The heart of Tiled support: load a map and draw it.
- rt_tmap model (Tmap/TmLayer/TmTileset in tiled.ludic): map header + ordered
layers (dense int32 GID arrays, heap-allocated to w*h, lifting the 96x64 cap)
+ tilesets. Built from the intermediate Value tree, so the TMX and TMJ paths
both feed it.
- GID resolver (Tiled.resolve): gid -> (tileset, localId, flipH/V/D); the three
flip flags masked off before the local-id lookup, returned alongside. gid==0
is empty.
- Image-backed render (Tiled.draw): every visible tile layer in file order,
blitting each tile from its tileset image with flips applied at draw.
- Compatibility projection (Tiled.project / auto on load): a designated
collision layer projects to the legacy byte tilemap ('#' solid, '=' one-way
via the oneway property, ' ' empty) so Grid.*/Path.*/esys_move are unchanged.
- Tiled.load resolves external tilesets + images relative to the map file and
auto-projects a collision/solids/walls layer.
- The grid and physics_tiles demos now run off a loaded map (grid_maze.tmx /
physics_map.tmx) instead of hand-authored Map.row strings, byte-identically.
Two compiler fixes fell out of this (see the changeset):
- emit_index_addr set g_addr_ty before evaluating the index, so slice[obj.field]
came back mis-typed; set it last, like the raw-pointer branches.
- @strcmp was declared by both the world table and the fs prelude; centralise
it in the head prelude so a game that uses Fs/Path links.
Proven by library/tiled_p1.ludic (14 assertions: loads+renders Kenney map
identically from .tmx and .tmj, flip mirroring) + the converted grid/
physics_tiles demos. x test: 92 passed; self-host bootstrap fixpoint intact.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
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| inventory.json | ||
| README.md | ||
Ludic documentation generator
Generates the public documentation site (the pages branch) from a single
source of truth, so the site can never drift from the language.
Source of truth
docs/
language/<category>/<id>.md one file per symbol — keyword, type, phase,
builtin, namespace method, operator, annotation
language/<category>/_section.md section title + blurb + order
language/colors/palette.json the 221 named colors (generated by `x docs-palette`)
site/site.json landing-page messaging (hero, features, …)
site/snippets/*.ludic the code shown on the landing page (real programs)
tools/docgen/inventory.json the authoritative symbol set the coverage guard checks
A symbol file
---
id: screen-fill_rectangle # anchor + page name (screen-fill_rectangle.html)
name: Screen.fill_rectangle
category: screen
kind: namespace-method # keyword|type|phase|namespace-method|builtin|annotation|operator
tokens: Screen.fill_rectangle # literal token(s) the highlighter matches & links
sig: Screen.fill_rectangle(x, y, width, height, color)
tip: Draw a solid, filled rectangle. # one sentence — the hover-card summary
order: 1
ns: Screen # namespace-method only
member: fill_rectangle # namespace-method only
related: screen-clear screen-draw_rectangle
---
Rich description — inline `<code>`/`backticks`, "model instance" language.
Parameters: # for anything that takes arguments
- `x` — the left edge, in pixels
- `color` — the fill color, e.g. a `Color.*` name
```ludic
program Example { … descriptive-named, compilable … }
```
What it produces
One page per symbol (<id>.html), a namespace overview page per namespace
(ns-screen.html … ns-color.html), a searchable index (api.html, fuzzy
search over every symbol), the landing page (index.html), the
ludic-highlight.js highlighter (all its symbol tables, tips, per-item link
targets, per-parameter anchors and hover-card data generated from the sources
above), symbols.json, and .nojekyll.
In any code sample: keywords/types/builtins/annotations link to their page;
Screen.fill_rectangle links Screen → the namespace page and fill_rectangle
→ the method page separately; a named argument like width: links to that
parameter's anchor; Color.Charcoal links Color and Charcoal separately;
hovering any token shows a summary card from the real API data.
Build & check
The generator and its guards are written in Ludic and run through x — there is
no Python in the pipeline. assets/ (the CSS/HTML/JS templates) and
inventory.json are the only inputs the tools here still read directly.
bin/x docs-gen --out build/pages # generate the whole site
bin/x docs-check build/pages # coverage + duplicate-token + link guard
bin/x check-docs # parse every ```ludic doc fence
docs-check fails CI if any symbol in inventory.json lacks a page, if a token
is documented on two pages, or if a highlighter link points at a missing page —
so "every symbol is documented, autogenerated each time" is enforced. It needs a
built bin/x (bootstrapped from the IR seed with clang alone).
Publish
.forgejo/workflows/docs.yml bootstraps the toolchain from the IR seed and runs
x docs-gen + x docs-check on every push to main that touches docs/**,
tools/docgen/** or tools/x/**, and publishes the result to the pages branch
root. index.html + .nojekyll always stay at the root.
Colors
palette.json and selfhost/backend/stdlib/emit_color.ludic are both generated
by bin/x docs-palette from a single palette table — the pal_add(...) rows in
tools/x/docgen.ludic. Edit the table there and regenerate; do not hand-edit the
generated files.