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2260 lines
73 KiB
ObjectPascal
2260 lines
73 KiB
ObjectPascal
{
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Copyright (c) 1998-2006 by Florian Klaempfl
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This unit provides some help routines for type handling
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This program is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 2 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program; if not, write to the Free Software
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Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
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****************************************************************************
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}
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unit defutil;
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{$i fpcdefs.inc}
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interface
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uses
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globtype,globals,constexp,
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symconst,symtype,symdef,
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cgbase,cpubase;
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type
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tmmxtype = (mmxno,mmxu8bit,mmxs8bit,mmxu16bit,mmxs16bit,
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mmxu32bit,mmxs32bit,mmxfixed16,mmxsingle,mmxs64bit,mmxu64bit);
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{*****************************************************************************
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Basic type functions
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*****************************************************************************}
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{# Returns true, if definition defines an ordinal type }
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function is_ordinal(def : tdef) : boolean;
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{# Returns true, if definition defines a string type }
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function is_string(def : tdef): boolean;
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{# Returns True, if definition defines a type that behaves like a string,
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namely that can be joined and compared with another string-like type }
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function is_stringlike(def : tdef) : boolean;
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{# Returns the typedef for the char type that matches the stringlike }
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function chartype_for_stringlike(def : tdef) : tdef;
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{# Returns True, if definition defines an enumeration type }
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function is_enum(def : tdef) : boolean;
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{# Returns True, if definition defines a set type }
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function is_set(def : tdef) : boolean;
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{# Returns the minimal integer value of the type }
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function get_min_value(def : tdef) : TConstExprInt;
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{# Returns the maximal integer value of the type }
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function get_max_value(def : tdef) : TConstExprInt;
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{# Returns basetype of the specified integer range }
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function range_to_basetype(const l,h:TConstExprInt):tordtype;
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procedure range_to_type(const l,h:TConstExprInt;var def:tdef);
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procedure int_to_type(const v:TConstExprInt;var def:tdef);
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{# Return true if the type (orddef or enumdef) spans its entire bitrange }
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function spans_entire_range(def: tdef): boolean;
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{# Returns true, if definition defines an integer type }
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function is_integer(def : tdef) : boolean;
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{# Returns true if definition is a boolean }
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function is_boolean(def : tdef) : boolean;
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{# Returns true if definition is a Pascal-style boolean (1 = true, zero = false) }
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function is_pasbool(def : tdef) : boolean;
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{# Returns true if definition is a C-style boolean (non-zero value = true, zero = false) }
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function is_cbool(def : tdef) : boolean;
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{# Returns true if definition is a char
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This excludes the unicode char.
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}
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function is_char(def : tdef) : boolean;
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{# Returns true if definition is a widechar }
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function is_widechar(def : tdef) : boolean;
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{# Returns true if definition is either an AnsiChar or a WideChar }
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function is_anychar(def : tdef) : boolean;
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{# Returns true if definition is a void}
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function is_void(def : tdef) : boolean;
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{# Returns true if definition is a smallset}
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function is_smallset(p : tdef) : boolean;
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{# Returns true, if def defines a signed data type
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(only for ordinal types)
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}
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function is_signed(def : tdef) : boolean;
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{# Returns an unsigned integer type of the same size as def; def must be
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an ordinal or enum }
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function get_unsigned_inttype(def: tdef): torddef;
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{# Returns a signed integer type of the same size as def; def must be
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an ordinal or enum }
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function get_signed_inttype(def: tdef): torddef;
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{# Returns whether def_from's range is comprised in def_to's if both are
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orddefs, false otherwise }
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function is_in_limit(def_from,def_to : tdef) : boolean;
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{# Returns whether def is reference counted }
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function is_managed_type(def: tdef) : boolean;{$ifdef USEINLINE}inline;{$endif}
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{ # Returns whether def is needs to load RTTI for reference counting }
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function is_rtti_managed_type(def: tdef) : boolean;
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{ function is_in_limit_value(val_from:TConstExprInt;def_from,def_to : tdef) : boolean;}
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{*****************************************************************************
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Array helper functions
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*****************************************************************************}
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{# Returns true, if p points to a zero based (non special like open or
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dynamic array def).
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This is mainly used to see if the array
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is convertable to a pointer
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}
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function is_zero_based_array(p : tdef) : boolean;
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{# Returns true if p points to an open array definition }
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function is_open_array(p : tdef) : boolean;
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{# Returns true if p points to a dynamic array definition }
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function is_dynamic_array(p : tdef) : boolean;
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{# Returns true, if p points to an array of const definition }
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function is_array_constructor(p : tdef) : boolean;
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{# Returns true, if p points to a variant array }
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function is_variant_array(p : tdef) : boolean;
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{# Returns true, if p points to an array of const }
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function is_array_of_const(p : tdef) : boolean;
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{# Returns true if p is an arraydef that describes a constant string }
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function is_conststring_array(p : tdef) : boolean;
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{# Returns true, if p points any kind of special array
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That is if the array is an open array, a variant
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array, an array constants constructor, or an
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array of const.
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Bitpacked arrays aren't special in this regard though.
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}
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function is_special_array(p : tdef) : boolean;
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{# Returns true, if p points to a normal array, bitpacked arrays are included }
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function is_normal_array(p : tdef) : boolean;
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{# Returns true if p is a bitpacked array }
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function is_packed_array(p: tdef) : boolean;
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{# Returns true if p is a bitpacked record }
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function is_packed_record_or_object(p: tdef) : boolean;
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{# Returns true if p is a char array def }
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function is_chararray(p : tdef) : boolean;
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{# Returns true if p is a wide char array def }
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function is_widechararray(p : tdef) : boolean;
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{# Returns true if p is a open char array def }
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function is_open_chararray(p : tdef) : boolean;
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{# Returns true if p is a open wide char array def }
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function is_open_widechararray(p : tdef) : boolean;
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{*****************************************************************************
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String helper functions
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*****************************************************************************}
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{# Returns true if p points to an open string type }
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function is_open_string(p : tdef) : boolean;
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{# Returns true if p is an ansi string type }
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function is_ansistring(p : tdef) : boolean;
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{# Returns true if p is an ansi string type with codepage 0 }
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function is_rawbytestring(p : tdef) : boolean;
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{# Returns true if p is a long string type }
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function is_longstring(p : tdef) : boolean;
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{# returns true if p is a wide string type }
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function is_widestring(p : tdef) : boolean;
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{# true if p is an unicode string def }
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function is_unicodestring(p : tdef) : boolean;
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{# true if p is an unicode/wide/ansistring string def }
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function is_dynamicstring(p : tdef) : boolean;
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{# returns true if p is a wide or unicode string type }
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function is_wide_or_unicode_string(p : tdef) : boolean;
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{# Returns true if p is a short string type }
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function is_shortstring(p : tdef) : boolean;
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{# Returns true if p is any pointer def }
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function is_pointer(p : tdef) : boolean;
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{# Returns true p is an address: pointer, classref, ansistring, ... }
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function is_address(p : tdef) : boolean;
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{# Returns true if p is a pchar def }
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function is_pchar(p : tdef) : boolean;
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{# Returns true if p is a pwidechar def }
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function is_pwidechar(p : tdef) : boolean;
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{# Returns true if p is a voidpointer def }
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function is_voidpointer(p : tdef) : boolean;
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{# Returns true if p is a cyclic reference (refers to itself at some point via pointer or array) }
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function is_cyclic(p : tdef): Boolean; {$ifdef USEINLINE}inline;{$endif USEINLINE}
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{# Returns true, if definition is a float }
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function is_fpu(def : tdef) : boolean;
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{# Returns true, if def is a currency type }
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function is_currency(def : tdef) : boolean;
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{# Returns true, if def is a comp type (handled by the fpu) }
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function is_fpucomp(def : tdef) : boolean;
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{# Returns true, if def is a single type }
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function is_single(def : tdef) : boolean;
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{# Returns true, if def is a double type }
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function is_double(def : tdef) : boolean;
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{# Returns true, if def is an extended type }
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function is_extended(def : tdef) : boolean;
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{# Returns true, if def is quad type }
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function is_quad(def : tdef) : boolean;
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{# Returns true, if definition is a "real" real (i.e. single/double/extended) }
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function is_real(def : tdef) : boolean;
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{# Returns true for single,double,extended and cextended }
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function is_real_or_cextended(def : tdef) : boolean;
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{ true, if def is a 8 bit int type }
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function is_8bitint(def : tdef) : boolean;
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{ true, if def is a 8 bit ordinal type }
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function is_8bit(def : tdef) : boolean;
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{ true, if def is a 16 bit int type }
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function is_16bitint(def : tdef) : boolean;
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{ true, if def is a 16 bit ordinal type }
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function is_16bit(def : tdef) : boolean;
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{# Returns true, if def is a 32 bit integer type }
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function is_32bitint(def : tdef) : boolean;
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{# Returns true, if def is a 32 bit ordinal type }
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function is_32bit(def : tdef) : boolean;
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{# Returns true, if def is a 64 bit integer type }
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function is_64bitint(def : tdef) : boolean;
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{# Returns true, if def is a 64 bit signed integer type }
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function is_s64bitint(def : tdef) : boolean;
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{# Returns true, if def is a qword type }
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function is_u64bitint(def : tdef) : boolean;
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{# Returns true, if def is a 64 bit ordinal type }
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function is_64bit(def : tdef) : boolean;
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{ returns true, if def is a longint type }
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function is_s32bitint(def : tdef) : boolean;
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{ returns true, if def is a dword type }
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function is_u32bitint(def : tdef) : boolean;
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{ true, if def1 and def2 are both integers of the same bit size and sign }
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function are_equal_ints(def1, def2: tdef): boolean;
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{ true, if def is an int type, larger than the processor's native int size }
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function is_oversizedint(def : tdef) : boolean;
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{ true, if def is an ordinal type, larger than the processor's native int size }
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function is_oversizedord(def : tdef) : boolean;
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{ true, if def is an int type, equal in size to the processor's native int size }
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function is_nativeint(def : tdef) : boolean;
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{ true, if def is an ordinal type, equal in size to the processor's native int size }
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function is_nativeord(def : tdef) : boolean;
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{ true, if def is an unsigned int type, equal in size to the processor's native int size }
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function is_nativeuint(def : tdef) : boolean;
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{ true, if def is a signed int type, equal in size to the processor's native int size }
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function is_nativesint(def : tdef) : boolean;
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{ true, if the char type is a widechar in the system unit }
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function is_systemunit_unicode : boolean;
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type
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tperformrangecheck = (
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rc_internal, { nothing, internal conversion }
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rc_explicit, { no, but this is an explcit user conversion and hence can still give warnings in some cases (or errors in case of enums) }
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rc_implicit, { no, but this is an implicit conversion and hence can still give warnings/errors in some cases }
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rc_yes { yes }
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);
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{# If @var(l) isn't in the range of todef a range check error (if not explicit) is generated and
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the value is placed within the range
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}
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procedure adaptrange(todef : tdef;var l : tconstexprint; rangecheck: tperformrangecheck);
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{ for when used with nf_explicit/nf_internal/cs_check_range nodeflags }
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procedure adaptrange(todef : tdef;var l : tconstexprint; internal, explicit, rangecheckstate: boolean);
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{# Returns the range of def, where @var(l) is the low-range and @var(h) is
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the high-range.
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}
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procedure getrange(def : tdef;out l, h : TConstExprInt);
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procedure getrangedefmasksize(def: tdef; out rangedef: tdef; out mask: TConstExprInt; out size: longint);
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{ Returns the range type of an ordinal type in the sense of ISO-10206 }
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function get_iso_range_type(def: tdef): tdef;
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{ is the type a vector, or can it be transparently used as one? }
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function is_vector(p : tdef) : boolean;
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{ return a real/hardware vectordef representing this def }
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function to_hwvectordef(p: tdef; nil_on_error: boolean): tdef;
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{ some type helper routines for MMX support }
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function is_mmx_able_array(p : tdef) : boolean;
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{# returns the mmx type }
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function mmx_type(p : tdef) : tmmxtype;
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{ returns if the passed type (array) fits into an mm register }
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function fits_in_mm_register(p : tdef) : boolean;
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{# From a definition return the abstract code generator size enum. It is
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to note that the value returned can be @var(OS_NO) }
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function def_cgsize(def: tdef): tcgsize;
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{ #Return an orddef (integer) correspondig to a tcgsize }
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function cgsize_orddef(size: tcgsize): torddef;
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{# Same as def_cgsize, except that it will interpret certain arrays as
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vectors and return OS_M* sizes for them }
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function def_cgmmsize(def: tdef): tcgsize;
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{# returns true, if the type passed is can be used with windows automation }
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function is_automatable(p : tdef) : boolean;
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{ # returns true if the procdef has no parameters and no specified return type }
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function is_bareprocdef(pd : tprocdef): boolean;
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{ returns true if the procdef is a C-style variadic function }
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function is_c_variadic(pd: tabstractprocdef): boolean; {$ifdef USEINLINE}inline;{$endif}
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{ # returns the smallest base integer type whose range encompasses that of
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both ld and rd; if keep_sign_if_equal, then if ld and rd have the same
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signdness, the result will also get that signdness }
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function get_common_intdef(ld, rd: torddef; keep_sign_if_equal: boolean): torddef;
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{ # calculates "not v" based on the provided def; returns true if the def
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was negatable, false otherwise }
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function calc_not_ordvalue(var v:Tconstexprint; var def:tdef):boolean;
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{ # returns whether the type is potentially a valid type of/for an "univ" parameter
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(basically: it must have a compile-time size) }
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function is_valid_univ_para_type(def: tdef): boolean;
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{ # returns whether the procdef/procvardef represents a nested procedure
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or not }
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function is_nested_pd(def: tabstractprocdef): boolean;{$ifdef USEINLINE}inline;{$endif}
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{ # returns whether def is a type parameter of a generic }
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function is_typeparam(def : tdef) : boolean;{$ifdef USEINLINE}inline;{$endif}
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{ returns true of def is a methodpointer }
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function is_methodpointer(def : tdef) : boolean;
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{ returns true if def is a function reference }
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function is_funcref(def:tdef):boolean;
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{ returns true if def is an invokable interface }
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function is_invokable(def:tdef):boolean;
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{ returns true if def is a C "block" }
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function is_block(def: tdef): boolean;
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{ returns the TTypeKind value of the def }
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function get_typekind(def: tdef): byte;
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{ returns the Invoke procdef of a function reference interface }
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function get_invoke_procdef(def:tobjectdef):tprocdef;
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{ returns whether the invokable has an Invoke overload that can be called
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without arguments }
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function invokable_has_argless_invoke(def:tobjectdef):boolean;
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implementation
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uses
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verbose,cutils,
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symtable, // search_system_type
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symsym,
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cpuinfo;
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{ returns true, if def uses FPU }
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function is_fpu(def : tdef) : boolean;
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begin
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is_fpu:=(def.typ=floatdef);
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end;
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{ returns true, if def is a currency type }
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function is_currency(def : tdef) : boolean;
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begin
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case s64currencytype.typ of
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orddef :
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result:=(def.typ=orddef) and
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(torddef(s64currencytype).ordtype=torddef(def).ordtype);
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floatdef :
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result:=(def.typ=floatdef) and
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(tfloatdef(s64currencytype).floattype=tfloatdef(def).floattype);
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else
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internalerror(200304222);
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end;
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end;
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function is_fpucomp(def: tdef): boolean;
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begin
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result:=(def.typ=floatdef) and
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(tfloatdef(def).floattype=s64comp);
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end;
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{ returns true, if def is a single type }
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function is_single(def : tdef) : boolean;
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begin
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result:=(def.typ=floatdef) and
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(tfloatdef(def).floattype=s32real);
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end;
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{ returns true, if def is a double type }
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function is_double(def : tdef) : boolean;
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begin
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result:=(def.typ=floatdef) and
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(tfloatdef(def).floattype=s64real);
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end;
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{ returns true, if def is an extended type }
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function is_extended(def : tdef) : boolean;
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begin
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result:=(def.typ=floatdef) and
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(tfloatdef(def).floattype in [s80real,sc80real]);
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end;
|
|
|
|
|
|
{ returns true, if def is a quad type }
|
|
function is_quad(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=floatdef) and
|
|
(tfloatdef(def).floattype=s128real);
|
|
end;
|
|
|
|
|
|
{ returns true, if definition is a "real" real (i.e. single/double/extended) }
|
|
function is_real(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=floatdef) and
|
|
(tfloatdef(def).floattype in [s32real,s64real,s80real]);
|
|
end;
|
|
|
|
|
|
function is_real_or_cextended(def: tdef): boolean;
|
|
begin
|
|
result:=(def.typ=floatdef) and
|
|
(tfloatdef(def).floattype in [s32real,s64real,s80real,sc80real]);
|
|
end;
|
|
|
|
|
|
function range_to_basetype(const l,h:TConstExprInt):tordtype;
|
|
begin
|
|
{ prefer signed over unsigned }
|
|
if (l>=int64(-128)) and (h<=127) then
|
|
range_to_basetype:=s8bit
|
|
else if (l>=0) and (h<=255) then
|
|
range_to_basetype:=u8bit
|
|
else if (l>=int64(-32768)) and (h<=32767) then
|
|
range_to_basetype:=s16bit
|
|
else if (l>=0) and (h<=65535) then
|
|
range_to_basetype:=u16bit
|
|
else if (l>=int64(low(longint))) and (h<=high(longint)) then
|
|
range_to_basetype:=s32bit
|
|
else if (l>=low(cardinal)) and (h<=high(cardinal)) then
|
|
range_to_basetype:=u32bit
|
|
else if (l>=low(int64)) and (h<=high(int64)) then
|
|
range_to_basetype:=s64bit
|
|
else
|
|
range_to_basetype:=u64bit;
|
|
end;
|
|
|
|
|
|
procedure range_to_type(const l,h:TConstExprInt;var def:tdef);
|
|
begin
|
|
{ prefer signed over unsigned }
|
|
if (l>=int64(-128)) and (h<=127) then
|
|
def:=s8inttype
|
|
else if (l>=0) and (h<=255) then
|
|
def:=u8inttype
|
|
else if (l>=int64(-32768)) and (h<=32767) then
|
|
def:=s16inttype
|
|
else if (l>=0) and (h<=65535) then
|
|
def:=u16inttype
|
|
else if (l>=int64(low(longint))) and (h<=high(longint)) then
|
|
def:=s32inttype
|
|
else if (l>=low(cardinal)) and (h<=high(cardinal)) then
|
|
def:=u32inttype
|
|
else if (l>=low(int64)) and (h<=high(int64)) then
|
|
def:=s64inttype
|
|
else
|
|
def:=u64inttype;
|
|
end;
|
|
|
|
|
|
procedure int_to_type(const v:TConstExprInt;var def:tdef);
|
|
begin
|
|
range_to_type(v,v,def);
|
|
end;
|
|
|
|
|
|
{ true if p is an ordinal }
|
|
function is_ordinal(def : tdef) : boolean;
|
|
var
|
|
dt : tordtype;
|
|
begin
|
|
case def.typ of
|
|
orddef :
|
|
begin
|
|
dt:=torddef(def).ordtype;
|
|
is_ordinal:=dt in [uchar,uwidechar,
|
|
u8bit,u16bit,u32bit,u64bit,
|
|
s8bit,s16bit,s32bit,s64bit,
|
|
pasbool1,pasbool8,pasbool16,pasbool32,pasbool64,
|
|
bool8bit,bool16bit,bool32bit,bool64bit,customint];
|
|
end;
|
|
enumdef :
|
|
is_ordinal:=true;
|
|
else
|
|
is_ordinal:=false;
|
|
end;
|
|
end;
|
|
|
|
{ true if p is a string }
|
|
function is_string(def : tdef) : boolean;
|
|
begin
|
|
is_string := (assigned(def) and (def.typ = stringdef));
|
|
end;
|
|
|
|
function is_stringlike(def : tdef) : boolean;
|
|
begin
|
|
result := is_string(def) or
|
|
is_anychar(def) or
|
|
is_pchar(def) or
|
|
is_pwidechar(def) or
|
|
is_chararray(def) or
|
|
is_widechararray(def) or
|
|
is_open_chararray(def) or
|
|
is_open_widechararray(def) or
|
|
(def=java_jlstring);
|
|
end;
|
|
|
|
function chartype_for_stringlike(def : tdef) : tdef;
|
|
begin
|
|
if is_string(def) then
|
|
result:=tstringdef(def).get_default_char_type
|
|
else if is_anychar(def) then
|
|
result:=def
|
|
else if is_pchar(def) or is_chararray(def) or is_open_chararray(def) then
|
|
result:=cansichartype
|
|
else if is_pwidechar(def) or is_pwidechar(def) or is_open_widechararray(def) then
|
|
result:=cwidechartype
|
|
else if def=java_jlstring then
|
|
result:=cwidechartype
|
|
else
|
|
internalerror(2023012501);
|
|
end;
|
|
|
|
function is_enum(def : tdef) : boolean;
|
|
begin
|
|
result:=def.typ=enumdef;
|
|
end;
|
|
|
|
function is_set(def : tdef) : boolean;
|
|
begin
|
|
result:=def.typ=setdef;
|
|
end;
|
|
|
|
{ returns the min. value of the type }
|
|
function get_min_value(def : tdef) : TConstExprInt;
|
|
begin
|
|
case def.typ of
|
|
orddef:
|
|
result:=torddef(def).low;
|
|
enumdef:
|
|
result:=int64(tenumdef(def).min);
|
|
else
|
|
result:=0;
|
|
end;
|
|
end;
|
|
|
|
|
|
{ returns the max. value of the type }
|
|
function get_max_value(def : tdef) : TConstExprInt;
|
|
begin
|
|
case def.typ of
|
|
orddef:
|
|
result:=torddef(def).high;
|
|
enumdef:
|
|
result:=tenumdef(def).max;
|
|
else
|
|
result:=0;
|
|
end;
|
|
end;
|
|
|
|
|
|
function spans_entire_range(def: tdef): boolean;
|
|
var
|
|
lv, hv: Tconstexprint;
|
|
mask: qword;
|
|
size: longint;
|
|
begin
|
|
case def.typ of
|
|
orddef,
|
|
enumdef:
|
|
getrange(def,lv,hv);
|
|
else
|
|
internalerror(2019062203);
|
|
end;
|
|
size:=def.size;
|
|
case size of
|
|
1: mask:=$ff;
|
|
2: mask:=$ffff;
|
|
4: mask:=$ffffffff;
|
|
8: mask:=qword(-1);
|
|
else
|
|
internalerror(2019062204);
|
|
end;
|
|
result:=false;
|
|
if is_signed(def) then
|
|
begin
|
|
if (lv.uvalue and mask)<>(qword(1) shl (size*8-1)) then
|
|
exit;
|
|
if (hv.uvalue and mask)<>(mask shr 1) then
|
|
exit;
|
|
end
|
|
else
|
|
begin
|
|
if lv<>0 then
|
|
exit;
|
|
if hv.uvalue<>mask then
|
|
exit;
|
|
end;
|
|
result:=true;
|
|
end;
|
|
|
|
|
|
{ true if p is an integer }
|
|
function is_integer(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype in [u8bit,u16bit,u32bit,u64bit,
|
|
s8bit,s16bit,s32bit,s64bit,
|
|
customint]);
|
|
end;
|
|
|
|
|
|
{ true if p is a boolean }
|
|
function is_boolean(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype in [pasbool1,pasbool8,pasbool16,pasbool32,pasbool64,bool8bit,bool16bit,bool32bit,bool64bit]);
|
|
end;
|
|
|
|
|
|
function is_pasbool(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype in [pasbool1,pasbool8,pasbool16,pasbool32,pasbool64]);
|
|
end;
|
|
|
|
{ true if def is a C-style boolean (non-zero value = true, zero = false) }
|
|
function is_cbool(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype in [bool8bit,bool16bit,bool32bit,bool64bit]);
|
|
end;
|
|
|
|
|
|
{ true if p is a void }
|
|
function is_void(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype=uvoid);
|
|
end;
|
|
|
|
|
|
{ true if p is a char }
|
|
function is_char(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype=uchar);
|
|
end;
|
|
|
|
|
|
{ true if p is a wchar }
|
|
function is_widechar(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype=uwidechar);
|
|
end;
|
|
|
|
|
|
{ true if p is a char or wchar }
|
|
function is_anychar(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype in [uchar,uwidechar])
|
|
end;
|
|
|
|
|
|
{ true if p is signed (integer) }
|
|
function is_signed(def : tdef) : boolean;
|
|
begin
|
|
case def.typ of
|
|
orddef :
|
|
result:=torddef(def).low < 0;
|
|
enumdef :
|
|
result:=tenumdef(def).min < 0;
|
|
arraydef :
|
|
result:=is_signed(tarraydef(def).rangedef);
|
|
else
|
|
result:=false;
|
|
end;
|
|
end;
|
|
|
|
|
|
function get_unsigned_inttype(def: tdef): torddef;
|
|
begin
|
|
case def.typ of
|
|
orddef,
|
|
enumdef:
|
|
result:=cgsize_orddef(tcgsize2unsigned[def_cgsize(def)]);
|
|
else
|
|
internalerror(2016062001);
|
|
end;
|
|
end;
|
|
|
|
|
|
function get_signed_inttype(def: tdef): torddef;
|
|
begin
|
|
case def.typ of
|
|
orddef,
|
|
enumdef:
|
|
result:=cgsize_orddef(tcgsize2signed[def_cgsize(def)]);
|
|
else
|
|
internalerror(2022093007);
|
|
end;
|
|
end;
|
|
|
|
|
|
function is_in_limit(def_from,def_to : tdef) : boolean;
|
|
|
|
begin
|
|
if (def_from.typ<>def_to.typ) or
|
|
not(def_from.typ in [orddef,enumdef,setdef]) then
|
|
begin
|
|
is_in_limit := false;
|
|
exit;
|
|
end;
|
|
case def_from.typ of
|
|
orddef:
|
|
is_in_limit:=(torddef(def_from).low>=torddef(def_to).low) and
|
|
(torddef(def_from).high<=torddef(def_to).high);
|
|
enumdef:
|
|
is_in_limit:=(tenumdef(def_from).min>=tenumdef(def_to).min) and
|
|
(tenumdef(def_from).max<=tenumdef(def_to).max);
|
|
setdef:
|
|
is_in_limit:=(tsetdef(def_from).setbase>=tsetdef(def_to).setbase) and
|
|
(tsetdef(def_from).setmax<=tsetdef(def_to).setmax);
|
|
else
|
|
is_in_limit:=false;
|
|
end;
|
|
end;
|
|
|
|
|
|
function is_managed_type(def: tdef): boolean;{$ifdef USEINLINE}inline;{$endif}
|
|
begin
|
|
result:=def.needs_inittable;
|
|
end;
|
|
|
|
|
|
function is_rtti_managed_type(def: tdef): boolean;
|
|
begin
|
|
result:=def.needs_inittable and not (
|
|
is_interfacecom_or_dispinterface(def) or
|
|
(def.typ=variantdef) or
|
|
(
|
|
(def.typ=stringdef) and
|
|
(tstringdef(def).stringtype in [st_ansistring,st_widestring,st_unicodestring])
|
|
)
|
|
);
|
|
end;
|
|
|
|
|
|
{ true, if p points to an open array def }
|
|
function is_open_string(p : tdef) : boolean;
|
|
begin
|
|
is_open_string:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype=st_shortstring) and
|
|
(tstringdef(p).len=0);
|
|
end;
|
|
|
|
|
|
{ true, if p points to a zero based array def }
|
|
function is_zero_based_array(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
(tarraydef(p).lowrange=0) and
|
|
not(is_special_array(p));
|
|
end;
|
|
|
|
{ true if p points to a dynamic array def }
|
|
function is_dynamic_array(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
(ado_IsDynamicArray in tarraydef(p).arrayoptions);
|
|
end;
|
|
|
|
|
|
{ true, if p points to an open array def }
|
|
function is_open_array(p : tdef) : boolean;
|
|
begin
|
|
{ check for sizesinttype is needed, because for unsigned the high
|
|
range is also -1 ! (PFV) }
|
|
result:=(p.typ=arraydef) and
|
|
(tarraydef(p).rangedef=sizesinttype) and
|
|
(ado_OpenArray in tarraydef(p).arrayoptions) and
|
|
((tarraydef(p).arrayoptions * [ado_IsVariant,ado_IsArrayOfConst,ado_IsConstructor,ado_IsDynamicArray])=[]);
|
|
end;
|
|
|
|
{ true, if p points to an array of const def }
|
|
function is_array_constructor(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
(ado_IsConstructor in tarraydef(p).arrayoptions);
|
|
end;
|
|
|
|
{ true, if p points to a variant array }
|
|
function is_variant_array(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
(ado_IsVariant in tarraydef(p).arrayoptions);
|
|
end;
|
|
|
|
{ true, if p points to an array of const }
|
|
function is_array_of_const(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
(ado_IsArrayOfConst in tarraydef(p).arrayoptions) and
|
|
{ consider it an array-of-const in the strict sense only if it
|
|
isn't an array constructor }
|
|
not (ado_IsConstructor in tarraydef(p).arrayoptions);
|
|
end;
|
|
|
|
function is_conststring_array(p: tdef): boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
(ado_IsConstString in tarraydef(p).arrayoptions);
|
|
end;
|
|
|
|
{ true, if p points to a special array, bitpacked arrays aren't special in this regard though }
|
|
function is_special_array(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
(
|
|
((tarraydef(p).arrayoptions * [ado_IsVariant,ado_IsArrayOfConst,ado_IsConstructor,ado_IsDynamicArray])<>[]) or
|
|
is_open_array(p)
|
|
);
|
|
end;
|
|
|
|
{ true, if p points to a normal array, bitpacked arrays are included }
|
|
function is_normal_array(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
((tarraydef(p).arrayoptions * [ado_IsVariant,ado_IsArrayOfConst,ado_IsConstructor,ado_IsDynamicArray])=[]) and
|
|
not(is_open_array(p));
|
|
end;
|
|
|
|
{ true if p is an ansi string def }
|
|
function is_ansistring(p : tdef) : boolean;
|
|
begin
|
|
is_ansistring:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype=st_ansistring);
|
|
end;
|
|
|
|
{ true if p is an ansi string def with codepage CP_NONE }
|
|
function is_rawbytestring(p : tdef) : boolean;
|
|
begin
|
|
is_rawbytestring:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype=st_ansistring) and
|
|
(tstringdef(p).encoding=globals.CP_NONE);
|
|
end;
|
|
|
|
{ true if p is an long string def }
|
|
function is_longstring(p : tdef) : boolean;
|
|
begin
|
|
is_longstring:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype=st_longstring);
|
|
end;
|
|
|
|
|
|
{ true if p is an wide string def }
|
|
function is_widestring(p : tdef) : boolean;
|
|
begin
|
|
is_widestring:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype=st_widestring);
|
|
end;
|
|
|
|
|
|
function is_dynamicstring(p: tdef): boolean;
|
|
begin
|
|
is_dynamicstring:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype in [st_ansistring,st_widestring,st_unicodestring]);
|
|
end;
|
|
|
|
|
|
{ true if p is an wide string def }
|
|
function is_wide_or_unicode_string(p : tdef) : boolean;
|
|
begin
|
|
is_wide_or_unicode_string:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype in [st_widestring,st_unicodestring]);
|
|
end;
|
|
|
|
|
|
{ true if p is an unicode string def }
|
|
function is_unicodestring(p : tdef) : boolean;
|
|
begin
|
|
is_unicodestring:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype=st_unicodestring);
|
|
end;
|
|
|
|
|
|
{ true if p is an short string def }
|
|
function is_shortstring(p : tdef) : boolean;
|
|
begin
|
|
is_shortstring:=(p.typ=stringdef) and
|
|
(tstringdef(p).stringtype=st_shortstring);
|
|
end;
|
|
|
|
|
|
{ true if p is bit packed array def }
|
|
function is_packed_array(p: tdef) : boolean;
|
|
begin
|
|
is_packed_array :=
|
|
(p.typ = arraydef) and
|
|
(ado_IsBitPacked in tarraydef(p).arrayoptions);
|
|
end;
|
|
|
|
|
|
{ true if p is bit packed record def }
|
|
function is_packed_record_or_object(p: tdef) : boolean;
|
|
begin
|
|
is_packed_record_or_object :=
|
|
(p.typ in [recorddef,objectdef]) and
|
|
(tabstractrecorddef(p).is_packed);
|
|
end;
|
|
|
|
|
|
{ true if p is a char array def }
|
|
function is_chararray(p : tdef) : boolean;
|
|
begin
|
|
is_chararray:=(p.typ=arraydef) and
|
|
is_char(tarraydef(p).elementdef) and
|
|
not(is_special_array(p));
|
|
end;
|
|
|
|
{ true if p is a widechar array def }
|
|
function is_widechararray(p : tdef) : boolean;
|
|
begin
|
|
is_widechararray:=(p.typ=arraydef) and
|
|
is_widechar(tarraydef(p).elementdef) and
|
|
not(is_special_array(p));
|
|
end;
|
|
|
|
|
|
{ true if p is a open char array def }
|
|
function is_open_chararray(p : tdef) : boolean;
|
|
begin
|
|
is_open_chararray:= is_open_array(p) and
|
|
is_char(tarraydef(p).elementdef);
|
|
end;
|
|
|
|
{ true if p is a open wide char array def }
|
|
function is_open_widechararray(p : tdef) : boolean;
|
|
begin
|
|
is_open_widechararray:= is_open_array(p) and
|
|
is_widechar(tarraydef(p).elementdef);
|
|
end;
|
|
|
|
{ true if p is any pointer def }
|
|
function is_pointer(p : tdef) : boolean;
|
|
begin
|
|
is_pointer:=(p.typ=pointerdef);
|
|
end;
|
|
|
|
function is_address(p: tdef): boolean;
|
|
begin
|
|
is_address:=
|
|
(p.typ in [classrefdef,formaldef,undefineddef,procdef]) or
|
|
is_pointer(p) or
|
|
is_implicit_array_pointer(p) or
|
|
is_implicit_pointer_object_type(p) or
|
|
((p.typ=procvardef) and
|
|
(tprocvardef(p).is_addressonly or
|
|
is_block(p)
|
|
)
|
|
)
|
|
end;
|
|
|
|
{ true if p is a pchar def }
|
|
function is_pchar(p : tdef) : boolean;
|
|
begin
|
|
is_pchar:=(p.typ=pointerdef) and
|
|
(is_char(tpointerdef(p).pointeddef) or
|
|
(is_zero_based_array(tpointerdef(p).pointeddef) and
|
|
is_chararray(tpointerdef(p).pointeddef)));
|
|
end;
|
|
|
|
{ true if p is a pwidechar def }
|
|
function is_pwidechar(p : tdef) : boolean;
|
|
begin
|
|
is_pwidechar:=(p.typ=pointerdef) and
|
|
(is_widechar(tpointerdef(p).pointeddef) or
|
|
(is_zero_based_array(tpointerdef(p).pointeddef) and
|
|
is_widechararray(tpointerdef(p).pointeddef)));
|
|
end;
|
|
|
|
|
|
{ true if p is a voidpointer def }
|
|
function is_voidpointer(p : tdef) : boolean;
|
|
begin
|
|
is_voidpointer:=(p.typ=pointerdef) and
|
|
(tpointerdef(p).pointeddef.typ=orddef) and
|
|
(torddef(tpointerdef(p).pointeddef).ordtype=uvoid);
|
|
end;
|
|
|
|
|
|
type
|
|
PDefListItem = ^TDefListItem;
|
|
TDefListItem = record
|
|
Next: PDefListItem;
|
|
Def: tdef;
|
|
end;
|
|
|
|
{ See "is_cyclic" below }
|
|
function is_cyclic_internal(const def: tdef; const first: PDefListItem): Boolean;
|
|
var
|
|
thisdef: TDefListItem;
|
|
curitem: PDefListItem;
|
|
begin
|
|
if not (def.typ in [arraydef, pointerdef]) then
|
|
Exit(False);
|
|
|
|
curitem := first;
|
|
while assigned(curitem) do
|
|
begin
|
|
if curitem^.Def = def then
|
|
Exit(True);
|
|
curitem := curitem^.Next;
|
|
end;
|
|
|
|
thisdef.Next := first;
|
|
thisdef.Def := def;
|
|
|
|
case def.typ of
|
|
arraydef:
|
|
Result := is_cyclic_internal(tarraydef(def).elementdef, @thisdef);
|
|
pointerdef:
|
|
Result := is_cyclic_internal(tabstractpointerdef(def).pointeddef, @thisdef);
|
|
else
|
|
InternalError(2022120301);
|
|
end;
|
|
end;
|
|
|
|
{ true, if p is a cyclic reference (refers to itself at some point via pointer or array) }
|
|
function is_cyclic(p : tdef): Boolean; {$ifdef USEINLINE}inline;{$endif USEINLINE}
|
|
begin
|
|
Result := is_cyclic_internal(p, nil);
|
|
end;
|
|
|
|
{ true, if def is a 8 bit int type }
|
|
function is_8bitint(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and (torddef(def).ordtype in [u8bit,s8bit])
|
|
end;
|
|
|
|
{ true, if def is a 8 bit ordinal type }
|
|
function is_8bit(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and (torddef(def).ordtype in [u8bit,s8bit,pasbool1,pasbool8,bool8bit,uchar])
|
|
end;
|
|
|
|
{ true, if def is a 16 bit int type }
|
|
function is_16bitint(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and (torddef(def).ordtype in [u16bit,s16bit])
|
|
end;
|
|
|
|
{ true, if def is a 16 bit ordinal type }
|
|
function is_16bit(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and (torddef(def).ordtype in [u16bit,s16bit,pasbool16,bool16bit,uwidechar])
|
|
end;
|
|
|
|
{ true, if def is a 32 bit int type }
|
|
function is_32bitint(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and (torddef(def).ordtype in [u32bit,s32bit])
|
|
end;
|
|
|
|
{ true, if def is a 32 bit ordinal type }
|
|
function is_32bit(def: tdef): boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and (torddef(def).ordtype in [u32bit,s32bit,pasbool32,bool32bit])
|
|
end;
|
|
|
|
|
|
{ true, if def is a 64 bit int type }
|
|
function is_64bitint(def : tdef) : boolean;
|
|
begin
|
|
is_64bitint:=(def.typ=orddef) and (torddef(def).ordtype in [u64bit,s64bit])
|
|
end;
|
|
|
|
|
|
function is_s64bitint(def: tdef): boolean;
|
|
begin
|
|
is_s64bitint:=(def.typ=orddef) and (torddef(def).ordtype=s64bit)
|
|
end;
|
|
|
|
|
|
function is_u64bitint(def: tdef): boolean;
|
|
begin
|
|
is_u64bitint:=(def.typ=orddef) and (torddef(def).ordtype=u64bit)
|
|
end;
|
|
|
|
|
|
{ true, if def is a 64 bit type }
|
|
function is_64bit(def : tdef) : boolean;
|
|
begin
|
|
is_64bit:=(def.typ=orddef) and (torddef(def).ordtype in [u64bit,s64bit,scurrency,pasbool64,bool64bit])
|
|
end;
|
|
|
|
|
|
{ returns true, if def is a longint type }
|
|
function is_s32bitint(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype=s32bit);
|
|
end;
|
|
|
|
|
|
{ returns true, if def is a dword type }
|
|
function is_u32bitint(def : tdef) : boolean;
|
|
begin
|
|
result:=(def.typ=orddef) and
|
|
(torddef(def).ordtype=u32bit);
|
|
end;
|
|
|
|
|
|
{ true, if def1 and def2 are both integers of the same bit size and sign }
|
|
function are_equal_ints(def1, def2: tdef): boolean;
|
|
begin
|
|
result:=(def1.typ=orddef) and (def2.typ=orddef) and
|
|
(torddef(def1).ordtype in [u8bit,u16bit,u32bit,u64bit,
|
|
s8bit,s16bit,s32bit,s64bit,customint]) and
|
|
(torddef(def1).ordtype=torddef(def2).ordtype) and
|
|
((torddef(def1).ordtype<>customint) or
|
|
((torddef(def1).low=torddef(def2).low) and
|
|
(torddef(def1).high=torddef(def2).high)));
|
|
end;
|
|
|
|
|
|
{ true, if def is an int type, larger than the processor's native int size }
|
|
function is_oversizedint(def : tdef) : boolean;
|
|
begin
|
|
{$if defined(cpu8bitalu)}
|
|
result:=is_64bitint(def) or is_32bitint(def) or is_16bitint(def);
|
|
{$elseif defined(cpu16bitalu)}
|
|
result:=is_64bitint(def) or is_32bitint(def);
|
|
{$elseif defined(cpu32bitaddr)}
|
|
result:=is_64bitint(def);
|
|
{$elseif defined(cpu64bitaddr)}
|
|
result:=false;
|
|
{$endif}
|
|
end;
|
|
|
|
{ true, if def is an ordinal type, larger than the processor's native int size }
|
|
function is_oversizedord(def : tdef) : boolean;
|
|
begin
|
|
{$if defined(cpu8bitalu)}
|
|
result:=is_64bit(def) or is_32bit(def) or is_16bit(def);
|
|
{$elseif defined(cpu16bitalu)}
|
|
result:=is_64bit(def) or is_32bit(def);
|
|
{$elseif defined(cpu32bitaddr)}
|
|
result:=is_64bit(def);
|
|
{$elseif defined(cpu64bitaddr)}
|
|
result:=false;
|
|
{$endif}
|
|
end;
|
|
|
|
|
|
{ true, if def is an int type, equal in size to the processor's native int size }
|
|
function is_nativeint(def: tdef): boolean;
|
|
begin
|
|
{$if defined(cpu8bitalu)}
|
|
result:=is_8bitint(def);
|
|
{$elseif defined(cpu16bitalu)}
|
|
result:=is_16bitint(def);
|
|
{$elseif defined(cpu32bitaddr)}
|
|
result:=is_32bitint(def);
|
|
{$elseif defined(cpu64bitaddr)}
|
|
result:=is_64bitint(def);
|
|
{$endif}
|
|
end;
|
|
|
|
{ true, if def is an ordinal type, equal in size to the processor's native int size }
|
|
function is_nativeord(def: tdef): boolean;
|
|
begin
|
|
{$if defined(cpu8bitalu)}
|
|
result:=is_8bit(def);
|
|
{$elseif defined(cpu16bitalu)}
|
|
result:=is_16bit(def);
|
|
{$elseif defined(cpu32bitaddr)}
|
|
result:=is_32bit(def);
|
|
{$elseif defined(cpu64bitaddr)}
|
|
result:=is_64bit(def);
|
|
{$endif}
|
|
end;
|
|
|
|
{ true, if def is an unsigned int type, equal in size to the processor's native int size }
|
|
function is_nativeuint(def: tdef): boolean;
|
|
begin
|
|
result:=is_nativeint(def) and (def.typ=orddef) and (torddef(def).ordtype in [u64bit,u32bit,u16bit,u8bit]);
|
|
end;
|
|
|
|
{ true, if def is a signed int type, equal in size to the processor's native int size }
|
|
function is_nativesint(def: tdef): boolean;
|
|
begin
|
|
result:=is_nativeint(def) and (def.typ=orddef) and (torddef(def).ordtype in [s64bit,s32bit,s16bit,s8bit]);
|
|
end;
|
|
|
|
function is_systemunit_unicode: boolean;
|
|
|
|
var
|
|
t : ttypesym;
|
|
|
|
begin
|
|
if cchartype=nil then
|
|
begin
|
|
t:=search_system_type('CHAR');
|
|
if t<>nil then
|
|
cchartype:=t.typedef;
|
|
end;
|
|
if cchartype=nil then
|
|
is_systemunit_unicode:=(sizeof(char)=2)
|
|
else
|
|
is_systemunit_unicode:=(cchartype.size=2);
|
|
end;
|
|
|
|
{ if l isn't in the range of todef a range check error (if not explicit) is generated and
|
|
the value is placed within the range }
|
|
procedure adaptrange(todef : tdef;var l : tconstexprint; rangecheck: tperformrangecheck);
|
|
var
|
|
lv,hv,oldval,sextval,mask: TConstExprInt;
|
|
rangedef: tdef;
|
|
rangedefsize: longint;
|
|
warned: boolean;
|
|
begin
|
|
getrange(todef,lv,hv);
|
|
if (l<lv) or (l>hv) then
|
|
begin
|
|
warned:=false;
|
|
if rangecheck in [rc_implicit,rc_yes] then
|
|
begin
|
|
if (rangecheck=rc_yes) or
|
|
(todef.typ=enumdef) then
|
|
Message3(type_e_range_check_error_bounds,tostr(l),tostr(lv),tostr(hv))
|
|
else
|
|
Message3(type_w_range_check_error_bounds,tostr(l),tostr(lv),tostr(hv));
|
|
warned:=true;
|
|
end
|
|
{ give warnings about range errors with explicit typeconversions if the target
|
|
type does not span the entire range that can be represented by its bits
|
|
(subrange type or enum), because then the result is undefined }
|
|
else if (rangecheck<>rc_internal) and
|
|
(not is_pasbool(todef) and
|
|
not spans_entire_range(todef)) then
|
|
begin
|
|
Message3(type_w_range_check_error_bounds,tostr(l),tostr(lv),tostr(hv));
|
|
warned:=true;
|
|
end;
|
|
|
|
{ Fix the value to fit in the allocated space for this type of variable }
|
|
oldval:=l;
|
|
getrangedefmasksize(todef,rangedef,mask,rangedefsize);
|
|
l:=l and mask;
|
|
{reset sign, i.e. converting -1 to qword changes the value to high(qword)}
|
|
l.signed:=false;
|
|
sextval:=0;
|
|
{ do sign extension if necessary (JM) }
|
|
case rangedefsize of
|
|
1: sextval.svalue:=shortint(l.svalue);
|
|
2: sextval.svalue:=smallint(l.svalue);
|
|
4: sextval.svalue:=longint(l.svalue);
|
|
8: sextval.svalue:=l.svalue;
|
|
else
|
|
internalerror(201906230);
|
|
end;
|
|
sextval.signed:=true;
|
|
{ Detect if the type spans the entire range, but more bits were specified than
|
|
the type can contain, e.g. shortint($fff).
|
|
However, none of the following should result in a warning:
|
|
1) shortint($ff) (-> $ff -> $ff -> $ffff ffff ffff ffff)
|
|
2) shortint(longint(-1)) ($ffff ffff ffff ffff ffff -> $ff -> $ffff ffff ffff ffff
|
|
3) cardinal(-1) (-> $ffff ffff ffff ffff -> $ffff ffff)
|
|
}
|
|
if not warned and
|
|
(rangecheck<>rc_internal) and
|
|
(oldval.uvalue<>l.uvalue) and
|
|
(oldval.uvalue<>sextval.uvalue) then
|
|
begin
|
|
Message3(type_w_range_check_error_bounds,tostr(oldval),tostr(lv),tostr(hv));
|
|
end;
|
|
if is_signed(rangedef) then
|
|
l:=sextval;
|
|
end;
|
|
end;
|
|
|
|
|
|
procedure adaptrange(todef: tdef; var l: tconstexprint; internal, explicit, rangecheckstate: boolean);
|
|
begin
|
|
if internal then
|
|
adaptrange(todef, l, rc_internal)
|
|
else if explicit then
|
|
adaptrange(todef, l, rc_explicit)
|
|
else if not rangecheckstate then
|
|
adaptrange(todef, l, rc_implicit)
|
|
else
|
|
adaptrange(todef, l, rc_yes)
|
|
end;
|
|
|
|
|
|
{ return the range from def in l and h }
|
|
procedure getrange(def : tdef;out l, h : TConstExprInt);
|
|
begin
|
|
case def.typ of
|
|
orddef :
|
|
begin
|
|
l:=torddef(def).low;
|
|
h:=torddef(def).high;
|
|
end;
|
|
enumdef :
|
|
begin
|
|
l:=int64(tenumdef(def).min);
|
|
h:=int64(tenumdef(def).max);
|
|
end;
|
|
arraydef :
|
|
begin
|
|
l:=int64(tarraydef(def).lowrange);
|
|
h:=int64(tarraydef(def).highrange);
|
|
end;
|
|
undefineddef:
|
|
begin
|
|
l:=torddef(sizesinttype).low;
|
|
h:=torddef(sizesinttype).high;
|
|
end;
|
|
else
|
|
internalerror(200611054);
|
|
end;
|
|
end;
|
|
|
|
|
|
procedure getrangedefmasksize(def: tdef; out rangedef: tdef; out mask: TConstExprInt; out size: longint);
|
|
begin
|
|
case def.typ of
|
|
orddef, enumdef:
|
|
begin
|
|
rangedef:=def;
|
|
size:=def.size;
|
|
case size of
|
|
1: mask:=$ff;
|
|
2: mask:=$ffff;
|
|
4: mask:=$ffffffff;
|
|
8: mask:=$ffffffffffffffff;
|
|
else
|
|
internalerror(2019062305);
|
|
end;
|
|
end;
|
|
arraydef:
|
|
begin
|
|
rangedef:=tarraydef(def).rangedef;
|
|
getrangedefmasksize(rangedef,rangedef,mask,size);
|
|
end;
|
|
undefineddef:
|
|
begin
|
|
rangedef:=sizesinttype;
|
|
size:=rangedef.size;
|
|
mask:=-1;
|
|
end;
|
|
else
|
|
internalerror(2019062306);
|
|
end;
|
|
end;
|
|
|
|
|
|
function mmx_type(p : tdef) : tmmxtype;
|
|
begin
|
|
mmx_type:=mmxno;
|
|
if is_mmx_able_array(p) then
|
|
begin
|
|
if tarraydef(p).elementdef.typ=floatdef then
|
|
case tfloatdef(tarraydef(p).elementdef).floattype of
|
|
s32real:
|
|
mmx_type:=mmxsingle;
|
|
else
|
|
;
|
|
end
|
|
else
|
|
case torddef(tarraydef(p).elementdef).ordtype of
|
|
u8bit:
|
|
mmx_type:=mmxu8bit;
|
|
s8bit:
|
|
mmx_type:=mmxs8bit;
|
|
u16bit:
|
|
mmx_type:=mmxu16bit;
|
|
s16bit:
|
|
mmx_type:=mmxs16bit;
|
|
u32bit:
|
|
mmx_type:=mmxu32bit;
|
|
s32bit:
|
|
mmx_type:=mmxs32bit;
|
|
else
|
|
;
|
|
end;
|
|
end;
|
|
end;
|
|
|
|
|
|
{ The range-type of an ordinal-type that is a subrange-type shall be the host-type (see 6.4.2.4) of the subrange-type.
|
|
The range-type of an ordinal-type that is not a subrange-type shall be the ordinal-type.
|
|
|
|
The subrange-bounds shall be of compatible ordinal-types, and the range-type (see 6.4.2.1) of the ordinal-types shall
|
|
be designated the host-type of the subrange-type. }
|
|
function get_iso_range_type(def: tdef): tdef;
|
|
begin
|
|
result:=nil;
|
|
case def.typ of
|
|
orddef:
|
|
begin
|
|
if is_integer(def) then
|
|
begin
|
|
if (torddef(def).low>=torddef(sinttype).low) and
|
|
(torddef(def).high<=torddef(sinttype).high) then
|
|
result:=sinttype
|
|
else
|
|
range_to_type(torddef(def).low,torddef(def).high,result);
|
|
end
|
|
else case torddef(def).ordtype of
|
|
pasbool1:
|
|
result:=pasbool1type;
|
|
pasbool8:
|
|
result:=pasbool8type;
|
|
pasbool16:
|
|
result:=pasbool16type;
|
|
pasbool32:
|
|
result:=pasbool32type;
|
|
pasbool64:
|
|
result:=pasbool64type;
|
|
bool8bit:
|
|
result:=bool8type;
|
|
bool16bit:
|
|
result:=bool16type;
|
|
bool32bit:
|
|
result:=bool32type;
|
|
bool64bit:
|
|
result:=bool64type;
|
|
uchar:
|
|
result:=cansichartype;
|
|
uwidechar:
|
|
result:=cwidechartype;
|
|
scurrency:
|
|
result:=s64currencytype;
|
|
else
|
|
internalerror(2018010901);
|
|
end;
|
|
end;
|
|
enumdef:
|
|
begin
|
|
while assigned(tenumdef(def).basedef) do
|
|
def:=tenumdef(def).basedef;
|
|
result:=def;
|
|
end
|
|
else
|
|
internalerror(2018010701);
|
|
end;
|
|
end;
|
|
|
|
|
|
function is_vector(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
(tarraydef(p).is_hwvector { or
|
|
(not(is_special_array(p)) and
|
|
(tarraydef(p).elementdef.typ in [floatdef,orddef]) and
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype in [s32real,s64real])
|
|
) }
|
|
);
|
|
end;
|
|
|
|
|
|
{ returns if the passed type (array) fits into an mm register }
|
|
function fits_in_mm_register(p : tdef) : boolean;
|
|
begin
|
|
{$ifdef x86}
|
|
result:= is_vector(p) and
|
|
(
|
|
(
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
((tarraydef(p).highrange=3) or
|
|
(UseAVX and (tarraydef(p).highrange=7)) or
|
|
(UseAVX512 and (tarraydef(p).highrange=15))
|
|
) and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype=s32real)
|
|
)
|
|
) or
|
|
|
|
(
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
((tarraydef(p).highrange=1) or
|
|
(UseAVX and (tarraydef(p).highrange=3)) or
|
|
(UseAVX512 and (tarraydef(p).highrange=7))
|
|
)and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype=s64real)
|
|
)
|
|
) {or
|
|
|
|
// MMX registers
|
|
(
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=1) and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype=s32real)
|
|
)
|
|
) or
|
|
|
|
(
|
|
(tarraydef(p).elementdef.typ=orddef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=1) and
|
|
(torddef(tarraydef(p).elementdef).ordtype in [s32bit,u32bit])
|
|
)
|
|
) or
|
|
|
|
(
|
|
(tarraydef(p).elementdef.typ=orddef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=3) and
|
|
(torddef(tarraydef(p).elementdef).ordtype in [s16bit,u16bit])
|
|
)
|
|
) or
|
|
|
|
(
|
|
(tarraydef(p).elementdef.typ=orddef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=7) and
|
|
(torddef(tarraydef(p).elementdef).ordtype in [s8bit,u8bit])
|
|
)
|
|
) }
|
|
);
|
|
{$else x86}
|
|
result:=false;
|
|
{$endif x86}
|
|
end;
|
|
|
|
|
|
function to_hwvectordef(p: tdef; nil_on_error: boolean): tdef;
|
|
begin
|
|
result:=nil;
|
|
if p.typ=arraydef then
|
|
begin
|
|
if tarraydef(p).is_hwvector then
|
|
result:=p
|
|
else if fits_in_mm_register(p) then
|
|
result:=carraydef.getreusable_vector(tarraydef(p).elementdef,tarraydef(p).elecount)
|
|
else if not nil_on_error then
|
|
internalerror(2022090811);
|
|
end
|
|
else if not nil_on_error then
|
|
internalerror(2022090810);
|
|
end;
|
|
|
|
|
|
function is_mmx_able_array(p : tdef) : boolean;
|
|
begin
|
|
{$ifdef SUPPORT_MMX}
|
|
if (cs_mmx_saturation in current_settings.localswitches) then
|
|
begin
|
|
is_mmx_able_array:=(p.typ=arraydef) and
|
|
not(is_special_array(p)) and
|
|
(
|
|
(
|
|
(tarraydef(p).elementdef.typ=orddef) and
|
|
(
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=1) and
|
|
(torddef(tarraydef(p).elementdef).ordtype in [u32bit,s32bit])
|
|
)
|
|
or
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=3) and
|
|
(torddef(tarraydef(p).elementdef).ordtype in [u16bit,s16bit])
|
|
)
|
|
)
|
|
)
|
|
or
|
|
(
|
|
(
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=1) and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype=s32real)
|
|
)
|
|
)
|
|
)
|
|
);
|
|
end
|
|
else
|
|
begin
|
|
is_mmx_able_array:=(p.typ=arraydef) and
|
|
(
|
|
(
|
|
(tarraydef(p).elementdef.typ=orddef) and
|
|
(
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=1) and
|
|
(torddef(tarraydef(p).elementdef).ordtype in [u32bit,s32bit])
|
|
)
|
|
or
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=3) and
|
|
(torddef(tarraydef(p).elementdef).ordtype in [u16bit,s16bit])
|
|
)
|
|
or
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=7) and
|
|
(torddef(tarraydef(p).elementdef).ordtype in [u8bit,s8bit])
|
|
)
|
|
)
|
|
)
|
|
or
|
|
(
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=1) and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype=s32real)
|
|
)
|
|
)
|
|
);
|
|
end;
|
|
{$else SUPPORT_MMX}
|
|
is_mmx_able_array:=false;
|
|
{$endif SUPPORT_MMX}
|
|
end;
|
|
|
|
|
|
function def_cgsize(def: tdef): tcgsize;
|
|
begin
|
|
case def.typ of
|
|
orddef,
|
|
enumdef,
|
|
setdef:
|
|
begin
|
|
result:=int_cgsize(def.size);
|
|
if is_signed(def) then
|
|
result:=tcgsize(ord(result)+(ord(OS_S8)-ord(OS_8)));
|
|
end;
|
|
classrefdef,
|
|
pointerdef:
|
|
begin
|
|
result:=int_cgsize(def.size);
|
|
{ can happen for far/huge pointers on non-i8086 }
|
|
if result=OS_NO then
|
|
internalerror(2013052201);
|
|
end;
|
|
formaldef:
|
|
result := int_cgsize(voidpointertype.size);
|
|
procvardef:
|
|
result:=int_cgsize(def.size);
|
|
stringdef :
|
|
result:=int_cgsize(def.size);
|
|
objectdef :
|
|
result:=int_cgsize(def.size);
|
|
floatdef:
|
|
if (cs_fp_emulation in current_settings.moduleswitches)
|
|
{$ifdef xtensa}
|
|
or not(tfloatdef(def).floattype=s32real)
|
|
or not(FPUXTENSA_SINGLE in fpu_capabilities[current_settings.fputype])
|
|
{$endif xtensa}
|
|
then
|
|
result:=int_cgsize(def.size)
|
|
else
|
|
result:=tfloat2tcgsize[tfloatdef(def).floattype];
|
|
recorddef :
|
|
{$ifdef wasm32}
|
|
if (def.size in [4,8]) and (trecorddef(def).contains_float_field) then
|
|
result:=int_float_cgsize(def.size)
|
|
else
|
|
{$endif wasm32}
|
|
result:=int_cgsize(def.size);
|
|
arraydef :
|
|
begin
|
|
if is_dynamic_array(def) or not is_special_array(def) then
|
|
begin
|
|
if is_vector(def) and ((TArrayDef(def).elementdef.typ = floatdef) and not (cs_fp_emulation in current_settings.moduleswitches)) then
|
|
begin
|
|
{ Determine if, based on the floating-point type and the size
|
|
of the array, if it can be made into a vector }
|
|
case tfloatdef(tarraydef(def).elementdef).floattype of
|
|
s32real:
|
|
result := float_array_cgsize(def.size);
|
|
s64real:
|
|
result := double_array_cgsize(def.size);
|
|
else
|
|
{ If not, fall back }
|
|
result := int_cgsize(def.size);
|
|
end;
|
|
end
|
|
else
|
|
result := int_cgsize(def.size);
|
|
end
|
|
else
|
|
result := OS_NO;
|
|
end;
|
|
else
|
|
begin
|
|
{ undefined size }
|
|
result:=OS_NO;
|
|
end;
|
|
end;
|
|
end;
|
|
|
|
function cgsize_orddef(size: tcgsize): torddef;
|
|
begin
|
|
case size of
|
|
OS_8:
|
|
result:=torddef(u8inttype);
|
|
OS_S8:
|
|
result:=torddef(s8inttype);
|
|
OS_16:
|
|
result:=torddef(u16inttype);
|
|
OS_S16:
|
|
result:=torddef(s16inttype);
|
|
OS_32:
|
|
result:=torddef(u32inttype);
|
|
OS_S32:
|
|
result:=torddef(s32inttype);
|
|
OS_64:
|
|
result:=torddef(u64inttype);
|
|
OS_S64:
|
|
result:=torddef(s64inttype);
|
|
else
|
|
internalerror(2012050401);
|
|
end;
|
|
end;
|
|
|
|
function def_cgmmsize(def: tdef): tcgsize;
|
|
begin
|
|
case def.typ of
|
|
arraydef:
|
|
begin
|
|
case tarraydef(def).elementdef.typ of
|
|
orddef:
|
|
begin
|
|
{ this is not correct, OS_MX normally mean that the vector
|
|
contains elements of size X. However, vectors themselves
|
|
can also have different sizes (e.g. a vector of 2 singles on
|
|
SSE) and the total size is currently more important }
|
|
case def.size of
|
|
1: result:=OS_M8;
|
|
2: result:=OS_M16;
|
|
4: result:=OS_M32;
|
|
8: result:=OS_M64;
|
|
16: result:=OS_M128;
|
|
32: result:=OS_M256;
|
|
64: result:=OS_M512;
|
|
else
|
|
internalerror(2013060103);
|
|
end;
|
|
end;
|
|
floatdef:
|
|
begin
|
|
case TFloatDef(tarraydef(def).elementdef).floattype of
|
|
s32real:
|
|
case def.size of
|
|
4: result:=OS_M32;
|
|
16: result:=OS_M128;
|
|
32: result:=OS_M256;
|
|
64: result:=OS_M512;
|
|
else
|
|
internalerror(2017121400);
|
|
end;
|
|
s64real:
|
|
case def.size of
|
|
8: result:=OS_M64;
|
|
16: result:=OS_M128;
|
|
32: result:=OS_M256;
|
|
64: result:=OS_M512;
|
|
else
|
|
internalerror(2017121401);
|
|
end;
|
|
else
|
|
internalerror(2017121402);
|
|
end;
|
|
end;
|
|
else
|
|
result:=def_cgsize(def);
|
|
end;
|
|
end
|
|
else
|
|
result:=def_cgsize(def);
|
|
end;
|
|
end;
|
|
|
|
{ In Windows 95 era, ordinals were restricted to [u8bit,s32bit,s16bit,bool16bit]
|
|
As of today, both signed and unsigned types from 8 to 64 bits are supported. }
|
|
function is_automatable(p : tdef) : boolean;
|
|
begin
|
|
case p.typ of
|
|
orddef:
|
|
result:=torddef(p).ordtype in [u8bit,s8bit,u16bit,s16bit,u32bit,s32bit,
|
|
u64bit,s64bit,bool16bit,scurrency];
|
|
floatdef:
|
|
result:=tfloatdef(p).floattype in [s64currency,s64real,s32real];
|
|
stringdef:
|
|
result:=tstringdef(p).stringtype in [st_ansistring,st_widestring,st_unicodestring];
|
|
variantdef:
|
|
result:=true;
|
|
objectdef:
|
|
result:=tobjectdef(p).objecttype in [odt_interfacecom,odt_dispinterface,odt_interfacecorba];
|
|
else
|
|
result:=false;
|
|
end;
|
|
end;
|
|
|
|
|
|
{# returns true, if the type passed is a varset }
|
|
function is_smallset(p : tdef) : boolean;
|
|
begin
|
|
{$if defined(cpu8bitalu)}
|
|
result:=(p.typ=setdef) and (p.size = 1)
|
|
{$elseif defined(cpu16bitalu)}
|
|
result:=(p.typ=setdef) and (p.size in [1,2])
|
|
{$else}
|
|
result:=(p.typ=setdef) and (p.size in [1,2,4])
|
|
{$endif}
|
|
end;
|
|
|
|
|
|
function is_bareprocdef(pd : tprocdef): boolean;
|
|
begin
|
|
result:=(pd.maxparacount=0) and
|
|
(is_void(pd.returndef) or
|
|
(pd.proctypeoption = potype_constructor));
|
|
end;
|
|
|
|
function is_c_variadic(pd: tabstractprocdef): boolean;
|
|
begin
|
|
result:=
|
|
(po_varargs in pd.procoptions) or
|
|
(po_variadic in pd.procoptions);
|
|
end;
|
|
|
|
function get_common_intdef(ld, rd: torddef; keep_sign_if_equal: boolean): torddef;
|
|
var
|
|
llow, lhigh: tconstexprint;
|
|
begin
|
|
llow:=min(ld.low,rd.low);
|
|
lhigh:=max(ld.high,rd.high);
|
|
case range_to_basetype(llow,lhigh) of
|
|
s8bit:
|
|
result:=torddef(s8inttype);
|
|
u8bit:
|
|
result:=torddef(u8inttype);
|
|
s16bit:
|
|
result:=torddef(s16inttype);
|
|
u16bit:
|
|
result:=torddef(u16inttype);
|
|
s32bit:
|
|
result:=torddef(s32inttype);
|
|
u32bit:
|
|
result:=torddef(u32inttype);
|
|
s64bit:
|
|
result:=torddef(s64inttype);
|
|
u64bit:
|
|
result:=torddef(u64inttype);
|
|
else
|
|
begin
|
|
{ avoid warning }
|
|
result:=nil;
|
|
internalerror(200802291);
|
|
end;
|
|
end;
|
|
if keep_sign_if_equal and
|
|
(is_signed(ld)=is_signed(rd)) and
|
|
(is_signed(result)<>is_signed(ld)) then
|
|
case result.ordtype of
|
|
s8bit:
|
|
result:=torddef(u8inttype);
|
|
u8bit:
|
|
result:=torddef(s16inttype);
|
|
s16bit:
|
|
result:=torddef(u16inttype);
|
|
u16bit:
|
|
result:=torddef(s32inttype);
|
|
s32bit:
|
|
result:=torddef(u32inttype);
|
|
u32bit:
|
|
result:=torddef(s64inttype);
|
|
s64bit:
|
|
result:=torddef(u64inttype);
|
|
else
|
|
;
|
|
end;
|
|
end;
|
|
|
|
|
|
function calc_not_ordvalue(var v:Tconstexprint;var def:tdef):boolean;
|
|
begin
|
|
if not assigned(def) or (def.typ<>orddef) then
|
|
exit(false);
|
|
result:=true;
|
|
case torddef(def).ordtype of
|
|
pasbool1,
|
|
pasbool8,
|
|
pasbool16,
|
|
pasbool32,
|
|
pasbool64:
|
|
v:=byte(not(boolean(int64(v))));
|
|
bool8bit,
|
|
bool16bit,
|
|
bool32bit,
|
|
bool64bit:
|
|
begin
|
|
if v=0 then
|
|
v:=-1
|
|
else
|
|
v:=0;
|
|
end;
|
|
uchar,
|
|
uwidechar,
|
|
u8bit,
|
|
s8bit,
|
|
u16bit,
|
|
s16bit,
|
|
s32bit,
|
|
u32bit,
|
|
s64bit,
|
|
u64bit:
|
|
begin
|
|
{ unsigned, equal or bigger than the native int size? }
|
|
if (torddef(def).ordtype in [u64bit,u32bit,u16bit,u8bit,uchar,uwidechar]) and
|
|
(is_nativeord(def) or is_oversizedord(def)) then
|
|
begin
|
|
{ Delphi-compatible: not dword = dword (not word = longint) }
|
|
{ Extension: not qword = qword }
|
|
v:=qword(not qword(v));
|
|
{ will be truncated by the ordconstnode for u32bit }
|
|
end
|
|
else
|
|
begin
|
|
v:=int64(not int64(v));
|
|
def:=get_common_intdef(torddef(def),torddef(sinttype),false);
|
|
end;
|
|
end;
|
|
else
|
|
result:=false;
|
|
end;
|
|
end;
|
|
|
|
function is_valid_univ_para_type(def: tdef): boolean;
|
|
begin
|
|
result:=
|
|
not is_open_array(def) and
|
|
not is_void(def) and
|
|
(def.typ<>formaldef);
|
|
end;
|
|
|
|
|
|
function is_nested_pd(def: tabstractprocdef): boolean;{$ifdef USEINLINE}inline;{$endif}
|
|
begin
|
|
result:=def.parast.symtablelevel>normal_function_level;
|
|
end;
|
|
|
|
|
|
function is_typeparam(def : tdef) : boolean;{$ifdef USEINLINE}inline;{$endif}
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begin
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result:=(def.typ=undefineddef) or (df_genconstraint in def.defoptions);
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end;
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function is_methodpointer(def: tdef): boolean;
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begin
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result:=(def.typ=procvardef) and (po_methodpointer in tprocvardef(def).procoptions);
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end;
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function is_funcref(def:tdef):boolean;
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begin
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result:=(def.typ=objectdef) and (oo_is_funcref in tobjectdef(def).objectoptions);
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end;
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function is_invokable(def:tdef):boolean;
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begin
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result:=(def.typ=objectdef) and (oo_is_invokable in tobjectdef(def).objectoptions);
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end;
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function is_block(def: tdef): boolean;
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begin
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result:=(def.typ=procvardef) and (po_is_block in tprocvardef(def).procoptions)
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end;
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function get_typekind(def:tdef):byte;
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begin
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case def.typ of
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arraydef:
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if ado_IsDynamicArray in tarraydef(def).arrayoptions then
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result:=tkDynArray
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else
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result:=tkArray;
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recorddef:
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result:=tkRecord;
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pointerdef:
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result:=tkPointer;
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orddef:
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case torddef(def).ordtype of
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u8bit,
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u16bit,
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u32bit,
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s8bit,
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s16bit,
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s32bit:
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result:=tkInteger;
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u64bit:
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result:=tkQWord;
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s64bit:
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result:=tkInt64;
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pasbool1,
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pasbool8,
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pasbool16,
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pasbool32,
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pasbool64,
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bool8bit,
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bool16bit,
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bool32bit,
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bool64bit:
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result:=tkBool;
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uchar:
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result:=tkChar;
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uwidechar:
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result:=tkWChar;
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scurrency:
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result:=tkFloat;
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else
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result:=tkUnknown;
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end;
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stringdef:
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case tstringdef(def).stringtype of
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st_shortstring:
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result:=tkSString;
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st_longstring:
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result:=tkLString;
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st_ansistring:
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result:=tkAString;
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st_widestring:
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result:=tkWString;
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st_unicodestring:
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result:=tkUString;
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end;
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enumdef:
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result:=tkEnumeration;
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objectdef:
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case tobjectdef(def).objecttype of
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odt_class,
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odt_javaclass:
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result:=tkClass;
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odt_object:
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result:=tkObject;
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odt_interfacecom,
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odt_dispinterface,
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odt_interfacejava:
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result:=tkInterface;
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odt_interfacecorba:
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result:=tkInterfaceCorba;
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odt_helper:
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result:=tkHelper;
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else
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result:=tkUnknown;
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end;
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{ currently tkFile is not used }
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{filedef:
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result:=tkFile;}
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setdef:
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result:=tkSet;
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procvardef:
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if tprocvardef(def).is_methodpointer then
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result:=tkMethod
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else
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result:=tkProcVar;
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floatdef:
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result:=tkFloat;
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classrefdef:
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result:=tkClassRef;
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variantdef:
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result:=tkVariant;
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else
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result:=tkUnknown;
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end;
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end;
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function get_invoke_procdef(def:tobjectdef):tprocdef;
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var
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sym : tsym;
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begin
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repeat
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if not is_invokable(def) then
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internalerror(2022011701);
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sym:=tsym(def.symtable.find(method_name_funcref_invoke_find));
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if assigned(sym) and (sym.typ<>procsym) then
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sym:=nil;
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def:=def.childof;
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until assigned(sym) or not assigned(def);
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if not assigned(sym) then
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internalerror(2021041001);
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if sym.typ<>procsym then
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internalerror(2021041002);
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if tprocsym(sym).procdeflist.count=0 then
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internalerror(2021041003);
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result:=tprocdef(tprocsym(sym).procdeflist[0]);
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end;
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function invokable_has_argless_invoke(def:tobjectdef):boolean;
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var
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i,j : longint;
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sym : tsym;
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pd : tprocdef;
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para : tparavarsym;
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allok : boolean;
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begin
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result:=false;
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repeat
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if not is_invokable(def) then
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internalerror(2022020701);
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sym:=tsym(def.symtable.find(method_name_funcref_invoke_find));
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if assigned(sym) and (sym.typ=procsym) then
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begin
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for i:=0 to tprocsym(sym).procdeflist.count-1 do
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begin
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pd:=tprocdef(tprocsym(sym).procdeflist[i]);
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if (pd.paras.count=0) or
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(
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(pd.paras.count=1) and
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(vo_is_result in tparavarsym(pd.paras[0]).varoptions)
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) then
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exit(true);
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allok:=true;
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for j:=0 to pd.paras.count-1 do
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begin
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para:=tparavarsym(pd.paras[j]);
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if vo_is_hidden_para in para.varoptions then
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continue;
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if assigned(para.defaultconstsym) then
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continue;
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allok:=false;
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break;
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end;
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if allok then
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exit(true);
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end;
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if not (sp_has_overloaded in sym.symoptions) then
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break;
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end;
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def:=def.childof;
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until not assigned(def);
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end;
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end.
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