B asked for the hail ruling before coding fabric choice; this is it as code. The physics: porosity is about AIR (blows through → less wind load) and WATER (drains → no ponding), NOT ice. A knitted shade cloth's gaps are ~1-3 mm; a damaging hailstone is 6-45 mm, so it can't pass a mesh an order of magnitude finer than itself — porous and membrane block the big stones identically. The ONE true difference is the finest pea hail, which IS small enough to rattle through an open weave. So: membrane stops everything; porous stops everything except the smallest stones. Verified across the storm sizes: shade cloth (0.3) fully blocks the wild-night 1.3/1.4 stones and leaks 26% of storm_03's 0.7 pea hail; an open 0.5 weave leaks 90% of pea hail but still catches the big ice. That makes the fabric choice cost you exactly on the mild-hail nights and stay honest on the ice nights — a real tradeoff without a physics lie. The assert also proves the integration end to end so nobody wires it blind: a membrane-covered bed takes ~0 hail on storm_03, a porous-covered one takes 0.62 — the choice is genuinely non-trivial. Formula for whoever wires the garden drain: coveredHail = hailShadowOver(bed) * hailBlockFor(hailSize, sail.porosity). Pure helper (no THREE), exported through weather.js alongside stormStats/ forecastFor; NOT on the wind contract, so no router change. Selftest 263/0/0. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
118 lines
4.4 KiB
JavaScript
118 lines
4.4 KiB
JavaScript
'use strict';
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// SHADES — Lane C — weather: the wind field everyone samples.
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//
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// Implements the contracts.js wind surface (PLAN3D §4):
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// wind.sample(pos, t) -> Vector3 m/s, includes gusts & local effects
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// wind.gustTelegraph(t) -> {eta, dir, power} | null
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//
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// All the maths lives in weather.core.js (pure, no imports). This file is just
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// the THREE adapter + storm loading, so the sim stays node-testable and the
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// determinism rule can't be broken by accident.
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import * as THREE from '../vendor/three.module.js';
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import {
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createWindField, validateStorm, GUST, RAIN_TIME_COMPRESSION,
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hailBlockFor, stormStats, forecastFor,
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} from './weather.core.js';
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export { GUST, validateStorm, RAIN_TIME_COMPRESSION, hailBlockFor, stormStats, forecastFor };
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// Resolved against this module, not the server root: server.py serves the repo
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// root (so the 2D prototype stays reachable), but the demo bench serves web/.
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// import.meta.url is right under both, and under whatever Lane A does next.
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const STORM_DIR = new URL('../data/storms', import.meta.url).href;
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/** Fetch + validate a storm def. Throws loud on bad data — storms are content. */
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export async function loadStorm(name, dir = STORM_DIR) {
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const url = `${dir}/${name}.json`;
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const res = await fetch(url);
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if (!res.ok) throw new Error(`weather: cannot load ${url} (${res.status})`);
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const def = await res.json();
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const { ok, errors } = validateStorm(def, name);
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if (!ok) throw new Error(`weather: ${url} is invalid:\n ${errors.join('\n ')}`);
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return def;
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}
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/**
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* @param {object} def parsed storm JSON
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* @param {object} [opts] {seed} — same seed + same def = same storm, every run
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* @returns the `wind` object from contracts.js
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*/
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export function createWind(def, opts = {}) {
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const field = createWindField(def, opts);
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const scratch = { x: 0, y: 0, z: 0 };
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const wind = {
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/**
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* Wind velocity at a world position, m/s.
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* @param {THREE.Vector3} pos
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* @param {number} t storm time, seconds
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* @param {THREE.Vector3} [out] pass one to avoid allocating — sail.js
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* samples per-face per-frame, so this matters
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*/
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sample(pos, t, out) {
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const v = out || new THREE.Vector3();
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field.vecAt(pos.x, pos.z, t, scratch);
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return v.set(scratch.x, scratch.y, scratch.z);
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},
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/** Scalar speed — for HUD, rain, grass. Cheaper than sample(); no allocation. */
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speedAt(pos, t) {
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return field.speedAt(pos.x, pos.z, t);
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},
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/** {eta, dir, power} while a gust is inbound but hasn't risen yet, else null. */
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gustTelegraph(t) {
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return field.telegraph(t);
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},
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/**
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* Register wind shadows (trees, house). Lane A: call after the yard is built.
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* Until then there are simply no shadows — nothing breaks.
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* @param {Array<{x,z,radius,strength,length}>} list
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*/
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setShelters(list) { field.setShelters(list); return wind; },
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/** Convenience: take shadows straight off world.anchors' tree entries. */
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setSheltersFromTrees(trees, o = {}) {
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return wind.setShelters(trees.map((tr) => ({
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x: tr.pos ? tr.pos.x : tr.x,
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z: tr.pos ? tr.pos.z : tr.z,
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radius: o.radius ?? tr.radius ?? 3,
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strength: o.strength ?? 0.45,
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length: o.length ?? 14,
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})));
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},
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/** Storm events fired in (a,b] — poll with (t-dt, t). Deterministic. */
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eventsBetween(a, b) { return field.eventsBetween(a, b); },
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/** 0..1 rain intensity — drives drop count and opacity. */
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rainAt(t) { return field.rainAt(t); },
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/** 0..1 hail intensity (SPRINT5 decision 13). Zero for a hail-free storm. */
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hailAt(t) { return field.hailAt(t); },
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/** Stone-size scalar — audio pitch, visual scale, damage weight. */
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get hailSize() { return field.hailSize; },
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/** Rain rate in real-world mm/hr. Ponding (decision 10) reads this. */
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rainMmPerHour(t) { return field.rainMmPerHour(t); },
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/** Real-world mm of water delivered over (t0,t1]. Multiply by
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* RAIN_TIME_COMPRESSION cloth-side — see weather.core. */
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rainDepthMm(t0, t1) { return field.rainDepthMm(t0, t1); },
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/** Direction (radians, XZ plane from +X toward +Z) ignoring local effects. */
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dirAt(t) { return field.dirAt(t); },
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get duration() { return field.duration; },
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get gusts() { return field.gusts; },
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get def() { return field.def; },
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get seed() { return field.seed; },
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core: field,
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};
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return wind;
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}
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