ce6f999310 arch: enforce layer boundaries — ceiling dispatch, store relocation, shared helper (#382)
* Add roof surface placement support for items

Items (e.g. solar panels) can now be placed on sloped roof surfaces.
The placement system computes euler rotation from the roof surface
normal so items sit flush on the slope instead of going inside.

- Add roofStrategy to placement-strategies with enter/move/click/leave
- Wire roof:enter/move/click/leave events in the placement coordinator
- Add calculateRoofRotation in placement-math using surface normals
- Support full 3D cursor rotation for sloped surfaces
- Items on roofs are parented to the level with world-space rotation

Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com>

* fixed conflict

* editor: per-door-type floor-plan symbols

Render a distinct, static plan symbol for each door type in the
registry floor-plan builder (`packages/nodes/src/door/floorplan.ts`),
independent of the door's live open/close animation:

- single / hinged: fixed 90° swing with a dashed quarter-circle arc
- double / french: two mirrored half-width leaves + dashed arcs
- folding / bifold: static zigzag accordion (~80% span) on the wall face
- sliding: bypass — two overlapping panels on parallel tracks + arrow
- pocket: thin white leaf, ~60% closed, sliding into the solid wall
- barn: surface-mounted panel parked over the wall, dashed closed-ghost
  + slide arrow

The swing arc is dashed in screen-pixel units (the renderer uses
non-scaling-stroke). Symbols are oriented by hingesSide / swingDirection
/ slideDirection as appropriate.

Also includes pre-existing working-tree changes unrelated to the door
symbols: group move/rotate transform and box-select tweaks, and a
regenerated ifc-converter next-env.d.ts.

Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>

* Fix recessed ceiling fixtures and draw safety

* feat(editor): magnetic wall-snap with per-kind beacon (2D + 3D)

Snap the wall draft / endpoint-move point onto existing wall geometry —
corners, midpoints, wall–wall intersections, and along-wall edges — and
show a beacon at the snap point whose glyph encodes what it caught
(square = corner, triangle = midpoint, ✕ = intersection, circle = edge).

- Pure snap geometry extracted to wall-snap-geometry.ts (unit-tested).
- Ephemeral useWallSnapIndicator store drives a 3D pillar+glyph beacon
  and a 2D SVG glyph beacon, both indigo to match the alignment guides.
- Gated by a new persisted "Magnetic snap" toggle in the Display menu
  (useEditor); honored by draw + commit + endpoint-move in both views.

Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>

* editor: garage and open-doorway floor-plan symbols

Extend the per-door-type plan symbols in the registry floor-plan
builder (packages/nodes/src/door/floorplan.ts):

- open doorway (openingKind === 'opening'): bare gap, no leaf/arc/panel
  (mirrors the 3D system, which renders only the cutout for openings)
- garage sectional: closed leaf + side tracks into the garage + dashed
  parked ghost at the inner end
- garage roll-up: closed leaf + coil barrel (capsule) with a coil hint
- garage tilt-up: closed leaf + dashed parked panel + dashed curved
  up-and-over swing path
- gate the swing arc to actual swing doors (hinged/double/french) so
  other types fall back to the plain footprint

Garage mechanisms sit on the interior (door-local -z) side to match the
3D garage builders, independent of swingDirection.

Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>

* arch: enforce layer boundaries — registry dispatch, store relocation, shared helper

Three architectural fixes to bring the branch into full compliance:

1. **ceiling-system kind check → CeilingCutCapability**
   Replace `child.type === 'item'` branch in `ceiling-system` with registry
   dispatch. Add `CeilingCutCapability` type to `packages/core` registry types,
   implement `buildCeilingHole` on `itemDefinition`, and rewrite
   `collectRecessedItemHoles` → `collectCeilingHoles` to dispatch through
   `nodeRegistry` — viewer never again inspects a node's kind directly.

2. **useAlignmentGuides + useWallSnapIndicator → packages/editor**
   These stores are editor-only UI (snap beacons, alignment guides). Move them
   from `packages/core/src/store/` to `packages/editor/src/store/`, re-export
   from `packages/editor`, and update all 34 consumer files across
   `packages/editor` and `packages/nodes` to import from `@pascal-app/editor`.

3. **findLevelAncestorId extracted to core**
   `item-light-system` had a private `resolveNodeLevelId` that duplicated
   level-ancestor traversal logic. Extract it as `findLevelAncestorId` in
   `packages/core` (spatial-grid-sync), export it, and replace the local copy.

All four packages typecheck cleanly (zero errors).

Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>

* chore: fix lint, untrack .claude/launch.json

Run bun check --write to clear 8 Biome errors (formatting + import order
+ one unused import). Untrack .claude/launch.json and add it plus
.claude/settings.local.json to .gitignore so local IDE/agent configs
stop landing in commits.

Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>

---------

Co-authored-by: Claude Opus 4.6 <noreply@anthropic.com>
2026-06-08 13:14:39 -04:00
2026-01-21 10:11:30 +09:00
2026-03-13 09:07:46 +01:00
2026-01-14 07:26:59 +09:00
2026-03-10 09:40:07 +01:00
2026-02-11 06:35:56 +09:00
2026-05-09 02:25:25 +00:00

Pascal Editor

A 3D building editor built with React Three Fiber and WebGPU.

MIT License npm @pascal-app/core npm @pascal-app/viewer Discord X (Twitter)

https://github.com/user-attachments/assets/8b50e7cf-cebe-4579-9cf3-8786b35f7b6b

Repository Architecture

This is a Turborepo monorepo with three main packages:

editor-v2/
├── apps/
│   └── editor/          # Next.js application
├── packages/
│   ├── core/            # Schema definitions, state management, systems
│   └── viewer/          # 3D rendering components

Separation of Concerns

Package Responsibility
@pascal-app/core Node schemas, scene state (Zustand), systems (geometry generation), spatial queries, event bus
@pascal-app/viewer 3D rendering via React Three Fiber, default camera/controls, post-processing
apps/editor UI components, tools, custom behaviors, editor-specific systems

The viewer renders the scene with sensible defaults. The editor extends it with interactive tools, selection management, and editing capabilities.

Stores

Each package has its own Zustand store for managing state:

Store Package Responsibility
useScene @pascal-app/core Scene data: nodes, root IDs, dirty nodes, CRUD operations. Persisted to IndexedDB with undo/redo via Zundo.
useViewer @pascal-app/viewer Viewer state: current selection (building/level/zone IDs), level display mode (stacked/exploded/solo), camera mode.
useEditor apps/editor Editor state: active tool, structure layer visibility, panel states, editor-specific preferences.

Access patterns:

// Subscribe to state changes (React component)
const nodes = useScene((state) => state.nodes)
const levelId = useViewer((state) => state.selection.levelId)
const activeTool = useEditor((state) => state.tool)

// Access state outside React (callbacks, systems)
const node = useScene.getState().nodes[id]
useViewer.getState().setSelection({ levelId: 'level_123' })

Core Concepts

Nodes

Nodes are the data primitives that describe the 3D scene. All nodes extend BaseNode:

BaseNode {
  id: string              // Auto-generated with type prefix (e.g., "wall_abc123")
  type: string            // Discriminator for type-safe handling
  parentId: string | null // Parent node reference
  visible: boolean
  camera?: Camera         // Optional saved camera position
  metadata?: JSON         // Arbitrary metadata (e.g., { isTransient: true })
}

Node Hierarchy:

Site
└── Building
    └── Level
        ├── Wall → Item (doors, windows)
        ├── Slab
        ├── Ceiling → Item (lights)
        ├── Roof
        ├── Zone
        ├── Scan (3D reference)
        └── Guide (2D reference)

Nodes are stored in a flat dictionary (Record<id, Node>), not a nested tree. Parent-child relationships are defined via parentId and children arrays.


Scene State (Zustand Store)

The scene is managed by a Zustand store in @pascal-app/core:

useScene.getState() = {
  nodes: Record<id, AnyNode>,  // All nodes
  rootNodeIds: string[],       // Top-level nodes (sites)
  dirtyNodes: Set<string>,     // Nodes pending system updates

  createNode(node, parentId),
  updateNode(id, updates),
  deleteNode(id),
}

Middleware:

  • Persist - Saves to IndexedDB (excludes transient nodes)
  • Temporal (Zundo) - Undo/redo with 50-step history

Scene Registry

The registry maps node IDs to their Three.js objects for fast lookup:

sceneRegistry = {
  nodes: Map<id, Object3D>,    // ID → 3D object
  byType: {
    wall: Set<id>,
    item: Set<id>,
    zone: Set<id>,
    // ...
  }
}

Renderers register their refs using the useRegistry hook:

const ref = useRef<Mesh>(null!)
useRegistry(node.id, 'wall', ref)

This allows systems to access 3D objects directly without traversing the scene graph.


Node Renderers

Renderers are React components that create Three.js objects for each node type:

SceneRenderer
└── NodeRenderer (dispatches by type)
    ├── BuildingRenderer
    ├── LevelRenderer
    ├── WallRenderer
    ├── SlabRenderer
    ├── ZoneRenderer
    ├── ItemRenderer
    └── ...

Pattern:

  1. Renderer creates a placeholder mesh/group
  2. Registers it with useRegistry
  3. Systems update geometry based on node data

Example (simplified):

const WallRenderer = ({ node }) => {
  const ref = useRef<Mesh>(null!)
  useRegistry(node.id, 'wall', ref)

  return (
    <mesh ref={ref}>
      <boxGeometry args={[0, 0, 0]} />  {/* Replaced by WallSystem */}
      <meshStandardMaterial />
      {node.children.map(id => <NodeRenderer key={id} nodeId={id} />)}
    </mesh>
  )
}

Systems

Systems are React components that run in the render loop (useFrame) to update geometry and transforms. They process dirty nodes marked by the store.

Core Systems (in @pascal-app/core):

System Responsibility
WallSystem Generates wall geometry with mitering and CSG cutouts for doors/windows
SlabSystem Generates floor geometry from polygons
CeilingSystem Generates ceiling geometry
RoofSystem Generates roof geometry
ItemSystem Positions items on walls, ceilings, or floors (slab elevation)

Viewer Systems (in @pascal-app/viewer):

System Responsibility
LevelSystem Handles level visibility and vertical positioning (stacked/exploded/solo modes)
ScanSystem Controls 3D scan visibility
GuideSystem Controls guide image visibility

Processing Pattern:

useFrame(() => {
  for (const id of dirtyNodes) {
    const obj = sceneRegistry.nodes.get(id)
    const node = useScene.getState().nodes[id]

    // Update geometry, transforms, etc.
    updateGeometry(obj, node)

    dirtyNodes.delete(id)
  }
})

Dirty Nodes

When a node changes, it's marked as dirty in useScene.getState().dirtyNodes. Systems check this set each frame and only recompute geometry for dirty nodes.

// Automatic: createNode, updateNode, deleteNode mark nodes dirty
useScene.getState().updateNode(wallId, { thickness: 0.2 })
// → wallId added to dirtyNodes
// → WallSystem regenerates geometry next frame
// → wallId removed from dirtyNodes

Manual marking:

useScene.getState().dirtyNodes.add(wallId)

Event Bus

Inter-component communication uses a typed event emitter (mitt):

// Node events
emitter.on('wall:click', (event) => { ... })
emitter.on('item:enter', (event) => { ... })
emitter.on('zone:context-menu', (event) => { ... })

// Grid events (background)
emitter.on('grid:click', (event) => { ... })

// Event payload
NodeEvent {
  node: AnyNode
  position: [x, y, z]
  localPosition: [x, y, z]
  normal?: [x, y, z]
  stopPropagation: () => void
}

Spatial Grid Manager

Handles collision detection and placement validation:

spatialGridManager.canPlaceOnFloor(levelId, position, dimensions, rotation)
spatialGridManager.canPlaceOnWall(wallId, t, height, dimensions)
spatialGridManager.getSlabElevationAt(levelId, x, z)

Used by item placement tools to validate positions and calculate slab elevations.


Editor Architecture

The editor extends the viewer with:

Tools

Tools are activated via the toolbar and handle user input for specific operations:

  • SelectTool - Selection and manipulation
  • WallTool - Draw walls
  • ZoneTool - Create zones
  • ItemTool - Place furniture/fixtures
  • SlabTool - Create floor slabs

Selection Manager

The editor uses a custom selection manager with hierarchical navigation:

Site → Building → Level → Zone → Items

Each depth level has its own selection strategy for hover/click behavior.

Editor-Specific Systems

  • ZoneSystem - Controls zone visibility based on level mode
  • Custom camera controls with node focusing

Data Flow

User Action (click, drag)
       ↓
Tool Handler
       ↓
useScene.createNode() / updateNode()
       ↓
Node added/updated in store
Node marked dirty
       ↓
React re-renders NodeRenderer
useRegistry() registers 3D object
       ↓
System detects dirty node (useFrame)
Updates geometry via sceneRegistry
Clears dirty flag

Technology Stack

  • React 19 + Next.js 16
  • Three.js (WebGPU renderer)
  • React Three Fiber + Drei
  • Zustand (state management)
  • Zod (schema validation)
  • Zundo (undo/redo)
  • three-bvh-csg (Boolean geometry operations)
  • Turborepo (monorepo management)
  • Bun (package manager)

Getting Started

Development

Run the development server from the root directory to enable hot reload for all packages:

# Install dependencies
bun install

# Run development server (builds packages + starts editor with watch mode)
bun dev

# This will:
# 1. Build @pascal-app/core and @pascal-app/viewer
# 2. Start watching both packages for changes
# 3. Start the Next.js editor dev server
# Open http://localhost:3000

Important: Always run bun dev from the root directory to ensure the package watchers are running. This enables hot reload when you edit files in packages/core/src/ or packages/viewer/src/.

Building for Production

# Build all packages
turbo build

# Build specific package
turbo build --filter=@pascal-app/core

Publishing Packages

# Build packages
turbo build --filter=@pascal-app/core --filter=@pascal-app/viewer

# Publish to npm
npm publish --workspace=@pascal-app/core --access public
npm publish --workspace=@pascal-app/viewer --access public

Key Files

Path Description
packages/core/src/schema/ Node type definitions (Zod schemas)
packages/core/src/store/use-scene.ts Scene state store
packages/core/src/hooks/scene-registry/ 3D object registry
packages/core/src/systems/ Geometry generation systems
packages/viewer/src/components/renderers/ Node renderers
packages/viewer/src/components/viewer/ Main Viewer component
apps/editor/components/tools/ Editor tools
apps/editor/store/ Editor-specific state

Contributors

Aymeric Rabot Wassim Samad Sudhir


pascalorg/editor | Trendshift

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Клон проекта Pascal Editor
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