Source file enumeration.ml
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open Utils
open Misc
open Fix.Indexing
open Info
type ('g, 'lrc) kernel = {
lrc: 'lrc index;
nto: 'g nonterminal opt index;
lookahead: 'g terminal indexset;
}
let kernel lrc ?goto lookahead =
let nto = Opt.(Option.fold ~none ~some goto) in
{lrc; nto; lookahead}
type ('lrc, 'n) edge = {
path: 'lrc index list;
source: 'n index;
target: 'n index;
}
type ('g, 'lrc, 'a, 'n) _graph = {
ker : ('n, ('g, 'lrc) kernel) vector;
fwd : ('n, ('lrc, 'n) edge list) vector;
bkd : ('n, ('lrc, 'n) edge list) vector;
entries: 'a array;
}
type ('g, 'lrc, 'a) graph =
Graph : ('g, 'lrc, 'a, 'n) _graph -> ('g, 'lrc, 'a) graph
let rec fold_expand expand env f acc = function
| [] -> acc
| [x] -> f env acc x
| x :: xs ->
let acc = f env acc x in
let env = expand env in
fold_expand expand env f acc xs
let make_graph (type g lrc a)
(grammar : g grammar)
(rcs : (g lr1, g Redgraph.reduction_closure) vector)
(stacks : (g, lrc) Automata.stacks)
(entries : ((g, lrc) kernel * a) list)
=
let open IndexBuffer in
let module Nodes = Gen.Make() in
let nodes = Nodes.get_generator () in
let fwd = Dyn.make [] in
let table = Hashtbl.create 500 in
let rec synthesize (node : Nodes.n index) ker =
let paths, tgt =
let lr1 = stacks.label ker.lrc in
match Opt.prj ker.nto with
| None ->
IndexSet.fold
(fun lrc acc -> (lrc, [lrc]) :: acc)
(stacks.prev ker.lrc) [],
lr1
| Some nt ->
([ker.lrc, []], Transition.find_goto_target grammar lr1 nt)
in
let rc = rcs.:(tgt) in
let explore_paths paths acc nts =
IndexMap.fold begin fun nt lookahead' acc ->
let lookahead = IndexSet.inter ker.lookahead lookahead' in
if IndexSet.is_not_empty lookahead then
List.fold_left begin fun acc (lrc', path) ->
let target = get_node {lrc = lrc'; nto = Opt.some nt; lookahead} in
{source=node; target; path} :: acc
end acc paths
else
acc
end nts acc
in
let expand_paths paths =
List.fold_left begin fun acc (lrc0, path) ->
IndexSet.fold
(fun lrc acc -> (lrc, lrc :: path) :: acc)
(stacks.prev lrc0) acc
end [] paths
in
Dyn.set fwd node (fold_expand expand_paths paths explore_paths [] rc.reductions)
and get_node ker =
assert (IndexSet.is_not_empty ker.lookahead);
match Hashtbl.find_opt table ker with
| Some node -> node
| None ->
let node = Gen.add nodes ker in
Hashtbl.add table ker node;
synthesize node ker;
node
in
let entry_nodes = List.map (fun (ker, _) -> Gen.add nodes ker) entries in
List.iter (fun i -> synthesize i (Gen.get nodes i)) entry_nodes;
let ker = Gen.freeze nodes in
let fwd = Dyn.contents fwd Nodes.n in
let bkd = Vector.make Nodes.n [] in
Vector.iter (List.iter (fun edge -> bkd.@(edge.target) <- List.cons edge)) fwd;
Graph {entries=Array.of_list (List.map snd entries); ker; fwd; bkd}
let get_lr1_state grammar (stacks : _ Automata.stacks) ker =
let lr1 = stacks.label ker.lrc in
match Opt.prj ker.nto with
| None -> lr1
| Some nt -> Transition.find_goto_target grammar lr1 nt
let get_lr0_state grammar (stacks : _ Automata.stacks) ker =
Lr1.to_lr0 grammar (get_lr1_state grammar stacks ker)
let get_failing grammar stacks rcs ker =
rcs.:(get_lr1_state grammar stacks ker).Redgraph.failing
type ('g, 'lrc, 'a, 'n) failing_sentence = {
first: 'n index;
pattern: 'g lr0 index;
edges: ('lrc, 'n) edge list;
failing: 'g terminal indexset;
entry: 'a;
}
let make_failing_sentence gr (first, pattern, edges, failing) =
let index = Index.to_int (List.fold_left (fun _ edge -> edge.source) first edges) in
assert (index < Array.length gr.entries);
{first; pattern; edges; failing; entry = gr.entries.(index)}
let cover_with_maximal_patterns grammar rcs stacks gr =
let results = ref [] in
let todo = ref (
List.init (Array.length gr.entries)
(fun i -> (Index.of_int (Vector.length gr.ker) i, [], IndexSet.empty))
)
in
let covered = Vector.make (Lr0.cardinal grammar) IndexSet.empty in
let emit node path failing =
let ker = gr.ker.:(node) in
let rec visit_stacks candidate = function
| {Redgraph. subs = []} ->
let lr0 = Lr1.to_lr0 grammar candidate in
let covered0 = covered.:(lr0) in
let covered' = IndexSet.union failing covered0 in
if covered' != covered0 then (
covered.:(lr0) <- covered';
push results (make_failing_sentence gr (node, lr0, path, failing))
)
| {Redgraph.subs} ->
List.iter (fun (stack, _la, subs) ->
visit_stacks (List.hd stack) subs
) subs
in
let lr1 = get_lr1_state grammar stacks ker in
visit_stacks lr1 rcs.:(lr1).Redgraph.stacks
in
let marked = Boolvector.make (Vector.length gr.ker) false in
let visited = Vector.make (Vector.length gr.ker) IndexSet.empty in
let propagate (node, path, failing) =
let ker = gr.ker.:(node) in
let failing = IndexSet.union (get_failing grammar stacks rcs ker) failing in
if not (Boolvector.test marked node) || not (IndexSet.equal visited.:(node) failing) then (
Boolvector.set marked node;
visited.@(node) <- IndexSet.union failing;
match gr.fwd.:(node) with
| [] ->
if IndexSet.is_not_empty failing then
emit node path failing
| edges ->
List.iter begin fun edge ->
push todo (edge.target, edge :: path, failing)
end edges
)
in
fixpoint ~propagate todo;
!results
type ('g, 'a) dispenser = {
fallible0: ('g lr0, 'g terminal indexset) vector;
mutable next : 'a Seq.t;
}
let mark_covered disp lr0 la =
disp.fallible0.@(lr0) <- IndexSet.union la
let mark_sentence_covered g stacks gr disp {first; edges; failing; _} =
let mark node = mark_covered disp (get_lr0_state g stacks gr.ker.:(node)) failing in
mark first;
List.iter (fun edge -> mark edge.source) edges
let next disp =
let result, next = match disp.next () with
| Seq.Nil -> (None, Seq.empty)
| Seq.Cons (x, xs) -> (Some x, xs)
in
disp.next <- next;
result
let to_seq disp = disp.next
let cover_all (type g n) grammar rcs stacks (gr : (g, _, _, n) _graph) =
let disp = {
fallible0 = Vector.make (Lr0.cardinal grammar) IndexSet.empty;
next = Seq.empty;
} in
disp.next <- begin fun () ->
let n = Vector.length gr.ker in
let visited_prefix = Boolvector.make n false in
let visited_suffix = Boolvector.make n false in
let fallible = Vector.make n IndexSet.empty in
let prefixes = Vector.make n [] in
let suffixes = Vector.make n [] in
let shortest_prefix = Vector.make n [] in
let shortest_suffix = Vector.make n [] in
let todo = ref [] in
let propagate (dir, node, path, failing) =
let ker = gr.ker.:(node) in
let failing = IndexSet.union failing (get_failing grammar stacks rcs ker) in
let visited =
match dir with
| `Prefix ->
if list_is_empty shortest_prefix.:(node) then
shortest_prefix.:(node) <- path;
visited_prefix
| `Suffix ->
if list_is_empty shortest_suffix.:(node) then
shortest_suffix.:(node) <- path;
visited_suffix
in
let fallible' = IndexSet.union failing fallible.:(node) in
if not (Boolvector.test visited node) || fallible' != fallible.:(node) then (
Boolvector.set visited node;
fallible.:(node) <- fallible';
let lr0 = get_lr0_state grammar stacks ker in
let fallible0' = IndexSet.diff failing disp.fallible0.:(lr0) in
if IndexSet.is_not_empty fallible0' then (
disp.fallible0.@(lr0) <- IndexSet.union fallible0';
let sentences = match dir with
| `Prefix -> prefixes
| `Suffix -> suffixes
in
sentences.@(node) <- List.cons (path, failing);
);
let prj, list = match dir with
| `Prefix -> ((fun edge -> edge.source), gr.bkd.:(node))
| `Suffix -> ((fun edge -> edge.target), gr.fwd.:(node))
in
List.iter (fun edge -> push todo (dir, prj edge, edge :: path, failing)) list
);
in
Index.iter n begin fun node ->
if list_is_empty gr.bkd.:(node) then
propagate (`Suffix, node, [], IndexSet.empty)
else if list_is_empty gr.fwd.:(node) then
propagate (`Prefix, node, [], IndexSet.empty)
end;
fixpoint ~propagate todo;
Index.iter n begin fun node ->
if not (list_is_empty gr.bkd.:(node)) then
assert (not (list_is_empty shortest_suffix.:(node)));
if not (list_is_empty gr.fwd.:(node)) then
assert (not (list_is_empty shortest_prefix.:(node)));
end;
Index.init_seq n begin fun node () ->
let output (prefix, pfail) (suffix, sfail) =
let failing = IndexSet.union pfail sfail in
let sentence = List.rev_append prefix suffix in
let first = match sentence with
| [] -> node
| x :: _ -> x.target
in
(first, sentence, failing)
in
let sprefix = shortest_prefix.:(node) in
let ssuffix = shortest_suffix.:(node) in
let output_prefixes prefixes =
List.to_seq prefixes
|> Seq.map (fun prefix' -> output prefix' (ssuffix, IndexSet.empty))
in
let output_suffixes suffixes =
List.to_seq suffixes
|> Seq.map (fun suffix' -> output (sprefix, IndexSet.empty) suffix')
in
match List.rev prefixes.:(node), suffixes.:(node) with
| prefix0 :: prefixes, suffix0 :: suffixes ->
Seq.Cons (output prefix0 suffix0,
Seq.append
(output_prefixes prefixes)
(output_suffixes suffixes))
| prefixes, suffixes ->
Seq.append (output_prefixes prefixes) (output_suffixes suffixes) ()
end
|> Seq.concat
|> Seq.filter_map (fun (node, edges, failing) ->
let productive = ref false in
let check node =
let lr0 = get_lr0_state grammar stacks gr.ker.:(node) in
let fallible = disp.fallible0.:(lr0) in
let fallible' = IndexSet.diff fallible failing in
if fallible != fallible' then (
disp.fallible0.:(lr0) <- fallible';
productive := true;
)
in
check node;
List.iter (fun edge -> check edge.source) edges;
if !productive then
Some (node, get_lr0_state grammar stacks gr.ker.:(node), edges, failing)
else
None
)
|> Seq.map (make_failing_sentence gr)
|> (fun seq -> seq ())
end;
disp