Files
MycLib/Src/AST/Myc.Ast.RTL.pas
T
Michael Schimmel 629dbc97ca Extended math RTL
2026-01-13 18:08:52 +01:00

816 lines
28 KiB
ObjectPascal

unit Myc.Ast.RTL;
interface
uses
System.SysUtils,
System.Generics.Collections,
System.Generics.Defaults,
System.Rtti,
System.TypInfo,
Myc.Data.Scalar,
Myc.Data.Value,
Myc.Ast,
Myc.Ast.Scope,
Myc.Ast.Nodes,
Myc.Ast.Types;
type
//==============================================================================================
// Internal Structures
//==============================================================================================
// Key used to identify specific overloads of a function based on argument types.
TStaticSignatureKey = record
public
Name: string;
ArgTypes: TArray<IStaticType>;
constructor Create(const AName: string; const AArgTypes: TArray<IStaticType>);
end;
// Equality comparer for TStaticSignatureKey to be used in dictionaries.
TStaticSignatureKeyComparer = class(TEqualityComparer<TStaticSignatureKey>)
public
function Equals(const Left, Right: TStaticSignatureKey): Boolean; override;
function GetHashCode(const Value: TStaticSignatureKey): Integer; override;
end;
// Holds a reference to a specialized, type-safe native function wrapper.
TSpecializedMethod = record
public
Target: TDataValue.TFunc;
ReturnType: IStaticType;
IsPure: Boolean;
constructor Create(const ATarget: TDataValue.TFunc; const AReturnType: IStaticType; AIsPure: Boolean);
end;
// Cache for static specializations.
TStaticBootstrapCache = TDictionary<TStaticSignatureKey, TSpecializedMethod>;
// Metadata for a registered function, including dynamic fallback and signatures.
TRtlFunctionInfo = class
public
DynamicWrapper: TDataValue.TFunc;
Signatures: TList<IMethodSignature>;
Doc: string;
constructor Create;
destructor Destroy; override;
end;
TRtlFunctionMap = TDictionary<string, TRtlFunctionInfo>;
// Metadata for a registered constant.
TRtlConstantInfo = record
Name: string;
Value: TDataValue;
StaticType: IStaticType;
Doc: string;
constructor Create(const AName: string; const AValue: TDataValue; const AType: IStaticType; const ADoc: string);
end;
//==============================================================================================
// RTL Registry
//==============================================================================================
// Central registry logic using RTTI to scan provider classes.
TRtlRegistry = record
private
// Function pointer types for static wrappers
type
TNativeDataValueFunc = function(const Args: TArray<TDataValue>): TDataValue;
TNativeScalarFunc = function(Arg: TScalar): TScalar;
TNativeFunc_O_O = function(A: Int64): Int64;
TNativeFunc_F_F = function(A: Double): Double;
TNativeFunc_F_O = function(A: Double): Int64;
TNativeFunc_O_F = function(A: Int64): Double;
TNativeFunc_V_F = function(): Double;
TNativeFunc_OO_O = function(A, B: Int64): Int64;
TNativeFunc_OO_F = function(A, B: Int64): Double;
TNativeFunc_FF_F = function(A, B: Double): Double;
TNativeFunc_FF_O = function(A, B: Double): Int64;
TNativeFunc_OF_F = function(A: Int64; B: Double): Double;
TNativeFunc_OF_O = function(A: Int64; B: Double): Int64;
TNativeFunc_FO_F = function(A: Double; B: Int64): Double;
TNativeFunc_FO_O = function(A: Double; B: Int64): Int64;
TNativeFunc_TT_T = function(const A: String; const B: String): String;
private
class var
FStaticBootstrap: TStaticBootstrapCache;
FStaticFuncMap: TRtlFunctionMap;
FStaticConstList: TList<TRtlConstantInfo>;
class constructor Create;
class destructor Destroy;
// Wrapper generators for specific function signatures
class function CreateWrapper_O_O(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_F_F(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_F_O(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_O_F(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_V_F(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_OO_O(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_OO_F(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_FF_F(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_FF_O(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_OF_F(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_OF_O(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_FO_F(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_FO_O(CodeAddress: Pointer): TDataValue.TFunc; static;
class function CreateWrapper_TT_T(CodeAddress: Pointer): TDataValue.TFunc; static;
// Helpers
class function TValueToDataValue(const V: TValue): TDataValue; static;
class function RttiTypeToStaticType(const AType: TRttiType): IStaticType; static;
class function ParseStaticSuffix(
const AMethodName: string;
out AArgTypes: TArray<IStaticType>;
out AReturnType: IStaticType
): Boolean; static;
class function CreateStaticWrapper(
method: TRttiMethod;
retType: IStaticType;
argTypes: TArray<IStaticType>;
rttiParams: TArray<TRttiParameter>
): TDataValue.TFunc; static;
public
// Scans a specific provider type for attributes and registers them internally.
class procedure Scan<T>; static;
// Dumps all registered functions and constants into the execution scope.
class procedure RegisterAll(const AScope: IExecutionScope); static;
// API for the type checker to retrieve specialized methods.
class function GetStaticSpecialization(const AName: string; const AArgTypes: TArray<IStaticType>): TSpecializedMethod; static;
class procedure RegisterStaticSpecialization(
const AName: string;
const AArgTypes: TArray<IStaticType>;
const AMethod: TSpecializedMethod
); static;
end;
// Main entry point for library registration.
procedure RegisterRtlFunctions(const AScope: IExecutionScope);
implementation
uses
System.Hash,
System.StrUtils,
Myc.Ast.Attributes,
Myc.Ast.RTL.Core,
Myc.Ast.RTL.Math,
Myc.Ast.RTL.Series,
Myc.Ast.RTL.DateTime;
//==================================================================================================
// Helper Structure Implementations
//==================================================================================================
constructor TStaticSignatureKey.Create(const AName: string; const AArgTypes: TArray<IStaticType>);
begin
Name := AName;
ArgTypes := AArgTypes;
end;
function TStaticSignatureKeyComparer.Equals(const Left, Right: TStaticSignatureKey): Boolean;
var
i: Integer;
begin
if Left.Name <> Right.Name then
exit(False);
if Length(Left.ArgTypes) <> Length(Right.ArgTypes) then
exit(False);
for i := 0 to High(Left.ArgTypes) do
if not Left.ArgTypes[i].IsEqual(Right.ArgTypes[i]) then
exit(False);
Result := True;
end;
function TStaticSignatureKeyComparer.GetHashCode(const Value: TStaticSignatureKey): Integer;
var
i, hash, ptrHash: Integer;
begin
hash := THashBobJenkins.GetHashValue(Value.Name);
for i := 0 to High(Value.ArgTypes) do
begin
if Assigned(Value.ArgTypes[i]) then
ptrHash := Value.ArgTypes[i].GetHashCode
else
ptrHash := 0;
hash := THashBobJenkins.GetHashValue(ptrHash, SizeOf(Integer), hash);
end;
Result := hash;
end;
constructor TRtlFunctionInfo.Create;
begin
inherited Create;
Signatures := TList<IMethodSignature>.Create;
DynamicWrapper := nil;
Doc := '';
end;
destructor TRtlFunctionInfo.Destroy;
begin
Signatures.Free;
inherited Destroy;
end;
constructor TRtlConstantInfo.Create(const AName: string; const AValue: TDataValue; const AType: IStaticType; const ADoc: string);
begin
Name := AName;
Value := AValue;
StaticType := AType;
Doc := ADoc;
end;
constructor TSpecializedMethod.Create(const ATarget: TDataValue.TFunc; const AReturnType: IStaticType; AIsPure: Boolean);
begin
Target := ATarget;
ReturnType := AReturnType;
IsPure := AIsPure;
end;
//==================================================================================================
// TRtlRegistry Implementation
//==================================================================================================
class constructor TRtlRegistry.Create;
begin
FStaticBootstrap := TStaticBootstrapCache.Create(TStaticSignatureKeyComparer.Create);
FStaticFuncMap := TRtlFunctionMap.Create;
FStaticConstList := TList<TRtlConstantInfo>.Create;
end;
class destructor TRtlRegistry.Destroy;
var
funcInfo: TRtlFunctionInfo;
begin
for funcInfo in FStaticFuncMap.Values do
funcInfo.Free;
FStaticFuncMap.Free;
FStaticConstList.Free;
FStaticBootstrap.Free;
end;
class procedure TRtlRegistry.Scan<T>;
var
ctx: TRttiContext;
typ: TRttiType;
method: TRttiMethod;
attribute: TCustomAttribute;
exportAttr: TRtlExportAttribute;
constAttr: TRtlConstAttribute;
docString, rtlName: string;
argTypes: TArray<IStaticType>;
retType: IStaticType;
methodRecord: TSpecializedMethod;
funcInfo: TRtlFunctionInfo;
constInfo: TRtlConstantInfo;
rttiParams: TArray<TRttiParameter>;
isDynamic: Boolean;
i: Integer;
begin
ctx := TRttiContext.Create;
try
typ := ctx.GetType(TypeInfo(T));
if typ = nil then
exit;
for method in typ.GetMethods do
begin
if method.MethodKind <> mkClassFunction then
continue;
exportAttr := nil;
constAttr := nil;
docString := '';
// Extract attributes
for attribute in method.GetAttributes do
begin
if attribute is TRtlExportAttribute then
exportAttr := attribute as TRtlExportAttribute
else if attribute is TRtlConstAttribute then
constAttr := attribute as TRtlConstAttribute
else if attribute is AstDocAttribute then
docString := AstDocAttribute(attribute).Description;
end;
// --- CASE A: CONSTANT (via class function) ---
if Assigned(constAttr) then
begin
var val: TValue := method.Invoke(nil, []);
var dataVal: TDataValue := TValueToDataValue(val);
var staticType: IStaticType := RttiTypeToStaticType(method.ReturnType);
constInfo := TRtlConstantInfo.Create(constAttr.Name, dataVal, staticType, docString);
FStaticConstList.Add(constInfo);
continue;
end;
// --- CASE B: FUNCTION ---
if not Assigned(exportAttr) then
continue;
rtlName := exportAttr.Name;
if not FStaticFuncMap.TryGetValue(rtlName, funcInfo) then
begin
funcInfo := TRtlFunctionInfo.Create;
FStaticFuncMap.Add(rtlName, funcInfo);
end;
if (funcInfo.Doc = '') and (docString <> '') then
funcInfo.Doc := docString;
rttiParams := method.GetParameters;
isDynamic :=
(Length(rttiParams) = 1)
and (method.ReturnType.Handle = TypeInfo(TDataValue))
and (rttiParams[0].ParamType.Handle = TypeInfo(TArray<TDataValue>));
if isDynamic then
begin
// Dynamic wrapper (Interpreted mode)
if Assigned(funcInfo.DynamicWrapper) then
raise EInvalidOpException.CreateFmt('Duplicate dynamic fallback defined for %s', [rtlName]);
var wrapperFactory :=
function(CodeAddress: Pointer): TDataValue.TFunc
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
begin
Result := TNativeDataValueFunc(CodeAddress)(Args);
end;
end;
funcInfo.DynamicWrapper := wrapperFactory(method.CodeAddress);
end
else
begin
// Static wrapper (Compiled mode / Fast path)
if not ParseStaticSuffix(method.Name, argTypes, retType) then
begin
// Fallback to RTTI if name convention fails
SetLength(argTypes, Length(rttiParams));
for i := 0 to High(rttiParams) do
argTypes[i] := RttiTypeToStaticType(rttiParams[i].ParamType);
retType := RttiTypeToStaticType(method.ReturnType);
end;
var sig := TMethodSignature.Create(argTypes, retType);
funcInfo.Signatures.Add(sig);
var wrapper := CreateStaticWrapper(method, retType, argTypes, rttiParams);
if Assigned(wrapper) then
begin
methodRecord := TSpecializedMethod.Create(wrapper, retType, exportAttr.IsPure);
RegisterStaticSpecialization(rtlName, argTypes, methodRecord);
// Use static wrapper as fallback for interpreter if no dynamic wrapper exists
if (not Assigned(funcInfo.DynamicWrapper)) and (Length(argTypes) = 1) and (argTypes[0].Kind = stUnknown) then
funcInfo.DynamicWrapper := wrapper;
end
else
raise ENotImplemented.CreateFmt('Wrapper for %s not implemented', [method.Name]);
end;
end;
finally
ctx.Free;
end;
end;
class function TRtlRegistry.TValueToDataValue(const V: TValue): TDataValue;
begin
case V.Kind of
tkInteger, tkInt64: Result := TScalar.FromInt64(V.AsInt64);
tkFloat: Result := TScalar.FromDouble(V.AsType<Double>);
tkChar, tkString, tkUString, tkWString: Result := V.AsString;
tkEnumeration:
if V.TypeInfo = TypeInfo(Boolean) then
Result := TScalar.FromBoolean(V.AsBoolean)
else
Result := TScalar.FromInt64(V.AsOrdinal);
else
Result := TDataValue.Void;
end;
end;
// --- Wrapper Implementations ---
class function TRtlRegistry.CreateWrapper_O_O(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A, Res: Int64;
begin
A := Args[0].AsScalar.Value.AsInt64;
Res := TNativeFunc_O_O(CodeAddress)(A);
Result := TDataValue(TScalar.FromInt64(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_F_F(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A, Res: Double;
begin
A := Args[0].AsScalar.Value.AsDouble;
Res := TNativeFunc_F_F(CodeAddress)(A);
Result := TDataValue(TScalar.FromDouble(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_F_O(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A: Double;
Res: Int64;
begin
A := Args[0].AsScalar.Value.AsDouble;
Res := TNativeFunc_F_O(CodeAddress)(A);
Result := TDataValue(TScalar.FromInt64(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_O_F(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A: Int64;
Res: Double;
begin
A := Args[0].AsScalar.Value.AsInt64;
Res := TNativeFunc_O_F(CodeAddress)(A);
Result := TDataValue(TScalar.FromDouble(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_V_F(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
Res: Double;
begin
Res := TNativeFunc_V_F(CodeAddress)();
Result := TDataValue(TScalar.FromDouble(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_OO_O(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A, B, Res: Int64;
begin
A := Args[0].AsScalar.Value.AsInt64;
B := Args[1].AsScalar.Value.AsInt64;
Res := TNativeFunc_OO_O(CodeAddress)(A, B);
Result := TDataValue(TScalar.FromInt64(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_OO_F(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A, B: Int64;
Res: Double;
begin
A := Args[0].AsScalar.Value.AsInt64;
B := Args[1].AsScalar.Value.AsInt64;
Res := TNativeFunc_OO_F(CodeAddress)(A, B);
Result := TDataValue(TScalar.FromDouble(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_FF_F(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A, B, Res: Double;
begin
A := Args[0].AsScalar.Value.AsDouble;
B := Args[1].AsScalar.Value.AsDouble;
Res := TNativeFunc_FF_F(CodeAddress)(A, B);
Result := TDataValue(TScalar.FromDouble(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_FF_O(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A, B: Double;
Res: Int64;
begin
A := Args[0].AsScalar.Value.AsDouble;
B := Args[1].AsScalar.Value.AsDouble;
Res := TNativeFunc_FF_O(CodeAddress)(A, B);
Result := TDataValue(TScalar.FromInt64(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_OF_F(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A: Int64;
B, Res: Double;
begin
A := Args[0].AsScalar.Value.AsInt64;
B := Args[1].AsScalar.Value.AsDouble;
Res := TNativeFunc_OF_F(CodeAddress)(A, B);
Result := TDataValue(TScalar.FromDouble(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_OF_O(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A: Int64;
B: Double;
Res: Int64;
begin
A := Args[0].AsScalar.Value.AsInt64;
B := Args[1].AsScalar.Value.AsDouble;
Res := TNativeFunc_OF_O(CodeAddress)(A, B);
Result := TDataValue(TScalar.FromInt64(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_FO_F(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A: Double;
B: Int64;
Res: Double;
begin
A := Args[0].AsScalar.Value.AsDouble;
B := Args[1].AsScalar.Value.AsInt64;
Res := TNativeFunc_FO_F(CodeAddress)(A, B);
Result := TDataValue(TScalar.FromDouble(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_FO_O(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A: Double;
B: Int64;
Res: Int64;
begin
A := Args[0].AsScalar.Value.AsDouble;
B := Args[1].AsScalar.Value.AsInt64;
Res := TNativeFunc_FO_O(CodeAddress)(A, B);
Result := TDataValue(TScalar.FromInt64(Res));
end;
end;
class function TRtlRegistry.CreateWrapper_TT_T(CodeAddress: Pointer): TDataValue.TFunc;
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
var
A, B: String;
begin
A := Args[0].AsText;
B := Args[1].AsText;
Result := TNativeFunc_TT_T(CodeAddress)(A, B);
end;
end;
class function TRtlRegistry.RttiTypeToStaticType(const AType: TRttiType): IStaticType;
begin
if not Assigned(AType) then
exit(TTypes.Unknown);
if AType.Handle = TypeInfo(Int64) then
Result := TTypes.Ordinal
else if AType.Handle = TypeInfo(Double) then
Result := TTypes.Float
else if AType.Handle = TypeInfo(string) then
Result := TTypes.Text
else
Result := TTypes.Unknown;
end;
class function TRtlRegistry.ParseStaticSuffix(
const AMethodName: string;
out AArgTypes: TArray<IStaticType>;
out AReturnType: IStaticType
): Boolean;
var
parts: TArray<string>;
i: Integer;
function ParseType(const S: string): IStaticType;
begin
if SameText(S, 'Ordinal') then
Result := TTypes.Ordinal
else if SameText(S, 'Float') then
Result := TTypes.Float
else if SameText(S, 'Keyword') then
Result := TTypes.Keyword
else if SameText(S, 'Boolean') then
Result := TTypes.Boolean
else if SameText(S, 'DateTime') then
Result := TTypes.DateTime
else
Result := TTypes.Unknown;
end;
begin
Result := False;
AReturnType := TTypes.Unknown;
AArgTypes := nil;
parts := AMethodName.Split(['_']);
// Format: Name_Arg1_Arg2_Return
if Length(parts) < 2 then
exit;
AReturnType := ParseType(parts[High(parts)]);
if AReturnType.Kind = stUnknown then
exit;
SetLength(AArgTypes, Length(parts) - 2);
if Length(AArgTypes) = 0 then
begin
Result := True;
exit;
end;
for i := 1 to High(parts) - 1 do
begin
AArgTypes[i - 1] := ParseType(parts[i]);
if AArgTypes[i - 1].Kind = stUnknown then
begin
AArgTypes := nil;
exit(False);
end;
end;
Result := True;
end;
class function TRtlRegistry.CreateStaticWrapper(
method: TRttiMethod;
retType: IStaticType;
argTypes: TArray<IStaticType>;
rttiParams: TArray<TRttiParameter>
): TDataValue.TFunc;
var
ptr: Pointer;
begin
Result := nil;
ptr := method.CodeAddress;
case Length(argTypes) of
0:
if retType.Kind = stFloat then
Result := CreateWrapper_V_F(ptr);
1:
if (argTypes[0].Kind = stOrdinal) and (retType.Kind = stOrdinal) then
Result := CreateWrapper_O_O(ptr)
else if (argTypes[0].Kind = stFloat) and (retType.Kind = stFloat) then
Result := CreateWrapper_F_F(ptr)
else if (argTypes[0].Kind = stFloat) and (retType.Kind = stOrdinal) then
Result := CreateWrapper_F_O(ptr)
else if (argTypes[0].Kind = stOrdinal) and (retType.Kind = stFloat) then
Result := CreateWrapper_O_F(ptr)
else if (argTypes[0].Kind = stUnknown) and (rttiParams[0].ParamType.Handle = TypeInfo(TScalar)) then
begin
var wrapperFactory :=
function(CodeAddress: Pointer): TDataValue.TFunc
begin
Result :=
function(const Args: TArray<TDataValue>): TDataValue
begin
if (Length(Args) <> 1) or (Args[0].Kind <> vkScalar) then
raise EArgumentException.Create('Invalid argument');
Result := TDataValue(TNativeScalarFunc(CodeAddress)(Args[0].AsScalar));
end;
end;
Result := wrapperFactory(ptr);
end;
2:
begin
var k1 := argTypes[0].Kind;
var k2 := argTypes[1].Kind;
var rk := retType.Kind;
if (k1 = stOrdinal) and (k2 = stOrdinal) then
begin
if rk = stOrdinal then
Result := CreateWrapper_OO_O(ptr)
else if rk = stFloat then
Result := CreateWrapper_OO_F(ptr);
end
else if (k1 = stFloat) and (k2 = stFloat) then
begin
if rk = stFloat then
Result := CreateWrapper_FF_F(ptr)
else if rk = stOrdinal then
Result := CreateWrapper_FF_O(ptr);
end
else if (k1 = stOrdinal) and (k2 = stFloat) then
begin
if rk = stFloat then
Result := CreateWrapper_OF_F(ptr)
else if rk = stOrdinal then
Result := CreateWrapper_OF_O(ptr);
end
else if (k1 = stFloat) and (k2 = stOrdinal) then
begin
if rk = stFloat then
Result := CreateWrapper_FO_F(ptr)
else if rk = stOrdinal then
Result := CreateWrapper_FO_O(ptr);
end
else if (k1 = stKeyword) and (k2 = stKeyword) and (rk = stOrdinal) then
Result := CreateWrapper_OO_O(ptr)
else if (k1 = stText) and (k2 = stText) then
Result := CreateWrapper_TT_T(ptr);
end;
end;
end;
class function TRtlRegistry.GetStaticSpecialization(const AName: string; const AArgTypes: TArray<IStaticType>): TSpecializedMethod;
var
key: TStaticSignatureKey;
begin
key.Name := AName;
key.ArgTypes := AArgTypes;
FStaticBootstrap.TryGetValue(key, Result);
end;
class procedure TRtlRegistry.RegisterStaticSpecialization(
const AName: string;
const AArgTypes: TArray<IStaticType>;
const AMethod: TSpecializedMethod
);
var
key: TStaticSignatureKey;
begin
key := TStaticSignatureKey.Create(AName, AArgTypes);
FStaticBootstrap.AddOrSetValue(key, AMethod);
end;
class procedure TRtlRegistry.RegisterAll(const AScope: IExecutionScope);
var
rtlName: string;
funcInfo: TRtlFunctionInfo;
constInfo: TRtlConstantInfo;
staticType: IStaticType;
pair: TPair<string, TRtlFunctionInfo>;
begin
for pair in FStaticFuncMap do
begin
rtlName := pair.Key;
funcInfo := pair.Value;
if funcInfo.Signatures.Count > 0 then
staticType := TTypes.CreateMethodSet(funcInfo.Signatures.ToArray)
else
staticType := nil;
AScope.Define(rtlName, funcInfo.DynamicWrapper, staticType, funcInfo.Doc);
end;
for constInfo in FStaticConstList do
AScope.Define(constInfo.Name, constInfo.Value, constInfo.StaticType, constInfo.Doc);
end;
procedure RegisterRtlFunctions(const AScope: IExecutionScope);
begin
TRtlRegistry.RegisterAll(AScope);
end;
initialization
TRtlRegistry.Scan<TRtlCoreFunctions>;
TRtlRegistry.Scan<TRtlMathFunctions>;
TRtlRegistry.Scan<TRtlDateTimeFunctions>;
TRtlRegistry.Scan<TRtlSeriesFunctions>;
TAst.RegisterLibrary(RegisterRtlFunctions);
end.