/* GNU Prolog interface: system-dependent part. Copyright (C) 2001-2004 Roberto Bagnara This file is part of the Parma Polyhedra Library (PPL). The PPL is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. The PPL is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with this program; if not, write to the Free Software Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. For the most up-to-date information see the Parma Polyhedra Library site: http://www.cs.unipr.it/ppl/ . */ #include #include "Integer.defs.hh" #include #include typedef PlTerm Prolog_term_ref; typedef int Prolog_atom; typedef Bool Prolog_foreign_return_type; static const Prolog_foreign_return_type PROLOG_SUCCESS = TRUE; static const Prolog_foreign_return_type PROLOG_FAILURE = FALSE; #include "../exceptions.hh" namespace PPL = Parma_Polyhedra_Library; static Prolog_atom a_dollar_address; static Prolog_atom a_throw; /*! True if and only if the Prolog engine supports unbounded integers. */ static bool Prolog_has_unbounded_integers; /*! If \p Prolog_has_unbounded_integers is false, holds the minimum integer value representable by a Prolog integer. Holds zero otherwise. */ static long Prolog_min_integer; /*! If \p Prolog_has_unbounded_integers is false, holds the maximum integer value representable by a Prolog integer. Holds zero otherwise. */ static long Prolog_max_integer; #include using namespace std; /*! Performs system-dependent initialization. */ static void ppl_Prolog_sysdep_init() { Prolog_has_unbounded_integers = false; Prolog_min_integer = INT_LOWEST_VALUE; Prolog_max_integer = INT_GREATEST_VALUE; a_dollar_address = Create_Allocate_Atom("$address"); a_throw = Find_Atom("throw"); } /*! Perform system-dependent de-itialization. */ static void ppl_Prolog_sysdep_deinit() { } /*! Return a new term reference. */ static inline Prolog_term_ref Prolog_new_term_ref() { return 0; } /*! Make \p t be a reference to the same term referenced by \p u, i.e., assign \p u to \p t. */ static inline int Prolog_put_term(Prolog_term_ref& t, Prolog_term_ref u) { t = u; return 1; } /*! Assign to \p t a Prolog integer with value \p l. */ static inline int Prolog_put_long(Prolog_term_ref& t, long l) { if (l < Prolog_min_integer || l > Prolog_max_integer) throw PPL_integer_out_of_range(l); t = Mk_Integer(l); return 1; } /*! Assign to \p t a Prolog integer with value \p ul. */ static inline int Prolog_put_ulong(Prolog_term_ref& t, unsigned long ul) { if (ul > static_cast(Prolog_max_integer)) throw PPL_integer_out_of_range(ul); t = Mk_Integer(ul); return 1; } /*! Assign to \p t an atom whose name is given by the null-terminated string \p s. */ static inline int Prolog_put_atom_chars(Prolog_term_ref& t, const char* s) { // FIXME: the following cast is really a bug in GNU Prolog. t = Mk_Atom(Create_Allocate_Atom(const_cast(s))); return 1; } /*! Assign to \p t the Prolog atom \p a. */ static inline int Prolog_put_atom(Prolog_term_ref& t, Prolog_atom a) { t = Mk_Atom(a); return 1; } /*! Return an atom whose name is given by the null-terminated string \p s. */ Prolog_atom Prolog_atom_from_string(const char* s) { // FIXME: the following cast is really a bug in GNU Prolog. return Create_Allocate_Atom(const_cast(s)); } static Prolog_term_ref args[4]; /*! Assign to \p t a compound term whose principal functor is \p f of arity 1 with argument \p a1. */ static inline int Prolog_construct_compound(Prolog_term_ref& t, Prolog_atom f, Prolog_term_ref a1) { args[0] = a1; t = Mk_Compound(f, 1, args); return 1; } /*! Assign to \p t a compound term whose principal functor is \p f of arity 2 with arguments \p a1 and \p a2. */ static inline int Prolog_construct_compound(Prolog_term_ref& t, Prolog_atom f, Prolog_term_ref a1, Prolog_term_ref a2) { args[0] = a1; args[1] = a2; t = Mk_Compound(f, 2, args); return 1; } /*! Assign to \p t a compound term whose principal functor is \p f of arity 3 with arguments \p a1, \p a2 and \p a3. */ static inline int Prolog_construct_compound(Prolog_term_ref& t, Prolog_atom f, Prolog_term_ref a1, Prolog_term_ref a2, Prolog_term_ref a3) { args[0] = a1; args[1] = a2; args[2] = a3; t = Mk_Compound(f, 3, args); return 1; } /*! Assign to \p t a compound term whose principal functor is \p f of arity 4 with arguments \p a1, \p a2, \p a3 and \p a4. */ static inline int Prolog_construct_compound(Prolog_term_ref& t, Prolog_atom f, Prolog_term_ref a1, Prolog_term_ref a2, Prolog_term_ref a3, Prolog_term_ref a4) { args[0] = a1; args[1] = a2; args[2] = a3; args[3] = a4; t = Mk_Compound(f, 4, args); return 1; } /*! Assign to \p c a Prolog list whose head is \p h and tail is \p t. */ static inline int Prolog_construct_cons(Prolog_term_ref& c, Prolog_term_ref h, Prolog_term_ref t) { args[0] = h; args[1] = t; c = Mk_List(args); return 1; } /*! Assign to \p t a term representing the address contained in \p p. */ static inline int Prolog_put_address(Prolog_term_ref& t, void* p) { union { unsigned long l; unsigned short s[2]; } u; u.l = reinterpret_cast(p); return Prolog_construct_compound(t, a_dollar_address, Mk_Positive(u.s[0]), Mk_Positive(u.s[1])); } /*! Raise a Prolog exception with \p t as the exception term. */ static inline void Prolog_raise_exception(Prolog_term_ref t) { Pl_Exec_Continuation(a_throw, 1, &t); } /*! Return true if \p t is a Prolog variable, false otherwise. */ static inline int Prolog_is_variable(Prolog_term_ref t) { return Blt_Var(t) != FALSE; } /*! Return true if \p t is a Prolog atom, false otherwise. */ static inline int Prolog_is_atom(Prolog_term_ref t) { return Blt_Atom(t) != FALSE; } /*! Return true if \p t is a Prolog integer, false otherwise. */ static inline int Prolog_is_integer(Prolog_term_ref t) { return Blt_Integer(t) != FALSE; } /*! Return true if \p t is a Prolog compound term, false otherwise. */ static inline int Prolog_is_compound(Prolog_term_ref t) { return Blt_Compound(t) != FALSE; } /*! Return true if \p t is a Prolog list, false otherwise. */ static inline int Prolog_is_cons(Prolog_term_ref t) { if (Blt_Compound(t) == FALSE) return 0; Prolog_atom name; int arity; Rd_Compound(t, &name, &arity); return name == ATOM_CHAR('.') && arity == 2; } /*! Assuming \p t is a Prolog integer, return true if its value fits in a long, in which case the value is assigned to \p v, return false otherwise. The behavior is undefined if \p t is not a Prolog integer. */ static inline int Prolog_get_long(Prolog_term_ref t, long* lp) { assert(Prolog_is_integer(t)); *lp = Rd_Integer_Check(t); return 1; } /*! Return true if \p t is the representation of an address, false otherwise. */ static inline int Prolog_is_address(Prolog_term_ref t) { if (!Prolog_is_compound(t)) return 0; Prolog_atom name; int arity; Prolog_term_ref* a = Rd_Compound_Check(t, &name, &arity); if (name != a_dollar_address || arity != 2) return 0; for (int i = 0; i <= 1; ++i) { if (!Prolog_is_integer(a[i])) return 0; long l; if (!Prolog_get_long(a[i], &l)) return 0; if (l < 0 || l > USHRT_MAX) return 0; } return 1; } /*! If \p t is the Prolog representation for a memory address, return true and store that address into \p v; return false otherwise. The behavior is undefined if \p t is not an address. */ static inline int Prolog_get_address(Prolog_term_ref t, void** vpp) { assert(Prolog_is_address(t)); static Prolog_atom dummy_name; static int dummy_arity; Prolog_term_ref* a = Rd_Compound_Check(t, &dummy_name, &dummy_arity); union { unsigned long l; unsigned short s[2]; } u; u.s[0] = Rd_Integer_Check(a[0]); u.s[1] = Rd_Integer_Check(a[1]); *vpp = reinterpret_cast(u.l); return 1; } /*! If \p t is a Prolog atom, return true and store its name into \p name. The behavior is undefined if \p t is not a Prolog atom. */ static inline int Prolog_get_atom_name(Prolog_term_ref t, Prolog_atom* ap) { assert(Prolog_is_atom(t)); *ap = Rd_Atom_Check(t); return 1; } /*! If \p t is a Prolog compound term, return true and store its name and arity into \p name and \p arity, respectively. The behavior is undefined if \p t is not a Prolog compound term. */ static inline int Prolog_get_compound_name_arity(Prolog_term_ref t, Prolog_atom* ap, int* ip) { assert(Prolog_is_compound(t)); Rd_Compound_Check(t, ap, ip); return 1; } /*! If \p t is a Prolog compound term and \p i is a positive integer less than or equal to its arity, return true and assign to \p a the i-th (principal) argument of \p t. The behavior is undefined if \p t is not a Prolog compound term. */ static inline int Prolog_get_arg(int i, Prolog_term_ref t, Prolog_term_ref& a) { assert(Prolog_is_compound(t)); static Prolog_atom dummy_name; static int dummy_arity; a = Rd_Compound_Check(t, &dummy_name, &dummy_arity)[i-1]; return 1; } /*! If \p c is a Prolog cons (list constructor), assign its head and tail to \p h and \p t, respectively. The behavior is undefined if \p c is not a Prolog cons. */ static inline int Prolog_get_cons(Prolog_term_ref c, Prolog_term_ref& h, Prolog_term_ref& t) { assert(Prolog_is_cons(c)); Prolog_term_ref* ht = Rd_List_Check(c); h = ht[0]; t = ht[1]; return 1; } /*! Unify the terms referenced by \p t and \p u and return true if the unification is successful; return false otherwise. */ static inline int Prolog_unify(Prolog_term_ref t, Prolog_term_ref u) { return Unify(t, u) != FALSE; } static PPL::Integer integer_term_to_Integer(Prolog_term_ref t) { long v; Prolog_get_long(t, &v); return PPL::Integer(v); } static Prolog_term_ref Integer_to_integer_term(const PPL::Integer& n) { if (!n.fits_slong_p()) throw PPL_integer_out_of_range(n); Prolog_term_ref t = Prolog_new_term_ref(); Prolog_put_long(t, n.get_si()); return t; } #undef CS #include "../ppl_prolog.icc"