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Estimated hours taken: 3
Branches: main
Change the list constructor from `./2' to `[|]/2'. `./2' will
eventually become the module qualification operator.
library/parser.m:
library/io.m:
library/sparse_bitset.m:
library/std_util.m:
library/term_io.m:
compiler/mercury_to_mercury.m:
compiler/prog_io_dcg.m:
compiler/prog_io_goal.m:
compiler/prog_io_pragma.m:
compiler/prog_io_typeclass.m:
compiler/prog_io_util.m:
browser/interactive_query.m:
extras/moose/grammar.m:
extras/moose/moose.m:
extras/morphine/source/generate_call_site_cov.m:
extras/xml/xml.encoding.m:
samples/muz/higher_order.m:
tests/debugger/declarative/app.m:
tests/dppd/transpose_impl.m:
tests/hard_coded/ground_dd.m:
tests/hard_coded/split_c_files.m:
Change all references to `./2' to use `[|]/2' instead.
compiler/typecheck.m:
Handle `./2' as a special case in `report_error_undef_cons'.
Warn about module list not being imported if `[|]/2' is undefined.
compiler/llds_out.m:
util/mdemangle.c:
profiler/demangle.m:
Add name conversions for `[|]' (f_cons) and `[]' (f_nil).
NEWS:
doc/reference_manual.texi:
w3/tutorial/lists-n-things.m4:
Document the changes.
tests/debugger/{,declarative}/*.exp*:
Update test case results. For some tests the output changed
because they output lists in the non-pretty format. For others,
the output changed because the alphabetical ordering of the
constructors of type `list/1' changed, so the numbering of
the switch branches in the goal paths changed.
571 lines
18 KiB
Mathematica
571 lines
18 KiB
Mathematica
%-----------------------------------------------------------------------------%
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% Copyright (C) 1996-2001 The University of Melbourne.
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% This file may only be copied under the terms of the GNU General
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% Public License - see the file COPYING in the Mercury distribution.
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%-----------------------------------------------------------------------------%
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%
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% File: prog_io_util.m.
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% Main author: fjh.
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%
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% This module defines the types used by prog_io and its subcontractors
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% to return the results of parsing, and some utility predicates needed
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% by several of prog_io's submodules.
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%
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% Most parsing predicates must check for errors. They return either the
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% item(s) they were looking for, or an error indication.
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%
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% Most of the parsing predicates return a `maybe1(T)'
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% or a `maybe2(T1, T2)', which will either be the
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% `ok(ParseTree)' (or `ok(ParseTree1, ParseTree2)'),
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% if the parse is successful, or `error(Message, Term)'
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% if it is not. The `Term' there should be the term which
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% is syntactically incorrect.
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:- module prog_io_util.
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:- interface.
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:- import_module prog_data, (inst).
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:- import_module list, map, std_util, term, io.
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:- type maybe2(T1, T2) ---> error(string, term)
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; ok(T1, T2).
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:- type maybe1(T) == maybe1(T, generic).
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:- type maybe1(T, U) ---> error(string, term(U))
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; ok(T).
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:- type maybe_functor == maybe_functor(generic).
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:- type maybe_functor(T) == maybe2(sym_name, list(term(T))).
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% ok(SymName, Args - MaybeFuncRetArg) ; error(Msg, Term).
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:- type maybe_pred_or_func(T) == maybe2(sym_name, pair(list(T), maybe(T))).
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:- type maybe_item_and_context
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== maybe2(item, prog_context).
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:- type var2tvar == map(var, tvar).
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:- type var2pvar == map(var, prog_var).
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:- type parser(T) == pred(term, maybe1(T)).
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:- mode parser :: pred(in, out) is det.
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:- pred add_context(maybe1(item), prog_context, maybe_item_and_context).
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:- mode add_context(in, in, out) is det.
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%
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% Various predicates to parse small bits of syntax.
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% These predicates simply fail if they encounter a syntax error.
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%
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:- pred parse_list_of_vars(term(T), list(var(T))).
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:- mode parse_list_of_vars(in, out) is semidet.
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:- pred parse_name_and_arity(module_name, term(_T), sym_name, arity).
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:- mode parse_name_and_arity(in, in, out, out) is semidet.
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:- pred parse_name_and_arity(term(_T), sym_name, arity).
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:- mode parse_name_and_arity(in, out, out) is semidet.
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:- pred parse_pred_or_func_name_and_arity(module_name,
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term(_T), pred_or_func, sym_name, arity).
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:- mode parse_pred_or_func_name_and_arity(in, in, out, out, out) is semidet.
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:- pred parse_pred_or_func_name_and_arity(term(_T), pred_or_func,
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sym_name, arity).
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:- mode parse_pred_or_func_name_and_arity(in, out, out, out) is semidet.
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:- pred parse_pred_or_func_and_args(maybe(module_name), term(_T), term(_T),
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string, maybe_pred_or_func(term(_T))).
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:- mode parse_pred_or_func_and_args(in, in, in, in, out) is det.
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:- pred parse_pred_or_func_and_args(term(_T), pred_or_func, sym_name,
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list(term(_T))).
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:- mode parse_pred_or_func_and_args(in, out, out, out) is semidet.
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:- pred convert_type(term(T), type).
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:- mode convert_type(in, out) is det.
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:- pred convert_mode_list(list(term), list(mode)).
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:- mode convert_mode_list(in, out) is semidet.
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:- pred convert_mode(term, mode).
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:- mode convert_mode(in, out) is semidet.
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:- pred convert_inst_list(list(term), list(inst)).
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:- mode convert_inst_list(in, out) is semidet.
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:- pred convert_inst(term, inst).
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:- mode convert_inst(in, out) is semidet.
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:- pred standard_det(string, determinism).
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:- mode standard_det(in, out) is semidet.
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% convert a "disjunction" (bunch of terms separated by ';'s) to a list
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:- pred disjunction_to_list(term(T), list(term(T))).
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:- mode disjunction_to_list(in, out) is det.
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% convert a "conjunction" (bunch of terms separated by ','s) to a list
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:- pred conjunction_to_list(term(T), list(term(T))).
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:- mode conjunction_to_list(in, out) is det.
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% list_to_conjunction(Context, First, Rest, Term).
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% convert a list to a "conjunction" (bunch of terms separated by ','s)
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:- pred list_to_conjunction(prog_context, term(T), list(term(T)), term(T)).
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:- mode list_to_conjunction(in, in, in, out) is det.
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% convert a "sum" (bunch of terms separated by '+' operators) to a list
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:- pred sum_to_list(term(T), list(term(T))).
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:- mode sum_to_list(in, out) is det.
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% Parse a comma-separated list (misleading described as
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% a "conjunction") of things.
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:- pred parse_list(parser(T), term, maybe1(list(T))).
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:- mode parse_list(parser, in, out) is det.
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:- pred map_parser(parser(T), list(term), maybe1(list(T))).
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:- mode map_parser(parser, in, out) is det.
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% The following /3, /4 and /5 predicates are to be used for reporting
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% warnings to stderr. This is preferable to using io__write_string, as
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% this checks the halt-at-warn option.
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%
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% This predicate is best used by predicates that do not have access to
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% module_info for a particular module. It sets the exit status to error
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% when a warning is encountered in a module, and the --halt-at-warn
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% option is set.
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:- pred report_warning(string::in, io__state::di, io__state::uo) is det.
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:- pred report_warning(io__output_stream::in, string::in, io__state::di,
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io__state::uo) is det.
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:- pred report_warning(string::in, int::in, string::in, io__state::di,
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io__state::uo) is det.
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%-----------------------------------------------------------------------------%
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:- implementation.
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:- import_module prog_io, prog_io_goal, options, globals.
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% XXX we should not need to import hlds*.m here.
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% But currently we need to import hlds_data.m for the `cons_id' type
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% that is used in insts.
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:- import_module hlds_data.
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:- import_module bool, string, std_util, term.
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add_context(error(M, T), _, error(M, T)).
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add_context(ok(Item), Context, ok(Item, Context)).
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parse_name_and_arity(ModuleName, PredAndArityTerm, SymName, Arity) :-
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PredAndArityTerm = term__functor(term__atom("/"),
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[PredNameTerm, ArityTerm], _),
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parse_implicitly_qualified_term(ModuleName,
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PredNameTerm, PredNameTerm, "", ok(SymName, [])),
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ArityTerm = term__functor(term__integer(Arity), [], _).
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parse_name_and_arity(PredAndArityTerm, SymName, Arity) :-
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parse_name_and_arity(unqualified(""),
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PredAndArityTerm, SymName, Arity).
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parse_pred_or_func_name_and_arity(ModuleName, PorFPredAndArityTerm,
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PredOrFunc, SymName, Arity) :-
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PorFPredAndArityTerm = term__functor(term__atom(PredOrFuncStr),
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Args, _),
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( PredOrFuncStr = "pred", PredOrFunc = predicate
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; PredOrFuncStr = "func", PredOrFunc = function
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),
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Args = [Arg],
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parse_name_and_arity(ModuleName, Arg, SymName, Arity).
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parse_pred_or_func_name_and_arity(PorFPredAndArityTerm,
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PredOrFunc, SymName, Arity) :-
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parse_pred_or_func_name_and_arity(unqualified(""),
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PorFPredAndArityTerm, PredOrFunc, SymName, Arity).
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parse_pred_or_func_and_args(Term, PredOrFunc, SymName, ArgTerms) :-
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parse_pred_or_func_and_args(no, Term, Term, "",
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ok(SymName, ArgTerms0 - MaybeRetTerm)),
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(
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MaybeRetTerm = yes(RetTerm),
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PredOrFunc = function,
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list__append(ArgTerms0, [RetTerm], ArgTerms)
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;
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MaybeRetTerm = no,
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PredOrFunc = predicate,
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ArgTerms = ArgTerms0
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).
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parse_pred_or_func_and_args(MaybeModuleName, PredAndArgsTerm, ErrorTerm,
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Msg, PredAndArgsResult) :-
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(
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PredAndArgsTerm = term__functor(term__atom("="),
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[FuncAndArgsTerm, FuncResultTerm], _)
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->
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FunctorTerm = FuncAndArgsTerm,
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MaybeFuncResult = yes(FuncResultTerm)
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;
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FunctorTerm = PredAndArgsTerm,
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MaybeFuncResult = no
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),
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(
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MaybeModuleName = yes(ModuleName),
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parse_implicitly_qualified_term(ModuleName, FunctorTerm,
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ErrorTerm, Msg, Result)
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;
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MaybeModuleName = no,
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parse_qualified_term(FunctorTerm, ErrorTerm, Msg, Result)
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),
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(
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Result = ok(SymName, Args),
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PredAndArgsResult = ok(SymName, Args - MaybeFuncResult)
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;
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Result = error(ErrorMsg, Term),
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PredAndArgsResult = error(ErrorMsg, Term)
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).
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parse_list_of_vars(term__functor(term__atom("[]"), [], _), []).
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parse_list_of_vars(term__functor(term__atom("[|]"),
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[Head, Tail], _), [V|Vs]) :-
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Head = term__variable(V),
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parse_list_of_vars(Tail, Vs).
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convert_type(T0, T) :-
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term__coerce(strip_prog_context(T0), T).
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% Strip out the prog_context fields, replacing them with empty
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% prog_context (as obtained by term__context_init/1)
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% in a type or list of types.
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%
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% This is necessary to allow maps indexed by class constraints.
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% Also, the version number computation for smart recompilation
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% relies on being able to unify program items, which won't
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% work if the types in the items contain context information.
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:- func strip_prog_context(term(T)) = term(T).
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strip_prog_context(term__variable(V)) = term__variable(V).
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strip_prog_context(term__functor(F, As, _)) =
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term__functor(F,
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list__map(strip_prog_context, As),
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term__context_init).
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convert_mode_list([], []).
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convert_mode_list([H0|T0], [H|T]) :-
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convert_mode(H0, H),
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convert_mode_list(T0, T).
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%
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% The new operator for mode declarations is >>.
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% Previously we used ->, but this required a high-precedence
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% operator such as :: for the :- mode delcaration.
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%
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% Using >> allows us to use == for the :- mode declaration.
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%
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% Eventually we can stop supporting :: and -> in :- mode
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% declarations altogether.
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%
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convert_mode(Term, Mode) :-
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(
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(
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Term = term__functor(term__atom(">>"),
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[InstA, InstB], _)
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;
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Term = term__functor(term__atom("->"),
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[InstA, InstB], _)
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)
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->
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convert_inst(InstA, ConvertedInstA),
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convert_inst(InstB, ConvertedInstB),
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Mode = (ConvertedInstA -> ConvertedInstB)
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;
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% Handle higher-order predicate modes:
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% a mode of the form
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% pred(<Mode1>, <Mode2>, ...) is <Det>
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% is an abbreviation for the inst mapping
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% ( pred(<Mode1>, <Mode2>, ...) is <Det>
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% -> pred(<Mode1>, <Mode2>, ...) is <Det>
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% )
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Term = term__functor(term__atom("is"), [PredTerm, DetTerm], _),
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PredTerm = term__functor(term__atom("pred"), ArgModesTerms, _)
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->
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DetTerm = term__functor(term__atom(DetString), [], _),
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standard_det(DetString, Detism),
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convert_mode_list(ArgModesTerms, ArgModes),
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PredInstInfo = pred_inst_info(predicate, ArgModes, Detism),
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Inst = ground(shared, higher_order(PredInstInfo)),
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Mode = (Inst -> Inst)
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;
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% Handle higher-order function modes:
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% a mode of the form
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% func(<Mode1>, <Mode2>, ...) = <RetMode> is <Det>
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% is an abbreviation for the inst mapping
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% ( func(<Mode1>, <Mode2>, ...) = <RetMode> is <Det>
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% -> func(<Mode1>, <Mode2>, ...) = <RetMode> is <Det>
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% )
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Term = term__functor(term__atom("is"), [EqTerm, DetTerm], _),
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EqTerm = term__functor(term__atom("="),
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[FuncTerm, RetModeTerm], _),
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FuncTerm = term__functor(term__atom("func"), ArgModesTerms, _)
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->
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DetTerm = term__functor(term__atom(DetString), [], _),
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standard_det(DetString, Detism),
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convert_mode_list(ArgModesTerms, ArgModes0),
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convert_mode(RetModeTerm, RetMode),
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list__append(ArgModes0, [RetMode], ArgModes),
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FuncInstInfo = pred_inst_info(function, ArgModes, Detism),
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Inst = ground(shared, higher_order(FuncInstInfo)),
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Mode = (Inst -> Inst)
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;
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parse_qualified_term(Term, Term, "mode definition", R),
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R = ok(Name, Args), % should improve error reporting
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convert_inst_list(Args, ConvertedArgs),
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Mode = user_defined_mode(Name, ConvertedArgs)
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).
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convert_inst_list([], []).
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convert_inst_list([H0|T0], [H|T]) :-
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convert_inst(H0, H),
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convert_inst_list(T0, T).
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convert_inst(term__variable(V0), inst_var(V)) :-
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term__coerce_var(V0, V).
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convert_inst(Term, Result) :-
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Term = term__functor(Name, Args0, _Context),
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% `free' insts
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( Name = term__atom("free"), Args0 = [] ->
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Result = free
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% `any' insts
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; Name = term__atom("any"), Args0 = [] ->
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Result = any(shared)
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; Name = term__atom("unique_any"), Args0 = [] ->
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Result = any(unique)
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; Name = term__atom("mostly_unique_any"), Args0 = [] ->
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Result = any(mostly_unique)
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; Name = term__atom("clobbered_any"), Args0 = [] ->
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Result = any(clobbered)
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; Name = term__atom("mostly_clobbered_any"), Args0 = [] ->
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Result = any(mostly_clobbered)
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% `ground' insts
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; Name = term__atom("ground"), Args0 = [] ->
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Result = ground(shared, none)
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; Name = term__atom("unique"), Args0 = [] ->
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Result = ground(unique, none)
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; Name = term__atom("mostly_unique"), Args0 = [] ->
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Result = ground(mostly_unique, none)
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; Name = term__atom("clobbered"), Args0 = [] ->
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Result = ground(clobbered, none)
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; Name = term__atom("mostly_clobbered"), Args0 = [] ->
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Result = ground(mostly_clobbered, none)
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;
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% The syntax for a higher-order pred inst is
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%
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% pred(<Mode1>, <Mode2>, ...) is <Detism>
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%
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% where <Mode1>, <Mode2>, ... are a list of modes,
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% and <Detism> is a determinism.
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Name = term__atom("is"), Args0 = [PredTerm, DetTerm],
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PredTerm = term__functor(term__atom("pred"), ArgModesTerm, _)
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->
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DetTerm = term__functor(term__atom(DetString), [], _),
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standard_det(DetString, Detism),
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convert_mode_list(ArgModesTerm, ArgModes),
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PredInst = pred_inst_info(predicate, ArgModes, Detism),
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Result = ground(shared, higher_order(PredInst))
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;
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% The syntax for a higher-order func inst is
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%
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% func(<Mode1>, <Mode2>, ...) = <RetMode> is <Detism>
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%
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% where <Mode1>, <Mode2>, ... are a list of modes,
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% <RetMode> is a mode, and <Detism> is a determinism.
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Name = term__atom("is"), Args0 = [EqTerm, DetTerm],
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EqTerm = term__functor(term__atom("="),
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[FuncTerm, RetModeTerm], _),
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FuncTerm = term__functor(term__atom("func"), ArgModesTerm, _)
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->
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DetTerm = term__functor(term__atom(DetString), [], _),
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standard_det(DetString, Detism),
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convert_mode_list(ArgModesTerm, ArgModes0),
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convert_mode(RetModeTerm, RetMode),
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list__append(ArgModes0, [RetMode], ArgModes),
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FuncInst = pred_inst_info(function, ArgModes, Detism),
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Result = ground(shared, higher_order(FuncInst))
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% `not_reached' inst
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; Name = term__atom("not_reached"), Args0 = [] ->
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Result = not_reached
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% `bound' insts
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; Name = term__atom("bound"), Args0 = [Disj] ->
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parse_bound_inst_list(Disj, shared, Result)
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/* `bound_unique' is for backwards compatibility - use `unique' instead */
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|
; Name = term__atom("bound_unique"), Args0 = [Disj] ->
|
|
parse_bound_inst_list(Disj, unique, Result)
|
|
; Name = term__atom("unique"), Args0 = [Disj] ->
|
|
parse_bound_inst_list(Disj, unique, Result)
|
|
; Name = term__atom("mostly_unique"), Args0 = [Disj] ->
|
|
parse_bound_inst_list(Disj, mostly_unique, Result)
|
|
|
|
% anything else must be a user-defined inst
|
|
;
|
|
parse_qualified_term(Term, Term, "inst",
|
|
ok(QualifiedName, Args1)),
|
|
convert_inst_list(Args1, Args),
|
|
Result = defined_inst(user_inst(QualifiedName, Args))
|
|
).
|
|
|
|
standard_det("det", det).
|
|
standard_det("cc_nondet", cc_nondet).
|
|
standard_det("cc_multi", cc_multidet).
|
|
standard_det("nondet", nondet).
|
|
standard_det("multi", multidet).
|
|
standard_det("multidet", multidet).
|
|
standard_det("semidet", semidet).
|
|
standard_det("erroneous", erroneous).
|
|
standard_det("failure", failure).
|
|
|
|
:- pred parse_bound_inst_list(term::in, uniqueness::in, (inst)::out) is semidet.
|
|
|
|
parse_bound_inst_list(Disj, Uniqueness, bound(Uniqueness, Functors)) :-
|
|
disjunction_to_list(Disj, List),
|
|
convert_bound_inst_list(List, Functors0),
|
|
list__sort(Functors0, Functors),
|
|
% check that the list doesn't specify the same functor twice
|
|
\+ (
|
|
list__append(_, SubList, Functors),
|
|
SubList = [F1, F2 | _],
|
|
F1 = functor(ConsId, _),
|
|
F2 = functor(ConsId, _)
|
|
).
|
|
|
|
:- pred convert_bound_inst_list(list(term), list(bound_inst)).
|
|
:- mode convert_bound_inst_list(in, out) is semidet.
|
|
|
|
convert_bound_inst_list([], []).
|
|
convert_bound_inst_list([H0|T0], [H|T]) :-
|
|
convert_bound_inst(H0, H),
|
|
convert_bound_inst_list(T0, T).
|
|
|
|
:- pred convert_bound_inst(term, bound_inst).
|
|
:- mode convert_bound_inst(in, out) is semidet.
|
|
|
|
convert_bound_inst(InstTerm, functor(ConsId, Args)) :-
|
|
InstTerm = term__functor(Functor, Args0, _),
|
|
( Functor = term__atom(_) ->
|
|
parse_qualified_term(InstTerm, InstTerm, "inst",
|
|
ok(SymName, Args1)),
|
|
list__length(Args1, Arity),
|
|
ConsId = cons(SymName, Arity)
|
|
;
|
|
Args1 = Args0,
|
|
list__length(Args1, Arity),
|
|
make_functor_cons_id(Functor, Arity, ConsId)
|
|
),
|
|
convert_inst_list(Args1, Args).
|
|
|
|
disjunction_to_list(Term, List) :-
|
|
binop_term_to_list(";", Term, List).
|
|
|
|
conjunction_to_list(Term, List) :-
|
|
binop_term_to_list(",", Term, List).
|
|
|
|
list_to_conjunction(_, Term, [], Term).
|
|
list_to_conjunction(Context, First, [Second | Rest], Term) :-
|
|
list_to_conjunction(Context, Second, Rest, Tail),
|
|
Term = term__functor(term__atom(","), [First, Tail], Context).
|
|
|
|
sum_to_list(Term, List) :-
|
|
binop_term_to_list("+", Term, List).
|
|
|
|
% general predicate to convert terms separated by any specified
|
|
% operator into a list
|
|
|
|
:- pred binop_term_to_list(string, term(T), list(term(T))).
|
|
:- mode binop_term_to_list(in, in, out) is det.
|
|
|
|
binop_term_to_list(Op, Term, List) :-
|
|
binop_term_to_list_2(Op, Term, [], List).
|
|
|
|
:- pred binop_term_to_list_2(string, term(T), list(term(T)), list(term(T))).
|
|
:- mode binop_term_to_list_2(in, in, in, out) is det.
|
|
|
|
binop_term_to_list_2(Op, Term, List0, List) :-
|
|
(
|
|
Term = term__functor(term__atom(Op), [L, R], _Context)
|
|
->
|
|
binop_term_to_list_2(Op, R, List0, List1),
|
|
binop_term_to_list_2(Op, L, List1, List)
|
|
;
|
|
List = [Term|List0]
|
|
).
|
|
|
|
parse_list(Parser, Term, Result) :-
|
|
conjunction_to_list(Term, List),
|
|
map_parser(Parser, List, Result).
|
|
|
|
map_parser(_, [], ok([])).
|
|
map_parser(Parser, [X|Xs], Result) :-
|
|
call(Parser, X, X_Result),
|
|
map_parser(Parser, Xs, Xs_Result),
|
|
combine_list_results(X_Result, Xs_Result, Result).
|
|
|
|
% If a list of things contains multiple errors, then we only
|
|
% report the first one.
|
|
:- pred combine_list_results(maybe1(T), maybe1(list(T)), maybe1(list(T))).
|
|
:- mode combine_list_results(in, in, out) is det.
|
|
|
|
combine_list_results(error(Msg, Term), _, error(Msg, Term)).
|
|
combine_list_results(ok(_), error(Msg, Term), error(Msg, Term)).
|
|
combine_list_results(ok(X), ok(Xs), ok([X|Xs])).
|
|
|
|
%-----------------------------------------------------------------------------%
|
|
|
|
report_warning(Message) -->
|
|
io__stderr_stream(StdErr),
|
|
globals__io_lookup_bool_option(halt_at_warn, HaltAtWarn),
|
|
( { HaltAtWarn = yes } ->
|
|
io__set_exit_status(1)
|
|
;
|
|
[]
|
|
),
|
|
io__write_string(StdErr, Message).
|
|
|
|
report_warning(Stream, Message) -->
|
|
globals__io_lookup_bool_option(halt_at_warn, HaltAtWarn),
|
|
( { HaltAtWarn = yes } ->
|
|
io__set_exit_status(1)
|
|
;
|
|
[]
|
|
),
|
|
io__write_string(Stream, Message).
|
|
|
|
report_warning(FileName, LineNum, Message) -->
|
|
{ string__format("%s:%3d: Warning: %s\n",
|
|
[s(FileName), i(LineNum), s(Message)], FullMessage) },
|
|
io__stderr_stream(StdErr),
|
|
io__write_string(StdErr, FullMessage),
|
|
globals__io_lookup_bool_option(halt_at_warn, HaltAtWarn),
|
|
( { HaltAtWarn = yes } ->
|
|
io__set_exit_status(1)
|
|
;
|
|
[]
|
|
).
|
|
|
|
%-----------------------------------------------------------------------------%
|