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/home/byroehnu/easepay.easetack.com/node_modules/@prisma/client/runtime/library.d.ts
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/** * TODO * @param this */ declare function $extends(this: Client, extension: Args_2 | ((client: Client) => Client)): Client; declare type Action = keyof typeof DMMF.ModelAction | 'executeRaw' | 'queryRaw' | 'runCommandRaw'; declare type Aggregate = '_count' | '_max' | '_min' | '_avg' | '_sum'; declare type AllModelsToStringIndex<TypeMap extends TypeMapDef, Args extends Record<string, any>, K extends PropertyKey> = Args extends { [P in K]: { $allModels: infer AllModels; }; } ? { [P in K]: Record<TypeMap['meta']['modelProps'], AllModels>; } : {}; declare class AnyNull extends NullTypesEnumValue { } declare type ApplyExtensionsParams = { result: object; modelName: string; args: JsArgs; extensions: MergedExtensionsList; }; export declare type Args = InternalArgs; declare type Args_2 = Optional<UserArgs>; declare type Args_3<T, F extends Operation> = T extends { [K: symbol]: { types: { operations: { [K in F]: { args: any; }; }; }; }; } ? T[symbol]['types']['operations'][F]['args'] : never; /** * Attributes is a map from string to attribute values. * * Note: only the own enumerable keys are counted as valid attribute keys. */ declare interface Attributes { [attributeKey: string]: AttributeValue | undefined; } /** * Attribute values may be any non-nullish primitive value except an object. * * null or undefined attribute values are invalid and will result in undefined behavior. */ declare type AttributeValue = string | number | boolean | Array<null | undefined | string> | Array<null | undefined | number> | Array<null | undefined | boolean>; export declare type BaseDMMF = Pick<DMMF.Document, 'datamodel'>; declare type BatchArgs = { queries: BatchQuery[]; transaction?: { isolationLevel?: IsolationLevel; }; }; declare type BatchInternalParams = { requests: RequestParams[]; customDataProxyFetch?: CustomDataProxyFetch; }; declare type BatchQuery = { model: string | undefined; operation: string; args: JsArgs | RawQueryArgs; }; declare type BatchQueryEngineResult<T> = QueryEngineResult<T> | Error; declare type BatchQueryOptionsCb = (args: BatchQueryOptionsCbArgs) => Promise<any>; declare type BatchQueryOptionsCbArgs = { args: BatchArgs; query: (args: BatchArgs, __internalParams?: BatchInternalParams) => Promise<unknown[]>; __internalParams: BatchInternalParams; }; declare type BatchTransactionOptions = { isolationLevel?: Transaction.IsolationLevel; }; declare interface BinaryTargetsEnvValue { fromEnvVar: string | null; value: string; native?: boolean; } declare type Call<F extends Fn, P> = (F & { params: P; })['returns']; declare interface CallSite { getLocation(): LocationInFile | null; } declare type Cast<A, W> = A extends W ? A : W; declare type Client = ReturnType<typeof getPrismaClient> extends new () => infer T ? T : never; declare type ClientArg = { [MethodName in string]: unknown; }; declare type ClientArgs = { client: ClientArg; }; declare type ClientBuiltInProp = keyof DynamicClientExtensionThisBuiltin<never, never, never>; declare enum ClientEngineType { Library = "library", Binary = "binary" } declare type Compute<T> = T extends Function ? T : { [K in keyof T]: T[K]; } & unknown; declare type ComputeDeep<T> = T extends Function ? T : { [K in keyof T]: ComputeDeep<T[K]>; } & unknown; declare type ComputedField = { name: string; needs: string[]; compute: ResultArgsFieldCompute; }; declare type ComputedFieldsMap = { [fieldName: string]: ComputedField; }; declare type ConnectorType = 'mysql' | 'mongodb' | 'sqlite' | 'postgresql' | 'sqlserver' | 'jdbc:sqlserver' | 'cockroachdb'; declare interface Context { /** * Get a value from the context. * * @param key key which identifies a context value */ getValue(key: symbol): unknown; /** * Create a new context which inherits from this context and has * the given key set to the given value. * * @param key context key for which to set the value * @param value value to set for the given key */ setValue(key: symbol, value: unknown): Context; /** * Return a new context which inherits from this context but does * not contain a value for the given key. * * @param key context key for which to clear a value */ deleteValue(key: symbol): Context; } declare type Context_2<T> = T extends { [K: symbol]: { ctx: infer C; }; } ? C & T & { name?: string; } : T & { name?: string; }; declare type Count<O> = { [K in keyof O]: Count<number>; } & {}; declare type CustomDataProxyFetch = (fetch: Fetch) => Fetch; declare class DataLoader<T = unknown> { private options; batches: { [key: string]: Job[]; }; private tickActive; constructor(options: DataLoaderOptions<T>); request(request: T): Promise<any>; private dispatchBatches; get [Symbol.toStringTag](): string; } declare type DataLoaderOptions<T> = { singleLoader: (request: T) => Promise<any>; batchLoader: (request: T[]) => Promise<any[]>; batchBy: (request: T) => string | undefined; batchOrder: (requestA: T, requestB: T) => number; }; declare type Datasource = { url?: string; }; declare interface DatasourceOverwrite { name: string; url?: string; env?: string; } declare type Datasources = { [name in string]: Datasource; }; declare class DbNull extends NullTypesEnumValue { } export declare interface Debug { (namespace: string): Debugger; disable: () => string; enable: (namespace: string) => void; enabled: (namespace: string) => boolean; log: (...args: any[]) => any; formatters: Record<string, ((value: any) => string) | undefined>; } declare interface Debugger { (format: any, ...args: any[]): void; log: (...args: any[]) => any; extend: (namespace: string, delimiter?: string) => Debugger; color: string | number; enabled: boolean; namespace: string; } export declare namespace Decimal { export type Constructor = typeof Decimal; export type Instance = Decimal; export type Rounding = 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8; export type Modulo = Rounding | 9; export type Value = string | number | Decimal; // http://mikemcl.github.io/decimal.js/#constructor-properties export interface Config { precision?: number; rounding?: Rounding; toExpNeg?: number; toExpPos?: number; minE?: number; maxE?: number; crypto?: boolean; modulo?: Modulo; defaults?: boolean; } } export declare class Decimal { readonly d: number[]; readonly e: number; readonly s: number; constructor(n: Decimal.Value); absoluteValue(): Decimal; abs(): Decimal; ceil(): Decimal; clampedTo(min: Decimal.Value, max: Decimal.Value): Decimal; clamp(min: Decimal.Value, max: Decimal.Value): Decimal; comparedTo(n: Decimal.Value): number; cmp(n: Decimal.Value): number; cosine(): Decimal; cos(): Decimal; cubeRoot(): Decimal; cbrt(): Decimal; decimalPlaces(): number; dp(): number; dividedBy(n: Decimal.Value): Decimal; div(n: Decimal.Value): Decimal; dividedToIntegerBy(n: Decimal.Value): Decimal; divToInt(n: Decimal.Value): Decimal; equals(n: Decimal.Value): boolean; eq(n: Decimal.Value): boolean; floor(): Decimal; greaterThan(n: Decimal.Value): boolean; gt(n: Decimal.Value): boolean; greaterThanOrEqualTo(n: Decimal.Value): boolean; gte(n: Decimal.Value): boolean; hyperbolicCosine(): Decimal; cosh(): Decimal; hyperbolicSine(): Decimal; sinh(): Decimal; hyperbolicTangent(): Decimal; tanh(): Decimal; inverseCosine(): Decimal; acos(): Decimal; inverseHyperbolicCosine(): Decimal; acosh(): Decimal; inverseHyperbolicSine(): Decimal; asinh(): Decimal; inverseHyperbolicTangent(): Decimal; atanh(): Decimal; inverseSine(): Decimal; asin(): Decimal; inverseTangent(): Decimal; atan(): Decimal; isFinite(): boolean; isInteger(): boolean; isInt(): boolean; isNaN(): boolean; isNegative(): boolean; isNeg(): boolean; isPositive(): boolean; isPos(): boolean; isZero(): boolean; lessThan(n: Decimal.Value): boolean; lt(n: Decimal.Value): boolean; lessThanOrEqualTo(n: Decimal.Value): boolean; lte(n: Decimal.Value): boolean; logarithm(n?: Decimal.Value): Decimal; log(n?: Decimal.Value): Decimal; minus(n: Decimal.Value): Decimal; sub(n: Decimal.Value): Decimal; modulo(n: Decimal.Value): Decimal; mod(n: Decimal.Value): Decimal; naturalExponential(): Decimal; exp(): Decimal; naturalLogarithm(): Decimal; ln(): Decimal; negated(): Decimal; neg(): Decimal; plus(n: Decimal.Value): Decimal; add(n: Decimal.Value): Decimal; precision(includeZeros?: boolean): number; sd(includeZeros?: boolean): number; round(): Decimal; sine() : Decimal; sin() : Decimal; squareRoot(): Decimal; sqrt(): Decimal; tangent() : Decimal; tan() : Decimal; times(n: Decimal.Value): Decimal; mul(n: Decimal.Value) : Decimal; toBinary(significantDigits?: number): string; toBinary(significantDigits: number, rounding: Decimal.Rounding): string; toDecimalPlaces(decimalPlaces?: number): Decimal; toDecimalPlaces(decimalPlaces: number, rounding: Decimal.Rounding): Decimal; toDP(decimalPlaces?: number): Decimal; toDP(decimalPlaces: number, rounding: Decimal.Rounding): Decimal; toExponential(decimalPlaces?: number): string; toExponential(decimalPlaces: number, rounding: Decimal.Rounding): string; toFixed(decimalPlaces?: number): string; toFixed(decimalPlaces: number, rounding: Decimal.Rounding): string; toFraction(max_denominator?: Decimal.Value): Decimal[]; toHexadecimal(significantDigits?: number): string; toHexadecimal(significantDigits: number, rounding: Decimal.Rounding): string; toHex(significantDigits?: number): string; toHex(significantDigits: number, rounding?: Decimal.Rounding): string; toJSON(): string; toNearest(n: Decimal.Value, rounding?: Decimal.Rounding): Decimal; toNumber(): number; toOctal(significantDigits?: number): string; toOctal(significantDigits: number, rounding: Decimal.Rounding): string; toPower(n: Decimal.Value): Decimal; pow(n: Decimal.Value): Decimal; toPrecision(significantDigits?: number): string; toPrecision(significantDigits: number, rounding: Decimal.Rounding): string; toSignificantDigits(significantDigits?: number): Decimal; toSignificantDigits(significantDigits: number, rounding: Decimal.Rounding): Decimal; toSD(significantDigits?: number): Decimal; toSD(significantDigits: number, rounding: Decimal.Rounding): Decimal; toString(): string; truncated(): Decimal; trunc(): Decimal; valueOf(): string; static abs(n: Decimal.Value): Decimal; static acos(n: Decimal.Value): Decimal; static acosh(n: Decimal.Value): Decimal; static add(x: Decimal.Value, y: Decimal.Value): Decimal; static asin(n: Decimal.Value): Decimal; static asinh(n: Decimal.Value): Decimal; static atan(n: Decimal.Value): Decimal; static atanh(n: Decimal.Value): Decimal; static atan2(y: Decimal.Value, x: Decimal.Value): Decimal; static cbrt(n: Decimal.Value): Decimal; static ceil(n: Decimal.Value): Decimal; static clamp(n: Decimal.Value, min: Decimal.Value, max: Decimal.Value): Decimal; static clone(object?: Decimal.Config): Decimal.Constructor; static config(object: Decimal.Config): Decimal.Constructor; static cos(n: Decimal.Value): Decimal; static cosh(n: Decimal.Value): Decimal; static div(x: Decimal.Value, y: Decimal.Value): Decimal; static exp(n: Decimal.Value): Decimal; static floor(n: Decimal.Value): Decimal; static hypot(...n: Decimal.Value[]): Decimal; static isDecimal(object: any): object is Decimal; static ln(n: Decimal.Value): Decimal; static log(n: Decimal.Value, base?: Decimal.Value): Decimal; static log2(n: Decimal.Value): Decimal; static log10(n: Decimal.Value): Decimal; static max(...n: Decimal.Value[]): Decimal; static min(...n: Decimal.Value[]): Decimal; static mod(x: Decimal.Value, y: Decimal.Value): Decimal; static mul(x: Decimal.Value, y: Decimal.Value): Decimal; static noConflict(): Decimal.Constructor; // Browser only static pow(base: Decimal.Value, exponent: Decimal.Value): Decimal; static random(significantDigits?: number): Decimal; static round(n: Decimal.Value): Decimal; static set(object: Decimal.Config): Decimal.Constructor; static sign(n: Decimal.Value): number; static sin(n: Decimal.Value): Decimal; static sinh(n: Decimal.Value): Decimal; static sqrt(n: Decimal.Value): Decimal; static sub(x: Decimal.Value, y: Decimal.Value): Decimal; static sum(...n: Decimal.Value[]): Decimal; static tan(n: Decimal.Value): Decimal; static tanh(n: Decimal.Value): Decimal; static trunc(n: Decimal.Value): Decimal; static readonly default?: Decimal.Constructor; static readonly Decimal?: Decimal.Constructor; static readonly precision: number; static readonly rounding: Decimal.Rounding; static readonly toExpNeg: number; static readonly toExpPos: number; static readonly minE: number; static readonly maxE: number; static readonly crypto: boolean; static readonly modulo: Decimal.Modulo; static readonly ROUND_UP: 0; static readonly ROUND_DOWN: 1; static readonly ROUND_CEIL: 2; static readonly ROUND_FLOOR: 3; static readonly ROUND_HALF_UP: 4; static readonly ROUND_HALF_DOWN: 5; static readonly ROUND_HALF_EVEN: 6; static readonly ROUND_HALF_CEIL: 7; static readonly ROUND_HALF_FLOOR: 8; static readonly EUCLID: 9; } /** * Interface for any Decimal.js-like library * Allows us to accept Decimal.js from different * versions and some compatible alternatives */ export declare interface DecimalJsLike { d: number[]; e: number; s: number; toFixed(): string; } export declare type DefaultArgs = InternalArgs<{}, {}, {}, {}>; declare type DefaultSelection<P> = P extends Payload ? P['scalars'] & UnwrapPayload<P['composites']> : P; export declare function defineDmmfProperty(target: object, runtimeDataModel: RuntimeDataModel): void; declare function defineExtension(ext: Args_2 | ((client: Client) => Client)): (client: Client) => Client; declare const denylist: readonly ["$connect", "$disconnect", "$on", "$transaction", "$use", "$extends"]; declare interface Dictionary<T> { [key: string]: T; } declare type Dictionary_2<T> = { [key: string]: T | undefined; }; export declare namespace DMMF { export interface Document { datamodel: Datamodel; schema: Schema; mappings: Mappings; } export interface Mappings { modelOperations: ModelMapping[]; otherOperations: { read: string[]; write: string[]; }; } export interface OtherOperationMappings { read: string[]; write: string[]; } export interface DatamodelEnum { name: string; values: EnumValue[]; dbName?: string | null; documentation?: string; } export interface SchemaEnum { name: string; values: string[]; } export interface EnumValue { name: string; dbName: string | null; } export interface Datamodel { models: Model[]; enums: DatamodelEnum[]; types: Model[]; } export interface uniqueIndex { name: string; fields: string[]; } export interface PrimaryKey { name: string | null; fields: string[]; } export interface Model { name: string; dbName: string | null; fields: Field[]; uniqueFields: string[][]; uniqueIndexes: uniqueIndex[]; documentation?: string; primaryKey: PrimaryKey | null; isGenerated?: boolean; } export type FieldKind = 'scalar' | 'object' | 'enum' | 'unsupported'; export type FieldNamespace = 'model' | 'prisma'; export type FieldLocation = 'scalar' | 'inputObjectTypes' | 'outputObjectTypes' | 'enumTypes' | 'fieldRefTypes'; export interface Field { kind: FieldKind; name: string; isRequired: boolean; isList: boolean; isUnique: boolean; isId: boolean; isReadOnly: boolean; isGenerated?: boolean; isUpdatedAt?: boolean; /** * Describes the data type in the same the way it is defined in the Prisma schema: * BigInt, Boolean, Bytes, DateTime, Decimal, Float, Int, JSON, String, $ModelName */ type: string; dbName?: string | null; hasDefaultValue: boolean; default?: FieldDefault | FieldDefaultScalar | FieldDefaultScalar[]; relationFromFields?: string[]; relationToFields?: any[]; relationOnDelete?: string; relationName?: string; documentation?: string; [key: string]: any; } export interface FieldDefault { name: string; args: any[]; } export type FieldDefaultScalar = string | boolean | number; export interface Schema { rootQueryType?: string; rootMutationType?: string; inputObjectTypes: { model?: InputType[]; prisma: InputType[]; }; outputObjectTypes: { model: OutputType[]; prisma: OutputType[]; }; enumTypes: { model?: SchemaEnum[]; prisma: SchemaEnum[]; }; fieldRefTypes: { prisma?: FieldRefType[]; }; } export interface Query { name: string; args: SchemaArg[]; output: QueryOutput; } export interface QueryOutput { name: string; isRequired: boolean; isList: boolean; } export type ArgType = string | InputType | SchemaEnum; export interface SchemaArgInputType { isList: boolean; type: ArgType; location: FieldLocation; namespace?: FieldNamespace; } export interface SchemaArg { name: string; comment?: string; isNullable: boolean; isRequired: boolean; inputTypes: SchemaArgInputType[]; deprecation?: Deprecation; } export interface OutputType { name: string; fields: SchemaField[]; fieldMap?: Record<string, SchemaField>; } export interface SchemaField { name: string; isNullable?: boolean; outputType: OutputTypeRef; args: SchemaArg[]; deprecation?: Deprecation; documentation?: string; } export type TypeRefCommon = { isList: boolean; namespace?: FieldNamespace; }; export type TypeRefScalar = TypeRefCommon & { location: 'scalar'; type: string; }; export type TypeRefOutputObject = TypeRefCommon & { location: 'outputObjectTypes'; type: OutputType | string; }; export type TypeRefEnum = TypeRefCommon & { location: 'enumTypes'; type: SchemaEnum | string; }; export type OutputTypeRef = TypeRefScalar | TypeRefOutputObject | TypeRefEnum; export interface Deprecation { sinceVersion: string; reason: string; plannedRemovalVersion?: string; } export interface InputType { name: string; constraints: { maxNumFields: number | null; minNumFields: number | null; fields?: string[]; }; meta?: { source?: string; }; fields: SchemaArg[]; fieldMap?: Record<string, SchemaArg>; } export interface FieldRefType { name: string; allowTypes: FieldRefAllowType[]; fields: SchemaArg[]; } export type FieldRefAllowType = TypeRefScalar | TypeRefEnum; export interface ModelMapping { model: string; plural: string; findUnique?: string | null; findUniqueOrThrow?: string | null; findFirst?: string | null; findFirstOrThrow?: string | null; findMany?: string | null; create?: string | null; createMany?: string | null; update?: string | null; updateMany?: string | null; upsert?: string | null; delete?: string | null; deleteMany?: string | null; aggregate?: string | null; groupBy?: string | null; count?: string | null; findRaw?: string | null; aggregateRaw?: string | null; } export enum ModelAction { findUnique = "findUnique", findUniqueOrThrow = "findUniqueOrThrow", findFirst = "findFirst", findFirstOrThrow = "findFirstOrThrow", findMany = "findMany", create = "create", createMany = "createMany", update = "update", updateMany = "updateMany", upsert = "upsert", delete = "delete", deleteMany = "deleteMany", groupBy = "groupBy", count = "count", aggregate = "aggregate", findRaw = "findRaw", aggregateRaw = "aggregateRaw" } } export declare interface DMMFClass extends DMMFDatamodelHelper, DMMFMappingsHelper, DMMFSchemaHelper { } export declare class DMMFClass { constructor(dmmf: DMMF.Document); } declare class DMMFDatamodelHelper implements Pick<DMMF.Document, 'datamodel'> { datamodel: DMMF.Datamodel; datamodelEnumMap: Dictionary<DMMF.DatamodelEnum>; modelMap: Dictionary<DMMF.Model>; typeMap: Dictionary<DMMF.Model>; typeAndModelMap: Dictionary<DMMF.Model>; constructor({ datamodel }: Pick<DMMF.Document, 'datamodel'>); getDatamodelEnumMap(): Dictionary<DMMF.DatamodelEnum>; getModelMap(): Dictionary<DMMF.Model>; getTypeMap(): Dictionary<DMMF.Model>; getTypeModelMap(): Dictionary<DMMF.Model>; } declare class DMMFMappingsHelper implements Pick<DMMF.Document, 'mappings'> { mappings: DMMF.Mappings; mappingsMap: Dictionary<DMMF.ModelMapping>; constructor({ mappings }: Pick<DMMF.Document, 'mappings'>); getMappingsMap(): Dictionary<DMMF.ModelMapping>; getOtherOperationNames(): string[]; } declare class DMMFSchemaHelper implements Pick<DMMF.Document, 'schema'> { schema: DMMF.Schema; queryType: DMMF.OutputType; mutationType: DMMF.OutputType; outputTypes: { model: DMMF.OutputType[]; prisma: DMMF.OutputType[]; }; outputTypeMap: Dictionary<DMMF.OutputType>; inputObjectTypes: { model?: DMMF.InputType[]; prisma: DMMF.InputType[]; }; inputTypeMap: Dictionary<DMMF.InputType>; enumMap: Dictionary<DMMF.SchemaEnum>; rootFieldMap: Dictionary<DMMF.SchemaField>; constructor({ schema }: Pick<DMMF.Document, 'schema'>); get [Symbol.toStringTag](): string; outputTypeToMergedOutputType: (outputType: DMMF.OutputType) => DMMF.OutputType; resolveOutputTypes(): void; resolveInputTypes(): void; resolveFieldArgumentTypes(): void; getQueryType(): DMMF.OutputType; getMutationType(): DMMF.OutputType; getOutputTypes(): { model: DMMF.OutputType[]; prisma: DMMF.OutputType[]; }; getEnumMap(): Dictionary<DMMF.SchemaEnum>; hasEnumInNamespace(enumName: string, namespace: 'prisma' | 'model'): boolean; getMergedOutputTypeMap(): Dictionary<DMMF.OutputType>; getInputTypeMap(): Dictionary<DMMF.InputType>; getRootFieldMap(): Dictionary<DMMF.SchemaField>; } /** Client */ export declare type DynamicClientExtensionArgs<C_, TypeMap extends TypeMapDef, TypeMapCb extends TypeMapCbDef, ExtArgs extends Record<string, any>> = { [P in keyof C_]: unknown; } & { [K: symbol]: { ctx: Optional<DynamicClientExtensionThis<TypeMap, TypeMapCb, ExtArgs>, ITXClientDenyList>; }; }; export declare type DynamicClientExtensionThis<TypeMap extends TypeMapDef, TypeMapCb extends TypeMapCbDef, ExtArgs extends Record<string, any>> = { [P in keyof ExtArgs['client']]: Return<ExtArgs['client'][P]>; } & { [P in Exclude<TypeMap['meta']['modelProps'], keyof ExtArgs['client']>]: DynamicModelExtensionThis<TypeMap, ModelKey<TypeMap, P>, ExtArgs>; } & { [P in Exclude<keyof TypeMap['other']['operations'], keyof ExtArgs['client']>]: <R = GetResult_2<TypeMap['other']['payload'], any, P & Operation>>(...args: ToTuple<TypeMap['other']['operations'][P]['args']>) => PrismaPromise<R>; } & { [P in Exclude<ClientBuiltInProp, keyof ExtArgs['client']>]: DynamicClientExtensionThisBuiltin<TypeMap, TypeMapCb, ExtArgs>[P]; }; declare type DynamicClientExtensionThisBuiltin<TypeMap extends TypeMapDef, TypeMapCb extends TypeMapCbDef, ExtArgs extends Record<string, any>> = { $extends: ExtendsHook<'extends', TypeMapCb, ExtArgs>; $transaction<P extends PrismaPromise<any>[]>(arg: [...P], options?: { isolationLevel?: TypeMap['meta']['txIsolationLevel']; }): Promise<UnwrapTuple<P>>; $transaction<R>(fn: (client: Omit<DynamicClientExtensionThis<TypeMap, TypeMapCb, ExtArgs>, ITXClientDenyList>) => Promise<R>, options?: { maxWait?: number; timeout?: number; isolationLevel?: TypeMap['meta']['txIsolationLevel']; }): Promise<R>; $disconnect(): Promise<void>; $connect(): Promise<void>; }; /** Model */ export declare type DynamicModelExtensionArgs<M_, TypeMap extends TypeMapDef, ExtArgs extends Record<string, any>> = { [K in keyof M_]: K extends '$allModels' ? { [P in keyof M_[K]]?: unknown; } & { [K: symbol]: {}; } : K extends TypeMap['meta']['modelProps'] ? { [P in keyof M_[K]]?: unknown; } & { [K: symbol]: { ctx: DynamicModelExtensionThis<TypeMap, ModelKey<TypeMap, K>, ExtArgs> & { name: ModelKey<TypeMap, K>; }; }; } : never; }; declare type DynamicModelExtensionFluentApi<TypeMap extends TypeMapDef, M extends PropertyKey, P extends PropertyKey, Null> = { [K in keyof TypeMap['model'][M]['payload']['objects']]: <A>(args?: Exact<A, Path<TypeMap['model'][M]['operations'][P]['args']['select'], [K]>>) => PrismaPromise<Path<DynamicModelExtensionFnResultBase<TypeMap, M, { select: { [P in K]: A; }; }, P>, [K]> | Null> & DynamicModelExtensionFluentApi<TypeMap, (TypeMap['model'][M]['payload']['objects'][K] & {})['name'], P, Null>; }; declare type DynamicModelExtensionFnResult<TypeMap extends TypeMapDef, M extends PropertyKey, A, P extends PropertyKey, Null = DynamicModelExtensionFnResultNull<P>> = P extends FluentOperation ? DynamicModelExtensionFluentApi<TypeMap, M, P, Null> & PrismaPromise<DynamicModelExtensionFnResultBase<TypeMap, M, A, P> | Null> : PrismaPromise<DynamicModelExtensionFnResultBase<TypeMap, M, A, P>>; declare type DynamicModelExtensionFnResultBase<TypeMap extends TypeMapDef, M extends PropertyKey, A, P extends PropertyKey> = GetResult_2<TypeMap['model'][M]['payload'], A, P & Operation>; declare type DynamicModelExtensionFnResultNull<P extends PropertyKey> = P extends 'findUnique' | 'findFirst' ? null : never; declare type DynamicModelExtensionOperationFn<TypeMap extends TypeMapDef, M extends PropertyKey, P extends PropertyKey> = {} extends TypeMap['model'][M]['operations'][P]['args'] ? <A>(args?: Exact<A, TypeMap['model'][M]['operations'][P]['args']>) => DynamicModelExtensionFnResult<TypeMap, M, A, P> : <A>(args: Exact<A, TypeMap['model'][M]['operations'][P]['args']>) => DynamicModelExtensionFnResult<TypeMap, M, A, P>; export declare type DynamicModelExtensionThis<TypeMap extends TypeMapDef, M extends PropertyKey, ExtArgs extends Record<string, any>> = { [P in keyof ExtArgs['model'][Uncapitalize<M & string>]]: Return<ExtArgs['model'][Uncapitalize<M & string>][P]>; } & { [P in Exclude<keyof TypeMap['model'][M]['operations'], keyof ExtArgs['model'][Uncapitalize<M & string>]>]: DynamicModelExtensionOperationFn<TypeMap, M, P>; } & { [P in Exclude<'fields', keyof ExtArgs['model'][Uncapitalize<M & string>]>]: TypeMap['model'][M]['fields']; } & { [K: symbol]: { types: TypeMap['model'][M]; }; }; /** Query */ export declare type DynamicQueryExtensionArgs<Q_, TypeMap extends TypeMapDef> = { [K in keyof Q_]: K extends '$allOperations' ? (args: { model?: string; operation: string; args: any; query: (args: any) => PrismaPromise<any>; }) => Promise<any> : K extends '$allModels' ? { [P in keyof Q_[K] | keyof TypeMap['model'][keyof TypeMap['model']]['operations'] | '$allOperations']?: P extends '$allOperations' ? DynamicQueryExtensionCb<TypeMap, 'model', keyof TypeMap['model'], keyof TypeMap['model'][keyof TypeMap['model']]['operations']> : P extends keyof TypeMap['model'][keyof TypeMap['model']]['operations'] ? DynamicQueryExtensionCb<TypeMap, 'model', keyof TypeMap['model'], P> : never; } : K extends TypeMap['meta']['modelProps'] ? { [P in keyof Q_[K] | keyof TypeMap['model'][ModelKey<TypeMap, K>]['operations'] | '$allOperations']?: P extends '$allOperations' ? DynamicQueryExtensionCb<TypeMap, 'model', ModelKey<TypeMap, K>, keyof TypeMap['model'][ModelKey<TypeMap, K>]['operations']> : P extends keyof TypeMap['model'][ModelKey<TypeMap, K>]['operations'] ? DynamicQueryExtensionCb<TypeMap, 'model', ModelKey<TypeMap, K>, P> : never; } : K extends keyof TypeMap['other']['operations'] ? DynamicQueryExtensionCb<[TypeMap], 0, 'other', K> : never; }; declare type DynamicQueryExtensionCb<TypeMap extends TypeMapDef, _0 extends PropertyKey, _1 extends PropertyKey, _2 extends PropertyKey> = <A extends DynamicQueryExtensionCbArgs<TypeMap, _0, _1, _2>>(args: A) => Promise<TypeMap[_0][_1][_2]['result']>; declare type DynamicQueryExtensionCbArgs<TypeMap extends TypeMapDef, _0 extends PropertyKey, _1 extends PropertyKey, _2 extends PropertyKey> = (_1 extends unknown ? _2 extends unknown ? { args: DynamicQueryExtensionCbArgsArgs<TypeMap, _0, _1, _2>; model: _0 extends 0 ? undefined : _1; operation: _2; query: <A extends DynamicQueryExtensionCbArgsArgs<TypeMap, _0, _1, _2>>(args: A) => PrismaPromise<TypeMap[_0][_1]['operations'][_2]['result']>; } : never : never) & { query: (args: DynamicQueryExtensionCbArgsArgs<TypeMap, _0, _1, _2>) => PrismaPromise<TypeMap[_0][_1]['operations'][_2]['result']>; }; declare type DynamicQueryExtensionCbArgsArgs<TypeMap extends TypeMapDef, _0 extends PropertyKey, _1 extends PropertyKey, _2 extends PropertyKey> = _2 extends '$queryRaw' | '$executeRaw' ? Sql : TypeMap[_0][_1]['operations'][_2]['args']; /** Result */ export declare type DynamicResultExtensionArgs<R_, TypeMap extends TypeMapDef> = { [K in keyof R_]: { [P in keyof R_[K]]?: { needs?: DynamicResultExtensionNeeds<TypeMap, ModelKey<TypeMap, K>, R_[K][P]>; compute(data: DynamicResultExtensionData<TypeMap, ModelKey<TypeMap, K>, R_[K][P]>): any; }; }; }; declare type DynamicResultExtensionData<TypeMap extends TypeMapDef, M extends PropertyKey, S> = GetFindResult<TypeMap['model'][M]['payload'], { select: S; }>; declare type DynamicResultExtensionNeeds<TypeMap extends TypeMapDef, M extends PropertyKey, S> = { [K in keyof S]: K extends keyof TypeMap['model'][M]['payload']['scalars'] ? S[K] : never; } & { [N in keyof TypeMap['model'][M]['payload']['scalars']]?: boolean; }; /** * Placeholder value for "no text". */ export declare const empty: Sql; declare type EmptyToUnknown<T> = T; declare abstract class Engine<InteractiveTransactionPayload = unknown> { abstract on(event: EngineEventType, listener: (args?: any) => any): void; abstract start(): Promise<void>; abstract stop(): Promise<void>; abstract version(forceRun?: boolean): Promise<string> | string; abstract request<T>(query: JsonQuery, options: RequestOptions<InteractiveTransactionPayload>): Promise<QueryEngineResult<T>>; abstract requestBatch<T>(queries: JsonQuery[], options: RequestBatchOptions<InteractiveTransactionPayload>): Promise<BatchQueryEngineResult<T>[]>; abstract transaction(action: 'start', headers: Transaction.TransactionHeaders, options?: Transaction.Options): Promise<Transaction.InteractiveTransactionInfo<unknown>>; abstract transaction(action: 'commit', headers: Transaction.TransactionHeaders, info: Transaction.InteractiveTransactionInfo<unknown>): Promise<void>; abstract transaction(action: 'rollback', headers: Transaction.TransactionHeaders, info: Transaction.InteractiveTransactionInfo<unknown>): Promise<void>; abstract metrics(options: MetricsOptionsJson): Promise<Metrics>; abstract metrics(options: MetricsOptionsPrometheus): Promise<string>; } declare interface EngineConfig { cwd: string; dirname: string; datamodelPath: string; enableDebugLogs?: boolean; allowTriggerPanic?: boolean; prismaPath?: string; generator?: GeneratorConfig; datasources?: DatasourceOverwrite[]; showColors?: boolean; logQueries?: boolean; logLevel?: 'info' | 'warn'; env: Record<string, string>; flags?: string[]; clientVersion?: string; previewFeatures?: string[]; engineEndpoint?: string; activeProvider?: string; logEmitter: EventEmitter; /** * The contents of the schema encoded into a string * @remarks only used for the purpose of data proxy */ inlineSchema?: string; /** * The contents of the datasource url saved in a string * @remarks only used for the purpose of data proxy */ inlineDatasources?: Record<string, InlineDatasource>; /** * The string hash that was produced for a given schema * @remarks only used for the purpose of data proxy */ inlineSchemaHash?: string; /** * The helper for interaction with OTEL tracing * @remarks enabling is determined by the client and @prisma/instrumentation package */ tracingHelper: TracingHelper; /** * Information about whether we have not found a schema.prisma file in the * default location, and that we fell back to finding the schema.prisma file * in the current working directory. This usually means it has been bundled. */ isBundled?: boolean; } declare type EngineEventType = 'query' | 'info' | 'warn' | 'error' | 'beforeExit'; declare type EngineSpan = { span: boolean; name: string; trace_id: string; span_id: string; parent_span_id: string; start_time: [number, number]; end_time: [number, number]; attributes?: Record<string, string>; links?: { trace_id: string; span_id: string; }[]; }; declare type EngineSpanEvent = { span: boolean; spans: EngineSpan[]; }; declare interface EnvValue { fromEnvVar: null | string; value: null | string; } declare interface EnvValue_2 { fromEnvVar: string | null; value: string | null; } declare type ErrorFormat = 'pretty' | 'colorless' | 'minimal'; declare interface ErrorWithBatchIndex { batchRequestIdx?: number; } declare interface EventEmitter { on(event: string, listener: (...args: any[]) => void): unknown; emit(event: string, args?: any): boolean; } declare type Exact<A, W> = (W extends A ? { [K in keyof W]: K extends keyof A ? Exact<A[K], W[K]> : never; } : W) | (A extends Narrowable ? A : never); /** * Defines Exception. * * string or an object with one of (message or name or code) and optional stack */ declare type Exception = ExceptionWithCode | ExceptionWithMessage | ExceptionWithName | string; declare interface ExceptionWithCode { code: string | number; name?: string; message?: string; stack?: string; } declare interface ExceptionWithMessage { code?: string | number; message: string; name?: string; stack?: string; } declare interface ExceptionWithName { code?: string | number; message?: string; name: string; stack?: string; } declare type ExtendedSpanOptions = SpanOptions & { /** The name of the span */ name: string; internal?: boolean; middleware?: boolean; /** Whether it propagates context (?=true) */ active?: boolean; /** The context to append the span to */ context?: Context; }; /** $extends, defineExtension */ export declare interface ExtendsHook<Variant extends 'extends' | 'define', TypeMapCb extends TypeMapCbDef, ExtArgs extends Record<string, any>, TypeMap extends TypeMapDef = Call<TypeMapCb, { extArgs: ExtArgs; }>> { extArgs: ExtArgs; <R_ extends { [K in TypeMap['meta']['modelProps'] | '$allModels']?: unknown; }, R, M_ extends { [K in TypeMap['meta']['modelProps'] | '$allModels']?: unknown; }, M, Q_ extends { [K in TypeMap['meta']['modelProps'] | '$allModels' | keyof TypeMap['other']['operations'] | '$allOperations']?: unknown; }, C_ extends { [K in string]?: unknown; }, C, Args extends InternalArgs = InternalArgs<R, M, {}, C>, MergedArgs extends InternalArgs = MergeExtArgs<TypeMap, ExtArgs, Args>>(extension: ((client: DynamicClientExtensionThis<TypeMap, TypeMapCb, ExtArgs>) => { $extends: { extArgs: Args; }; }) | { name?: string; query?: DynamicQueryExtensionArgs<Q_, TypeMap>; result?: DynamicResultExtensionArgs<R_, TypeMap> & R; model?: DynamicModelExtensionArgs<M_, TypeMap, ExtArgs> & M; client?: DynamicClientExtensionArgs<C_, TypeMap, TypeMapCb, ExtArgs> & C; }): { 'extends': DynamicClientExtensionThis<Call<TypeMapCb, { extArgs: MergedArgs; }>, TypeMapCb, MergedArgs>; 'define': (client: any) => { $extends: { extArgs: Args; }; }; }[Variant]; } declare namespace Extensions { export { defineExtension, getExtensionContext } } export { Extensions } declare namespace Extensions_2 { export { InternalArgs, Args, DefaultArgs, GetResult, GetSelect, DynamicQueryExtensionArgs, DynamicResultExtensionArgs, DynamicModelExtensionArgs, DynamicModelExtensionThis, DynamicClientExtensionArgs, DynamicClientExtensionThis, ExtendsHook, UserArgs } } declare type Fetch = typeof nodeFetch; /** * A reference to a specific field of a specific model */ export declare interface FieldRef<Model, FieldType> { readonly modelName: Model; readonly name: string; readonly typeName: FieldType; readonly isList: boolean; } declare type FluentOperation = 'findUnique' | 'findUniqueOrThrow' | 'findFirst' | 'findFirstOrThrow' | 'create' | 'update' | 'upsert' | 'delete'; declare interface Fn<Params = unknown, Returns = unknown> { params: Params; returns: Returns; } declare interface GeneratorConfig { name: string; output: EnvValue | null; isCustomOutput?: boolean; provider: EnvValue; config: Dictionary_2<string | string[]>; binaryTargets: BinaryTargetsEnvValue[]; previewFeatures: string[]; } declare type GetAggregateResult<P extends Payload, A> = { [K in keyof A as K extends Aggregate ? K : never]: K extends '_count' ? A[K] extends true ? number : Count<A[K]> : { [J in keyof A[K] & string]: P['scalars'][J] | null; }; }; declare type GetBatchResult = { count: number; }; declare type GetCountResult<A> = A extends { select: infer S; } ? (S extends true ? number : Count<S>) : number; declare function getExtensionContext<T>(that: T): Context_2<T>; declare type GetFindResult<P extends Payload, A> = {} extends A ? DefaultSelection<P> : A extends { select: infer S; } & Record<string, unknown> | { include: infer S; } & Record<string, unknown> ? S extends undefined ? DefaultSelection<P> : { [K in keyof S as S[K] extends false | undefined | null ? never : K]: S[K] extends object ? P extends SelectablePayloadFields<K, (infer O)[]> ? O extends Payload ? GetFindResult<O, S[K]>[] : never : P extends SelectablePayloadFields<K, infer O | null> ? O extends Payload ? GetFindResult<O, S[K]> | SelectField<P, K> & null : never : K extends '_count' ? Count<GetFindResult<P, S[K]>> : never : P extends SelectablePayloadFields<K, (infer O)[]> ? O extends Payload ? DefaultSelection<O>[] : never : P extends SelectablePayloadFields<K, infer O | null> ? O extends Payload ? DefaultSelection<O> | SelectField<P, K> & null : never : P extends { scalars: { [k in K]: infer O; }; } ? O : K extends '_count' ? Count<P['objects']> : never; } & (A extends { include: any; } & Record<string, unknown> ? DefaultSelection<P> : unknown) : DefaultSelection<P>; declare type GetGroupByResult<P extends Payload, A> = A extends { by: string[]; } ? Array<GetAggregateResult<P, A> & { [K in A['by'][number]]: P['scalars'][K]; }> : never; export declare function getPrismaClient(config: GetPrismaClientConfig): { new (optionsArg?: PrismaClientOptions): { _runtimeDataModel: RuntimeDataModel; _engine: Engine; _fetcher: RequestHandler; _connectionPromise?: Promise<any> | undefined; _disconnectionPromise?: Promise<any> | undefined; _engineConfig: EngineConfig; _clientVersion: string; _errorFormat: ErrorFormat; _clientEngineType: ClientEngineType; _tracingHelper: TracingHelper; _metrics: MetricsClient; _middlewares: MiddlewareHandler<QueryMiddleware>; _previewFeatures: string[]; _activeProvider: string; _dataProxy: boolean; _extensions: MergedExtensionsList; _createPrismaPromise: PrismaPromiseFactory; getEngine(): Engine; /** * Hook a middleware into the client * @param middleware to hook */ $use(middleware: QueryMiddleware): void; $on(eventType: EngineEventType, callback: (event: any) => void): void; $connect(): Promise<void>; /** * @private */ _runDisconnect(): Promise<void>; /** * Disconnect from the database */ $disconnect(): Promise<void>; /** * Executes a raw query and always returns a number */ $executeRawInternal(transaction: PrismaPromiseTransaction | undefined, clientMethod: string, args: RawQueryArgs, middlewareArgsMapper?: MiddlewareArgsMapper<unknown, unknown>): Promise<number>; /** * Executes a raw query provided through a safe tag function * @see https://github.com/prisma/prisma/issues/7142 * * @param query * @param values * @returns */ $executeRaw(query: TemplateStringsArray | Sql, ...values: any[]): PrismaPromise_2<unknown>; /** * Unsafe counterpart of `$executeRaw` that is susceptible to SQL injections * @see https://github.com/prisma/prisma/issues/7142 * * @param query * @param values * @returns */ $executeRawUnsafe(query: string, ...values: RawValue[]): PrismaPromise_2<unknown>; /** * Executes a raw command only for MongoDB * * @param command * @returns */ $runCommandRaw(command: Record<string, JsInputValue>): PrismaPromise_2<unknown>; /** * Executes a raw query and returns selected data */ $queryRawInternal(transaction: PrismaPromiseTransaction | undefined, clientMethod: string, args: RawQueryArgs, middlewareArgsMapper?: MiddlewareArgsMapper<unknown, unknown>): Promise<unknown[]>; /** * Executes a raw query provided through a safe tag function * @see https://github.com/prisma/prisma/issues/7142 * * @param query * @param values * @returns */ $queryRaw(query: TemplateStringsArray | Sql, ...values: any[]): PrismaPromise_2<unknown>; /** * Unsafe counterpart of `$queryRaw` that is susceptible to SQL injections * @see https://github.com/prisma/prisma/issues/7142 * * @param query * @param values * @returns */ $queryRawUnsafe(query: string, ...values: RawValue[]): PrismaPromise_2<unknown>; /** * Execute a batch of requests in a transaction * @param requests * @param options */ _transactionWithArray({ promises, options, }: { promises: Array<PrismaPromise_2<any>>; options?: BatchTransactionOptions | undefined; }): Promise<any>; /** * Perform a long-running transaction * @param callback * @param options * @returns */ _transactionWithCallback({ callback, options, }: { callback: (client: Client) => Promise<unknown>; options?: Options_2 | undefined; }): Promise<unknown>; _createItxClient(transaction: PrismaPromiseInteractiveTransaction): any; /** * Execute queries within a transaction * @param input a callback or a query list * @param options to set timeouts (callback) * @returns */ $transaction(input: any, options?: any): Promise<any>; /** * Runs the middlewares over params before executing a request * @param internalParams * @returns */ _request(internalParams: InternalRequestParams): Promise<any>; _executeRequest({ args, clientMethod, dataPath, callsite, action, model, argsMapper, transaction, unpacker, otelParentCtx, customDataProxyFetch, }: InternalRequestParams): Promise<any>; readonly $metrics: MetricsClient; /** * Shortcut for checking a preview flag * @param feature preview flag * @returns */ _hasPreviewFlag(feature: string): boolean; $extends: typeof $extends; readonly [Symbol.toStringTag]: string; }; }; /** * Config that is stored into the generated client. When the generated client is * loaded, this same config is passed to {@link getPrismaClient} which creates a * closure with that config around a non-instantiated [[PrismaClient]]. */ declare type GetPrismaClientConfig = { runtimeDataModel: RuntimeDataModel; generator?: GeneratorConfig; sqliteDatasourceOverrides?: DatasourceOverwrite[]; relativeEnvPaths: { rootEnvPath?: string | null; schemaEnvPath?: string | null; }; relativePath: string; dirname: string; filename?: string; clientVersion: string; engineVersion?: string; datasourceNames: string[]; activeProvider: string; /** * True when `--data-proxy` is passed to `prisma generate` * If enabled, we disregard the generator config engineType. * It means that `--data-proxy` binds you to the Data Proxy. */ dataProxy: boolean; /** * The contents of the schema encoded into a string * @remarks only used for the purpose of data proxy */ inlineSchema?: string; /** * A special env object just for the data proxy edge runtime. * Allows bundlers to inject their own env variables (Vercel). * Allows platforms to declare global variables as env (Workers). * @remarks only used for the purpose of data proxy */ injectableEdgeEnv?: LoadedEnv; /** * The contents of the datasource url saved in a string. * This can either be an env var name or connection string. * It is needed by the client to connect to the Data Proxy. * @remarks only used for the purpose of data proxy */ inlineDatasources?: InlineDatasources; /** * The string hash that was produced for a given schema * @remarks only used for the purpose of data proxy */ inlineSchemaHash?: string; /** * A marker to indicate that the client was not generated via `prisma * generate` but was generated via `generate --postinstall` script instead. * @remarks used to error for Vercel/Netlify for schema caching issues */ postinstall?: boolean; /** * Information about the CI where the Prisma Client has been generated. The * name of the CI environment is stored at generation time because CI * information is not always available at runtime. Moreover, the edge client * has no notion of environment variables, so this works around that. * @remarks used to error for Vercel/Netlify for schema caching issues */ ciName?: string; /** * Information about whether we have not found a schema.prisma file in the * default location, and that we fell back to finding the schema.prisma file * in the current working directory. This usually means it has been bundled. */ isBundled?: boolean; }; export declare type GetResult<Base extends Record<any, any>, R extends Args['result'][string], KR extends keyof R = string extends keyof R ? never : keyof R> = { [K in KR | keyof Base]: K extends KR ? R[K] extends (() => { compute: (...args: any) => infer C; }) ? C : never : Base[K]; }; declare type GetResult_2<P extends Payload, A, O extends Operation = 'findUniqueOrThrow'> = { findUnique: GetFindResult<P, A> | null; findUniqueOrThrow: GetFindResult<P, A>; findFirst: GetFindResult<P, A> | null; findFirstOrThrow: GetFindResult<P, A>; findMany: GetFindResult<P, A>[]; create: GetFindResult<P, A>; createMany: GetBatchResult; update: GetFindResult<P, A>; updateMany: GetBatchResult; upsert: GetFindResult<P, A>; delete: GetFindResult<P, A>; deleteMany: GetBatchResult; aggregate: GetAggregateResult<P, A>; count: GetCountResult<A>; groupBy: GetGroupByResult<P, A>; $queryRaw: unknown; $executeRaw: number; $queryRawUnsafe: unknown; $executeRawUnsafe: number; $runCommandRaw: JsonObject; findRaw: JsonObject; aggregateRaw: JsonObject; }[O]; export declare type GetSelect<Base extends Record<any, any>, R extends Args['result'][string], KR extends keyof R = string extends keyof R ? never : keyof R> = { [K in KR | keyof Base]?: K extends KR ? boolean : Base[K]; }; declare type HandleErrorParams = { args: JsArgs; error: any; clientMethod: string; callsite?: CallSite; transaction?: PrismaPromiseTransaction; }; declare type Headers_2 = Record<string, string | string[] | undefined>; /** * Defines High-Resolution Time. * * The first number, HrTime[0], is UNIX Epoch time in seconds since 00:00:00 UTC on 1 January 1970. * The second number, HrTime[1], represents the partial second elapsed since Unix Epoch time represented by first number in nanoseconds. * For example, 2021-01-01T12:30:10.150Z in UNIX Epoch time in milliseconds is represented as 1609504210150. * The first number is calculated by converting and truncating the Epoch time in milliseconds to seconds: * HrTime[0] = Math.trunc(1609504210150 / 1000) = 1609504210. * The second number is calculated by converting the digits after the decimal point of the subtraction, (1609504210150 / 1000) - HrTime[0], to nanoseconds: * HrTime[1] = Number((1609504210.150 - HrTime[0]).toFixed(9)) * 1e9 = 150000000. * This is represented in HrTime format as [1609504210, 150000000]. */ declare type HrTime = [number, number]; declare type InlineDatasource = { url: NullableEnvValue; }; declare type InlineDatasources = { [name in InternalDatasource['name']]: { url: InternalDatasource['url']; }; }; declare type InteractiveTransactionInfo<Payload = unknown> = { /** * Transaction ID returned by the query engine. */ id: string; /** * Arbitrary payload the meaning of which depends on the `Engine` implementation. * For example, `DataProxyEngine` needs to associate different API endpoints with transactions. * In `LibraryEngine` and `BinaryEngine` it is currently not used. */ payload: Payload; }; declare type InteractiveTransactionOptions<Payload> = Transaction.InteractiveTransactionInfo<Payload>; export declare type InternalArgs<R = { [K in string]: { [K in string]: unknown; }; }, M = { [K in string]: { [K in string]: unknown; }; }, Q = { [K in string]: { [K in string]: unknown; }; }, C = { [K in string]: unknown; }> = { result: { [K in keyof R]: { [P in keyof R[K]]: () => R[K][P]; }; }; model: { [K in keyof M]: { [P in keyof M[K]]: () => M[K][P]; }; }; query: { [K in keyof Q]: { [P in keyof Q[K]]: () => Q[K][P]; }; }; client: { [K in keyof C]: () => C[K]; }; }; declare interface InternalDatasource { name: string; activeProvider: ConnectorType; provider: ConnectorType; url: EnvValue_2; config: any; } declare type InternalRequestParams = { /** * The original client method being called. * Even though the rootField / operation can be changed, * this method stays as it is, as it's what the user's * code looks like */ clientMethod: string; /** * Name of js model that triggered the request. Might be used * for warnings or error messages */ jsModelName?: string; callsite?: CallSite; transaction?: PrismaPromiseTransaction; unpacker?: Unpacker; otelParentCtx?: Context; /** Used to "desugar" a user input into an "expanded" one */ argsMapper?: (args?: UserArgs_2) => UserArgs_2; /** Used to convert args for middleware and back */ middlewareArgsMapper?: MiddlewareArgsMapper<unknown, unknown>; /** Used for Accelerate client extension via Data Proxy */ customDataProxyFetch?: (fetch: Fetch) => Fetch; } & Omit<QueryMiddlewareParams, 'runInTransaction'>; declare enum IsolationLevel { ReadUncommitted = "ReadUncommitted", ReadCommitted = "ReadCommitted", RepeatableRead = "RepeatableRead", Snapshot = "Snapshot", Serializable = "Serializable" } export declare type ITXClientDenyList = (typeof denylist)[number]; declare interface Job { resolve: (data: any) => void; reject: (data: any) => void; request: any; } /** * Create a SQL query for a list of values. */ export declare function join(values: RawValue[], separator?: string, prefix?: string, suffix?: string): Sql; declare type JsArgs = { select?: Selection_2; include?: Selection_2; [argName: string]: JsInputValue; }; declare type JsInputValue = null | undefined | string | number | boolean | bigint | Uint8Array | Date | DecimalJsLike | ObjectEnumValue | RawParameters | FieldRef<string, unknown> | JsInputValue[] | { [key: string]: JsInputValue; }; declare type JsonArgumentValue = number | string | boolean | null | JsonTaggedValue | JsonArgumentValue[] | { [key: string]: JsonArgumentValue; }; declare interface JsonArray extends Array<JsonValue> { } declare type JsonFieldSelection = { arguments?: Record<string, JsonArgumentValue>; selection: JsonSelectionSet; }; declare class JsonNull extends NullTypesEnumValue { } declare type JsonObject = { [Key in string]?: JsonValue; }; declare type JsonQuery = { modelName?: string; action: JsonQueryAction; query: JsonFieldSelection; }; declare type JsonQueryAction = 'findUnique' | 'findUniqueOrThrow' | 'findFirst' | 'findFirstOrThrow' | 'findMany' | 'createOne' | 'createMany' | 'updateOne' | 'updateMany' | 'deleteOne' | 'deleteMany' | 'upsertOne' | 'aggregate' | 'groupBy' | 'executeRaw' | 'queryRaw' | 'runCommandRaw' | 'findRaw' | 'aggregateRaw'; declare type JsonSelectionSet = { $scalars?: boolean; $composites?: boolean; } & { [fieldName: string]: boolean | JsonFieldSelection; }; declare type JsonTaggedValue = { $type: 'Json'; value: string; }; declare type JsonValue = string | number | boolean | JsonObject | JsonArray | null; declare type KnownErrorParams = { code: string; clientVersion: string; meta?: Record<string, unknown>; batchRequestIdx?: number; }; declare type LegacyExact<A, W = unknown> = W extends unknown ? A extends LegacyNarrowable ? Cast<A, W> : Cast<{ [K in keyof A]: K extends keyof W ? LegacyExact<A[K], W[K]> : never; }, { [K in keyof W]: K extends keyof A ? LegacyExact<A[K], W[K]> : W[K]; }> : never; declare type LegacyNarrowable = string | number | boolean | bigint; /** * A pointer from the current {@link Span} to another span in the same trace or * in a different trace. * Few examples of Link usage. * 1. Batch Processing: A batch of elements may contain elements associated * with one or more traces/spans. Since there can only be one parent * SpanContext, Link is used to keep reference to SpanContext of all * elements in the batch. * 2. Public Endpoint: A SpanContext in incoming client request on a public * endpoint is untrusted from service provider perspective. In such case it * is advisable to start a new trace with appropriate sampling decision. * However, it is desirable to associate incoming SpanContext to new trace * initiated on service provider side so two traces (from Client and from * Service Provider) can be correlated. */ declare interface Link { /** The {@link SpanContext} of a linked span. */ context: SpanContext; /** A set of {@link SpanAttributes} on the link. */ attributes?: SpanAttributes; /** Count of attributes of the link that were dropped due to collection limits */ droppedAttributesCount?: number; } declare type LoadedEnv = { message?: string; parsed: { [x: string]: string; }; } | undefined; declare type LocationInFile = { fileName: string; lineNumber: number | null; columnNumber: number | null; }; declare type LogDefinition = { level: LogLevel; emit: 'stdout' | 'event'; }; declare type LogLevel = 'info' | 'query' | 'warn' | 'error'; /** * Generates more strict variant of an enum which, unlike regular enum, * throws on non-existing property access. This can be useful in following situations: * - we have an API, that accepts both `undefined` and `SomeEnumType` as an input * - enum values are generated dynamically from DMMF. * * In that case, if using normal enums and no compile-time typechecking, using non-existing property * will result in `undefined` value being used, which will be accepted. Using strict enum * in this case will help to have a runtime exception, telling you that you are probably doing something wrong. * * Note: if you need to check for existence of a value in the enum you can still use either * `in` operator or `hasOwnProperty` function. * * @param definition * @returns */ export declare function makeStrictEnum<T extends Record<PropertyKey, string | number>>(definition: T): T; /** * Class that holds the list of all extensions, applied to particular instance, * as well as resolved versions of the components that need to apply on * different levels. Main idea of this class: avoid re-resolving as much of the * stuff as possible when new extensions are added while also delaying the * resolve until the point it is actually needed. For example, computed fields * of the model won't be resolved unless the model is actually queried. Neither * adding extensions with `client` component only cause other components to * recompute. */ declare class MergedExtensionsList { private head?; private constructor(); static empty(): MergedExtensionsList; static single(extension: Args_2): MergedExtensionsList; isEmpty(): boolean; append(extension: Args_2): MergedExtensionsList; getAllComputedFields(dmmfModelName: string): ComputedFieldsMap | undefined; getAllClientExtensions(): ClientArg | undefined; getAllModelExtensions(dmmfModelName: string): ModelArg | undefined; getAllQueryCallbacks(jsModelName: string, operation: string): any; getAllBatchQueryCallbacks(): BatchQueryOptionsCb[]; } declare type MergeExtArgs<TypeMap extends TypeMapDef, ExtArgs extends Record<any, any>, Args extends Record<any, any>> = ComputeDeep<ExtArgs & Args & AllModelsToStringIndex<TypeMap, Args, 'result'> & AllModelsToStringIndex<TypeMap, Args, 'model'>>; export declare type Metric<T> = { key: string; value: T; labels: Record<string, string>; description: string; }; export declare type MetricHistogram = { buckets: MetricHistogramBucket[]; sum: number; count: number; }; export declare type MetricHistogramBucket = [maxValue: number, count: number]; export declare type Metrics = { counters: Metric<number>[]; gauges: Metric<number>[]; histograms: Metric<MetricHistogram>[]; }; export declare class MetricsClient { private _engine; constructor(engine: Engine); /** * Returns all metrics gathered up to this point in prometheus format. * Result of this call can be exposed directly to prometheus scraping endpoint * * @param options * @returns */ prometheus(options?: MetricsOptions): Promise<string>; /** * Returns all metrics gathered up to this point in prometheus format. * * @param options * @returns */ json(options?: MetricsOptions): Promise<Metrics>; } declare type MetricsOptions = { /** * Labels to add to every metrics in key-value format */ globalLabels?: Record<string, string>; }; declare type MetricsOptionsCommon = { globalLabels?: Record<string, string>; }; declare type MetricsOptionsJson = { format: 'json'; } & MetricsOptionsCommon; declare type MetricsOptionsPrometheus = { format: 'prometheus'; } & MetricsOptionsCommon; declare type MiddlewareArgsMapper<RequestArgs, MiddlewareArgs> = { requestArgsToMiddlewareArgs(requestArgs: RequestArgs): MiddlewareArgs; middlewareArgsToRequestArgs(middlewareArgs: MiddlewareArgs): RequestArgs; }; declare class MiddlewareHandler<M extends Function> { private _middlewares; use(middleware: M): void; get(id: number): M | undefined; has(id: number): boolean; length(): number; } declare type ModelArg = { [MethodName in string]: unknown; }; declare type ModelArgs = { model: { [ModelName in string]: ModelArg; }; }; declare type ModelKey<TypeMap extends TypeMapDef, M extends PropertyKey> = M extends keyof TypeMap['model'] ? M : Capitalize<M & string>; declare type ModelQueryOptionsCb = (args: ModelQueryOptionsCbArgs) => Promise<any>; declare type ModelQueryOptionsCbArgs = { model: string; operation: string; args: JsArgs; query: (args: JsArgs) => Promise<unknown>; }; declare type NameArgs = { name?: string; }; declare type Narrow<A> = { [K in keyof A]: A[K] extends Function ? A[K] : Narrow<A[K]>; } | (A extends Narrowable ? A : never); declare type Narrowable = string | number | bigint | boolean | []; declare type NeverToUnknown<T> = [T] extends [never] ? unknown : T; /** * Imitates `fetch` via `https` to only suit our needs, it does nothing more. * This is because we cannot bundle `node-fetch` as it uses many other Node.js * utilities, while also bloating our bundles. This approach is much leaner. * @param url * @param options * @returns */ declare function nodeFetch(url: string, options?: RequestOptions_2): Promise<RequestResponse>; /** * @deprecated Please don´t rely on type checks to this error anymore. * This will become a regular `PrismaClientKnownRequestError` with code `P2025` * in the future major version of the client. * Instead of `error instanceof Prisma.NotFoundError` use `error.code === "P2025"`. */ export declare class NotFoundError extends PrismaClientKnownRequestError { constructor(message: string, clientVersion: string); } declare type NullableEnvValue = { fromEnvVar: string | null; value?: string | null; }; declare class NullTypesEnumValue extends ObjectEnumValue { _getNamespace(): string; } /** * Base class for unique values of object-valued enums. */ declare abstract class ObjectEnumValue { constructor(arg?: symbol); abstract _getNamespace(): string; _getName(): string; toString(): string; } export declare const objectEnumValues: { classes: { DbNull: typeof DbNull; JsonNull: typeof JsonNull; AnyNull: typeof AnyNull; }; instances: { DbNull: DbNull; JsonNull: JsonNull; AnyNull: AnyNull; }; }; declare type Omit_2<T, K extends string | number | symbol> = { [P in keyof T as P extends K ? never : P]: T[P]; }; declare type Operation = 'findFirst' | 'findFirstOrThrow' | 'findUnique' | 'findUniqueOrThrow' | 'findMany' | 'create' | 'createMany' | 'update' | 'updateMany' | 'upsert' | 'delete' | 'deleteMany' | 'aggregate' | 'count' | 'groupBy' | '$queryRaw' | '$executeRaw' | '$queryRawUnsafe' | '$executeRawUnsafe' | 'findRaw' | 'aggregateRaw' | '$runCommandRaw'; declare type Optional<O, K extends keyof any = keyof O> = { [P in K & keyof O]?: O[P]; } & { [P in Exclude<keyof O, K>]: O[P]; }; declare type OptionalFlat<T> = { [K in keyof T]?: T[K]; }; declare type OptionalKeys<O> = { [K in keyof O]-?: {} extends Pick_2<O, K> ? K : never; }[keyof O]; declare type Options = { clientVersion: string; }; /** * maxWait ?= 2000 * timeout ?= 5000 */ declare type Options_2 = { maxWait?: number; timeout?: number; isolationLevel?: IsolationLevel; }; declare type PatchFlat<O1, O2> = O1 & Omit_2<O2, keyof O1>; declare type Path<O, P, Default = never> = O extends unknown ? P extends [infer K, ...infer R] ? K extends keyof O ? Path<O[K], R> : Default : O : never; export declare type Payload = { scalars: { [ScalarName in string]: unknown; }; objects: { [ObjectName in string]: unknown; }; composites: { [CompositeName in string]: unknown; }; }; declare type Payload_2<T, F extends Operation = never> = T extends { [K: symbol]: { types: { payload: any; }; }; } ? T[symbol]['types']['payload'] : never; declare type PayloadToResult<P, O extends Record_2<any, any> = RenameAndNestPayloadKeys<P>> = { [K in keyof O]?: O[K][K] extends any[] ? PayloadToResult<O[K][K][number]>[] : O[K][K] extends object ? PayloadToResult<O[K][K]> : O[K][K]; }; declare type Pick_2<T, K extends string | number | symbol> = { [P in keyof T as P extends K ? P : never]: T[P]; }; export declare class PrismaClientInitializationError extends Error { clientVersion: string; errorCode?: string; retryable?: boolean; constructor(message: string, clientVersion: string, errorCode?: string); get [Symbol.toStringTag](): string; } export declare class PrismaClientKnownRequestError extends Error implements ErrorWithBatchIndex { code: string; meta?: Record<string, unknown>; clientVersion: string; batchRequestIdx?: number; constructor(message: string, { code, clientVersion, meta, batchRequestIdx }: KnownErrorParams); get [Symbol.toStringTag](): string; } export declare interface PrismaClientOptions { /** * Overwrites the datasource url from your schema.prisma file */ datasources?: Datasources; /** * @default "colorless" */ errorFormat?: ErrorFormat; /** * @example * \`\`\` * // Defaults to stdout * log: ['query', 'info', 'warn'] * * // Emit as events * log: [ * { emit: 'stdout', level: 'query' }, * { emit: 'stdout', level: 'info' }, * { emit: 'stdout', level: 'warn' } * ] * \`\`\` * Read more in our [docs](https://www.prisma.io/docs/reference/tools-and-interfaces/prisma-client/logging#the-log-option). */ log?: Array<LogLevel | LogDefinition>; /** * @internal * You probably don't want to use this. \`__internal\` is used by internal tooling. */ __internal?: { debug?: boolean; engine?: { cwd?: string; binaryPath?: string; endpoint?: string; allowTriggerPanic?: boolean; }; }; } export declare class PrismaClientRustPanicError extends Error { clientVersion: string; constructor(message: string, clientVersion: string); get [Symbol.toStringTag](): string; } export declare class PrismaClientUnknownRequestError extends Error implements ErrorWithBatchIndex { clientVersion: string; batchRequestIdx?: number; constructor(message: string, { clientVersion, batchRequestIdx }: UnknownErrorParams); get [Symbol.toStringTag](): string; } export declare class PrismaClientValidationError extends Error { name: string; clientVersion: string; constructor(message: string, { clientVersion }: Options); get [Symbol.toStringTag](): string; } export declare interface PrismaPromise<T> extends Promise<T> { [Symbol.toStringTag]: 'PrismaPromise'; } /** * Prisma's `Promise` that is backwards-compatible. All additions on top of the * original `Promise` are optional so that it can be backwards-compatible. * @see [[createPrismaPromise]] */ declare interface PrismaPromise_2<A> extends Promise<A> { /** * Extension of the original `.then` function * @param onfulfilled same as regular promises * @param onrejected same as regular promises * @param transaction transaction options */ then<R1 = A, R2 = never>(onfulfilled?: (value: A) => R1 | PromiseLike<R1>, onrejected?: (error: unknown) => R2 | PromiseLike<R2>, transaction?: PrismaPromiseTransaction): Promise<R1 | R2>; /** * Extension of the original `.catch` function * @param onrejected same as regular promises * @param transaction transaction options */ catch<R = never>(onrejected?: ((reason: any) => R | PromiseLike<R>) | undefined | null, transaction?: PrismaPromiseTransaction): Promise<A | R>; /** * Extension of the original `.finally` function * @param onfinally same as regular promises * @param transaction transaction options */ finally(onfinally?: (() => void) | undefined | null, transaction?: PrismaPromiseTransaction): Promise<A>; /** * Called when executing a batch of regular tx * @param transaction transaction options for batch tx */ requestTransaction?(transaction: PrismaPromiseBatchTransaction): PromiseLike<unknown>; } declare type PrismaPromiseBatchTransaction = { kind: 'batch'; id: number; isolationLevel?: IsolationLevel; index: number; lock: PromiseLike<void>; }; declare type PrismaPromiseCallback = (transaction?: PrismaPromiseTransaction) => PrismaPromise_2<unknown>; /** * Creates a [[PrismaPromise]]. It is Prisma's implementation of `Promise` which * is essentially a proxy for `Promise`. All the transaction-compatible client * methods return one, this allows for pre-preparing queries without executing * them until `.then` is called. It's the foundation of Prisma's query batching. * @param callback that will be wrapped within our promise implementation * @see [[PrismaPromise]] * @returns */ declare type PrismaPromiseFactory = (callback: PrismaPromiseCallback) => PrismaPromise_2<unknown>; declare type PrismaPromiseInteractiveTransaction<PayloadType = unknown> = { kind: 'itx'; id: string; payload: PayloadType; }; declare type PrismaPromiseTransaction<PayloadType = unknown> = PrismaPromiseBatchTransaction | PrismaPromiseInteractiveTransaction<PayloadType>; declare namespace Public { export { validator } } export { Public } declare namespace Public_2 { export { Args_3 as Args, Result, Payload_2 as Payload, PrismaPromise, Operation, Exact } } declare type QueryEngineResult<T> = { data: T; elapsed: number; }; declare type QueryMiddleware = (params: QueryMiddlewareParams, next: (params: QueryMiddlewareParams) => Promise<unknown>) => Promise<unknown>; declare type QueryMiddlewareParams = { /** The model this is executed on */ model?: string; /** The action that is being handled */ action: Action; /** TODO what is this */ dataPath: string[]; /** TODO what is this */ runInTransaction: boolean; args?: UserArgs_2; }; declare type QueryOptions = { query: { [ModelName in string]: { [ModelAction in string]: ModelQueryOptionsCb; } | QueryOptionsCb; }; }; declare type QueryOptionsCb = (args: QueryOptionsCbArgs) => Promise<any>; declare type QueryOptionsCbArgs = { model?: string; operation: string; args: JsArgs | RawQueryArgs; query: (args: JsArgs | RawQueryArgs) => Promise<unknown>; }; /** * Create raw SQL statement. */ export declare function raw(value: string): Sql; declare type RawParameters = { __prismaRawParameters__: true; values: string; }; declare type RawQueryArgs = Sql | [query: string, ...values: RawValue[]]; /** * Supported value or SQL instance. */ export declare type RawValue = Value | Sql; declare type ReadonlyDeep<T> = { readonly [K in keyof T]: ReadonlyDeep<T[K]>; }; declare type Record_2<T extends string | number | symbol, U> = { [P in T]: U; }; declare type RenameAndNestPayloadKeys<P> = { [K in keyof P as K extends 'scalars' | 'objects' | 'composites' ? keyof P[K] : never]: P[K]; }; declare type RequestBatchOptions<InteractiveTransactionPayload> = { transaction?: TransactionOptions<InteractiveTransactionPayload>; traceparent?: string; numTry?: number; containsWrite: boolean; customDataProxyFetch?: (fetch: Fetch) => Fetch; }; declare class RequestHandler { client: Client; dataloader: DataLoader<RequestParams>; private logEmitter?; constructor(client: Client, logEmitter?: EventEmitter); request(params: RequestParams): Promise<any>; mapQueryEngineResult({ dataPath, unpacker, modelName, args, extensions }: RequestParams, response: QueryEngineResult<any>): any; /** * Handles the error and logs it, logging the error is done synchronously waiting for the event * handlers to finish. */ handleAndLogRequestError(params: HandleErrorParams): never; handleRequestError({ error, clientMethod, callsite, transaction, args }: HandleErrorParams): never; sanitizeMessage(message: any): any; unpack(data: unknown, dataPath: string[], unpacker?: Unpacker): any; applyResultExtensions({ result, modelName, args, extensions }: ApplyExtensionsParams): object; get [Symbol.toStringTag](): string; } declare type RequestOptions<InteractiveTransactionPayload> = { traceparent?: string; numTry?: number; interactiveTransaction?: InteractiveTransactionOptions<InteractiveTransactionPayload>; isWrite: boolean; customDataProxyFetch?: (fetch: Fetch) => Fetch; }; declare type RequestOptions_2 = { method?: string; headers?: Record<string, string>; body?: string; }; declare type RequestParams = { modelName?: string; action: Action; protocolQuery: JsonQuery; dataPath: string[]; clientMethod: string; callsite?: CallSite; transaction?: PrismaPromiseTransaction; extensions: MergedExtensionsList; args?: any; headers?: Record<string, string>; unpacker?: Unpacker; otelParentCtx?: Context; otelChildCtx?: Context; customDataProxyFetch?: (fetch: Fetch) => Fetch; }; declare type RequestResponse = { ok: boolean; url: string; statusText?: string; status: number; headers: Headers_2; text: () => Promise<string>; json: () => Promise<any>; }; declare type RequiredKeys<O> = { [K in keyof O]-?: {} extends Pick_2<O, K> ? never : K; }[keyof O]; declare type Result<T, A, F extends Operation> = T extends { [K: symbol]: { types: { payload: any; }; }; } ? GetResult_2<T[symbol]['types']['payload'], A, F> : never; declare type ResultArg = { [FieldName in string]: ResultFieldDefinition; }; declare type ResultArgs = { result: { [ModelName in string]: ResultArg; }; }; declare type ResultArgsFieldCompute = (model: any) => unknown; declare type ResultFieldDefinition = { needs?: { [FieldName in string]: boolean; }; compute: ResultArgsFieldCompute; }; declare type Return<T> = T extends (...args: any[]) => infer R ? R : T; declare type RuntimeDataModel = { readonly models: Record<string, RuntimeModel>; readonly enums: Record<string, RuntimeEnum>; readonly types: Record<string, RuntimeModel>; }; declare type RuntimeEnum = Omit<DMMF.DatamodelEnum, 'name'>; declare type RuntimeModel = Omit<DMMF.Model, 'name'>; declare type Select<T, U> = T extends U ? T : never; declare type SelectablePayloadFields<K extends PropertyKey, O> = { objects: { [k in K]: O; }; } | { composites: { [k in K]: O; }; }; declare type SelectField<P extends SelectablePayloadFields<any, any>, K extends PropertyKey> = P extends { objects: Record<K, any>; } ? P['objects'][K] : P extends { composites: Record<K, any>; } ? P['composites'][K] : never; declare type Selection_2 = Record<string, boolean | JsArgs>; /** * An interface that represents a span. A span represents a single operation * within a trace. Examples of span might include remote procedure calls or a * in-process function calls to sub-components. A Trace has a single, top-level * "root" Span that in turn may have zero or more child Spans, which in turn * may have children. * * Spans are created by the {@link Tracer.startSpan} method. */ declare interface Span { /** * Returns the {@link SpanContext} object associated with this Span. * * Get an immutable, serializable identifier for this span that can be used * to create new child spans. Returned SpanContext is usable even after the * span ends. * * @returns the SpanContext object associated with this Span. */ spanContext(): SpanContext; /** * Sets an attribute to the span. * * Sets a single Attribute with the key and value passed as arguments. * * @param key the key for this attribute. * @param value the value for this attribute. Setting a value null or * undefined is invalid and will result in undefined behavior. */ setAttribute(key: string, value: SpanAttributeValue): this; /** * Sets attributes to the span. * * @param attributes the attributes that will be added. * null or undefined attribute values * are invalid and will result in undefined behavior. */ setAttributes(attributes: SpanAttributes): this; /** * Adds an event to the Span. * * @param name the name of the event. * @param [attributesOrStartTime] the attributes that will be added; these are * associated with this event. Can be also a start time * if type is {@type TimeInput} and 3rd param is undefined * @param [startTime] start time of the event. */ addEvent(name: string, attributesOrStartTime?: SpanAttributes | TimeInput, startTime?: TimeInput): this; /** * Sets a status to the span. If used, this will override the default Span * status. Default is {@link SpanStatusCode.UNSET}. SetStatus overrides the value * of previous calls to SetStatus on the Span. * * @param status the SpanStatus to set. */ setStatus(status: SpanStatus): this; /** * Updates the Span name. * * This will override the name provided via {@link Tracer.startSpan}. * * Upon this update, any sampling behavior based on Span name will depend on * the implementation. * * @param name the Span name. */ updateName(name: string): this; /** * Marks the end of Span execution. * * Call to End of a Span MUST not have any effects on child spans. Those may * still be running and can be ended later. * * Do not return `this`. The Span generally should not be used after it * is ended so chaining is not desired in this context. * * @param [endTime] the time to set as Span's end time. If not provided, * use the current time as the span's end time. */ end(endTime?: TimeInput): void; /** * Returns the flag whether this span will be recorded. * * @returns true if this Span is active and recording information like events * with the `AddEvent` operation and attributes using `setAttributes`. */ isRecording(): boolean; /** * Sets exception as a span event * @param exception the exception the only accepted values are string or Error * @param [time] the time to set as Span's event time. If not provided, * use the current time. */ recordException(exception: Exception, time?: TimeInput): void; } /** * @deprecated please use {@link Attributes} */ declare type SpanAttributes = Attributes; /** * @deprecated please use {@link AttributeValue} */ declare type SpanAttributeValue = AttributeValue; declare type SpanCallback<R> = (span?: Span, context?: Context) => R; /** * A SpanContext represents the portion of a {@link Span} which must be * serialized and propagated along side of a {@link Baggage}. */ declare interface SpanContext { /** * The ID of the trace that this span belongs to. It is worldwide unique * with practically sufficient probability by being made as 16 randomly * generated bytes, encoded as a 32 lowercase hex characters corresponding to * 128 bits. */ traceId: string; /** * The ID of the Span. It is globally unique with practically sufficient * probability by being made as 8 randomly generated bytes, encoded as a 16 * lowercase hex characters corresponding to 64 bits. */ spanId: string; /** * Only true if the SpanContext was propagated from a remote parent. */ isRemote?: boolean; /** * Trace flags to propagate. * * It is represented as 1 byte (bitmap). Bit to represent whether trace is * sampled or not. When set, the least significant bit documents that the * caller may have recorded trace data. A caller who does not record trace * data out-of-band leaves this flag unset. * * see {@link TraceFlags} for valid flag values. */ traceFlags: number; /** * Tracing-system-specific info to propagate. * * The tracestate field value is a `list` as defined below. The `list` is a * series of `list-members` separated by commas `,`, and a list-member is a * key/value pair separated by an equals sign `=`. Spaces and horizontal tabs * surrounding `list-members` are ignored. There can be a maximum of 32 * `list-members` in a `list`. * More Info: https://www.w3.org/TR/trace-context/#tracestate-field * * Examples: * Single tracing system (generic format): * tracestate: rojo=00f067aa0ba902b7 * Multiple tracing systems (with different formatting): * tracestate: rojo=00f067aa0ba902b7,congo=t61rcWkgMzE */ traceState?: TraceState; } declare enum SpanKind { /** Default value. Indicates that the span is used internally. */ INTERNAL = 0, /** * Indicates that the span covers server-side handling of an RPC or other * remote request. */ SERVER = 1, /** * Indicates that the span covers the client-side wrapper around an RPC or * other remote request. */ CLIENT = 2, /** * Indicates that the span describes producer sending a message to a * broker. Unlike client and server, there is no direct critical path latency * relationship between producer and consumer spans. */ PRODUCER = 3, /** * Indicates that the span describes consumer receiving a message from a * broker. Unlike client and server, there is no direct critical path latency * relationship between producer and consumer spans. */ CONSUMER = 4 } /** * Options needed for span creation */ declare interface SpanOptions { /** * The SpanKind of a span * @default {@link SpanKind.INTERNAL} */ kind?: SpanKind; /** A span's attributes */ attributes?: SpanAttributes; /** {@link Link}s span to other spans */ links?: Link[]; /** A manually specified start time for the created `Span` object. */ startTime?: TimeInput; /** The new span should be a root span. (Ignore parent from context). */ root?: boolean; } declare interface SpanStatus { /** The status code of this message. */ code: SpanStatusCode; /** A developer-facing error message. */ message?: string; } /** * An enumeration of status codes. */ declare enum SpanStatusCode { /** * The default status. */ UNSET = 0, /** * The operation has been validated by an Application developer or * Operator to have completed successfully. */ OK = 1, /** * The operation contains an error. */ ERROR = 2 } /** * A SQL instance can be nested within each other to build SQL strings. */ export declare class Sql { values: Value[]; strings: string[]; constructor(rawStrings: ReadonlyArray<string>, rawValues: ReadonlyArray<RawValue>); get text(): string; get sql(): string; inspect(): { text: string; sql: string; values: unknown[]; }; } /** * Create a SQL object from a template string. */ export declare function sqltag(strings: ReadonlyArray<string>, ...values: RawValue[]): Sql; /** * Defines TimeInput. * * hrtime, epoch milliseconds, performance.now() or Date */ declare type TimeInput = HrTime | number | Date; declare type ToTuple<T> = T extends any[] ? T : [T]; declare interface TraceState { /** * Create a new TraceState which inherits from this TraceState and has the * given key set. * The new entry will always be added in the front of the list of states. * * @param key key of the TraceState entry. * @param value value of the TraceState entry. */ set(key: string, value: string): TraceState; /** * Return a new TraceState which inherits from this TraceState but does not * contain the given key. * * @param key the key for the TraceState entry to be removed. */ unset(key: string): TraceState; /** * Returns the value to which the specified key is mapped, or `undefined` if * this map contains no mapping for the key. * * @param key with which the specified value is to be associated. * @returns the value to which the specified key is mapped, or `undefined` if * this map contains no mapping for the key. */ get(key: string): string | undefined; /** * Serializes the TraceState to a `list` as defined below. The `list` is a * series of `list-members` separated by commas `,`, and a list-member is a * key/value pair separated by an equals sign `=`. Spaces and horizontal tabs * surrounding `list-members` are ignored. There can be a maximum of 32 * `list-members` in a `list`. * * @returns the serialized string. */ serialize(): string; } declare interface TracingHelper { isEnabled(): boolean; getTraceParent(context?: Context): string; createEngineSpan(engineSpanEvent: EngineSpanEvent): void; getActiveContext(): Context | undefined; runInChildSpan<R>(nameOrOptions: string | ExtendedSpanOptions, callback: SpanCallback<R>): R; } declare namespace Transaction { export { IsolationLevel, Options_2 as Options, InteractiveTransactionInfo, TransactionHeaders } } declare type TransactionHeaders = { traceparent?: string; }; declare type TransactionOptions<InteractiveTransactionPayload> = { kind: 'itx'; options: InteractiveTransactionOptions<InteractiveTransactionPayload>; } | { kind: 'batch'; options: BatchTransactionOptions; }; declare type TypeMapCbDef = Fn<{ extArgs: Args; }, TypeMapDef>; /** Shared */ declare type TypeMapDef = Record<any, any>; declare namespace Types { export { Extensions_2 as Extensions, Utils, Public_2 as Public, GetResult_2 as GetResult, Payload, DefaultSelection } } export { Types } declare type UnknownErrorParams = { clientVersion: string; batchRequestIdx?: number; }; declare type Unpacker = (data: any) => any; declare type UnwrapPayload<P> = { [K in keyof P]: P[K] extends Payload[] ? UnwrapPayload<P[K]> : P[K] extends Payload ? P[K]['scalars'] & UnwrapPayload<P[K]['composites']> : P[K] extends infer O | null ? O extends Payload ? (O['scalars'] & UnwrapPayload<O['composites']>) | null : P[K] : P[K]; } & unknown; declare type UnwrapPromise<P> = P extends Promise<infer R> ? R : P; declare type UnwrapTuple<Tuple extends readonly unknown[]> = { [K in keyof Tuple]: K extends `${number}` ? Tuple[K] extends PrismaPromise_2<infer X> ? X : UnwrapPromise<Tuple[K]> : UnwrapPromise<Tuple[K]>; }; export declare type UserArgs = NameArgs & ResultArgs & ModelArgs & ClientArgs & QueryOptions; /** * Input that flows from the user into the Client. */ declare type UserArgs_2 = any; declare namespace Utils { export { EmptyToUnknown, NeverToUnknown, PatchFlat, Omit_2 as Omit, Pick_2 as Pick, ComputeDeep, Compute, OptionalFlat, ReadonlyDeep, Narrow, Exact, Cast, LegacyExact, JsonObject, JsonArray, JsonValue, Record_2 as Record, UnwrapTuple, Path, Fn, Call, RequiredKeys, OptionalKeys, Optional, Return, ToTuple, RenameAndNestPayloadKeys, PayloadToResult, Select } } declare function validator<V>(): <S>(select: Exact<S, V>) => S; declare function validator<C, M extends Exclude<keyof C, `$${string}`>, O extends keyof C[M] & Operation>(client: C, model: M, operation: O): <S>(select: Exact<S, Args_3<C[M], O>>) => S; declare function validator<C, M extends Exclude<keyof C, `$${string}`>, O extends keyof C[M] & Operation, P extends keyof Args_3<C[M], O>>(client: C, model: M, operation: O, prop: P): <S>(select: Exact<S, Args_3<C[M], O>[P]>) => S; /** * Values supported by SQL engine. */ export declare type Value = unknown; export declare function warnEnvConflicts(envPaths: any): void; export declare const warnOnce: (key: string, message: string, ...args: unknown[]) => void; export { }
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