729 lines
26 KiB
Rust
729 lines
26 KiB
Rust
use prolog::allocator::*;
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use prolog::arithmetic::*;
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use prolog::ast::*;
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use prolog::fixtures::*;
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use prolog::indexing::*;
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use prolog::iterators::*;
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use prolog::targets::*;
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use std::cell::Cell;
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use std::collections::{HashMap};
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use std::rc::Rc;
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use std::vec::Vec;
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pub struct CodeGenerator<TermMarker> {
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marker: TermMarker,
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var_count: HashMap<Rc<Var>, usize>
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}
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pub struct ConjunctInfo<'a> {
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pub perm_vs: VariableFixtures<'a>,
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pub num_of_chunks: usize,
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pub has_deep_cut: bool,
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}
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impl<'a> ConjunctInfo<'a>
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{
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fn new(perm_vs: VariableFixtures<'a>, num_of_chunks: usize, has_deep_cut: bool) -> Self {
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ConjunctInfo { perm_vs, num_of_chunks, has_deep_cut }
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}
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fn allocates(&self) -> bool {
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self.perm_vs.size() > 0 || self.num_of_chunks > 1 || self.has_deep_cut
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}
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fn perm_vars(&self) -> usize {
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self.perm_vs.size() + self.perm_var_offset()
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}
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fn perm_var_offset(&self) -> usize {
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self.has_deep_cut as usize
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}
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}
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impl<'a, TermMarker: Allocator<'a>> CodeGenerator<TermMarker>
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{
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pub fn new() -> Self {
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CodeGenerator { marker: Allocator::new(),
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var_count: HashMap::new() }
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}
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pub fn take_vars(self) -> AllocVarDict {
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self.marker.take_bindings()
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}
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fn update_var_count<Iter: Iterator<Item=TermRef<'a>>>(&mut self, iter: Iter)
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{
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for term in iter {
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if let TermRef::Var(_, _, var) = term {
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let entry = self.var_count.entry(var).or_insert(0);
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*entry += 1;
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}
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}
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}
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fn get_var_count(&self, var: &'a Var) -> usize {
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*self.var_count.get(var).unwrap()
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}
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fn mark_non_callable(&mut self, name: Rc<Atom>, arity: usize, term_loc: GenContext,
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vr: &'a Cell<VarReg>, code: &mut Code)
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-> RegType
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{
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match self.marker.bindings().get(&name) {
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Some(&VarData::Temp(_, t, _)) if t != 0 => RegType::Temp(t),
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Some(&VarData::Perm(p)) if p != 0 => RegType::Perm(p),
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_ => {
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let mut target = Vec::new();
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self.marker.reset_arg(arity);
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self.marker.mark_var(name, Level::Shallow, vr, term_loc, &mut target);
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if !target.is_empty() {
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code.push(Line::Query(target));
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}
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vr.get().norm()
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}
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}
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}
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fn add_or_increment_void_instr<Target>(target: &mut Vec<Target>)
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where Target: CompilationTarget<'a>
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{
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if let Some(ref mut instr) = target.last_mut() {
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if Target::is_void_instr(&*instr) {
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Target::incr_void_instr(instr);
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return;
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}
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}
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target.push(Target::to_void(1));
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}
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fn subterm_to_instr<Target>(&mut self,
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subterm: &'a Term,
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term_loc: GenContext,
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is_exposed: bool,
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target: &mut Vec<Target>)
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where Target: CompilationTarget<'a>
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{
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match subterm {
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&Term::AnonVar if is_exposed =>
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self.marker.mark_anon_var(Level::Deep, target),
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&Term::AnonVar =>
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Self::add_or_increment_void_instr(target),
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&Term::Cons(ref cell, _, _) | &Term::Clause(ref cell, _, _, _) => {
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self.marker.mark_non_var(Level::Deep, term_loc, cell, target);
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target.push(Target::clause_arg_to_instr(cell.get()));
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},
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&Term::Constant(_, ref constant) =>
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target.push(Target::constant_subterm(constant.clone())),
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&Term::Var(ref cell, ref var) =>
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if is_exposed || self.get_var_count(var) > 1 {
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self.marker.mark_var(var.clone(), Level::Deep, cell, term_loc, target);
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} else {
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Self::add_or_increment_void_instr(target);
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}
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};
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}
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fn compile_target<Target, Iter>(&mut self, iter: Iter, term_loc: GenContext, is_exposed: bool)
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-> Vec<Target>
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where Target: CompilationTarget<'a>, Iter: Iterator<Item=TermRef<'a>>
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{
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let mut target = Vec::new();
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for term in iter {
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match term {
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TermRef::Clause(lvl, cell, ct, terms) => {
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self.marker.mark_non_var(lvl, term_loc, cell, &mut target);
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target.push(Target::to_structure(ct, terms.len(), cell.get()));
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for subterm in terms {
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self.subterm_to_instr(subterm.as_ref(), term_loc, is_exposed, &mut target);
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}
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},
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TermRef::Cons(lvl, cell, head, tail) => {
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self.marker.mark_non_var(lvl, term_loc, cell, &mut target);
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target.push(Target::to_list(lvl, cell.get()));
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self.subterm_to_instr(head, term_loc, is_exposed, &mut target);
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self.subterm_to_instr(tail, term_loc, is_exposed, &mut target);
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},
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TermRef::Constant(lvl @ Level::Shallow, cell, constant) => {
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self.marker.mark_non_var(lvl, term_loc, cell, &mut target);
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target.push(Target::to_constant(lvl, constant.clone(), cell.get()));
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},
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TermRef::AnonVar(lvl @ Level::Shallow) =>
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if let GenContext::Head = term_loc {
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self.marker.advance_arg();
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} else {
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self.marker.mark_anon_var(lvl, &mut target);
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},
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TermRef::Var(lvl @ Level::Shallow, cell, ref var) if var.as_str() == "!" => {
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if self.marker.is_unbound(var.clone()) {
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if term_loc != GenContext::Head {
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self.marker.mark_reserved_var(var.clone(), lvl, cell, term_loc,
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&mut target, perm_v!(1), false);
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continue;
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}
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}
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self.marker.mark_var(var.clone(), lvl, cell, term_loc, &mut target);
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},
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TermRef::Var(lvl @ Level::Shallow, cell, var) =>
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self.marker.mark_var(var.clone(), lvl, cell, term_loc, &mut target),
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_ => {}
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};
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}
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target
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}
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fn collect_var_data(&mut self, mut iter: ChunkedIterator<'a>) -> ConjunctInfo<'a>
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{
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let mut vs = VariableFixtures::new();
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while let Some((chunk_num, lt_arity, chunked_terms)) = iter.next() {
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for (i, chunked_term) in chunked_terms.iter().enumerate() {
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let term_loc = match chunked_term {
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&ChunkedTerm::HeadClause(..) => GenContext::Head,
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&ChunkedTerm::BodyTerm(_) => if i < chunked_terms.len() - 1 {
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GenContext::Mid(chunk_num)
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} else {
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GenContext::Last(chunk_num)
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}
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};
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self.update_var_count(chunked_term.post_order_iter());
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vs.mark_vars_in_chunk(chunked_term.post_order_iter(), lt_arity, term_loc);
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}
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}
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let num_of_chunks = iter.chunk_num;
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let has_deep_cut = iter.encountered_deep_cut();
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vs.populate_restricting_sets();
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vs.set_perm_vals(has_deep_cut);
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let vs = self.marker.drain_var_data(vs);
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ConjunctInfo::new(vs, num_of_chunks, has_deep_cut)
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}
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fn add_conditional_call(code: &mut Code, qt: &QueryTerm, pvs: usize)
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{
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match qt {
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&QueryTerm::Jump(ref vars) =>
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code.push(jmp_call!(vars.len(), 0, pvs)),
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&QueryTerm::Clause(_, ref ct, ref terms) =>
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code.push(call_clause!(ct.clone(), terms.len(), pvs)),
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_ => {}
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}
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}
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fn lco(code: &mut Code) -> usize
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{
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let mut dealloc_index = code.len() - 1;
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match code.last_mut() {
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Some(&mut Line::Control(ref mut ctrl)) =>
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match ctrl.clone() {
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ControlInstruction::CallClause(ct, arity, pvs, false) =>
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*ctrl = ControlInstruction::CallClause(ct, arity, pvs, true),
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ControlInstruction::JmpBy(arity, offset, pvs, false) =>
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*ctrl = ControlInstruction::JmpBy(arity, offset, pvs, true),
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ControlInstruction::IsClause(false, r, at) =>
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*ctrl = ControlInstruction::IsClause(true, r, at),
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ControlInstruction::Proceed => {},
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_ => dealloc_index += 1
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},
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Some(&mut Line::Cut(CutInstruction::Cut(_))) =>
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dealloc_index += 1,
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_ => {}
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};
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dealloc_index
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}
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fn compile_inlined(&mut self, ct: &InlinedClauseType, terms: &'a Vec<Box<Term>>,
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term_loc: GenContext, code: &mut Code)
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-> Result<(), ParserError>
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{
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match ct {
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&InlinedClauseType::CompareNumber(cmp, ..) => {
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let (mut lcode, at_1) = self.call_arith_eval(terms[0].as_ref(), 1)?;
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let (mut rcode, at_2) = self.call_arith_eval(terms[1].as_ref(), 2)?;
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code.append(&mut lcode);
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code.append(&mut rcode);
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code.push(compare_number_instr!(cmp,
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at_1.unwrap_or(interm!(1)),
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at_2.unwrap_or(interm!(2))));
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},
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&InlinedClauseType::IsAtom(..) =>
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match terms[0].as_ref() {
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&Term::Constant(_, Constant::Atom(_)) => {
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code.push(succeed!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_atom!(r));
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}
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_ => {
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code.push(fail!());
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}
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},
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&InlinedClauseType::IsAtomic(..) =>
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match terms[0].as_ref() {
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&Term::AnonVar | &Term::Clause(..) | &Term::Cons(..) => {
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code.push(fail!());
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},
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&Term::Constant(..) => {
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code.push(succeed!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_atomic!(r));
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}
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},
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&InlinedClauseType::IsCompound(..) =>
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match terms[0].as_ref() {
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&Term::Clause(..) | &Term::Cons(..) => {
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code.push(succeed!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_compound!(r));
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},
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_ => {
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code.push(fail!());
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}
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},
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&InlinedClauseType::IsRational(..) =>
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match terms[0].as_ref() {
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&Term::Constant(_, Constant::Number(Number::Rational(_))) => {
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code.push(succeed!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_rational!(r));
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},
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_ => {
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code.push(fail!());
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}
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},
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&InlinedClauseType::IsFloat(..) =>
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match terms[0].as_ref() {
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&Term::Constant(_, Constant::Number(Number::Float(_))) => {
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code.push(succeed!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_float!(r));
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},
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_ => {
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code.push(fail!());
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}
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},
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&InlinedClauseType::IsString(..) =>
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match terms[0].as_ref() {
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&Term::Constant(_, Constant::String(_)) => {
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code.push(succeed!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_string!(r));
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},
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_ => {
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code.push(fail!());
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}
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},
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&InlinedClauseType::IsNonVar(..) =>
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match terms[0].as_ref() {
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&Term::AnonVar => {
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code.push(fail!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_nonvar!(r));
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},
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_ => {
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code.push(succeed!());
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}
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},
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&InlinedClauseType::IsInteger(..) =>
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match terms[0].as_ref() {
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&Term::Constant(_, Constant::Number(Number::Integer(_))) => {
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code.push(succeed!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_integer!(r));
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},
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_ => {
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code.push(fail!());
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},
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},
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&InlinedClauseType::IsVar(..) =>
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match terms[0].as_ref() {
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&Term::Constant(..) | &Term::Clause(..) | &Term::Cons(..) => {
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code.push(fail!());
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},
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&Term::AnonVar => {
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code.push(succeed!());
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},
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&Term::Var(ref vr, ref name) => {
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let r = self.mark_non_callable(name.clone(), 1, term_loc, vr, code);
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code.push(is_var!(r));
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}
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}
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}
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Ok(())
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}
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fn call_arith_eval(&self, term: &'a Term, target_int: usize) -> Result<ArithCont, ArithmeticError>
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{
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let mut evaluator = ArithmeticEvaluator::new(self.marker.bindings(), target_int);
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evaluator.eval(term)
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}
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fn compile_seq(&mut self, iter: ChunkedIterator<'a>, conjunct_info: &ConjunctInfo<'a>,
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code: &mut Code, is_exposed: bool)
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-> Result<(), ParserError>
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{
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for (chunk_num, _, terms) in iter.rule_body_iter()
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{
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for (i, term) in terms.iter().enumerate()
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{
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let term_loc = if i + 1 < terms.len() {
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GenContext::Mid(chunk_num)
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} else {
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GenContext::Last(chunk_num)
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};
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match *term {
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&QueryTerm::UnblockedCut(ref cell) =>
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code.push(set_cp!(cell.get().norm())),
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&QueryTerm::BlockedCut =>
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code.push(if chunk_num == 0 {
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Line::Cut(CutInstruction::NeckCut)
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} else {
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Line::Cut(CutInstruction::Cut(perm_v!(1)))
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}),
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&QueryTerm::Clause(_, ClauseType::BuiltIn(BuiltInClauseType::Is), ref terms) =>
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{
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let (mut acode, at) = self.call_arith_eval(terms[1].as_ref(), 1)?;
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code.append(&mut acode);
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match terms[0].as_ref() {
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&Term::Var(ref vr, ref name) => {
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let mut target = Vec::new();
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self.marker.reset_arg(2);
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self.marker.mark_var(name.clone(), Level::Shallow, vr,
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term_loc, &mut target);
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if !target.is_empty() {
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code.push(Line::Query(target));
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}
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code.push(is_call!(temp_v!(1), at.unwrap_or(interm!(1))));
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},
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&Term::Constant(_, ref c @ Constant::Number(_)) => {
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code.push(query![put_constant!(Level::Shallow,
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c.clone(),
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temp_v!(1))]);
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code.push(is_call!(temp_v!(1), at.unwrap_or(interm!(1))));
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},
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_ => {
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code.push(fail!());
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}
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}
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},
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&QueryTerm::Clause(_, ClauseType::Inlined(ref ct), ref terms) =>
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try!(self.compile_inlined(ct, terms, term_loc, code)),
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_ => {
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let num_perm_vars = if chunk_num == 0 {
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conjunct_info.perm_vars()
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} else {
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conjunct_info.perm_vs.vars_above_threshold(i + 1)
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};
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self.compile_query_line(term, term_loc, code, num_perm_vars, is_exposed);
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},
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};
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}
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self.marker.reset_contents();
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}
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Ok(())
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}
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fn compile_seq_prelude(&mut self, conjunct_info: &ConjunctInfo, body: &mut Code)
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{
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if conjunct_info.allocates() {
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let perm_vars = conjunct_info.perm_vars();
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body.push(Line::Control(ControlInstruction::Allocate(perm_vars)));
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if conjunct_info.has_deep_cut {
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body.push(Line::Cut(CutInstruction::GetLevel(perm_v!(1))));
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}
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}
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}
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fn compile_cleanup(code: &mut Code, conjunct_info: &ConjunctInfo, toc: &'a QueryTerm)
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{
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// add a proceed to bookend any trailing cuts.
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match toc {
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&QueryTerm::BlockedCut | &QueryTerm::UnblockedCut(..) => code.push(proceed!()),
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_ => {}
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};
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// perform lco.
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let dealloc_index = Self::lco(code);
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|
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if conjunct_info.allocates() {
|
|
code.insert(dealloc_index, Line::Control(ControlInstruction::Deallocate));
|
|
}
|
|
}
|
|
|
|
pub fn compile_rule<'b: 'a>(&mut self, rule: &'b Rule) -> Result<Code, ParserError>
|
|
{
|
|
let iter = ChunkedIterator::from_rule(rule);
|
|
let conjunct_info = self.collect_var_data(iter);
|
|
|
|
let &Rule { head: (_, ref args, ref p1), ref clauses } = rule;
|
|
let mut code = Vec::new();
|
|
|
|
self.marker.reset_at_head(args);
|
|
self.compile_seq_prelude(&conjunct_info, &mut code);
|
|
|
|
let iter = FactIterator::from_rule_head_clause(args);
|
|
let fact = self.compile_target(iter, GenContext::Head, false);
|
|
|
|
if !fact.is_empty() {
|
|
code.push(Line::Fact(fact));
|
|
}
|
|
|
|
let iter = ChunkedIterator::from_rule_body(p1, clauses);
|
|
try!(self.compile_seq(iter, &conjunct_info, &mut code, false));
|
|
|
|
if conjunct_info.allocates() {
|
|
let index = if let &Line::Control(_) = code.last().unwrap() {
|
|
code.len() - 2
|
|
} else {
|
|
code.len() - 1
|
|
};
|
|
|
|
if let &mut Line::Query(ref mut query) = &mut code[index] {
|
|
let head_iter = FactIterator::from_rule_head_clause(args);
|
|
conjunct_info.perm_vs.mark_unsafe_vars_in_rule(head_iter, query);
|
|
}
|
|
}
|
|
|
|
Self::compile_cleanup(&mut code, &conjunct_info, clauses.last().unwrap_or(p1));
|
|
Ok(code)
|
|
}
|
|
|
|
fn mark_unsafe_fact_vars(&self, fact: &mut CompiledFact)
|
|
{
|
|
let mut unsafe_vars = HashMap::new();
|
|
|
|
for var_status in self.marker.bindings().values() {
|
|
unsafe_vars.insert(var_status.as_reg_type(), false);
|
|
}
|
|
|
|
for fact_instr in fact.iter_mut() {
|
|
match fact_instr {
|
|
&mut FactInstruction::UnifyValue(reg) =>
|
|
if let Some(found) = unsafe_vars.get_mut(®) {
|
|
if !*found {
|
|
*found = true;
|
|
*fact_instr = FactInstruction::UnifyLocalValue(reg);
|
|
}
|
|
},
|
|
&mut FactInstruction::UnifyVariable(reg) => {
|
|
if let Some(found) = unsafe_vars.get_mut(®) {
|
|
*found = true;
|
|
}
|
|
},
|
|
_ => {}
|
|
};
|
|
}
|
|
}
|
|
|
|
pub fn compile_fact<'b: 'a>(&mut self, term: &'b Term) -> Code
|
|
{
|
|
self.update_var_count(term.post_order_iter());
|
|
|
|
let mut vs = VariableFixtures::new();
|
|
vs.mark_vars_in_chunk(term.post_order_iter(), term.arity(), GenContext::Head);
|
|
|
|
vs.populate_restricting_sets();
|
|
self.marker.drain_var_data(vs);
|
|
|
|
let mut code = Vec::new();
|
|
|
|
if let &Term::Clause(_, _, ref args, _) = term {
|
|
self.marker.reset_at_head(args);
|
|
|
|
let iter = FactInstruction::iter(term);
|
|
let mut compiled_fact = self.compile_target(iter, GenContext::Head, false);
|
|
|
|
self.mark_unsafe_fact_vars(&mut compiled_fact);
|
|
|
|
if !compiled_fact.is_empty() {
|
|
code.push(Line::Fact(compiled_fact));
|
|
}
|
|
}
|
|
|
|
code.push(proceed!());
|
|
code
|
|
}
|
|
|
|
fn compile_query_line(&mut self, term: &'a QueryTerm, term_loc: GenContext,
|
|
code: &mut Code, num_perm_vars_left: usize, is_exposed: bool)
|
|
{
|
|
self.marker.reset_arg(term.arity());
|
|
|
|
let iter = term.post_order_iter();
|
|
let query = self.compile_target(iter, term_loc, is_exposed);
|
|
|
|
if !query.is_empty() {
|
|
code.push(Line::Query(query));
|
|
}
|
|
|
|
Self::add_conditional_call(code, term, num_perm_vars_left);
|
|
}
|
|
|
|
pub fn compile_query(&mut self, query: &'a Vec<QueryTerm>) -> Result<Code, ParserError>
|
|
{
|
|
let iter = ChunkedIterator::from_term_sequence(query);
|
|
let conjunct_info = self.collect_var_data(iter);
|
|
|
|
let mut code = Vec::new();
|
|
self.compile_seq_prelude(&conjunct_info, &mut code);
|
|
|
|
let iter = ChunkedIterator::from_term_sequence(query);
|
|
try!(self.compile_seq(iter, &conjunct_info, &mut code, true));
|
|
|
|
if conjunct_info.allocates() {
|
|
let index = if let &Line::Control(_) = code.last().unwrap() {
|
|
code.len() - 2
|
|
} else {
|
|
code.len() - 1
|
|
};
|
|
|
|
if let &mut Line::Query(ref mut query) = &mut code[index] {
|
|
conjunct_info.perm_vs.mark_unsafe_vars_in_query(query);
|
|
}
|
|
}
|
|
|
|
if let Some(query_term) = query.last() {
|
|
Self::compile_cleanup(&mut code, &conjunct_info, query_term);
|
|
}
|
|
|
|
Ok(code)
|
|
}
|
|
|
|
fn split_predicate(clauses: &Vec<PredicateClause>) -> Vec<(usize, usize)>
|
|
{
|
|
let mut subseqs = Vec::new();
|
|
let mut left_index = 0;
|
|
|
|
for (right_index, clause) in clauses.iter().enumerate() {
|
|
match clause.first_arg() {
|
|
Some(&Term::Var(_, _)) | Some(&Term::AnonVar) => {
|
|
if left_index < right_index {
|
|
subseqs.push((left_index, right_index));
|
|
}
|
|
|
|
subseqs.push((right_index, right_index + 1));
|
|
left_index = right_index + 1;
|
|
},
|
|
_ => {}
|
|
}
|
|
}
|
|
|
|
if left_index < clauses.len() {
|
|
subseqs.push((left_index, clauses.len()));
|
|
}
|
|
|
|
subseqs
|
|
}
|
|
|
|
fn compile_pred_subseq<'b: 'a>(&mut self, clauses: &'b [PredicateClause])
|
|
-> Result<Code, ParserError>
|
|
{
|
|
let mut code_body = Vec::new();
|
|
let mut code_offsets = CodeOffsets::new();
|
|
|
|
let num_clauses = clauses.len();
|
|
|
|
for (i, clause) in clauses.iter().enumerate() {
|
|
self.marker.reset();
|
|
|
|
let mut clause_code = match clause {
|
|
&PredicateClause::Fact(ref fact) =>
|
|
self.compile_fact(fact),
|
|
&PredicateClause::Rule(ref rule) =>
|
|
try!(self.compile_rule(rule))
|
|
};
|
|
|
|
if num_clauses > 1 {
|
|
let choice = match i {
|
|
0 => ChoiceInstruction::TryMeElse(clause_code.len() + 1),
|
|
_ if i == num_clauses - 1 => ChoiceInstruction::TrustMe,
|
|
_ => ChoiceInstruction::RetryMeElse(clause_code.len() + 1)
|
|
};
|
|
|
|
code_body.push(Line::Choice(choice));
|
|
}
|
|
|
|
clause.first_arg().map(|arg| {
|
|
let index = code_body.len();
|
|
code_offsets.index_term(arg, index);
|
|
});
|
|
|
|
code_body.append(&mut clause_code);
|
|
}
|
|
|
|
let mut code = Vec::new();
|
|
|
|
code_offsets.add_indices(&mut code, code_body);
|
|
Ok(code)
|
|
}
|
|
|
|
pub fn compile_predicate<'b: 'a>(&mut self, clauses: &'b Vec<PredicateClause>)
|
|
-> Result<Code, ParserError>
|
|
{
|
|
let mut code = Vec::new();
|
|
let split_pred = Self::split_predicate(&clauses);
|
|
let multi_seq = split_pred.len() > 1;
|
|
|
|
for (l, r) in split_pred {
|
|
let mut code_segment = try!(self.compile_pred_subseq(&clauses[l .. r]));
|
|
|
|
if multi_seq {
|
|
let choice = match l {
|
|
0 => ChoiceInstruction::TryMeElse(code_segment.len() + 1),
|
|
_ if r == clauses.len() => ChoiceInstruction::TrustMe,
|
|
_ => ChoiceInstruction::RetryMeElse(code_segment.len() + 1)
|
|
};
|
|
|
|
code.push(Line::Choice(choice));
|
|
}
|
|
|
|
code.append(&mut code_segment);
|
|
}
|
|
|
|
Ok(code)
|
|
}
|
|
}
|