75 KiB
Lean 4 mode — framing (Arc 8)
pmacs has no Lean support of any kind: grep -rin lean over *.rs,
*.lua, *.toml, *.md returns zero hits outside the words "clean",
"boolean", and "leans on". A .lean file today opens as a pathless-ish
plain buffer — no grammar, no major mode, no comment syntax, no pair set,
no server.
This lane closes that in seven stages. Stage boundaries are drawn where the substrate changes, not where the feature list does — see §4.
0. Why this lane, why now
- Arc 5 (terminal), Arc 4 (themes), the config registry, and the mode
system are all complete, and Arc 7 Stage 1 (bottom panel) merged as #155
at
e745068. The goal view in Stage 5 is the first real consumer of the panel placement API outside listview/compile/terminal, which is a useful forcing function for it. - The language-support pattern is well worn and cheap: #123 (JSON/YAML), #144 (LaTeX), #146 (HTML+CSS). Stage 1 is that pattern almost exactly.
- Stages 2 and 4–6 are not that pattern, and none should be mistaken
for a one-liner. Stage 2 changes
ensure_server, shared by every LSP language. Stage 4 builds the editor's first input method. Stage 5 is the first consumer of a non-standard LSP method family. Stage 6 adds a severity-routing policy toLspServerSpec. - The user's stated north star is matching or exceeding what VS Code does with Lean. §5's bet 6 scores honestly how close seven stages get and names precisely what is still missing.
Parallel-safety: Stage 1 touches Cargo.toml, src/syntax.rs,
src/highlight.rs, and four runtime Lua files. Stage 2 touches
src/lua_bindings/mod.rs and builtin/runtime/lsp.lua only. Folding
Stage 3 (the other open lane) touches pmacs-gpu/* and
src/semantic_render.rs. None of the three footprints overlap; the only
file Stage 1 shares with anything is Cargo.toml, at one line.
Stages 1 and 2 are independent of each other and can run as sibling worktrees — they share no file. Per the #126/#127 lesson, that split is recorded here, before either starts, rather than discovered during a rebase.
0.1 Revision history
Revision 1 — initial.
Round 1 (rev 1 → rev 2)
Five findings, all revision edits — no re-scout was required. The reviewer independently reproduced both crate teardowns, every file:line citation, the blast-radius greps, and the Lean server facts.
- Acceptance 8 contradicted the change it pinned. The negative pin
named Lua and Python as "byte-identical" fixtures, but both are among
the languages
constructorretro-paints — so a fixture that didn't move would have been exactly the vacuous-assertion shape from the #155 R2 lesson. Acceptance 7/8 redrawn: Lua and Python moved to the positive side with asserted deltas, and the negative pin now uses languages verified to emit none of the four names. - The retro-paint is broader than rev 1 stated, and differently
shaped.
tree_sitter_javascript::HIGHLIGHT_QUERYis concatenated into thejavascriptreact,typescript, andtypescriptreactentries (src/syntax.rs:1009–1056), soconstructorreaches seven language entries, not four. More importantly the shape is not "constructors": rust/python/javascript tag every capitalized identifier (#match? "^[A-Z]"), and lua tags every table-constructor brace. §2.3 and Q#LN4 now state this, because it is what the ruling is actually about. - The goal view's refresh loop had no seam. There is no motion hook.
Named the real mechanism (debounced polling off
process.after-tick) in Q#LN13 rather than letting it grow a polling loop or new hook substrate unframed.
(Round-1 findings are stated against the features, not stage numbers:
round 2 renumbered the stages, so a rev-1 "Stage 4" is now Stage 5.)
4. Q#LN10's ordering example didn't motivate the ordering. < is not
in the proposed pair set, so \<> is safe under either order. Replaced
with the real collisions (64 abbreviation keys contain a pair-set
character), and stated the contract that finding exposes: the
abbreviation consumer must claim self-inserts that extend an open
pending abbreviation, not only completed expansions.
5. Q#LN8's resolver must honor the search boundary. A Lua
lean-toolchain walk that ignores pmacs.project.search_boundary()
breaks the contract detect_project_within exists to enforce and makes
the Stage 3 outermost-root test non-hermetic.
Round 2 (rev 2 → rev 3) — scope expansion
Not review findings: the user pulled seven items out of §6 and into scope, with the stated north star that the arc should eventually match or exceed what VS Code does with Lean. Folded in, with two designs corrected against ground truth the expansion request assumed differently:
- Lake version probe (was deferred) → Q#LN7, rewritten. Corrected:
there is no blocking process run in pmacs.
pmacs.processisspawn/write_stdin/terminate/list/status/events_take/forget/resize_pty, all drained asynchronously offprocess.after-tick; nothing returns output synchronously. A lazy probe therefore cannot gate the first attach, so the design is probe-plus-fallback-latch rather than probe-then-configure. Second correction:lakebeing on PATH does not mean Lean works — see §2.9, where the scouting machine's ownlake --versionfails. - Multi-root Lake scoping (was deferred) → Q#LN15, and promoted to
its own stage. Corrected:
rootis computed atbuiltin/runtime/lsp.lua:537, after the reuse loop at:529–:536, not before it. The fix therefore hoists the computation above the loop, which makesproject_root_forrun on the reuse path where it previously did not — a real consequence for Q#LN8's function-valued resolver, handled there. ⦃⦄/⟮⟯pairs → folded into Q#LN6.- Lean in markdown fences → Q#LN17.
textDocument/waitForDiagnostics→ Q#LN16.- Abbreviation table upkeep → Q#LN11, as a documented process rather than a deferral.
#eval/#checkoutput channel → Q#LN18, its own stage.- Module hierarchy → Q#LN19, its own stage.
Deliberately still deferred: the interactive infoview ($/lean/rpc/*) —
named as the arc's eventual destination, not its scope; the GPU goal band
(blocked on bottom-panel Stage 2); a cursor.after-move hook; .olean /
.ilean; and block-comment toggle, which the user confirmed belongs to
the comment arc's framing rather than this one.
Nits corrected in round 1: the ledger-drift note (agent-handoff.md
omits the panel lane rather than describing it as in-review); Q#LN12's
layering (_request_*_raw are the Lua bindings in
src/lua_bindings/mod.rs; src/lsp.rs has request_hover — Stage 5
touches both files); §2.2's chain step is
pmacs.parse.language_from_filename; §2.3 no longer calls
Style::default() entries "styled"; and bet 1's grammar count.
Round 3 (rev 3 → rev 4)
Six findings against the round-2 expansion. All revision edits.
- The response half of the seam was never designed (the real hole).
Q#LN16 and Q#LN19 both awaited replies "through the Q#LN9 seam", and
acceptance pinned it — but Q#LN9 defined only
on_notificationand a notification arm. Confirmed: no Lua anywhere consumesev.kind == "response", so asend_requestreply is drained and dropped;send_requestis effectively write-only from Lua. Q#LN9 now specifies both halves, including one-shot removal-before-invoke and a pending-response purge on server death, with acceptance mirroring the notification-side integrity pins. - The affinity key silently fragmented loose files for every
language.
project_root_for's last fallback isdir_of(path), so it never returns nil for a file with a path — a naive(language_id, root)key would give every directory of markerless scratch files its own server, in Python and Go and TypeScript, caused by a change made for Lean. Q#LN15 now rules: the affinity key is the root only when a root was actually detected, and nil for the fallback. Two acceptance cases pin it. - An acceptance criterion was unimplementable.
pmacs.hookexposesadd/define/list/runand noremove, so "leaves noprocess.after-ticksubscription" could not be satisfied or tested. Reworded to the observable: after teardown, ticks issue no request and write nothing. - Four stale cross-references survived the round-2 renumber, despite that round claiming reconciliation: the opening "four stages"; §2.5 still calling multi-root a §6 deferral; Q#LN12's "only Rust in Stages 2–4", broken three ways; and §4's row 7 omitting Stage 7's typed request. Q#LN12 now carries a per-stage Rust table instead of a prose claim, which is harder to get wrong on the next renumber.
- Q#LN7's latch had no named observation mechanism. Added: it polls
pmacs.lsp.list()state on theprocess.after-tickcadence (there is no event for "died before initialize"), it callspmacs.lsp.stopbefore spawning the fallback soRestartPolicycannot respawn the broken command underneath it, and it updatescommand/argsonly, preserving user-suppliedenv/settings/init_options/root. - Wording:
\{}expands to{$CURSOR};⦃⦄comes from\{{}}.
1. What ships
Seven stages. The north star is VS Code parity; the honest statement of where that lands is in §5, bet 6.
Stage 1 — grammar, mode, and the editing table stakes. .lean files
highlight, carry a lean4 major mode, and get comment-toggle and
auto-pairing (including ⟨⟩, ⦃⦄, ⟮⟯). Lean fenced blocks in markdown
highlight too. No LSP, no protocol change, no frontend change.
Stage 2 — multi-root LSP server affinity. Pure substrate, no Lean
content: ensure_server stops reusing a server across project roots.
Independently valuable for every language pmacs supports; a prerequisite
for Lean being usable across more than one Lake package. Split out
precisely because it is cross-cutting — see §4.
Stage 3 — the Lean language server. pmacs.lsp.config.lean4 drives
lake serve with a Lake-aware outermost root, a lazy toolchain probe and
a one-shot lean --server fallback, and a notification-subscription seam
so $/lean/fileProgress has an owner. Adds
textDocument/waitForDiagnostics. Diagnostics, hover, completion,
goto-definition, document symbols, and semantic tokens all arrive through
the existing typed surfaces.
Stage 4 — the Unicode input method. Typing \alpha produces α,
\to produces →, \<> produces ⟨⟩ with the point between them.
1,855 abbreviations vendored from vscode-lean4. This is the stage that
makes Lean actually typable in pmacs.
Stage 5 — the goal view. A *lean-goal* panel that renders
$/lean/plainGoal at the point, refreshed on a debounced tick and on
file-progress completion, displayed through #155's
pmacs.window.display(buf, { side = "bottom" }).
Stage 6 — the #eval / #check output channel. Lean reports command
output as information-severity diagnostics, which pmacs currently
squiggles and counts in the modeline. Routes them to a *lean-output*
panel instead, via a per-server severity policy that changes nothing for
any other language.
Stage 7 — module hierarchy. $/lean/prepareModuleHierarchy and
$/lean/moduleHierarchy/{imports,importedBy} into the existing listview
panel.
2. Ground truth (scouted 2026-07-24, main @ e745068)
2.1 Crate facts (external, verified by downloading and reading both)
Two candidate grammar crates exist. They are not close in quality.
tree-sitter-lean4 0.3.0 (wvhulle/tree-sitter-lean) — rejected:
- Depends on
tree-sitter = "0.25"directly, not on the sharedtree-sitter-language 0.1ABI crate. The workspace is ontree-sitter = "0.26", and^0.25excludes it, so this forks the graph and itsLanguageis a different type from ours. This is the exact failure mode already documented fortree-sitter-dockerfileinCargo.toml's comments. src/lib.rsexports onlypub fn language() -> Language. Its README advertisestree_sitter_lean4::LANGUAGE.into(), which does not exist — the README is stale.- Its
includelist is["build.rs", "src/*", "grammar.js", "grammar/*", "tree-sitter.json"]. Noqueries/. It ships no highlights query at all; the upstream repo's queries target Helix. - Its
build.rsshells out to atree-sitterCLI whensrc/parser.cis absent.parser.cis in the package, so this would not fire — but it is a live hazard in a crate we would otherwise depend on.
arborium-lean 2.18.1 (bearcove/arborium) — selected:
[dependencies] tree-sitter-language = "0.1"and nothing else at runtime. No secondtree-sitterin the graph.grammar/src/parser.cdeclares#define LANGUAGE_VERSION 15and.abi_version = LANGUAGE_VERSION. ABI 15 is current for tree-sitter 0.25/0.26. Pre-generated; no CLI at build time. A 1,150-bytegrammar/scanner.csupplies one external token (NEWLINE).- Exports
pub const fn language() -> LanguageFn, plusHIGHLIGHTS_QUERY(include_str!("../queries/highlights.scm"), 213 lines),INJECTIONS_QUERY(empty string), andLOCALS_QUERY(empty string). edition = "2024",rust-version = "1.85". The workspace is edition 2024 / MSRV 1.95 on rustc 1.95.0. Compatible.- Two things to verify at implementation, not assumed here. (a) Every
existing entry in
BUILTIN_LANGUAGESis spelledtree_sitter_foo::LANGUAGE.into()— aLanguageFnconst. arborium exposes aconst fninstead, so the entry readsarborium_lean::language().into(), a shape no current entry uses. (b) arborium's README shows usage against atree_sitter_patched_arboriumcrate. That crate is not in the dependency graph and theLanguageFnABI is the shared one, so this should be cosmetic — but the loader gets a real parse smoke test againsttree-sitter 0.26before the entry is trusted.
Neither crate is first-party. leanprover ships no tree-sitter grammar;
Lean's own tooling parses with the Lean kernel. The upstream README of the
rejected crate says so plainly: "Lean is a very extensible language.
Therefore, the Tree-Sitter grammar is of limited use." That is true and it
bounds what Stage 1 can promise — see the bets in §5.
2.2 The grammar table and the detection chain
src/syntax.rs:816 BUILTIN_LANGUAGES is a &[LanguageEntry] of
{ name, extensions, loader, highlights_query, locals_query, injections_query }. Adding a grammar is one entry plus one Cargo.toml
line; the doc comment at src/syntax.rs:756 says exactly this and it has
held for every grammar since.
builtin/runtime/syntax.lua:452 detect_buffer_language resolves, in
order: modeline → pmacs.parse.language_for_path (the grammar extension
table) → pmacs.lsp.filetypes[ext] → pmacs.parse.language_from_filename
→ shebang. A grammar entry claiming lean therefore resolves .lean
without any pmacs.lsp.filetypes entry; adding one would be dead weight.
LanguageEntry.name is the LSP language_id. ensure_server at
builtin/runtime/lsp.lua:540 passes language_id = language straight
into pmacs.lsp.spawn, and the surrounding comments (lines 70, 86, 122)
record that c/cpp and the four TS/JS entries exist as separate entries
only so that id is accurate. This makes the entry name a wire-visible
decision, not a label — see Q#LN2.
2.3 The global capture table (the #146 trap)
Theme::default_dark() at src/highlight.rs:143 is a single flat
&[(&str, Style)] shared by every language and by LSP semantic-token
type names. lookup() walks dotted prefixes right-to-left, so
@function.definition falls back to function.
Resolving arborium's Lean query against the current table:
| Lean capture | Resolves to | Effect |
|---|---|---|
@comment @string @number @operator @constant |
themselves | distinct style |
@constant.builtin @property @attribute |
themselves | distinct style |
@function.definition @function.call @function.builtin |
function |
distinct style |
@type.definition |
type |
distinct style |
@string.special |
string |
distinct style |
@keyword.conditional .function .import .modifier |
keyword |
styled, but flattened |
@variable |
variable |
entry exists but is Style::default() — visually plain |
@punctuation.special .bracket .delimiter |
punctuation |
Style::default() — visually plain |
@constructor |
— | unstyled |
@character |
— | unstyled |
@warning |
— | unstyled |
Blast radius of adding each name, measured over every .scm in the
workspace's actual dependency graph (crates confirmed present in
Cargo.lock):
-
constructor— seven language entries, not four grammars. The emitting crates aretree-sitter-javascript,-lua,-python, and-rust, buttree_sitter_javascript::HIGHLIGHT_QUERYis concatenated base-first intojavascriptreact,typescript, andtypescriptreactas well (src/syntax.rs:1009–1056), so the reachable set isrust,lua,python,javascript,javascriptreact,typescript,typescriptreact.And the shape is not "constructors". Verified against the crate queries:
; rust, python, javascript — every capitalized identifier ((identifier) @constructor (#match? @constructor "^[A-Z]")) ; lua — every table-constructor brace (table_constructor [ "{" "}" ] @constructor)So adding
constructorrecolors every capitalized identifier in five entries (in Rust that isSome/None/Ok/Errand every class-cased name; in Python/JS/TS every class-cased name) and every{/}of a Lua table literal. That is the change being ruled on in Q#LN4 — not a narrow constructor-only recolor. -
character—tree-sitter-zigonly. -
keyword.conditional—tree-sitter-cmakeand-zigonly. Both currently flatten tokeyword. -
warning— used by no grammar in the graph.
Verified clean of all four names (usable as negative-pin fixtures): markdown, json, yaml, html, css, c, cpp, go, containerfile, make, toml, bash.
This is the #146 lesson verbatim: the capture table is global, so adding a capture name retro-paints every other language; check the reverse direction and pin it.
2.4 The LSP substrate
pmacs.lspalready exposes genericsend_request(id, method, params)→ request id andsend_notification(id, method, params)(src/lua_bindings/mod.rs:9342,:9361). Non-standard methods need no new Rust to send.LspEventKind(src/lsp.rs:264) has genericNotification { method, params }andResponse { id, result, error, method }variants. Unknown server methods are delivered, not dropped.- But
events_takehas exactly one consumer:handle_server_requestsatbuiltin/runtime/lsp.lua:1448, driven offpmacs._async.tick. Ittakes — a drain. Itsif/elseifchain handles fiverequestmethods andinitialized, and ignores everynotificationand everyresponse. A second module callingevents_takewould steal events from it. Any new consumer must extend that loop, not open a second one. _request_*_rawhelpers route outbound positions throughoutbound_position(byte → negotiated encoding); a rawsend_requestdoes not. This is handoff §4's standing invariant, and it is sharper for Lean than for any language pmacs already supports: Lean source is saturated with non-ASCII (α,→,⟨⟩,∀), the Lean server negotiates UTF-16 by default, and a raw byte column is wrong on essentially every interesting line. This is why Stage 5 is not "just callsend_requestfrom Lua" — see Q#LN12.
2.5 Project-root detection
project_root_for (builtin/runtime/lsp.lua:513) resolves:
pmacs.lsp.config[language].root → pmacs.project.detect → the file's own
directory. Two gaps for Lean:
-
No Lean marker, and no way to add one.
default_markers()(src/project.rs:145) isCargo.toml,.luarc.json,pyproject.toml,go.mod,deno.json,deno.jsonc,package.json,.git. Thepmacs.projectLua surface isdetect,set_search_boundary,search_boundary— there is no marker-registration binding. -
detect_projectreturns the innermost match; Lean needs the outermost.walk_for_markerreturns the first ancestor that matches.lean4-modedeliberately does the opposite:(while-let ((dir (locate-dominating-file file-name "lean-toolchain"))) (setq root dir file-name (file-name-directory (directory-file-name dir))))It keeps walking past each hit and takes the topmost. This matters concretely: Lake vendors dependencies under
<pkg>/.lake/packages/*, and each vendored package carries its ownlean-toolchain. Opening<pkg>/.lake/packages/batteries/Batteries/Data/List.leanmust serve from<pkg>, not frombatteries. Innermost-wins gets this backwards every time, and the symptom is a server that starts, initializes, and then reports import errors for the whole file.
Third, and the reason Stage 2 exists: ensure_server
(builtin/runtime/lsp.lua:527) reuses any live server with a matching
language_id regardless of the new file's project, so the first .lean
file opened fixes the root for every later .lean file. For most
languages that is an inconvenience; for Lean, where lake serve is bound
to one package, it is a correctness failure. Rev 1 carried this as a
deferral. It is now Stage 2 / Q#LN15.
One property of project_root_for matters for that fix and is easy to
miss: its final fallback is dir_of(path), so it never returns nil for
a file with a path. A markerless scratch file's "root" is its own
directory. Q#LN15's affinity rule has to account for that or it silently
changes loose-file behavior for every language.
2.6 Typed-edit provenance — the only input-method-shaped seam
builtin/runtime/pair.lua is the whole precedent for "react to a typed
character": subscribe to buffer.after-edit, gate on
ed.this_command() == "buffer.self-insert" (pair.lua:213), then take the
exact provenance record.
pmacs.editor.take_typed_edit() (src/lua_bindings/mod.rs:12798) returns
{ buffer, window, codepoint, char, requested_start, requested_end, effective_start, effective_end, inserted_len, post_cursor, clean } — or
nil. Its doc comment is explicit:
Consuming clears the slot: later callbacks and nested manual hook runs see nil, and the producer clears any untaken record when the fan-out returns. Per-frontend — one frontend can never take another's record.
It is one-shot and first-come-first-served. pair.lua already consumes
it on every self-insert. A Lean abbreviation expander that independently
calls take_typed_edit() in the same buffer.after-edit fan-out gets nil
or steals it from auto-pairing, depending on hook order — and hook order is
not a contract. This is the single load-bearing constraint on Stage 4 and
the reason Stage 4 is its own PR rather than a rider on Stage 1.
Related, from pair.lua:30's Q#AP1 note: only the nine built-in pair chars
()[]{}"' and backtick are excluded from the frontends' optimistic
classifiers. A pair char outside that set still pairs, but its opener is a
source-peer op and its closer a daemon-peer op, so its undo is
cross-peer-degraded. Lean's ⟨⟩ is outside that set.
2.7 Panels and generated read-only buffers
- #155 landed on
mainate745068.pmacs.window.display(buf, { side = "bottom", select = true })is the placement call;listview.lua:138shows the adopter shape, gated onspec.display == "panel".pmacs.window.params()andpmacs.window.quit()complete the surface. - Read-only generated buffers use the listview idiom, documented at
builtin/runtime/compile.lua:264: an erroringpmacs.buffer.add_interceptfor user edits, with module writes passing{ bypass_intercept = true }. - Note for whoever picks this up on another machine: the ledgers are
stale about this.
docs/active-work.md:57still heads the lane "Stage 1 IN REVIEW";docs/agent-handoff.md§1 is stamped at #148 and omits the bottom-panel lane entirely. It merged ate745068. That drift is #156's business, not this lane's, but do not scout Stage 5 off either file.
2.8 Lean server facts (external, verified against leanprover/lean4)
From src/Lean/Server/FileWorker/RequestHandling.lean and
src/Lean/Data/Lsp/Extra.lean:
$/lean/plainGoal— params extendTextDocumentPositionParams; result isPlainGoal { rendered : String, goals : Array String }or null.$/lean/plainTermGoal— resultPlainTermGoal { goal : String, range : Range }or null.$/lean/fileProgress— a server→client notification, params{ textDocument : VersionedTextDocumentIdentifier, processing : Array { range : Range, kind : "processing" | "fatalError" } }. This is the "orange bar": which regions are still elaborating.- Also present, all deferred here:
$/lean/rpc/{connect,call,release, keepAlive}(the interactive widget/infoview stack),$/lean/prepareModuleHierarchy,$/lean/moduleHierarchy/{imports, importedBy},$/lean/waitForILeans,textDocument/waitForDiagnostics. - From
src/Lean/Data/Lsp/InitShutdown.lean:InitializationOptions { hasWidgets? : Option Bool, logCfg? : Option LogConfig }.hasWidgets?defaults to false, and its documented meaning is: when true, the server may omit information from standard LSP messages because the client will fetch it interactively. A plain-goal client wants the default. OmittinginitializationOptionsentirely is accepted (FromJsonmaps missing/null tonone). - Server launch, from
lean4-mode'slean4--server-cmd:lake servewhen Lake ≥ 3.1.0 is found, elselean --server.
2.9 There is no blocking process run — and lake on PATH proves nothing
The complete pmacs.process Lua surface is spawn, write_stdin,
terminate, list, status, events_take, forget, resize_pty,
_tick. ProcessSpec (src/process.rs:193) carries no
wait-for-output mode, and there is no wait_with_output anywhere in
src/process.rs. Everything is asynchronous and drained off
process.after-tick, which is how compile mode streams.
Consequence: any toolchain probe is async, and cannot gate the attach
that triggered it. A design that reads "probe, then set
pmacs.lsp.config.lean4.command, then attach" cannot be written against
this substrate.
Second, and sharper — scouted on this machine:
$ elan --version
elan 4.2.1 (3d5138e15 2026-03-18)
$ lake --version
error: no default toolchain configured. run `elan default stable` to ...
$ lean --version
error: no default toolchain configured. run `elan default stable` to ...
elan installs lake and lean as toolchain shims. Both are on
PATH, both are executable, and both fail. So:
- A version probe must parse a failure, not just a version string —
lake --versionreturning non-zero is a normal, common state. command -v lakeis worthless as a capability check.- The failure modes a Lean client must survive are: lake absent, lake present but shimmed with no toolchain, lake present and working but too old, and lake working but the directory is not a Lake package. Only the third is a version question.
- Acceptance cannot assume a working Lean toolchain exists. Every
Stage 3+ test runs against the fake LSP server; a live
lake servesmoke is PATH-gated and success-gated, following the #123 JSON/YAML provider-smoke pattern.
2.10 Information-severity diagnostics are squiggled and counted
src/diag.rs:50 defines DiagnosticSeverity with Information mapped
from LSP severity 3 (:103). Information diagnostics get the
ui.diag.info face (:408), a UnderlineStyle::Single squiggle
(:426), and a slot in the severity count tuple (:223) that feeds the
modeline.
Lean reports every #eval, #check, #print, and example result as an
information-severity diagnostic at the command's position. Under the
current surface those render as underlined "problems" with a gutter sign
and a modeline count — which is why rev 1 called them noise. The claim is
now specific: they are not merely unstyled, they are actively
mis-rendered as defects, and the count misleads.
The publish path absorbs into the Rust store and still delivers the
notification to events_take, so Lua can observe them; but suppressing
them from the store needs a Rust-side policy, not a Lua filter. Q#LN18.
3. Decisions
Q#LN1 — Bundle arborium-lean 2.18; reject tree-sitter-lean4
Per §2.1. The decision is forced by the dependency graph, not by taste:
tree-sitter-lean4's tree-sitter ^0.25 cannot coexist with the
workspace's 0.26. Its missing queries and stale README are secondary.
Risk accepted: arborium-lean is a third-party republish from a grammar
collection, not the grammar's upstream. codebook-tree-sitter-latex (#144)
set this precedent for exactly the same reason — no usable first-party
crate exists. The mitigation is the same: pin a real parse + highlight
smoke test so a bad republish fails our suite, not a user's file.
Q#LN2 — Name the entry lean4, not lean
LanguageEntry.name becomes the didOpen language_id (§2.2), and the
Lean ecosystem's id is lean4 (vscode-lean4 uses it; lean is Lean 3).
The grammar's C symbol is tree_sitter_lean, but that is arborium's
business — the entry name is ours to choose.
Consequences, all deliberate: pmacs.comment.strings.lean4,
pmacs.pair.sets.lean4, pmacs.lsp.config.lean4, and a mode line reading
lean4. An Emacs -*- mode: lean -*- or a Vim ft=lean modeline is
normalized to lean4 through pmacs.parse.modeline_aliases, so neither
spelling strands a file.
Q#LN3 — Extensions: lean only
Not .olean (compiled binary artifacts — opening one as text is never
what the user wants) and not .ilean (JSON metadata; if anything it
belongs to the json entry).
Q#LN4 — Add four capture entries and pin the retro-paint in both directions
Ruled (round 1): add to the global table. The alternative is an in-repo overlay, and there is no partial option — see below.
Add to Theme::default_dark(): constructor, character,
keyword.conditional, and warning.
Rationale, per name:
constructoris the consequential one. Per §2.3 it reaches seven language entries and its real effect is "recolor every capitalized identifier in five entries and every{}in Lua". That is stated bluntly because it is the decision, not a side effect. It is nevertheless the right call: capitalized-identifier-as-constructor is the mainstream editor convention (it is what nvim-treesitter, Helix, and Zed all render off these same queries), those tokens are currently unstyled rather than deliberately plain, and Lua's braces gaining a colour is a cosmetic difference on a token that today renders as default text. The cost of avoiding it is owning a forked 213-line query forever.character—tree-sitter-zigonly, currently unstyled.keyword.conditionalcurrently flattens tokeyword. Giving itkeyword.control's brighter style makes Lean'sif/then/else/match/doread the way Rust's already do, and reaches cmake and zig the same way.warninghas zero blast radius and gives Lean's(sorry)— an unproved goal, the single most important thing to see in a proof file — a visible style.
All four are pinned in the reverse direction exactly as #146 required — acceptance 7 asserts the retro-paint happened on each affected language, acceptance 8 asserts it did not leak into languages that emit none of the four names.
Rejected alternative: an in-repo query overlay
(builtin/queries/lean4/highlights.scm) rewriting the capture names into
the existing vocabulary, the #144 LaTeX pattern. It avoids touching the
global table, but it forks a 213-line query we would then own and
hand-merge on every arborium bump. Overlays are for grammars whose crate
ships no usable query; arborium ships one.
There is no middle option. Styling Lean's constructors without touching the other seven entries requires renaming the capture, which requires the overlay, which forks the query. The choice is binary: accept the retro-paint, or own the fork.
Q#LN5 — Comments: -- only in Stage 1
pmacs.comment.strings.lean4 = "--". Lean's block comment is /- ... -/
and its docstring is /-- ... -/; block-comment toggling is an existing
named deferral of the comment arc (docs/comment-toggle-framing.md) and
this lane does not front-run it.
Q#LN6 — Pair set includes ⟨⟩, and the degradation is named
pmacs.pair.sets.lean4 = { "()", "[]", "{}", "⟨⟩", "⦃⦄", "⟮⟯", '""' }.
⟨⟩ (anonymous constructor) is among the most-typed constructs in Lean and
omitting it would make the pair set feel broken. It is outside the nine
built-in pair chars, so per §2.6 its undo is cross-peer-degraded. That is a
documented, pre-existing limitation of user-extended pairs whose general
fix is chronological cross-peer undo arbitration — already on the standing
backlog. Ship it; name it in the module comment.
'' is excluded: Lean uses ' as a primed-identifier suffix (h',
foo'), so pairing it would fight the user constantly. Same reasoning that
excludes it for Rust.
⦃⦄ (strict implicit binder) and ⟮⟯ ride along — one list entry each,
same degradation, and both have abbreviation keys (\{{}}, \([])') so
omitting them would make the input method produce brackets the pair set
does not understand.
Q#LN7 — lake serve by default, with a lazy probe and a failure latch
pmacs.lsp.config.lean4 = pmacs.lsp.config.lean4 or {
command = "lake",
args = { "serve" },
}
lean4-mode probes Lake's version and falls back to lean --server below
3.1.0. This lane does the same, but lazily and asynchronously, and
pairs it with a failure latch — because §2.9 makes probe-alone
insufficient in two independent ways.
Where the probe runs. Not at init: pmacs.lsp.config is a declarative
table, and spawning a process at startup for every user, Lean-using or
not, is the cost rev 1 refused. It runs on the first .lean attach, in
builtin/runtime/lean.lua, cached for the session.
Why the probe cannot gate the first attach. There is no blocking
process run (§2.9). pmacs.process.spawn + events_take off
process.after-tick is the only shape available, so the probe's verdict
arrives after ensure_server has already had to decide. This is the
correction to the round-2 request, which assumed the verdict could be
consulted before configuring.
The design that follows:
-
First
.leanattach spawnslake serveoptimistically and fireslake --versionalongside it, withcwdat the resolved Lake root. -
If the probe reports a version below 3.1.0, or the server dies before
initializecompletes, a one-shot latch swaps inlean --serverand restarts once. The latch is per session and never re-arms.How the latch observes failure. There is no event for "exited before initialize" — the drain ignores state events. The latch polls
pmacs.lsp.list()for the server'sstate.kindon the sameprocess.after-tickcadence Q#LN13 uses, and treatscrashed/stoppedreached without an interveninginitializedas the trigger. (Q#LN9's pending-response purge fires on the same transition, so anything already awaiting a reply fails cleanly rather than hanging.)Interplay with
RestartPolicy. The manager will otherwise respawn the same broken command underneath the latch, producing a loop the latch cannot see the end of. So the latch callspmacs.lsp.stopon the failing server first, then swaps the config, then spawns — the fallback is a fresh server, not a restart of the old one.The swap is a field update, not a table replacement. It rewrites only
commandandargs, preserving any user-suppliedenv,settings,init_options, androotonpmacs.lsp.config.lean4. A wholesale table replacement would silently discard a user'sinit.luaconfiguration at exactly the moment they are least likely to notice. -
If
lean --serveralso fails, the error surfaces through the ordinarypmacs.lsp.last_errorpath. pmacs does not attempt to install a toolchain.
Why a latch and not just a probe. Per §2.9 the failure modes are lake
absent, lake shimmed-with-no-toolchain, lake too old, and
not-a-Lake-package. Only the third is a version question, and the
scouting machine exhibits the second — lake --version there exits
non-zero with error: no default toolchain configured. Since the failure
path must exist regardless, the probe's job shrinks to the one case
failure detection would otherwise handle slowly (an old-but-working lake
that starts a useless server). Probe and latch are complements, not
alternatives.
Named risk. The optimistic first spawn means a user on a lake-less-but-lean-ful toolchain sees one failed spawn before the fallback. That is a one-line status message, once per session, and it buys not blocking every other user's first attach behind a process round-trip.
No init_options. Per §2.8, hasWidgets? defaults to false and that is
the correct value for a client that reads plain goals out of standard
messages.
Q#LN8 — Lake-aware root via a function-valued config.root
Generalize project_root_for (builtin/runtime/lsp.lua:513) so
pmacs.lsp.config[lang].root may be a function(path) -> string|nil as
well as a string, and implement Lean's resolver in
builtin/runtime/lean.lua: walk up from the file's directory collecting
every ancestor containing lean-toolchain, and return the outermost;
fall back to pmacs.project.detect, then the file's directory.
The walk stops at pmacs.project.search_boundary(). This is not
optional politeness: detect_project_within (src/project.rs:213) exists
precisely so a stray marker above a temp fixture cannot leak into
detection, and a Lua walk that ignores the boundary breaks that contract —
including for acceptance 23, whose outermost-root assertion is otherwise
non-hermetic against any lean-toolchain that happens to sit in an
ancestor of the test's tempdir.
Why this and not the two alternatives:
- Adding
lean-toolchainto Rust'sdefault_markers()does not work —detect_projectis innermost-wins by construction (§2.5), and inverting it globally would change Rust/Go/Node root detection for every user. - A
pmacs.project.add_markerLua binding is a bigger new surface than this lane needs and still leaves the innermost/outermost problem.
The function-valued root is ~3 lines in lsp.lua, is a strict
generalization (a string still works), and puts the Lean-specific rule in
the Lean module where it belongs.
Q#LN9 — Notification and response subscription seams in the existing dispatch
Per §2.4 there is exactly one events_take consumer, and its if/elseif
chain handles five request methods plus initialized. It ignores
notifications and responses — and no Lua anywhere in the runtime
consumes ev.kind == "response". So today a send_request reply is
drained and dropped on the floor: send_request is effectively a
write-only API from Lua.
Rev 2 specified only the notification half. That was a hole, since
Q#LN16 (waitForDiagnostics), Q#LN19 (imports / importedBy), and
Q#LN12's typed goal request all await replies. Both halves ship in
Stage 3.
pmacs.lsp.on_notification(method, fn) -- fn(sid, params); persistent
pmacs.lsp.on_response(sid, request_id, fn) -- fn(result, err); ONE-SHOT
Routed from two new arms of the existing loop:
elseif ev.kind == "notification"→ every subscriber registered forev.method.elseif ev.kind == "response"→ the one-shot registered for(sid, ev.id), removed before it is invoked so a raising handler cannot be re-entered.
Each handler is pcalled, so one raising subscriber cannot stall the
drain or starve the request arms that share it.
Pending-response lifetime. A one-shot whose server dies never fires on
its own, leaking the registration and hanging whatever awaits it. On
crashed / stopped / restarting for a sid, every pending one-shot
for that sid is invoked with an error and cleared. This is what lets
Stage 5's in-flight tracking (acceptance 52) be honest rather than
optimistic, and it is what Q#LN7's latch observes (below).
Explicitly not a second events_take caller — a second drain would
steal events from handle_server_requests. The tests pin that in both
directions: a Lean subscriber must not cause workspace/applyEdit to be
missed, and a raising subscriber must not stop later events in the same
drain.
Stage 3 registers $/lean/fileProgress on the notification seam and
waitForDiagnostics on the response seam; stages 5 and 7 use the response
seam for plainGoal and the hierarchy calls.
Q#LN10 — Stage 4 mechanism: one shared provenance read, not two
The hazard is §2.6 — take_typed_edit() is one-shot and pair.lua
already consumes it.
Decision: pair.lua stops being the sole consumer. Extract the
provenance read into a single buffer.after-edit subscriber owned by a
small shared module, which takes the record once and passes it to an
ordered list of typed-edit consumers (auto-pair, Lean abbreviation).
Consumers return whether they handled the edit; the first that does stops
the chain.
Two consequences worth stating up front:
-
This touches
pair.lua, which is load-bearing for auto-pairing acceptance. The full pairing suite is a required gate for Stage 4, and the refactor lands first, as its own commit with no behavior change, so a regression bisects cleanly. -
Ordering is a contract, not an accident, and the collision is real: 64 of the 1,855 abbreviation keys contain a character in the proposed
lean4pair set —\[[]]→⟦⟧,\(())→⸨⸩,\{{}}→⦃⦄,\{}→{$CURSOR}. With pairing first, typing\[inserts[]with the point between, so the pending key is corrupted to\[]before the second[is ever typed and\[[]]becomes unreachable. The abbreviation consumer runs first.(Rev 1 justified this with
\<>, which was wrong:<is not in the pair set per Q#LN6, so that key is safe under either order.)
The contract that collision exposes: the abbreviation consumer must
claim a self-insert that extends an open pending abbreviation, not
only one that completes an expansion. A consumer that only claims
completed expansions hands every intermediate keystroke to auto-pairing,
which is exactly how \[ gets corrupted. "Claimed" here means the chain
stops, not that an edit was made.
Expansion semantics (matching vscode-lean4 and lean4-input):
\opens a pending abbreviation, tracked per buffer with its start offset. Every subsequent self-insert that extends it is claimed. The pending state is abandoned on any non-self-insert command, buffer switch, or cursor move away from the pending region.- Expansion fires on a unique complete match that no longer key extends,
or on an explicit terminator (space, tab, RET, or a second
\). - The vendored table's
$CURSORplaceholder becomes the point position after the replace — this is how\<>yields⟨|⟩. - The whole expansion is one
buf:replace— one undo step, one CRDT op, one effective-edit verification. Same discipline ascomment.lua's Q#CT5. - Gated by
pmacs.config.define{ name = "lean.abbrev", type = "boolean", default = true, mutability = "live" }, read against the source buffer of the typed edit — theediting.auto-pairprecedent (pair.lua:44), including its round-2 correction to resolverec.bufferrather thanpmacs.window.buffer().
Q#LN11 — Stage 4 data: vendor the table, generated, attributed
abbreviations.json in leanprover/vscode-lean4 is a flat
string → string object of 1,855 entries (counted, not estimated),
of which 64 contain a character in the lean4 pair set — the
collision Q#LN10's ordering exists to handle. vscode-lean4 is Apache-2.0.
Vendor it as a generated builtin/runtime/lean_abbrev.lua with a header
recording source repo, commit, license, and the regeneration command —
the builtin/queries/latex/highlights.scm precedent (#144) for
third-party data, extended with provenance because this is a much larger
artifact under a named license.
Not fetched at runtime, not a package-manager dependency: the input method must work offline and on first launch.
Upkeep is a documented manual process, not code. There is no automatic
sync and none is wanted — an editor that silently re-downloads its input
method has a supply-chain problem, not a feature. The generator script
lives at scripts/regen-lean-abbrev, takes a vscode-lean4 commit as its
argument, and rewrites the file including its provenance header. The
header records source commit, license, entry count, and the regeneration
command, so the file is self-describing to whoever next touches it. A
refresh is an ordinary PR with a visible diff — which is the point: the
diff is the review.
Q#LN12 — Stage 5 sends $/lean/plainGoal through a typed Rust request
Per §2.4, send_request does not route positions through
outbound_position. Lean negotiates UTF-16 and Lean source is
overwhelmingly non-ASCII, so a Lua-built byte column would be wrong
wherever it matters most.
Stage 5 therefore adds a typed request that reuses outbound_position
unchanged. It spans two files, because the _raw naming is a layer
boundary, not a module:
src/lsp.rs—request_plain_goal, alongsiderequest_hover(src/lsp.rs:1690) andrequest_definition(:1733), which is whereoutbound_positionis actually applied.src/lua_bindings/mod.rs— the_request_plain_goal_rawbinding, alongside the_request_hover_rawfamily (:9501–:9823).
It is a thin builder — the result is passed through as JSON and parsed in
Lua, since PlainGoal is two fields and does not warrant a typed store.
It exists specifically to honor handoff §4's standing invariant rather than quietly reintroduce the bug it was written to prevent.
Where the arc's Rust actually lives (rev 2 stated this in pre-renumber stage numbers and was wrong three ways):
| Stage | Rust |
|---|---|
| 1 | Cargo.toml + BUILTIN_LANGUAGES entry + Q#LN4's four capture entries |
| 2 | lsp.list() row builder (mod.rs:9919) |
| 3 | none — Lua only |
| 4 | none — Lua only |
| 5 | request_plain_goal + its binding |
| 6 | LspServerSpec severity-policy field and its publish-path honoring |
| 7 | request_prepare_module_hierarchy + its binding |
Stages 3 and 4 — the two largest Lean-specific stages — are entirely Lua.
Q#LN13 — Stage 5 goal panel shape
-
*lean-goal*, read-only via the erroring-intercept idiom, module writes with{ bypass_intercept = true }(§2.7). -
Displayed with
pmacs.window.display(buf, { side = "bottom", select = false }).select = false: a goal view that steals focus on every cursor move is unusable. -
Refresh mechanism, named explicitly because there is no motion hook. The complete hook inventory is
buffer.{after-edit,after-load, after-save,after-switch,before-save},editor.before-quit,frontend.detached, andprocess.after-tick. Nothing fires on cursor movement. Stage 5 therefore refreshes from a debounced poll offpmacs.hook.add("process.after-tick", …)— the cadence pattern autosave (autosave.lua:139) and compile (compile.lua:687) already use — comparing the point against the last position it queried and issuing at most one in-flight$/lean/plainGoalat a time.This is written down so Stage 5 cannot quietly grow either an unframed polling loop or new hook substrate. A
cursor.after-movehook would be the better long-term answer; it is out of scope here and is named in §6. -
Also refreshed on a
$/lean/fileProgressnotification whoseprocessingarray no longer covers the point's range. -
Content:
PlainGoal.renderedwhen present, "no goals" when the result is null with the file elaborated, "elaborating…" when file-progress still covers the point. The three states are distinct and the middle one is the one users actually need to trust. -
Keys under
pmacs.keymap.bind { scope = "mode", mode = "lean4", … }(#129's mode-scoped keymaps).
Q#LN14 — No protocol change in any stage
Stages 1–4 and 7 touch no wire surface at all. Stage 5's panel rides #155
Stage 1, which is grid-only and bumped nothing; Stage 6 adds a field to
the in-process LspServerSpec, which is not wire. A GPU-rendered goal band
needs bottom-panel Stage 2, which is itself unframed — so the GPU half is
deferred, not attempted. Protocol stays v20.
Q#LN15 — Multi-root server affinity (Stage 2, substrate)
Today ensure_server reuses any live server whose language_id matches,
regardless of project root (builtin/runtime/lsp.lua:524–536, whose
own comment documents this as a known limitation). For Lean this is not a
rough edge but a correctness failure: lake serve is bound to one Lake
package, so the second package a user opens gets a server that cannot
resolve its imports.
The change is small and spans two files:
src/lua_bindings/mod.rs:9919— thelsp.list()row builder setsid/label/language_id/command/state/attempt. Addroot_urifromspec.root_uri(alreadyOption<String>onLspServerSpec,src/lsp.rs:125) andcwd. Bump thecreate_table_with_capacityhint.builtin/runtime/lsp.lua:521–551— hoistlocal root = project_root_for(language, path)above the reuse loop and match on the(language_id, root_uri)pair.
Correcting the round-2 request: root is currently computed at
:537, after the loop, not before it. Hoisting is therefore part of the
change, and it has a consequence: project_root_for begins running on the
reuse path, where it previously ran only on spawn. For Q#LN8's
function-valued Lean resolver — which walks the filesystem — that means
once per attach rather than once per spawn. The resolver memoizes per
directory for the session.
Comparison rule, part 1 — hand-spawned servers. Compare
info.root_uri against the request's affinity key, with nil matching nil.
A server spawned directly from init.lua with only cwd set has
root_uri = nil and will therefore not match a root-bearing request —
it gets a new server rather than being silently adopted. Conservative and
deliberate, but a behavior change, so acceptance asserts it.
Comparison rule, part 2 — markerless files must not fragment. Per
§2.5, project_root_for never returns nil for a file with a path: its
last fallback is dir_of(path). A naive (language_id, root) key
therefore gives every directory of markerless scratch files its own
server, for every language — two loose .py files in different
directories would spawn two pyrights where today they share one. That is a
silent regression for Python, Go, TypeScript and everyone else, caused by
a change made for Lean.
Ruling: the affinity key is the root only when a root was actually
detected. project_root_for returns (root, source) with source one
of "config", "detected", or "fallback"; the affinity key is root
for the first two and nil for "fallback". The directory is still
passed as cwd / rootUri exactly as today — only the matching key
changes.
Consequences, both intended:
- Files in a real project (Cargo/Lake/go.mod/…) get one server per root — the fix.
- Markerless loose files keep today's single shared server per language — no change, which is the point.
Rejected alternative: keying on the fallback directory anyway and accepting per-directory servers. It fragments the common scratch-file case for every language in the editor to buy nothing for Lean, whose files are essentially always in a Lake package.
Blast radius, stated plainly. This is the central server-affinity function for every LSP language in pmacs. A bug here routes a file to the wrong server: diagnostics land on the wrong buffer, or a redundant server spawns. This is why it is Stage 2 and its own PR, with no Lean content in the diff — a cross-cutting change to every language's server affinity must not be reviewable only as a Lean feature.
Named risk: unbounded server growth. Per-root affinity means opening
files across N Lake packages spawns N lake serve processes, and Lean
elaboration is memory-hungry. rust-analyzer has the same property and no
editor caps it by default. No cap ships here; pmacs.lsp.stop is the
manual escape, and an LRU reaping policy is named in §6.
Q#LN16 — textDocument/waitForDiagnostics (Stage 3)
A plain request (no position, so no outbound_position concern — Q#LN12
does not apply). It resolves when the server has finished elaborating the
document.
Two uses, in order of importance:
- Deterministic acceptance. Lean elaboration is slow and
asynchronous; a test that sleeps is flaky and a test that polls is
slow. This is the seam that makes a live
lake servesmoke deterministic when a toolchain happens to be present. - A
M-x lean-wait-for-diagnosticscommand, and a gate for the goal panel's "elaborating" state (Q#LN13) that is cheaper than parsing$/lean/fileProgressranges.
Sent through pmacs.lsp.send_request and awaited through the Q#LN9
notification/response seam. ~20 lines.
Q#LN17 — Lean in markdown fences (Stage 1)
The injection engine (#122) resolves fence names through
pmacs.parse.injection_aliases, a case-folded, Lua-extensible map
snapshotted into ParseRequest. Register lean and lean4 → lean4.
Two lines, and it is the one place where the Lean 3 spelling is
deliberately not normalized away: a ```lean fence is overwhelmingly
Lean 4 in practice, and mapping it to the lean4 grammar is right.
lean4-mode does the equivalent through markdown-code-lang-modes. Being
in Stage 1 means Lean blocks in this repo's own docs highlight from the
first PR.
Q#LN18 — #eval / #check output channel (Stage 6)
Per §2.10, Lean's command output arrives as information-severity diagnostics and pmacs squiggles them, signs them in the gutter, and counts them in the modeline. VS Code shows them in the infoview instead. This stage routes them.
Decision: a per-server severity policy on the spec, not a Lua filter.
The publish path absorbs into the Rust DiagnosticStore before Lua sees
the notification, so a Lua-side filter would suppress the display while
leaving the store's counts wrong. Add an optional
diagnostic_severity_policy to LspServerSpec — default "all severities
to the store", which is a no-op for every existing language — and have the
Lean config route Information to the output channel only.
The channel itself is a *lean-output* buffer using the same read-only
generated-buffer idiom as Q#LN13, appended to in position order and
cleared per publish for the owning document.
Deliberately not merged into the goal panel: a goal is a property of the point, output is a property of the file, and the two refresh on different triggers. Merging them is what makes VS Code's infoview complicated.
Q#LN19 — Module hierarchy (Stage 7)
$/lean/prepareModuleHierarchy at the point returns hierarchy items;
$/lean/moduleHierarchy/imports and .../importedBy expand one in either
direction. Rendered with pmacs.listview.open{ name, header, rows, on_visit, on_refresh, display = "panel" } (listview.lua:111) — the same
panel the LSP references/outline views already use.
prepareModuleHierarchy is position-bearing, so it goes through the
Q#LN12 typed-request path; the two expansion calls take an item, not a
position, and can use send_request directly.
Last stage because it is the least load-bearing: it is navigation convenience, and nothing else in the arc depends on it.
4. Stage boundaries and why this order
Each stage is one branch, one PR, and is independently useful if the next never lands.
| Stage | Ships | Substrate risk | Depends on |
|---|---|---|---|
| 1 | grammar, mode, comments, pairs, md fences | new crate; global capture table | — |
| 2 | multi-root server affinity | ensure_server, shared by every language |
— |
| 3 | lake serve + probe/latch, Lake root, notification seam, waitForDiagnostics |
two lsp.lua generalizations |
1, 2 |
| 4 | Unicode input method | refactors pair.lua's provenance read |
1 |
| 5 | goal panel | new typed LSP request; panel adopter | 3 |
| 6 | #eval / #check output channel |
new LspServerSpec policy field |
3, 5 |
| 7 | module hierarchy | listview adopter + one typed Rust request | 3 |
Three of the seven carry risk that is not about Lean — stages 1, 2, and
6 each change something every language touches. That is the organizing
principle of the split: no PR in this arc mixes a cross-cutting
substrate change with Lean feature content. A reviewer looking at Stage
2 sees only ensure_server; a reviewer looking at Stage 3 sees only Lean.
Ordering notes:
- Stage 2 has no Lean in it and could ship independently of this arc. It is sequenced here because Lean is the language that makes its absence a correctness bug rather than an inconvenience, and because Stage 3's acceptance would otherwise have to encode the broken behavior.
- Stage 4 does not depend on stages 2–3 and could run in parallel, but
should not: both touch
lsp.lua/pair.lua-adjacent runtime files, and the #126/#127 lesson is that parallel-safety requires the file split be agreed before either lane starts. Sequential is cheaper. - Stage 6 depends on Stage 5 only for the read-only generated-buffer and panel machinery, which Stage 5 establishes. If Stage 5 slips, Stage 6 can carry that machinery itself at the cost of duplicating it.
Stage 1 is deliberately shippable alone. If the arborium grammar turns out to be worse in practice than its query suggests (see §5, bet 3), that is discovered at Stage 1 for the cost of Stage 1 — and stages 2 through 7 are almost entirely independent of grammar quality, since they are driven by the language server rather than the parse tree.
5. Categorical bets
Stated so they can be scored, per house style.
arborium-lean's ABI-15 parser loads undertree-sitter 0.26with a singletree-sitterin the graph. Falsified bycargo tree -dshowing a duplicate, or by the loader failingParser::set_language. Confidence: high —tree-sitter-language 0.1exists precisely for this and roughly fifteen shipped grammars already rely on it.- No protocol change in any stage. Falsified by any new wire variant. Confidence: high.
- The grammar is good enough that highlighting reads as correct on ordinary Lean, including Mathlib-style files. This is the weakest bet in the lane, and the upstream author's own warning is the reason: Lean's syntax is user-extensible via macros, so a static grammar necessarily mis-parses custom notation. Scored against a real fixture set at Stage 1 acceptance. If it fails, Stage 1 still ships — degraded highlighting on exotic notation is strictly better than none — but the framing is revised to say so plainly rather than overselling it.
$/lean/plainGoalalone is a useful goal view, without the$/lean/rpc/*widget stack. Confidence: medium-high — it is exactly whatlean4-modeshipped for years before infoview widgets, andhasWidgets? = falseis a supported client posture, not a hack.- The abbreviation expander needs no Rust. Falsified if the one-shot
provenance refactor (Q#LN10) cannot be done in Lua, or if
buf:replaceinsidebuffer.after-editre-enters the hook in a way pairing does not already survive. Confidence: medium — pairing does the same thing, but over a single codepoint rather than a multi-byte span. - These seven stages reach rough VS Code parity for everything except
the interactive infoview. Scored honestly rather than aspirationally.
What lands: highlighting, goal view, Unicode input, diagnostics,
hover, completion, goto-definition, symbols, semantic tokens,
#evaloutput, module hierarchy, correct multi-package roots. What does not: interactive/collapsible goals,Try thiscode-action suggestions, widgets, the term-mode goal on hover, and the$/lean/rpc/*session that powers all of them. That gap is real and is the arc's eventual destination (§6) — a framing that claimed parity without it would be overselling. - Stage 2's affinity change breaks no existing language. Falsified by any regression in the Rust/Python/Go/TS acceptance suites, or by a user's hand-spawned server no longer being adopted in a way they relied on. Confidence: medium-high for the suites, deliberately lower for hand-spawned servers — Q#LN15's comparison rule changes that case on purpose, and the acceptance pins it rather than hiding it.
6. Deferred (named)
Pruned in round 2 — seven former entries are now stages 1–7 (see §0.1). What remains deferred:
- Interactive infoview —
$/lean/rpc/{connect,call,release,keepAlive}, widgets, collapsible goal trees,Try thiscode actions, term-mode goal on hover. This is the arc's eventual destination, not a rejection. It needshasWidgets? = true, a real RPC session lifecycle with keep-alive, and a rendering surface for structured rather than plain goals — plausibly its own multi-stage arc once stages 1–7 are in. Bet 6 scores what its absence costs. - GPU goal band — blocked on bottom-panel Stage 2 (Q#LN14). The panel is grid-only until then.
- A
cursor.after-movehook — there is none (Q#LN13), so Stage 5 polls offprocess.after-tick. A real motion hook would serve the goal view,completion.lua's cursor-delta heuristic, and the outline/hover panels alike; it is substrate work that should not be invented inside a language lane. - LSP server reaping / LRU — Q#LN15's per-root affinity makes
unbounded
lake servegrowth possible. No editor caps this by default and pmacs will not either in this arc, but the policy question is now live in a way it was not before. - Block-comment toggle (
/- -/) and docstring awareness (/-- -/) — confirmed as owned by the comment arc's framing, not this one. .olean/.ileanhandling (Q#LN3).- Lean 3 support —
.leanfiles predating Lean 4 will mis-parse. Out of scope permanently; Lean 3 is end-of-life.
7. Acceptance
Stage 1
-
cargo tree -dshows exactly onetree-sitterversion after addingarborium-lean. -
A
.leanfixture parses: the loader produces a tree whose root node ismoduleand which is not all-ERROR. -
Opening
foo.leansetspmacs.buffer.major_modetolean4. -
An Emacs
-*- mode: lean -*-modeline and a Vimft=leanmodeline both resolve tolean4. -
Highlighting produces non-default styles for a comment, a
defname, atheoremname, a string, and a numeric literal in the fixture. -
(sorry)picks up thewarningstyle. -
Reverse-direction positive pin (#146). Every language the four new capture entries reach asserts its expected delta — not that nothing moved, since these languages necessarily move:
rust,python,javascript,javascriptreact,typescript,typescriptreact: a capitalized identifier (Some,MyClass) picks up theconstructorstyle. All seven entries are covered becauseHIGHLIGHT_QUERYcomposition means the JS-family entries inherit the rule rather than restating it — a regression in composition would otherwise go unseen.lua: a table literal's{and}pick up theconstructorstyle.zig: a character literal picks upcharacter; a conditional picks upkeyword.conditional.cmake: a conditional picks upkeyword.conditional.
-
Reverse-direction negative pin. Fixtures in languages verified to emit none of the four capture names render byte-identically to their pre-change baseline:
markdown,json,yaml,html,css,c,cpp,go,toml,bash.Rev 1 named Lua and Python here, which was a self-contradiction: both are retro-painted by
constructor, so a fixture that did not move would have been vacuous — the #155 R2 assertion shape. Whichever fixtures ship, the negative pin must be shown non-vacuous by confirming it fails when a capture the language does emit is added. -
M-;comments and uncomments a Lean line with--. -
Typing
⟨inserts⟨⟩with the point between; likewise⦃and⟮. Typing'after an identifier does not pair. -
A
```leanfence and a```lean4fence in a markdown buffer both highlight as Lean (Q#LN17); a fence with an unknown name still does not. -
No live toolchain required. The whole Stage 1 suite passes on a machine with no
lean, nolake, and no configured elan toolchain (§2.9) — Stage 1 touches no process at all.
Stage 2 — multi-root affinity (no Lean content)
pmacs.lsp.list()rows carryroot_uriandcwd.- Two files of the same language in different project roots spawn
two servers, each with its own
rootUri. Exercised with the fake server so it is toolchain-free. - Two files of the same language in the same root reuse one server — the pre-change behavior, pinned so the fix does not become "always spawn".
- Regression pin, per language: the existing Rust, Python, Go, and TypeScript attach paths behave unchanged for the single-root case that is all they exercised before.
- Hoist pin:
project_root_foris called on the reuse path, and a function-valuedrootis invoked at most once per directory per session (Q#LN15's memoization) rather than once per attach. - Hand-spawned server pin: a server spawned from
init.luawithcwdbut noroot_uriis not adopted by a root-bearing attach — the deliberate behavior change, asserted rather than discovered. - A crashed or stopped server in the matching root is not reused; a new one spawns.
- Loose-file pin (Q#LN15 part 2). Two markerless files of the
same language in different directories still share one server.
This is the no-change case, and it is the one a naive
(language_id, root)key breaks —project_root_fornever returns nil for a file with a path, so it must be asserted, not assumed. - Fallback-vs-detected pin. A file under a real project marker and a
markerless file of the same language get different servers, and
the markerless one's server carries the fallback directory as
cwdwhile matching on a nil affinity key.
Stage 3 — the Lean language server
- Opening a
.leanfile inside a Lake package spawns one server withcwdandrootUriat the package root. - Outermost-root pin: a file under
<pkg>/.lake/packages/dep/…whose ancestor chain contains twolean-toolchainfiles resolves to<pkg>, not todep. Run withpmacs.project.set_search_boundaryat the fixture root so the assertion is hermetic. - Boundary pin: with the search boundary set at the fixture root, a
lean-toolchainplanted in an ancestor above the boundary is not reached — the resolver stops at the boundary rather than walking past it. - A string-valued
pmacs.lsp.config.lean4.rootstill works — the Q#LN8 generalization is strictly additive. didOpencarrieslanguageId = "lean4".- Fallback-latch pin (Q#LN7): a
lakestub that exits non-zero — reproducing §2.9's shimmed-elan state — causes exactly one restart againstlean --server, and a second failure surfaces an error rather than looping. The latch does not re-arm within the session. - Probe pin: a
lakestub reporting version 3.0.0 triggers the fallback; one reporting 3.1.0 does not. A stub that never exits does not block the attach — the optimisticlake servespawn proceeds. - A
$/lean/fileProgressnotification delivered through the fake server reaches a registeredon_notificationsubscriber. - Dispatch-integrity pin: with a Lean subscriber registered, a
workspace/applyEditrequest in the same drain is still handled — no event is stolen. - A subscriber that raises does not prevent later events in the same drain from being processed.
- Response-seam pin (Q#LN9). A
send_requestreply reaches its registeredon_responseone-shot, and the one-shot is removed before invocation — a raising handler is not re-entered. Bites against rev 2, where no Lua consumedev.kind == "response"at all and the reply was dropped. - Response dispatch-integrity pin. With a response subscriber
registered,
workspace/applyEditin the same drain is still handled; a raising response handler does not stop later events in that drain. Mirrors the notification-side pins above. - Pending-purge pin. A server that dies with a response outstanding invokes the pending one-shot with an error and clears it — the registration does not leak and the awaiting caller does not hang.
- Config-preservation pin (Q#LN7). After the fallback latch fires,
user-supplied
env/settings/init_options/rootonpmacs.lsp.config.lean4survive; onlycommandandargschange. - No-respawn-loop pin. The latch stops the failing server before
spawning the fallback, so
RestartPolicydoes not respawn the broken command underneath it. textDocument/waitForDiagnosticsresolves through the response seam (Q#LN16). PATH-and-success-gated live smoke: iflake servestarts successfully a real elaboration completes and diagnostics arrive; skipped otherwise, never failed.
Stage 4 — the Unicode input method
\alpha+ space yieldsα; the whole expansion is a single undo step.\<>yields⟨⟩with the point between them, from the$CURSORplaceholder.- Pair-collision pin (Q#LN10).
\[[]]yields⟦⟧: each[is claimed as an extension of the pending abbreviation, so auto-pairing never inserts a closing]into the pending key. Bites against an ordering where pairing runs first, and against a consumer that claims only completed expansions rather than pending extensions — both failure modes must be shown, since they are distinct bugs with the same symptom. \toyields→eagerly on uniqueness, with no terminator typed.- A prefix with no match (
\zzzz+ space) is left as literal text; no edit is made. - Moving the cursor out of a pending abbreviation abandons it.
pmacs.config.set("lean.abbrev", false)disables expansion; the setting is read against the typed edit's source buffer.- Expansion does not fire in a non-
lean4buffer — including that a pending abbreviation is never opened there, so\[in a Rust buffer still pairs normally. - Provenance-refactor pin: the full auto-pairing acceptance suite
passes unchanged, and a bite against the pre-refactor
pair.luaconfirms the shared-consumer commit is behavior-preserving.
Stage 5 — the goal view
-
$/lean/plainGoalis sent with a position encoded throughoutbound_position— pinned with a UTF-16 fake server and a non-ASCII Lean line, which fails against a raw byte column. -
A non-null
PlainGoalrendersrenderedinto*lean-goal*. -
A null result with the file elaborated renders "no goals".
-
A point inside a range still covered by
$/lean/fileProgressrenders the elaborating state, not "no goals". -
Refresh pin (Q#LN13). Moving the point to a new position and driving
process.after-tickpast the debounce issues exactly one new$/lean/plainGoal; ticking again with the point unmoved issues none. -
In-flight pin. A second point move while a request is outstanding does not issue a concurrent request, and the panel ends on the result for the latest position — a stale response for an abandoned position never wins.
-
The panel opens at the bottom without stealing focus.
-
*lean-goal*rejects a user edit and accepts a module write. -
Teardown pin. After the Lean buffer is killed or the frontend detaches, driving
process.after-tickissues no further$/lean/plainGoaland writes nothing to the panel, and any outstanding request's one-shot has been purged.Worded as an observable because it must be:
pmacs.hookexposesadd/define/list/runand noremove. A subscription cannot be torn down, only made inert — so "leaves no subscription" (rev 2's wording) is untestable and, taken literally, unimplementable.
Stage 6 — the output channel
- An information-severity diagnostic from the Lean server lands in
*lean-output*and not in the diagnostic store: no squiggle, no gutter sign, and the modeline info count stays zero. - Warning- and error-severity diagnostics from the Lean server are unaffected and still reach the store.
- Cross-language pin: an information-severity diagnostic from a
non-Lean server still squiggles and still counts — the
LspServerSpecpolicy defaults to a no-op. - Output is cleared per publish for the owning document, so a
re-elaborated file does not accumulate stale
#evalresults. - Output rows appear in source-position order regardless of publish order.
Stage 7 — module hierarchy
$/lean/prepareModuleHierarchyis sent through the Q#LN12 typed path (position-bearing), pinned against a UTF-16 fake server.importsandimportedByeach render into the listview panel and are navigable through the existingon_visit.- An empty result renders an empty panel with its header, not an error.
- The panel's
qreturns to the originating buffer, not to another panel (listview.lua:118's existing rule).
8. Prior art in pmacs
- #144 (LaTeX) — the third-party-republish grammar decision and the vendored-artifact-with-provenance pattern.
- #146 (HTML+CSS) — the global capture table, and the requirement to pin retro-paint in both directions. Q#LN4 is that lesson applied.
- #123 (JSON/YAML) — declarative
pmacs.lsp.configentries with a fake-server delivery proof plus PATH-gated live smokes. Stage 3 follows it, with the extra success-gate §2.9 forces. - #110 (auto-pairing) —
take_typed_edit()provenance, the fail-closed discipline on transformed source edits, and Q#AP1's optimistic-classifier limitation. Stage 4 is built on all three. - #127 (config registry) —
pmacs.config.defineand the source-buffer-resolution correction. Q#LN10's gate followsediting.auto-pairexactly. - #129 (mode system) — mode-scoped keymaps for Stage 5.
- #155 (bottom panel) —
pmacs.window.displayand the panel adopter shape, for stages 5–7. - #113 (compile mode) — the erroring-intercept read-only generated
buffer idiom (stages 5 and 6), and
process.after-tickas a debounced cadence source (Q#LN13). - #122 (multi-language injections) —
pmacs.parse.injection_aliases, which Q#LN17 registers into. - #94/#95 (LSP panels) —
pmacs.listview.openand the references/outline panel shape that Stage 7 reuses wholesale.