, v))
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}
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// PasswordIn applies the In predicate on the "password" field.
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func PasswordIn(vs ...string) predicate.User {
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return predicate.User(sql.FieldIn(FieldPassword, vs...))
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}
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// PasswordNotIn applies the NotIn predicate on the "password" field.
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func PasswordNotIn(vs ...string) predicate.User {
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return predicate.User(sql.FieldNotIn(FieldPassword, vs...))
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}
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// PasswordGT applies the GT predicate on the "password" field.
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func PasswordGT(v string) predicate.User {
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return predicate.User(sql.FieldGT(FieldPassword, v))
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}
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// PasswordGTE applies the GTE predicate on the "password" field.
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func PasswordGTE(v string) predicate.User {
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return predicate.User(sql.FieldGTE(FieldPassword, v))
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}
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// PasswordLT applies the LT predicate on the "password" field.
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func PasswordLT(v string) predicate.User {
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return predicate.User(sql.FieldLT(FieldPassword, v))
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}
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// PasswordLTE applies the LTE predicate on the "password" field.
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func PasswordLTE(v string) predicate.User {
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return predicate.User(sql.FieldLTE(FieldPassword, v))
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}
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// PasswordContains applies the Contains predicate on the "password" field.
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func PasswordContains(v string) predicate.User {
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return predicate.User(sql.FieldContains(FieldPassword, v))
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}
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// PasswordHasPrefix applies the HasPrefix predicate on the "password" field.
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func PasswordHasPrefix(v string) predicate.User {
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return predicate.User(sql.FieldHasPrefix(FieldPassword, v))
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}
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// PasswordHasSuffix applies the HasSuffix predicate on the "password" field.
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func PasswordHasSuffix(v string) predicate.User {
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return predicate.User(sql.FieldHasSuffix(FieldPassword, v))
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}
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// PasswordEqualFold applies the EqualFold predicate on the "password" field.
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func PasswordEqualFold(v string) predicate.User {
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return predicate.User(sql.FieldEqualFold(FieldPassword, v))
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}
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// PasswordContainsFold applies the ContainsFold predicate on the "password" field.
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func PasswordContainsFold(v string) predicate.User {
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return predicate.User(sql.FieldContainsFold(FieldPassword, v))
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}
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// HasOwnedLevels applies the HasEdge predicate on the "ownedLevels" edge.
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func HasOwnedLevels() predicate.User {
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return predicate.User(func(s *sql.Selector) {
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step := sqlgraph.NewStep(
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sqlgraph.From(Table, FieldID),
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sqlgraph.Edge(sqlgraph.O2M, false, OwnedLevelsTable, OwnedLevelsColumn),
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)
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sqlgraph.HasNeighbors(s, step)
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})
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}
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// HasOwnedLevelsWith applies the HasEdge predicate on the "ownedLevels" edge with a given conditions (other predicates).
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func HasOwnedLevelsWith(preds ...predicate.Level) predicate.User {
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return predicate.User(func(s *sql.Selector) {
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step := newOwnedLevelsStep()
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sqlgraph.HasNeighborsWith(s, step, func(s *sql.Selector) {
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for _, p := range preds {
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p(s)
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}
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})
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})
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}
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// HasInvitedToLevels applies the HasEdge predicate on the "invitedToLevels" edge.
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func HasInvitedToLevels() predicate.User {
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return predicate.User(func(s *sql.Selector) {
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step := sqlgraph.NewStep(
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sqlgraph.From(Table, FieldID),
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sqlgraph.Edge(sqlgraph.M2M, false, InvitedToLevelsTable, InvitedToLevelsPrimaryKey...),
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)
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sqlgraph.HasNeighbors(s, step)
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})
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}
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// HasInvitedToLevelsWith applies the HasEdge predicate on the "invitedToLevels" edge with a given conditions (other predicates).
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func HasInvitedToLevelsWith(preds ...predicate.Level) predicate.User {
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return predicate.User(func(s *sql.Selector) {
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step := newInvitedToLevelsStep()
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sqlgraph.HasNeighborsWith(s, step, func(s *sql.Selector) {
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for _, p := range preds {
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p(s)
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}
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})
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})
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}
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// And groups predicates with the AND operator between them.
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func And(predicates ...predicate.User) predicate.User {
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return predicate.User(sql.AndPredicates(predicates...))
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}
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// Or groups predicates with the OR operator between them.
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func Or(predicates ...predicate.User) predicate.User {
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return predicate.User(sql.OrPredicates(predicates...))
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}
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// Not applies the not operator on the given predicate.
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func Not(p predicate.User) predicate.User {
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return predicate.User(sql.NotPredicates(p))
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}
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Reference in New Issue
Block a user