package wax-lib
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Libraries for Wax, a Rust-like syntax for WebAssembly
Install
dune-project
Dependency
Authors
Maintainers
Sources
wax-v0.2.0.tbz
sha256=4361e1324b7754a4c08ab5b505df32061f3ce0cea60443fd0d3699e0fa796b32
sha512=fcc756d2f160ba90a9aa1131f2ab22ed7f45466ccd658c21cf9df6868a6aab0cee7f404719d698a379958802f9820398f2fe0685ecc4dda018ca4f653294e39b
doc/src/wax-lib.utils/printer.ml.html
Source file printer.ml
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The imperative builder API (string, space, box, …) emits a flat token stream straight into a layout engine; nothing is ever materialized as a document tree. The engine gives genuine hard breaks, column awareness and break coalescing we control — unlike a thin layer over OCaml's [Format] — with bounded memory (the engine buffers only the ~[width] of lookahead a break/group decision needs). *) type break_strength = Cut | Space | Newline | Blank_line let strength = function Cut -> 0 | Space -> 1 | Newline -> 2 | Blank_line -> 3 (* ===================================================================== *) (* Token stream + layout engine + imperative builder *) (* ===================================================================== *) module Doc = struct type gkind = | GBox (* fill: each soft break wraps independently as needed *) | GHov (* same fill semantics, kept distinct for parity with Format *) | GHv (* all-or-nothing: whole group flat, or every soft break wraps *) | GV (* every soft break wraps *) | GH (* soft breaks never wrap (hard/blank still break) *) (* --- token stream (the builder's output, the engine's input) --- *) (* The document is streamed as a flat token sequence. A group / nest / if-broken opens with its own token and closes with a matching [TEnd]. A [TBreak] carries one [break_strength]: Cut/Space are soft (flatten in a fitting group); Newline/Blank_line always break. *) type token = | TText of int * string (* display width, payload *) | TBreak of break_strength | TBegin of gkind | TNest of int | TIfBroken (* Content emitted only when the enclosing group is laid out broken (a trailing comma after the last element of a list that wraps). It never counts toward the fit decision. *) | TEnd (* --- layout engine --- *) type mode = Flat | Brkm | Fill (* A live layout frame — the streaming analogue of the old tree renderer's per-worklist-item [(indent, mode)] pair. *) type eframe = { findent : int; fmode : mode } (* The outcome of a fit scan. Nullary (so returning it never allocates): the scan parks its resumable state in [scan_state], not a boxed payload. *) type sres = Fits | Nofit | Susp (* A front decision whose fit scan ran out of buffered input and suspended, resumed on the next [feed] so each buffered token is scanned once. One record, mutated in place — no per-suspend allocation. [active] flags a live suspension; [ghv] distinguishes a [GHv] open (uses [base]) from a [Fill] break (uses [str]); the rest are the parked [scan_go] loop variables. *) type scan_state = { mutable active : bool; mutable ghv : bool; mutable base : int; mutable str : break_strength; mutable avail : int; mutable sstack : mode list; mutable fr : eframe list; mutable ib : int; mutable i : int; } (* A stateful token consumer with bounded lookahead. A decision that needs to look ahead ([GHv] open, [Fill] break) waits until enough tokens are buffered in [queue] to resolve it; because [scan] short-circuits once the available column is exhausted, the FIFO stays bounded by ~[width]. Everything else is laid out immediately. Returns [(feed, finish)]: [feed] pushes one token, [finish] signals end of input (and drains the tail). *) let make_engine ~width ~add_string ~add_char ~add_substring = let col = ref 0 in let emitted = ref false in (* Cap how far breaks indent, so deeply nested code does not march off to the right margin (the analogue of Format's [max_indent]). *) let max_indent = max 0 (width - 10) in (* A break's indentation is always [<= max_indent] (see [break_line]), so one string of that many spaces covers every indent: emit a slice of it. *) let spaces = String.make max_indent ' ' in (* A pending line break (indent + blank?) and/or a pending flat separator, deferred until the next text and coalesced — across group boundaries — by max strength; a line break supersedes a flat separator. *) let pend_line = ref None in let pend_flat = ref None in let frames = ref [ { findent = 0; fmode = Brkm } ] in let cur () = List.hd !frames in (* The pending-token FIFO: a growable ring buffer, so [scan] can index the lookahead without allocating (a [Queue]+[Seq] scan allocated a node per token scanned, on every re-scan). [qn] tokens live at [qhd .. qhd+qn) mod capacity. *) (* Capacity is always a power of two, so index wrap-around is [land mask] (cheaper than [mod]); [qmask] is [capacity - 1]. *) let qbuf = ref (Array.make 32 TEnd) in let qmask = ref 31 in let qhd = ref 0 in let qn = ref 0 in let qget i = !qbuf.((!qhd + i) land !qmask) in let qpush x = if !qn = Array.length !qbuf then ( let old = !qbuf and omask = !qmask and ohd = !qhd in let ncap = 2 * Array.length old in let nb = Array.make ncap TEnd in for i = 0 to !qn - 1 do nb.(i) <- old.((ohd + i) land omask) done; qbuf := nb; qmask := ncap - 1; qhd := 0); !qbuf.((!qhd + !qn) land !qmask) <- x; incr qn in let qpop () = let x = !qbuf.(!qhd) in qhd := (!qhd + 1) land !qmask; decr qn; x in (* >0 while dropping the content of an [if_broken] whose enclosing group is not broken (the trailing comma of a flat list). *) let skip_depth = ref 0 in (* The suspended-scan state (see [scan_state]). *) let sc = { active = false; ghv = false; base = 0; str = Space; avail = 0; sstack = []; fr = []; ib = 0; i = 0; } in let scan_at_end = ref false in let flush () = (match !pend_line with | Some (ind, blank) -> (* Suppress a leading break before any output, like [if started]. *) if !emitted then ( add_char '\n'; if blank then add_char '\n'; add_substring spaces 0 ind; col := ind) | None -> ( match !pend_flat with | Some s when strength s >= strength Space -> add_char ' '; incr col | _ -> ())); pend_line := None; pend_flat := None in let break_line ind blank = let ind = min ind max_indent in (match !pend_line with | Some (_, b0) -> pend_line := Some (ind, b0 || blank) | None -> pend_line := Some (ind, blank)); pend_flat := None in let flat_sep s = if !pend_line = None then pend_flat := Some (match !pend_flat with | Some s0 -> if strength s >= strength s0 then s else s0 | None -> s) in let eff_col () = match !pend_line with | Some (ind, _) -> ind | None -> !col + if !pend_flat <> None then 1 else 0 in (* Does the content fit in [avail] columns up to the next line-ending break? Trailing context beyond the immediate group is included (matching the old tree renderer's [fits], not a local "does this group alone fit" check). [sstack] is the mode stack of groups entered during the scan (innermost first), all [Flat]; beneath them [fr] is the enclosing frame stack, read directly (no copy). The current mode is the head of [sstack], else the innermost [fr]; a break there ends the line iff that mode is breaking ([Brkm]/[Fill]). [i] indexes the lookahead in the ring buffer. Returns [Ok] once decided ([false] when [avail] is exhausted, [true] at the first line-ending break); [Error] with the state to resume from when the buffer runs out before deciding (unless [!scan_at_end]). *) let rec scan_go avail sstack fr ib i = if avail < 0 then Nofit else if i >= !qn then if !scan_at_end then Fits else ( (* out of buffered input: park the loop state for the next [feed] *) sc.avail <- avail; sc.sstack <- sstack; sc.fr <- fr; sc.ib <- ib; sc.i <- i; Susp) else let tok = qget i in if ib > 0 then (* dropping if_broken content: measure nothing *) let ib = match tok with | TBegin _ | TNest _ | TIfBroken -> ib + 1 | TEnd -> ib - 1 | _ -> ib in scan_go avail sstack fr ib (i + 1) else match tok with | TText (w, _) -> scan_go (avail - w) sstack fr ib (i + 1) | TBegin _ -> scan_go avail (Flat :: sstack) fr ib (i + 1) | TNest _ -> (* the current mode (head of [sstack], else innermost [fr]) *) let m = match sstack with | m :: _ -> m | [] -> ( match fr with f :: _ -> f.fmode | [] -> Brkm) in scan_go avail (m :: sstack) fr ib (i + 1) | TIfBroken -> scan_go avail sstack fr 1 (i + 1) | TEnd -> ( match sstack with | _ :: tl -> scan_go avail tl fr ib (i + 1) | [] -> ( match fr with | _ :: (_ :: _ as ftl) -> scan_go avail [] ftl ib (i + 1) | _ -> Fits (* popped past outermost frame = [] *))) | TBreak b -> ( let m = match sstack with | m :: _ -> m | [] -> ( match fr with f :: _ -> f.fmode | [] -> Brkm) in match m with | Brkm | Fill -> Fits | Flat -> ( match b with | Newline | Blank_line -> Nofit | Space -> scan_go (avail - 1) sstack fr ib (i + 1) | Cut -> scan_go avail sstack fr ib (i + 1))) in (* Commit a resolved decision ([fit]: does it fit flat?) and pop its front token. *) let resolve_decision fit = sc.active <- false; ignore (qpop ()); if sc.ghv then frames := { findent = sc.base; fmode = (if fit then Flat else Brkm) } :: !frames else if fit then flat_sep sc.str else break_line (cur ()).findent false in (* Lay out a token that needs no lookahead, updating the print state exactly as the old tree renderer did for the corresponding [doc] node. *) let process tok = match tok with | TText (w, s) -> flush (); add_string s; emitted := true; col := !col + w | TNest n -> let c = cur () in frames := { findent = c.findent + n; fmode = c.fmode } :: !frames | TBegin k -> (* A box's break-indentation is measured from the column where the box opens (Format semantics), not from the inherited nesting — they differ when a box starts mid-line (e.g. a WAT s-expression after its [(]). Rebase the group's indent to the open column. *) let base = eff_col () in let m = match k with | GV -> Brkm | GH -> Flat | GBox | GHov -> Fill | GHv -> assert false (* resolved with lookahead in [advance] *) in frames := { findent = base; fmode = m } :: !frames | TIfBroken -> (* only reached when the enclosing group is broken; the flat case is skipped in [advance] *) let c = cur () in frames := { findent = c.findent; fmode = c.fmode } :: !frames | TEnd -> ( match !frames with _ :: (_ :: _ as tl) -> frames := tl | _ -> ()) | TBreak str -> ( let c = cur () in match (str, c.fmode) with | Newline, _ -> break_line c.findent false | Blank_line, _ -> break_line c.findent true | (Cut | Space), Flat -> flat_sep str | (Cut | Space), Brkm -> break_line c.findent false | (Cut | Space), Fill -> assert false (* resolved in [advance] *)) in (* Drain the queue front while each front token is resolvable. A decision ([GHv] open, [Fill] break) scans the lookahead from index 1 (past the front token); if it cannot yet decide it is left [pending] and resumed on the next [feed]. *) let advance ~at_end () = scan_at_end := at_end; let go_on = ref true in while !go_on do if !skip_depth > 0 then if !qn = 0 then go_on := false else match qpop () with | TBegin _ | TNest _ | TIfBroken -> incr skip_depth | TEnd -> decr skip_depth | _ -> () else if !qn = 0 then go_on := false else if sc.active then (* resume the suspended front decision from its parked state *) match scan_go sc.avail sc.sstack sc.fr sc.ib sc.i with | Susp -> go_on := false | Fits -> resolve_decision true | Nofit -> resolve_decision false else match qget 0 with | TBegin GHv -> ( let base = eff_col () in (* [sc.ghv]/[sc.base] are read by [resolve_decision] on resolve — set them before the scan so the immediate case sees them too. *) sc.ghv <- true; sc.base <- base; match scan_go (width - base) [ Flat ] !frames 0 1 with | Susp -> sc.active <- true; go_on := false | Fits -> resolve_decision true | Nofit -> resolve_decision false) | TBreak ((Cut | Space) as str) when (cur ()).fmode = Fill -> ( (* If kept flat this separator itself occupies a column, so what follows starts one column further right; account for it. *) let sep = match str with Space -> 1 | _ -> 0 in (* [sc.ghv]/[sc.str] are read by [resolve_decision] on resolve. *) sc.ghv <- false; sc.str <- str; match scan_go (width - eff_col () - sep) [] !frames 0 1 with | Susp -> sc.active <- true; go_on := false | Fits -> resolve_decision true | Nofit -> resolve_decision false) | TIfBroken when (cur ()).fmode <> Brkm -> ignore (qpop ()); skip_depth := 1 | tok -> ignore (qpop ()); process tok done in let feed tok = qpush tok; advance ~at_end:false () in let finish_stream () = advance ~at_end:true () in (feed, finish_stream) (* --- imperative builder (streams tokens into an engine) --- *) type state = { feed : token -> unit; finish_stream : unit -> unit; mutable pending_break : break_strength option; (* The most recent break not yet emitted, held so a following break can coalesce with it (by max strength) and so [force_eol]/[skip_space] can drop it — the streaming analogue of the old frame-head lookback. *) mutable has_emitted : bool; (* content since last forced end-of-line *) mutable pending_eol : (unit -> unit) option; mutable holding_eol : bool; } let create ~feed ~finish_stream = { feed; finish_stream; pending_break = None; has_emitted = false; pending_eol = None; holding_eol = false; } (* Emit a non-break token, first flushing any pending break so a break always precedes the following text/group and follows the preceding group's content (the token order the old tree fold produced). *) let emit st tok = (match st.pending_break with | Some s -> st.pending_break <- None; st.feed (TBreak s) | None -> ()); st.feed tok (* Record a break, coalescing with a pending one into the stronger of the two — the analogue of the old [append]'s break-after-break merge and of the Format engine's [register_break]. *) let push_break st s = st.pending_break <- Some (match st.pending_break with | Some s0 -> if strength s >= strength s0 then s else s0 | None -> s) (* Drop a pending break, so a deferred end-of-line comment hugs the preceding token instead of being pushed past a break. *) let drop_trailing_break st = match st.pending_break with | Some s -> st.pending_break <- None; Some s | None -> None let force_eol st = match st.pending_eol with | None -> () | Some emit_comment -> st.pending_eol <- None; let dropped = drop_trailing_break st in emit_comment (); let next_brk = match dropped with Some Blank_line -> Blank_line | _ -> Newline in push_break st next_brk; st.has_emitted <- false let defer_eol st emit_comment = force_eol st; st.pending_eol <- Some emit_comment let with_held_eol st f = let prev = st.holding_eol in st.holding_eol <- true; f (); st.holding_eol <- prev let has_pending_eol st = st.pending_eol <> None let text st len s = if not st.holding_eol then force_eol st; st.has_emitted <- true; emit st (TText (len, s)) let string st s = text st (String.length s) s let string_as st len s = text st len s let space st = if st.has_emitted then push_break st Space let cut st = push_break st Cut let newline st = push_break st Newline let blank_line st = push_break st Blank_line let indent st n f = emit st (TNest n); f (); emit st TEnd let if_broken st f = emit st TIfBroken; f (); emit st TEnd let scoped st kind ~skip_space ~indent f = if not st.holding_eol then force_eol st; (if skip_space then match st.pending_break with | Some (Cut | Space) -> st.pending_break <- None | _ -> ()); emit st (TBegin kind); (* The group's own indent is a nest wrapping its whole body, so every break in the body indents from [base + indent] (see the old [group_wrap]). *) if indent <> 0 then emit st (TNest indent); f (); if indent <> 0 then emit st TEnd; emit st TEnd let box st ~skip_space ~indent f = scoped st GBox ~skip_space ~indent f let hvbox st ~skip_space ~indent f = scoped st GHv ~skip_space ~indent f let hovbox st ~skip_space ~indent f = scoped st GHov ~skip_space ~indent f let vbox st ~skip_space ~indent f = scoped st GV ~skip_space ~indent f let hbox st ~skip_space f = scoped st GH ~skip_space ~indent:0 f (* Flush a trailing deferred end-of-line comment, then drain the engine. A trailing break is left pending and never fed, so it is dropped (no trailing whitespace). *) let finalize st = force_eol st; st.finish_stream () end (* ===================================================================== *) (* Public API *) (* ===================================================================== *) type t = Doc.state let indent = Doc.indent let string = Doc.string let string_as = Doc.string_as let space t () = Doc.space t let cut t () = Doc.cut t let newline t () = Doc.newline t let blank_line t () = Doc.blank_line t let defer_eol = Doc.defer_eol let with_held_eol = Doc.with_held_eol let has_pending_eol = Doc.has_pending_eol let if_broken = Doc.if_broken let box t ?(skip_space = false) ?(indent = 0) f = Doc.box t ~skip_space ~indent f let hvbox t ?(skip_space = false) ?(indent = 0) f = Doc.hvbox t ~skip_space ~indent f let hbox t ?(skip_space = false) f = Doc.hbox t ~skip_space f let hovbox t ?(skip_space = false) ?(indent = 0) f = Doc.hovbox t ~skip_space ~indent f let vbox t ?(skip_space = false) ?(indent = 0) f = Doc.vbox t ~skip_space ~indent f let run_channel ?(width = 78) oc f = (* Lay out straight into the channel — no intermediate string, no Format buffering. The hot output path. *) let feed, finish_stream = Doc.make_engine ~width ~add_string:(fun s -> output_string oc s) ~add_char:(fun c -> output_char oc c) ~add_substring:(fun s pos len -> output_substring oc s pos len) in let c = Doc.create ~feed ~finish_stream in f c; Doc.finalize c let run_string ?(width = 78) f = (* Lay out straight into a buffer and return its contents. *) let b = Buffer.create 256 in let feed, finish_stream = Doc.make_engine ~width ~add_string:(fun s -> Buffer.add_string b s) ~add_char:(fun c -> Buffer.add_char b c) ~add_substring:(fun s pos len -> Buffer.add_substring b s pos len) in let c = Doc.create ~feed ~finish_stream in f c; Doc.finalize c; Buffer.contents b let run_err ?(width = 78) f = (* Lay out to stderr, then a trailing newline and a flush — the replacement for the [Format.eprintf "%a@."] debug idiom, which got both for free. *) run_channel ~width stderr f; output_char stderr '\n'; flush stderr let run_discard f = (* A printer that produces no output: tokens are dropped, nothing is laid out. For the dry pass that only needs the side effects of running the printer — recording which source locations get looked up, via [Trivia]'s [collect] — so it avoids building and laying out the whole document just to discard it. *) let c = Doc.create ~feed:(fun _ -> ()) ~finish_stream:(fun () -> ()) in f c; Doc.finalize c
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