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handle vectorfpu (floatdef->MMREG) and softfloat (floatdef->INTREG) + thlcg.getregisterfordef(), which uses def2regtyp() to allocate a register appropriate to hold values of that tdef type + generic thlcg.location_force_reg() implementation. Note that for low-level code generator targets it may be slightly less efficient than the implementation in hlcg2ll (from ncgutil) because it does not play any tricks with the register or location size, or with reference offsets, to truncate values git-svn-id: branches/jvmbackend@18315 -
1190 lines
38 KiB
ObjectPascal
1190 lines
38 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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cclasses,
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globtype,globals,constexp,node,
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symconst,symbase,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);
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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 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(l,h:TConstExprInt):tordtype;
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procedure range_to_type(l,h:TConstExprInt;var def:tdef);
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procedure int_to_type(v:TConstExprInt;var def:tdef);
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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 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 the kind of register this type should be loaded in (it does not
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check whether this is actually possible, but if it's loaded in a register
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by the compiler for any purpose other than parameter passing/function
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result loading, this is the register type used }
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function def2regtyp(def: tdef): tregistertype;
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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 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 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 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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{# 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 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 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 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 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, 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 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 type }
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function is_64bit(def : tdef) : boolean;
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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 testrange(todef : tdef;var l : tconstexprint;explicit,forcerangecheck: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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{ type being a vector? }
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function is_vector(p : tdef) : boolean;
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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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{# 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 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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{ # 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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implementation
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uses
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systems,verbose;
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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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{ 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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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;
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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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begin
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result:=(def.typ=floatdef) and
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(tfloatdef(def).floattype in [s32real,s64real,s80real]);
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end;
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function range_to_basetype(l,h:TConstExprInt):tordtype;
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begin
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{ prefer signed over unsigned }
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if (l>=int64(-128)) and (h<=127) then
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range_to_basetype:=s8bit
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else if (l>=0) and (h<=255) then
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range_to_basetype:=u8bit
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else if (l>=int64(-32768)) and (h<=32767) then
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range_to_basetype:=s16bit
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else if (l>=0) and (h<=65535) then
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range_to_basetype:=u16bit
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else if (l>=int64(low(longint))) and (h<=high(longint)) then
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range_to_basetype:=s32bit
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else if (l>=low(cardinal)) and (h<=high(cardinal)) then
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range_to_basetype:=u32bit
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else
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range_to_basetype:=s64bit;
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end;
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procedure range_to_type(l,h:TConstExprInt;var def:tdef);
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begin
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{ prefer signed over unsigned }
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if (l>=int64(-128)) and (h<=127) then
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def:=s8inttype
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else if (l>=0) and (h<=255) then
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def:=u8inttype
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else if (l>=int64(-32768)) and (h<=32767) then
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def:=s16inttype
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else if (l>=0) and (h<=65535) then
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def:=u16inttype
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else if (l>=int64(low(longint))) and (h<=high(longint)) then
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def:=s32inttype
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else if (l>=low(cardinal)) and (h<=high(cardinal)) then
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def:=u32inttype
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else if (l>=low(int64)) and (h<=high(int64)) then
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def:=s64inttype
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else
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def:=u64inttype;
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end;
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procedure int_to_type(v:TConstExprInt;var def:tdef);
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begin
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range_to_type(v,v,def);
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end;
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{ true if p is an ordinal }
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function is_ordinal(def : tdef) : boolean;
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var
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dt : tordtype;
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begin
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case def.typ of
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orddef :
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begin
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dt:=torddef(def).ordtype;
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is_ordinal:=dt in [uchar,uwidechar,
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u8bit,u16bit,u32bit,u64bit,
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s8bit,s16bit,s32bit,s64bit,
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pasbool8,pasbool16,pasbool32,pasbool64,
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bool8bit,bool16bit,bool32bit,bool64bit];
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end;
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enumdef :
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is_ordinal:=true;
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else
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is_ordinal:=false;
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end;
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end;
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{ true if p is a string }
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function is_string(def : tdef) : boolean;
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begin
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is_string := (assigned(def) and (def.typ = stringdef));
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end;
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{ returns the min. value of the type }
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function get_min_value(def : tdef) : TConstExprInt;
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begin
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case def.typ of
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orddef:
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result:=torddef(def).low;
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enumdef:
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result:=int64(tenumdef(def).min);
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else
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result:=0;
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end;
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end;
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{ returns the max. value of the type }
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function get_max_value(def : tdef) : TConstExprInt;
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begin
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case def.typ of
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orddef:
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result:=torddef(def).high;
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enumdef:
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result:=tenumdef(def).max;
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else
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result:=0;
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end;
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end;
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{ true if p is an integer }
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function is_integer(def : tdef) : boolean;
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begin
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result:=(def.typ=orddef) and
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(torddef(def).ordtype in [u8bit,u16bit,u32bit,u64bit,
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s8bit,s16bit,s32bit,s64bit]);
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end;
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{ true if p is a boolean }
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function is_boolean(def : tdef) : boolean;
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begin
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result:=(def.typ=orddef) and
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(torddef(def).ordtype in [pasbool8,pasbool16,pasbool32,pasbool64,bool8bit,bool16bit,bool32bit,bool64bit]);
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end;
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function is_pasbool(def : tdef) : boolean;
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begin
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result:=(def.typ=orddef) and
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(torddef(def).ordtype in [pasbool8,pasbool16,pasbool32,pasbool64]);
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end;
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{ true if def 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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begin
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result:=(def.typ=orddef) and
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(torddef(def).ordtype in [bool8bit,bool16bit,bool32bit,bool64bit]);
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end;
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{ true if p is a void }
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function is_void(def : tdef) : boolean;
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begin
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result:=(def.typ=orddef) and
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(torddef(def).ordtype=uvoid);
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end;
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{ true if p is a char }
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function is_char(def : tdef) : boolean;
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begin
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result:=(def.typ=orddef) and
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(torddef(def).ordtype=uchar);
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end;
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{ true if p is a wchar }
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function is_widechar(def : tdef) : boolean;
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begin
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result:=(def.typ=orddef) and
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(torddef(def).ordtype=uwidechar);
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end;
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{ true if p is a char or wchar }
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function is_anychar(def : tdef) : boolean;
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begin
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result:=(def.typ=orddef) and
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(torddef(def).ordtype in [uchar,uwidechar])
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end;
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{ true if p is signed (integer) }
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function is_signed(def : tdef) : boolean;
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begin
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case def.typ of
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orddef :
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result:=torddef(def).low < 0;
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enumdef :
|
|
result:=tenumdef(def).min < 0;
|
|
arraydef :
|
|
result:=is_signed(tarraydef(def).rangedef);
|
|
else
|
|
result:=false;
|
|
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 def2regtyp(def: tdef): tregistertype;
|
|
begin
|
|
case def.typ of
|
|
enumdef,
|
|
orddef,
|
|
recorddef,
|
|
setdef:
|
|
result:=R_INTREGISTER;
|
|
stringdef,
|
|
pointerdef,
|
|
classrefdef,
|
|
objectdef,
|
|
procvardef,
|
|
procdef,
|
|
arraydef :
|
|
result:=R_ADDRESSREGISTER;
|
|
floatdef:
|
|
if use_vectorfpu(def) then
|
|
result:=R_MMREGISTER
|
|
else if cs_fp_emulation in current_settings.moduleswitches then
|
|
result:=R_INTREGISTER
|
|
else
|
|
result:=R_FPUREGISTER;
|
|
filedef,
|
|
variantdef:
|
|
internalerror(2010120507);
|
|
else
|
|
internalerror(2010120506);
|
|
end;
|
|
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 s32inttype is needed, because for u32bit the high
|
|
range is also -1 ! (PFV) }
|
|
result:=(p.typ=arraydef) and
|
|
(tarraydef(p).rangedef=s32inttype) and
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=-1) 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);
|
|
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 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 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;
|
|
|
|
|
|
{ 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 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 pchar 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;
|
|
|
|
|
|
{ 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 64 bit int type }
|
|
function is_64bitint(def : tdef) : boolean;
|
|
begin
|
|
is_64bitint:=(def.typ=orddef) and (torddef(def).ordtype in [u64bit,s64bit])
|
|
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])
|
|
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 testrange(todef : tdef;var l : tconstexprint;explicit,forcerangecheck:boolean);
|
|
var
|
|
lv,hv: TConstExprInt;
|
|
begin
|
|
{ for 64 bit types we need only to check if it is less than }
|
|
{ zero, if def is a qword node }
|
|
getrange(todef,lv,hv);
|
|
if (l<lv) or (l>hv) then
|
|
begin
|
|
if not explicit then
|
|
begin
|
|
if ((todef.typ=enumdef) and
|
|
{ delphi allows range check errors in
|
|
enumeration type casts FK }
|
|
not(m_delphi in current_settings.modeswitches)) or
|
|
(cs_check_range in current_settings.localswitches) or
|
|
forcerangecheck then
|
|
Message(parser_e_range_check_error)
|
|
else
|
|
Message(parser_w_range_check_error);
|
|
end;
|
|
{ Fix the value to fit in the allocated space for this type of variable }
|
|
case longint(todef.size) of
|
|
1: l := l and $ff;
|
|
2: l := l and $ffff;
|
|
4: l := l and $ffffffff;
|
|
end;
|
|
{reset sign, i.e. converting -1 to qword changes the value to high(qword)}
|
|
l.signed:=false;
|
|
{ do sign extension if necessary (JM) }
|
|
if is_signed(todef) then
|
|
begin
|
|
case longint(todef.size) of
|
|
1: l.svalue := shortint(l.svalue);
|
|
2: l.svalue := smallint(l.svalue);
|
|
4: l.svalue := longint(l.svalue);
|
|
end;
|
|
l.signed:=true;
|
|
end;
|
|
end;
|
|
end;
|
|
|
|
|
|
{ return the range from def in l and h }
|
|
procedure getrange(def : tdef;out l, h : TConstExprInt);
|
|
begin
|
|
case def.typ of
|
|
orddef :
|
|
begin
|
|
l:=torddef(def).low;
|
|
h:=torddef(def).high;
|
|
end;
|
|
enumdef :
|
|
begin
|
|
l:=int64(tenumdef(def).min);
|
|
h:=int64(tenumdef(def).max);
|
|
end;
|
|
arraydef :
|
|
begin
|
|
l:=int64(tarraydef(def).lowrange);
|
|
h:=int64(tarraydef(def).highrange);
|
|
end;
|
|
else
|
|
internalerror(200611054);
|
|
end;
|
|
end;
|
|
|
|
|
|
function mmx_type(p : tdef) : tmmxtype;
|
|
begin
|
|
mmx_type:=mmxno;
|
|
if is_mmx_able_array(p) then
|
|
begin
|
|
if tarraydef(p).elementdef.typ=floatdef then
|
|
case tfloatdef(tarraydef(p).elementdef).floattype of
|
|
s32real:
|
|
mmx_type:=mmxsingle;
|
|
end
|
|
else
|
|
case torddef(tarraydef(p).elementdef).ordtype of
|
|
u8bit:
|
|
mmx_type:=mmxu8bit;
|
|
s8bit:
|
|
mmx_type:=mmxs8bit;
|
|
u16bit:
|
|
mmx_type:=mmxu16bit;
|
|
s16bit:
|
|
mmx_type:=mmxs16bit;
|
|
u32bit:
|
|
mmx_type:=mmxu32bit;
|
|
s32bit:
|
|
mmx_type:=mmxs32bit;
|
|
end;
|
|
end;
|
|
end;
|
|
|
|
|
|
function is_vector(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=arraydef) and
|
|
not(is_special_array(p)) and
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype in [s32real,s64real]);
|
|
end;
|
|
|
|
|
|
{ returns if the passed type (array) fits into an mm register }
|
|
function fits_in_mm_register(p : tdef) : boolean;
|
|
begin
|
|
{$ifdef x86}
|
|
result:= is_vector(p) and
|
|
(
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=3) and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype=s32real)
|
|
)
|
|
) or
|
|
|
|
(
|
|
(tarraydef(p).elementdef.typ=floatdef) and
|
|
(
|
|
(tarraydef(p).lowrange=0) and
|
|
(tarraydef(p).highrange=1) and
|
|
(tfloatdef(tarraydef(p).elementdef).floattype=s64real)
|
|
)
|
|
);
|
|
{$else x86}
|
|
result:=false;
|
|
{$endif x86}
|
|
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;
|
|
{$endif SUPPORT_MMX}
|
|
end;
|
|
|
|
|
|
function def_cgsize(def: tdef): tcgsize;
|
|
begin
|
|
case def.typ of
|
|
orddef,
|
|
enumdef,
|
|
setdef:
|
|
begin
|
|
result:=int_cgsize(def.size);
|
|
if is_signed(def) then
|
|
result:=tcgsize(ord(result)+(ord(OS_S8)-ord(OS_8)));
|
|
end;
|
|
classrefdef,
|
|
pointerdef:
|
|
result := OS_ADDR;
|
|
procvardef:
|
|
begin
|
|
if not tprocvardef(def).is_addressonly then
|
|
{$if sizeof(pint) = 4}
|
|
result:=OS_64
|
|
{$else} {$if sizeof(pint) = 8}
|
|
result:=OS_128
|
|
{$else}
|
|
internalerror(200707141)
|
|
{$endif} {$endif}
|
|
else
|
|
result:=OS_ADDR;
|
|
end;
|
|
stringdef :
|
|
begin
|
|
if is_ansistring(def) or is_wide_or_unicode_string(def) then
|
|
result := OS_ADDR
|
|
else
|
|
result:=int_cgsize(def.size);
|
|
end;
|
|
objectdef :
|
|
begin
|
|
if is_implicit_pointer_object_type(def) then
|
|
result := OS_ADDR
|
|
else
|
|
result:=int_cgsize(def.size);
|
|
end;
|
|
floatdef:
|
|
if cs_fp_emulation in current_settings.moduleswitches then
|
|
result:=int_cgsize(def.size)
|
|
else
|
|
result:=tfloat2tcgsize[tfloatdef(def).floattype];
|
|
recorddef :
|
|
result:=int_cgsize(def.size);
|
|
arraydef :
|
|
begin
|
|
if not is_special_array(def) then
|
|
result := int_cgsize(def.size)
|
|
else
|
|
begin
|
|
if is_dynamic_array(def) then
|
|
result := OS_ADDR
|
|
else
|
|
result := OS_NO;
|
|
end;
|
|
end;
|
|
else
|
|
begin
|
|
{ undefined size }
|
|
result:=OS_NO;
|
|
end;
|
|
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
|
|
result:=false;
|
|
case p.typ of
|
|
orddef:
|
|
result:=torddef(p).ordtype in [u8bit,s8bit,u16bit,s16bit,u32bit,s32bit,
|
|
u64bit,s64bit,bool16bit];
|
|
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];
|
|
end;
|
|
end;
|
|
|
|
|
|
{# returns true, if the type passed is a varset }
|
|
function is_smallset(p : tdef) : boolean;
|
|
begin
|
|
result:=(p.typ=setdef) and (p.size in [1,2,4])
|
|
end;
|
|
|
|
|
|
function is_bareprocdef(pd : tprocdef): boolean;
|
|
begin
|
|
result:=(pd.maxparacount=0) and
|
|
(is_void(pd.returndef) or
|
|
(pd.proctypeoption = potype_constructor));
|
|
end;
|
|
|
|
|
|
function get_common_intdef(ld, rd: torddef; keep_sign_if_equal: boolean): torddef;
|
|
var
|
|
llow, lhigh: tconstexprint;
|
|
begin
|
|
llow:=rd.low;
|
|
if llow<ld.low then
|
|
llow:=ld.low;
|
|
lhigh:=rd.high;
|
|
if lhigh<ld.high then
|
|
lhigh:=ld.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);
|
|
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}
|
|
begin
|
|
result:=(def.typ=undefineddef);
|
|
end;
|
|
end.
|