HardYards/web/world/js/debris.js
m3ultra 11f27c493c Fix debris ground friction, cloud seam and yard coords
Three bugs the bench found once it was actually running a storm:

- Debris was glued to the floor. The scrape `v *= 0.86` ran every frame while
  grounded, which is 0.86^60 per second — it pinned a 9 kg crate at 0.7 m/s in
  a 19 m/s wind. Friction now applies on impact, with dt-scaled rolling
  friction while resting. A crate crosses the whole yard at ~6 m/s.
- Debris slid instead of tumbling: wind is horizontal, so once down there was
  no vertical force at all and it skated at constant height. Added tumbling
  lift that flips sign as it rolls — bins hop now.
- The cloud dome had a dead straight seam across the sky. The fbm claimed to
  tile and didn't; now each octave wraps at its own integer period.

Also: shelters and the bench now use Lane A's landed yard coords (t1 -9,2 /
t2 8,-2, gardenBed 1,2) instead of my guesses, so shelter tuning means
something.

Verified in-browser against a real storm: crate crosses the yard and the t=74
bin spawns from storm JSON; sail node shoved 0.32 m; a 14 kg bin at 20 m/s
knocks the player down and a tub drifting at 0.3 m/s correctly does not;
lightning peaks 0.88. Lane A's selftest: 37 pass / 3 skip.

Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-07-16 21:50:41 +10:00

255 lines
9.5 KiB
JavaScript

'use strict';
// SHADES — Lane C — debris: things that should have been tied down.
//
// Hand-rolled kinematic tumble (PLAN3D §5-C.4). No physics engine, no deps.
// Deterministic: step(dt, t), seeded RNG, no Date.now — so a storm replays.
//
// Spawns off `debris` events in the storm JSON, upwind of the yard, and lets the
// wind field carry it across. Drag goes with speed², same as the sail, so the
// same gust that spikes a corner is the one that launches the neighbour's bin.
import * as THREE from '../vendor/three.module.js';
import { rng } from './contracts.js';
const RHO = 1.2; // air density, kg/m³
const GRAVITY = -9.81;
// Deceleration while resting on the ground, m/s². Drag in a 19 m/s wind gives a
// 9 kg crate ~7 m/s², so it still skitters downwind — which is the whole point.
const GROUND_FRICTION = 3.5;
// Fallback specs for Lane E's debris set (3D-STORE crates/tubs). Radius is the
// collision sphere, not the render bounds — a crate is boxy, but a sphere is
// what you can afford to test 6 of per node per frame.
const MODEL_SPEC = {
BlueCrate_v2: { r: 0.30, mass: 9, cd: 1.05 },
BlackTub_v2: { r: 0.34, mass: 5, cd: 1.10 },
WhiteTub_v2: { r: 0.34, mass: 5, cd: 1.10 },
WoodenBin_v2: { r: 0.42, mass: 14, cd: 1.05 },
LibraryTrolley_v1: { r: 0.45, mass: 22, cd: 0.95 },
};
const DEFAULT_SPEC = { r: 0.35, mass: 8, cd: 1.05 };
/**
* @param {object} o
* @param {object} o.wind from weather.js
* @param {THREE.Object3D} o.scene
* @param {Object<string,THREE.Object3D>} [o.models] name -> template (Lane E's GLBs)
* @param {function} [o.onHitPlayer] (piece, impact) — Lane D knocks the player down
* @param {function} [o.onEvent] (text) — HUD ticker
* @param {object} [o.bounds] {x, z} half-extents before despawn
*/
export function createDebris(o = {}) {
const wind = o.wind;
const scene = o.scene || null;
const models = o.models || {};
const bounds = o.bounds || { x: 26, z: 20 };
// contracts.js documents world.heightAt as the thing Lane C bounces debris off.
// Flat fallback so this still runs against a graybox yard.
const groundAt = o.heightAt || (() => o.groundY ?? 0);
const rand = rng(((wind && wind.seed) || 1) ^ 0x5eed1e);
const pieces = [];
const w = new THREE.Vector3();
const probe = new THREE.Vector3();
/** Graybox stand-in so a missing GLB can't break Lane A's merge. */
function placeholder(spec) {
const g = new THREE.BoxGeometry(spec.r * 1.8, spec.r * 1.8, spec.r * 1.8);
const m = new THREE.MeshStandardMaterial({ color: 0x8a6a3a, roughness: 0.9 });
return new THREE.Mesh(g, m);
}
function spawn(ev, t) {
const spec = { ...(MODEL_SPEC[ev.model] || DEFAULT_SPEC) };
if (Number.isFinite(ev.mass)) spec.mass = ev.mass;
// upwind of the yard, offset sideways, so it crosses the whole thing
const d = wind.dirAt(t);
const dx = Math.cos(d), dz = Math.sin(d);
const lat = ev.lateral ?? 0;
const dist = ev.spawnDist ?? 18;
const x = -dx * dist - dz * lat;
const z = -dz * dist + dx * lat;
const y = groundAt(x, z) + spec.r + (ev.height ?? 0.2 + rand() * 1.2);
const tmpl = models[ev.model];
const mesh = tmpl ? tmpl.clone(true) : placeholder(spec);
mesh.castShadow = true;
if (scene) scene.add(mesh);
// already moving — it's been blowing across the neighbour's yard for a while
probe.set(x, y, z);
wind.sample(probe, t, w);
const piece = {
model: ev.model,
x, y, z,
vx: w.x * 0.8, vy: 0, vz: w.z * 0.8,
// spin axis is arbitrary but seeded; rate scales with airspeed in step()
sx: rand() * 2 - 1, sy: rand() * 2 - 1, sz: rand() * 2 - 1,
spin: 0,
phase: rand() * 6.283, // so two crates don't hop in lockstep
r: spec.r, mass: spec.mass, cd: spec.cd,
area: Math.PI * spec.r * spec.r,
hitPlayer: false,
mesh,
alive: true,
};
pieces.push(piece);
if (ev.text && o.onEvent) o.onEvent(ev.text);
return piece;
}
function despawn(p) {
p.alive = false;
if (scene && p.mesh) scene.remove(p.mesh);
}
const debris = {
get pieces() { return pieces; },
/** Lane E's GLBs, once they land. name -> Object3D template. */
setModels(map) { Object.assign(models, map); return debris; },
/** Manual spawn — handy for tuning and for Lane A's debug keys. */
spawn,
/**
* @param {number} dt fixed step
* @param {number} t storm time
* @param {object} [world] {player, sail} — both optional, both duck-typed
*/
step(dt, t, world = {}) {
// storm JSON drives the spawns; poll the window so nothing is missed
if (wind) {
for (const ev of wind.eventsBetween(t - dt, t)) {
if (ev.type === 'debris') spawn(ev, t);
}
}
const player = world.player;
const sail = world.sail;
for (let i = pieces.length - 1; i >= 0; i--) {
const p = pieces[i];
probe.set(p.x, p.y, p.z);
wind.sample(probe, t, w);
// drag against the AIR, not the ground: F = ½ρ Cd A |w-v| (w-v)
const rx = w.x - p.vx, ry = w.y - p.vy, rz = w.z - p.vz;
const rel = Math.hypot(rx, ry, rz);
const k = 0.5 * RHO * p.cd * p.area * rel / p.mass;
p.vx += rx * k * dt;
p.vy += ry * k * dt + GRAVITY * dt;
p.vz += rz * k * dt;
// A tumbling bluff body doesn't just get shoved, it gets picked up: lift
// flips sign as it rolls, which is why a bin HOPS across a yard instead
// of sliding. Wind is horizontal (weather.js keeps y=0), so without this
// there is no vertical force at all once it's down and it just skates.
p.vy += (0.5 * rel * rel * Math.sin(p.spin * 1.7 + p.phase) / p.mass) * dt;
p.x += p.vx * dt;
p.y += p.vy * dt;
p.z += p.vz * dt;
// ground
const floor = groundAt(p.x, p.z) + p.r;
if (p.y <= floor) {
p.y = floor;
if (p.vy < -0.5) {
// a real impact: bounce, and lose some tangential speed to the hit
p.vy = -p.vy * 0.32; // dead-ish, it's a plastic tub
p.vx *= 0.72; p.vz *= 0.72;
} else {
if (p.vy < 0) p.vy = 0;
// Resting: rolling friction as a dt-scaled DECELERATION, not a
// per-frame multiplier. `v *= 0.86` every frame is 0.86^60 per
// second — that isn't scrape, it's glue, and it pinned a 9 kg crate
// at 0.7 m/s in a 19 m/s wind.
const sp = Math.hypot(p.vx, p.vz);
if (sp > 1e-4) {
const drop = Math.min(sp, GROUND_FRICTION * dt);
p.vx -= (p.vx / sp) * drop;
p.vz -= (p.vz / sp) * drop;
}
}
}
// tumble rate follows airspeed — becalmed debris shouldn't keep spinning
p.spin += rel * 0.35 * dt;
if (p.mesh) {
p.mesh.position.set(p.x, p.y, p.z);
p.mesh.rotation.set(p.sx * p.spin, p.sy * p.spin, p.sz * p.spin);
}
// --- sphere vs player: knockdown ---
// Contract gives us player.pos; the knockdown itself is Lane D's (§5-D.3),
// so we just report the hit and let them run the state machine.
if (player && player.pos && !p.hitPlayer) {
const px = player.pos.x, pz = player.pos.z;
const py = player.pos.y + 0.9; // centre of mass, not feet
const dsq = (p.x - px) ** 2 + (p.y - py) ** 2 + (p.z - pz) ** 2;
const hit = p.r + 0.35;
if (dsq < hit * hit) {
const impact = Math.hypot(p.vx, p.vy, p.vz) * p.mass;
// a bin rolling gently past your ankles shouldn't floor you
if (impact > 25 && o.onHitPlayer) {
p.hitPlayer = true; // one knockdown per piece
o.onHitPlayer(p, impact);
p.vx *= 0.4; p.vz *= 0.4;
}
}
}
// --- sphere vs sail nodes: impulse ---
// Duck-typed: lights up the moment Lane B exposes nodes, silent until
// then. See THREADS — B owns sail.js, so this is the seam we agreed on.
if (sail && sail.nodes) applyToSail(p, sail);
if (p.y < groundAt(p.x, p.z) - 5 || Math.abs(p.x) > bounds.x || Math.abs(p.z) > bounds.z) {
despawn(p);
pieces.splice(i, 1);
}
}
},
/** Drop everything (phase change, restart). */
clear() {
for (const p of pieces) despawn(p);
pieces.length = 0;
},
};
/**
* Shove any cloth node the piece is intersecting, and lose some of the piece's
* own momentum doing it. Expects sail.nodes: [{x,y,z,px,py,pz}] (verlet, so we
* move position and let the integrator turn it into velocity).
*/
function applyToSail(p, sail) {
const nodes = sail.nodes;
const reach = p.r + 0.15;
const reachSq = reach * reach;
let hits = 0;
for (let i = 0; i < nodes.length; i++) {
const n = nodes[i];
const dx = n.x - p.x, dy = n.y - p.y, dz = n.z - p.z;
const dsq = dx * dx + dy * dy + dz * dz;
if (dsq > reachSq || dsq < 1e-9) continue;
const d = Math.sqrt(dsq);
// push the node out to the sphere surface along the contact normal
const push = (reach - d) / d;
n.x += dx * push; n.y += dy * push; n.z += dz * push;
hits++;
}
if (hits) {
const drag = Math.min(0.5, (hits * p.mass) / 400);
p.vx *= 1 - drag; p.vy *= 1 - drag; p.vz *= 1 - drag;
if (sail.onDebrisHit) sail.onDebrisHit(p, hits);
}
}
return debris;
}