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decePubClient/wwwroot/js/globe.js
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The globe under the Sun of now or of a post, with borders and country names
The Sun lights the globe where it really is (wwwroot/js/sun.js, the Astronomical Almanac's low-precision solar
coordinates): the day map shaded by the Sun's height and the Earth–Sun distance, warm city lights on the night side,
and a twilight blend about 13° wide between them. It shows now, refreshed every 30 s, or the moment of the hovered,
focused or pinned post: a click on a card pins it, and the subsolar point travels there the shorter way round. The
panel's top corner shows that moment, the phase of the day and solar time at the post's place, and the season in its
hemisphere (or in both, for a post without a place). Its tooltip shows the subsolar point, declination, axial tilt,
distance, irradiance, day length and the next equinox or solstice.

Land borders are thin paths. Country names are in the reader's language and appear as the camera comes closer:
largest countries first, away from the globe's edge, never overlapping. They come from world-atlas 2.0.2 (Natural
Earth 1:50m), prepared by tools/globe/prepare-countries.py, and are vendored with their hashes in SOURCES.md.

Co-Authored-By: Claude Opus 5.5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01LsXgEaXee4GCU1hwYgPJXw
2026-10-04 20:23:42 +02:00

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// The feed's globe (Components/Feed/GlobePanel.razor), on the vendored globe.gl (wwwroot/vendor/globe, loaded the first
// time a globe is shown). It looks at the average place of the located posts in view: the spherical mean of their
// points, so posts on either side of the antimeridian average correctly, from an altitude that fits their spread.
// Hovering a post pulses a ring where it is and draws an arc to it from PrivaPub's server; leaving it goes back to the
// view. Posts of servers behind a CDN have no place: they are grouped per CDN in labels on a ring above the Arctic,
// which says "CDN" rather than any place; hovering one draws its arc to that group and a ring where the server was
// before the CDN, when PrivaPub saw it there.
// The Earth is lit by the Sun where it really is (sun.js): the day map where the Sun is up, shaded by its height, the
// night map (city lights) where it is down, blended across a twilight band, and brighter or dimmer with the Earth–Sun
// distance. It shows now, or, while a post is hovered or focused, the moment that post was written; the Sun moves there
// and back smoothly. Land borders are thin lines, and country names sit inside each country in the reader's language,
// more of them and larger as the camera comes closer. Motion follows prefers-reduced-motion. It renders only while
// something moves (a camera flight, the Sun moving, a hovered post's pulse, auto-rotation, the reader dragging or
// zooming) and never while the page or the globe is hidden: an idle globe costs no GPU time. No .NET round-trip on
// scroll or hover: the posts' places come in one call per feed change (setPosts), the cards are matched by
// data-post-id, and .NET only hears that the Sun's moment changed (SunChanged), to show it.
import { directionOf, seasonsOf, sunAt, sunAtPlace } from "./sun.js"
const vendor = new URL("../vendor/globe/", import.meta.url).href
const textures = { day: vendor + "earth-blue-marble.jpg", night: vendor + "earth-night.jpg" }
const countriesUrl = vendor + "countries.json"
const reducedMotion = matchMedia("(prefers-reduced-motion: reduce)")
let loading = null
let state = null
function loadLibrary() {
if (window.Globe)
return Promise.resolve(window.Globe)
loading ??= new Promise((resolve, reject) => {
const script = document.createElement("script")
script.src = vendor + "globe.gl.min.js"
script.onload = () => resolve(window.Globe)
script.onerror = () => { loading = null; reject(new Error("globe.gl could not be loaded")) }
document.head.appendChild(script)
})
return loading
}
// Creates the globe in element once it has a size (it may start hidden on a phone), following the cards of the
// scroll container. reference is the .NET panel (SunChanged); options.language names the countries.
export function create(element, scrollContainerId, reference, options) {
dispose()
const now = sunAt(new Date())
state = {
element,
reference,
names: regionNames(options?.language),
scroller: document.getElementById(scrollContainerId),
sun: now,
sunPoint: { lat: now.lat, lng: now.lng },
sunUniforms: { sunDirection: { value: directionOf(now) }, sunIntensity: { value: now.irradiance }, nightMap: { value: null }, nightReady: { value: 0 } },
focus: null,
pinned: null,
nightImage: null,
countries: [],
borders: [],
labelOf: new Map(),
labelKey: null,
labelsAt: 0,
countryNames: 0,
globe: null,
points: new Map(),
self: null,
visible: new Set(),
hovered: null,
view: null,
spreadKm: 0,
frames: 0,
fps: 0,
renderer: null,
texture: null,
paused: false,
idle: false,
running: true,
interacting: false,
awakeUntil: 0,
observers: [],
listeners: [],
timers: [],
error: null
}
const sizeObserver = new ResizeObserver(() => resize())
sizeObserver.observe(element)
state.observers.push(sizeObserver)
resize()
watchCards()
watchTheme()
watchVisibility()
}
// The located posts of the feed: [{ key, lat, lng, src, label, host, serverLat, serverLng, range, cdn, beforeLat,
// beforeLng, beforeLabel }] (src "cdn" posts have no lat/lng, only their CDN's key), and PrivaPub's own place
// ({ lat, lng, label } or null), where every arc starts.
export function setPosts(posts, self) {
if (!state)
return
state.points = new Map(posts.filter(p => p.src === "cdn" ? !!p.cdn : Number.isFinite(p.lat) && Number.isFinite(p.lng)).map(p => [p.key, p]))
state.self = self && Number.isFinite(self.lat) && Number.isFinite(self.lng) ? self : null
drawPoints()
scheduleView()
wake()
}
// Live numbers for the nerd stats overlay; null until the globe exists.
export function stats() {
if (!state?.globe)
return state?.error ? { error: state.error } : null
const camera = state.globe.pointOfView()
const visibleLocated = [...state.visible].filter(key => placed(state.points.get(key))).length
return {
latitude: round(camera.lat, 2),
longitude: round(camera.lng, 2),
altitude: round(camera.altitude, 2),
visible: state.visible.size,
visibleLocated,
centroidLatitude: state.view ? round(state.view.lat, 2) : null,
centroidLongitude: state.view ? round(state.view.lng, 2) : null,
spreadKm: Math.round(state.spreadKm),
points: aggregate().length,
posts: state.points.size,
servers: new Set([...state.points.values()].map(p => p.host)).size,
cdnGroups: cdnGroups().length,
fps: state.fps,
renderer: state.renderer,
texture: state.sunUniforms.nightReady.value ? "day+night" : "day",
anisotropy: state.anisotropy,
autoRotate: !!state.globe.controls().autoRotate,
paused: state.paused,
idle: state.idle,
hovered: state.hovered && state.points.has(state.hovered) ? state.points.get(state.hovered).label ?? state.hovered : null,
arcs: state.globe.arcsData().length,
rings: state.globe.ringsData().length,
countries: state.countries.length,
countryNames: state.countryNames,
borders: state.borders.length,
sun: sunStats()
}
}
// The Sun's moment as the overlay shows it: now, or the focused post's moment and what the Sun does at its place.
function sunStats() {
const sun = state.sun
const focus = state.focus
const place = focus && Number.isFinite(focus.lat) ? sunAtPlace(sun, focus.lat, focus.lng) : null
const seasons = seasonsOf(sun)
return {
at: sun.date.toISOString(),
now: !focus,
latitude: round(sun.lat, 2),
longitude: round(sun.lng, 2),
distance: round(sun.distance, 5),
irradiance: round(sun.irradiance, 4),
eclipticLongitude: round(sun.eclipticLongitude, 2),
obliquity: round(sun.obliquity, 3),
place: focus?.label ?? null,
placeLatitude: focus && Number.isFinite(focus.lat) ? round(focus.lat, 2) : null,
placeLongitude: focus && Number.isFinite(focus.lng) ? round(focus.lng, 2) : null,
elevation: place ? round(place.elevation, 1) : null,
phase: place?.phase ?? null,
morning: place?.morning ?? null,
solarTime: place?.solarTime ?? null,
dayLength: place ? round(place.dayLength, 2) : null,
season: place?.season ?? null,
hemisphere: place?.hemisphere ?? null,
seasonNorth: seasons.north,
seasonSouth: seasons.south,
nextEvent: seasons.nextEvent,
nextEventDays: seasons.nextEventDays
}
}
export function dispose() {
if (!state)
return
state.observers.forEach(observer => observer.disconnect())
state.listeners.forEach(([target, type, listener]) => target.removeEventListener(type, listener))
state.timers.forEach(timer => clearInterval(timer))
if (state.globe) {
state.globe.pauseAnimation()
state.globe._destructor?.()
state.element.replaceChildren()
}
state = null
}
function resize() {
const { width, height } = state.element.getBoundingClientRect()
if (width < 10 || height < 10) {
pause(true)
return
}
if (!state.globe) {
build(width, height)
return
}
state.globe.width(width).height(height)
pause(document.visibilityState !== "visible")
wake()
}
async function build(width, height) {
if (state.building)
return
state.building = true
const current = state
try {
const Globe = await loadLibrary()
if (state !== current)
return
const globe = new Globe(state.element, { rendererConfig: { antialias: true, alpha: true } })
state.globe = globe
globe.width(width).height(height)
.backgroundColor("rgba(0,0,0,0)")
.showAtmosphere(true)
.atmosphereAltitude(0.18)
.pointsMerge(false)
.pointAltitude(p => 0.01 + Math.min(p.count, 30) * 0.004)
.pointRadius(p => 0.25 + Math.min(Math.sqrt(p.count), 6) * 0.12)
.pointColor(p => colour(p.src))
.pointLabel(p => label(p))
.pointsTransitionDuration(reducedMotion.matches ? 0 : 600)
.ringColor(r => t => r.colour.replace(/[\d.]+\)$/, `${(1 - t).toFixed(2)})`))
.ringMaxRadius(r => r.radius)
.ringPropagationSpeed(r => r.speed)
.ringRepeatPeriod(r => r.period)
.arcColor(() => [colour("self", 0.9), colour("server", 0.9)])
.arcStroke(0.6)
.arcAltitudeAutoScale(0.4)
.arcDashLength(0.45)
.arcDashGap(0.25)
.arcDashInitialGap(1)
.arcDashAnimateTime(reducedMotion.matches ? 0 : 1600)
.htmlLat(d => d.lat)
.htmlLng(d => d.lng)
.htmlAltitude(d => d.kind === "country" ? 0.004 : 0.12)
.htmlElement(d => d.kind === "country" ? countryLabel(d) : cdnLabel(d))
.htmlTransitionDuration(0)
// the label renderer sets display on every frame, so labels hide through visibility; country names are
// placed by placeLabels
.htmlElementVisibilityModifier((element, inFront) => {
if (!element.classList.contains("globe-country"))
element.style.visibility = inFront ? "" : "hidden"
})
.pathPoints(b => b.points)
.pathPointLat(p => p[0])
.pathPointLng(p => p[1])
.pathPointAlt(0.0015)
.pathColor(() => "rgba(255,255,255,0.32)")
.pathStroke(null)
.pathTransitionDuration(0)
.globeImageUrl(textures.day)
sharpen(globe)
loadNight()
loadCountries()
const controls = globe.controls()
controls.autoRotateSpeed = 0.35
controls.enableDamping = true
controls.addEventListener("start", () => {
state.interacting = true
wake()
})
controls.addEventListener("end", () => {
state.interacting = false
wake(1500)
})
listen(state.element, "pointermove", () => wake(1000))
globe.pointOfView({ lat: 30, lng: 10, altitude: 2.6 * narrowness() }, 0)
state.timers.push(setInterval(() => {
if (!state.focus)
aimSun(sunAt(new Date()))
}, 30000))
applyTheme()
readRenderer()
countFrames()
drawPoints()
scheduleView()
pause(document.visibilityState !== "visible")
} catch (e) {
state.error = e.message
console.error(e)
window.logFromJs?.(e.message, "globe.build")
} finally {
if (state === current)
state.building = false
}
}
// The globe is a UV sphere: towards the poles its triangles narrow to slivers meeting at one point, and texture
// coordinates interpolated across them pinch the map into a star around the axis. Each pixel computes its own instead,
// from its exact point on the sphere (the inverse of three.js SphereGeometry's mapping), so the map is drawn the same
// everywhere. The mipmap level comes from gradients taken on whichever of two longitude ranges has no jump at that pixel,
// and the map wraps around horizontally (keepSharp), so the 180° meridian shows no seam; anisotropic filtering keeps
// high latitudes sharp at grazing angles, at 8× at most: sharper than that is barely visible and costs on phones.
// The Sun replaces the scene's lights: the day map where it is up, shaded by its height (cosine of its zenith angle,
// eased so the low sun does not go black at once) and scaled by the Earth–Sun distance; where it is down, the night
// map's city lights, warmed to sodium's colour, over a dim trace of that map's land; the two blended across twilight,
// from 7° below the horizon to 6° above, with a faint warm band along the terminator.
function sharpen(globe) {
const material = globe.globeMaterial()
material.onBeforeCompile = shader => {
Object.assign(shader.uniforms, state.sunUniforms)
shader.vertexShader = shader.vertexShader
.replace("#include <common>", "#include <common>\nvarying vec3 vSpherePoint;")
.replace("#include <begin_vertex>", "#include <begin_vertex>\nvSpherePoint = position;")
shader.fragmentShader = shader.fragmentShader
.replace("#include <common>", `#include <common>
varying vec3 vSpherePoint;
uniform vec3 sunDirection;
uniform float sunIntensity;
uniform sampler2D nightMap;
uniform float nightReady;`)
.replace("#include <opaque_fragment>", `
#ifdef USE_MAP
gl_FragColor = vec4(earthColor, diffuseColor.a);
#else
#include <opaque_fragment>
#endif`)
.replace("#include <map_fragment>", `
vec3 earthColor = vec3(0.0);
#ifdef USE_MAP
vec3 spherePoint = normalize(vSpherePoint);
float sphereU = atan(spherePoint.z, -spherePoint.x) / (2.0 * PI);
float sphereV = 1.0 - acos(clamp(spherePoint.y, -1.0, 1.0)) / PI;
float uWhole = fract(sphereU);
float uShifted = fract(sphereU + 0.5) - 0.5;
vec2 gradientX = vec2(dFdx(uWhole), dFdx(sphereV));
vec2 gradientY = vec2(dFdy(uWhole), dFdy(sphereV));
float shiftedX = dFdx(uShifted);
float shiftedY = dFdy(uShifted);
if (abs(shiftedX) + abs(shiftedY) < abs(gradientX.x) + abs(gradientY.x)) {
gradientX.x = shiftedX;
gradientY.x = shiftedY;
}
vec4 sampledDiffuseColor = textureGrad(map, vec2(uWhole, sphereV), gradientX, gradientY);
diffuseColor *= sampledDiffuseColor;
vec3 nightSample = textureGrad(nightMap, vec2(uWhole, sphereV), gradientX, gradientY).rgb * nightReady;
float glow = smoothstep(0.03, 0.12, dot(nightSample, vec3(0.2126, 0.7152, 0.0722)));
vec3 cityLights = nightSample * glow * vec3(2.6, 2.1, 1.4);
float sunHeight = dot(spherePoint, sunDirection);
float daylight = smoothstep(-0.12, 0.10, sunHeight);
vec3 dayColor = diffuseColor.rgb * sunIntensity * (0.10 + 0.90 * pow(max(sunHeight, 0.0), 0.7));
vec3 nightColor = cityLights + nightSample * 0.35 + diffuseColor.rgb * 0.015;
float terminator = exp(-pow(sunHeight / 0.05, 2.0));
earthColor = mix(nightColor, dayColor, daylight) + vec3(0.50, 0.22, 0.06) * terminator * 0.05;
#endif`)
}
material.customProgramCacheKey = () => "privapub-sunlit-sphere"
material.needsUpdate = true
state.anisotropy = Math.min(8, globe.renderer().capabilities.getMaxAnisotropy())
}
// Both maps wrap around horizontally, so filtering at the 180° meridian blends the map's two edges instead of clamping
// each, and get anisotropic filtering.
const RepeatWrapping = 1000//three.js's RepeatWrapping: the bundle does not expose THREE
function keepSharp() {
const map = state?.globe?.globeMaterial().map
if (!map)
return
if (map.anisotropy !== state.anisotropy || map.wrapS !== RepeatWrapping) {
map.anisotropy = state.anisotropy
map.wrapS = RepeatWrapping
map.needsUpdate = true
wake(500)
}
// the night map is a texture of the same kind as the day map globe.gl loaded (the bundle does not expose THREE)
if (state.nightImage?.complete && !state.sunUniforms.nightMap.value) {
const night = new map.constructor(state.nightImage)
night.colorSpace = map.colorSpace
night.anisotropy = state.anisotropy
night.wrapS = RepeatWrapping
night.needsUpdate = true
state.sunUniforms.nightMap.value = night
state.sunUniforms.nightReady.value = 1
wake(500)
}
}
function loadNight() {
const image = new Image()
image.decoding = "async"
image.onload = () => {
state.nightImage = image
}
image.src = textures.night
}
// The Sun moves to a new moment: its subsolar point travels there over about a second (the shorter way round), or
// jumps with reduced motion.
function aimSun(sun) {
state.sun = sun
state.sunUniforms.sunIntensity.value = sun.irradiance
if (reducedMotion.matches)
state.sunPoint = { lat: sun.lat, lng: sun.lng }
state.sunUniforms.sunDirection.value = directionOf(state.sunPoint)
// one frame for the new irradiance; stepSun keeps the globe drawing while the Sun travels
wake(100)
state.reference?.invokeMethodAsync("SunChanged").catch(() => { })
}
// Called every frame: eases the subsolar point towards the Sun's.
function stepSun() {
const point = state.sunPoint
const dLat = state.sun.lat - point.lat
const dLng = ((state.sun.lng - point.lng + 540) % 360) - 180
if (Math.abs(dLat) < 0.02 && Math.abs(dLng) < 0.02) {
if (point.lat !== state.sun.lat || point.lng !== state.sun.lng) {
state.sunPoint = { lat: state.sun.lat, lng: state.sun.lng }
state.sunUniforms.sunDirection.value = directionOf(state.sunPoint)
}
return
}
const k = Math.abs(dLat) < 0.5 && Math.abs(dLng) < 0.5 ? 1 : 0.12
state.sunPoint = { lat: point.lat + dLat * k, lng: point.lng + dLng * k }
state.sunUniforms.sunDirection.value = directionOf(state.sunPoint)
wake(300)
}
// The moment a post was written (its card's data-post-at), and its place when it has one (its own, or its server's
// before a CDN), while it is hovered, focused or pinned; otherwise now.
function focusOn(key) {
const card = key ? state.scroller?.querySelector(`[data-post-id="${CSS.escape(key)}"]`) : null
const at = card?.dataset.postAt ? new Date(card.dataset.postAt) : null
if (!at || Number.isNaN(at.getTime())) {
if (state.focus) {
state.focus = null
aimSun(sunAt(new Date()))
}
return
}
if (state.focus?.key === key)
return
const post = state.points.get(key)
const lat = placed(post) ? post.lat : post?.beforeLat
const lng = placed(post) ? post.lng : post?.beforeLng
state.focus = { key, at, lat, lng, label: post?.label ?? null }
aimSun(sunAt(at))
}
// Country names in the reader's language (Intl.DisplayNames), Natural Earth's English names when the browser has none.
function regionNames(language) {
try {
return new Intl.DisplayNames([language || navigator.language, "en"], { type: "region" })
} catch {
return null
}
}
async function loadCountries() {
try {
const response = await fetch(countriesUrl)
const data = await response.json()
if (!state?.globe)
return
state.borders = data.borders.map(line => {
const points = []
for (let i = 0; i < line.length; i += 2)
points.push([line[i + 1], line[i]])
return { points }
})
state.countries = data.countries.map(c => ({ kind: "country", ...c }))
state.globe.pathsData(state.borders)
drawPoints()
placeLabels(true)
wake(500)
} catch (e) {
console.error(e)
window.logFromJs?.(e.message, "globe.loadCountries")
}
}
function countryLabel(country) {
const element = document.createElement("div")
element.className = "globe-country"
element.style.visibility = "hidden"
let name = country.name
try {
name = (country.code && state.names?.of(country.code)) || country.name
} catch {
}
element.textContent = name
state.labelOf.set(country, element)
state.labelKey = null
return element
}
// How many pixels a degree of the surface spans under the camera: the surface there is altitude globe radii away, and a
// degree is a 180/π-th of a radius.
function pixelsPerDegree(altitude) {
const { height } = state.element.getBoundingClientRect()
const fov = (state.globe.camera().fov ?? 50) * Math.PI / 180
return height / (2 * Math.tan(fov / 2) * Math.max(0.01, altitude)) * Math.PI / 180
}
// Which country names show, and how large, whenever the camera moved (at most every 100 ms): largest countries first,
// each where its polygon spans at least 34 px on screen (less towards the globe's edge, which foreshortens it), away
// from the edge, and clear of the names already placed. Names grow from 9 to 16 px with their country and fade in over
// their first pixels, so they do not pop.
function placeLabels(force = false) {
if (!state?.globe || state.labelOf.size === 0)
return
const camera = state.globe.pointOfView()
const { width, height } = state.element.getBoundingClientRect()
const key = `${camera.lat.toFixed(2)},${camera.lng.toFixed(2)},${camera.altitude.toFixed(3)},${width}x${height}`
const now = performance.now()
if (!force && (key === state.labelKey || now - state.labelsAt < 100))
return
state.labelKey = key
state.labelsAt = now
const perDegree = pixelsPerDegree(camera.altitude)
const horizon = 1 / (1 + camera.altitude)
const view = unit(camera.lat, camera.lng)
const taken = []
for (const country of state.countries) {
const element = state.labelOf.get(country)
if (!element)
continue
const point = unit(country.lat, country.lng)
const facing = (view[0] * point[0] + view[1] * point[1] + view[2] * point[2] - horizon) / (1 - horizon)
const pixels = country.size * perDegree * Math.sqrt(Math.max(facing, 0))
let shown = facing > 0.2 && pixels >= 34
if (shown) {
const size = Math.max(9, Math.min(16, 8 + pixels / 20))
const at = state.globe.getScreenCoords(country.lat, country.lng, 0.004)
const halfWidth = element.textContent.length * size * 0.3 + 3
const halfHeight = size * 0.6 + 2
const box = [at.x - halfWidth, at.y - halfHeight, at.x + halfWidth, at.y + halfHeight]
shown = !taken.some(b => box[0] < b[2] && box[2] > b[0] && box[1] < b[3] && box[3] > b[1])
if (shown) {
taken.push(box)
element.style.fontSize = `${size.toFixed(1)}px`
element.style.opacity = Math.min(1, 0.45 + (pixels - 34) / 50).toFixed(2)
}
}
element.style.visibility = shown ? "" : "hidden"
}
state.countryNames = taken.length
}
function unit(lat, lng) {
const φ = lat * Math.PI / 180, λ = lng * Math.PI / 180
return [Math.cos(φ) * Math.cos(λ), Math.cos(φ) * Math.sin(λ), Math.sin(φ)]
}
// Which cards are in view: an IntersectionObserver on every [data-post-id] of the scroll container, re-attached as
// the list changes; hover by delegation on the container.
function watchCards() {
const scroller = state.scroller
if (!scroller)
return
const visibility = new IntersectionObserver(entries => {
for (const entry of entries) {
const key = entry.target.dataset.postId
if (entry.isIntersecting)
state.visible.add(key)
else
state.visible.delete(key)
}
scheduleView()
}, { root: scroller, threshold: 0.35 })
const observeAll = () => scroller.querySelectorAll("[data-post-id]").forEach(card => visibility.observe(card))
observeAll()
const changes = new MutationObserver(mutations => {
for (const mutation of mutations)
for (const node of mutation.removedNodes)
if (node.nodeType === 1 && node.dataset?.postId)
state.visible.delete(node.dataset.postId)
observeAll()
scheduleView()
})
changes.observe(scroller, { childList: true, subtree: true })
state.observers.push(visibility, changes)
listen(scroller, "mouseover", event => {
const card = event.target.closest?.("[data-post-id]")
if (card && card.dataset.postId !== state.hovered)
hover(card.dataset.postId)
})
listen(scroller, "mouseleave", () => hover(null))
listen(scroller, "focusin", event => {
const card = event.target.closest?.("[data-post-id]")
if (card && card.dataset.postId !== state.hovered)
hover(card.dataset.postId)
})
listen(scroller, "focusout", event => {
if (!event.relatedTarget?.closest?.("[data-post-id]") && !scroller.matches(":hover"))
hover(null)
})
// a click on a card (not on its links or controls) pins it: the globe keeps its moment and place until it is
// clicked again or another card is pinned
listen(scroller, "click", event => {
const card = event.target.closest?.("[data-post-id]")
if (!card || event.target.closest("a, button, input, textarea, select, label, summary, video, audio, [role=button]"))
return
const key = card.dataset.postId
scroller.querySelectorAll("[data-globe-pinned]").forEach(c => c.removeAttribute("data-globe-pinned"))
state.pinned = state.pinned === key ? null : key
if (state.pinned)
card.setAttribute("data-globe-pinned", "")
state.hovered = null
hover(key)
})
listen(scroller, "mouseout", event => {
const from = event.target.closest?.("[data-post-id]")
const to = event.relatedTarget?.closest?.("[data-post-id]")
if (from && !to)
hover(null)
})
}
function watchTheme() {
const themeObserver = new MutationObserver(() => applyTheme())
themeObserver.observe(document.documentElement, { attributes: true, attributeFilter: ["data-theme", "style", "class"] })
state.observers.push(themeObserver)
const scheme = matchMedia("(prefers-color-scheme: dark)")
listen(scheme, "change", () => applyTheme())
}
function watchVisibility() {
listen(document, "visibilitychange", () => pause(document.visibilityState !== "visible" || !hasSize()))
listen(reducedMotion, "change", () => scheduleView())
}
function listen(target, type, listener) {
target.addEventListener(type, listener)
state.listeners.push([target, type, listener])
}
function hasSize() {
const { width, height } = state.element.getBoundingClientRect()
return width >= 10 && height >= 10
}
function pause(paused) {
if (!state?.globe || state.paused === paused)
return
state.paused = paused
render()
}
// globe.gl draws every frame; this keeps its loop running only while the globe is shown and something moves.
function render() {
const run = !state.paused && !state.idle
if (run === state.running)
return
state.running = run
if (run)
state.globe.resumeAnimation()
else
state.globe.pauseAnimation()
}
// Something is about to move: draw for at least ms more.
function wake(ms = 1500) {
if (!state?.globe)
return
state.awakeUntil = Math.max(state.awakeUntil, performance.now() + ms)
if (state.idle) {
state.idle = false
render()
}
}
// Checked every second: nothing hovered, dragged, rotating or flying, so the last frame can stay on screen.
function settle() {
if (!state?.globe || state.idle)
return
if (state.hovered || state.interacting || state.globe.controls().autoRotate || performance.now() < state.awakeUntil)
return
state.idle = true
render()
}
function applyTheme() {
if (!state?.globe)
return
state.colours = null
state.globe.atmosphereColor(colour("server", 1))
drawPoints()
wake(2000)
}
// The theme's colours, resolved to rgb (the tokens are hsl() of CSS variables, which three.js cannot read).
function colour(kind, alpha = 0.95) {
state.colours ??= (() => {
const probe = document.createElement("span")
probe.style.display = "none"
document.body.appendChild(probe)
const read = token => {
probe.style.color = `var(${token})`
return getComputedStyle(probe).color
}
const colours = {
server: read("--color-primary"),
place: read("--color-accent"),
country: read("--color-secondary"),
nearyou: read("--color-success"),
self: read("--color-base-content")
}
probe.remove()
return colours
})()
const rgb = (state.colours[kind] ?? state.colours.server).match(/[\d.]+/g)?.slice(0, 3) ?? [128, 128, 128]
return `rgba(${rgb.join(",")},${alpha})`
}
// A post with a place on Earth (not a CDN-fronted server's).
function placed(post) {
return !!post && post.src !== "cdn"
}
// The CDN groups, each at its own longitude on a ring at 68°N, ordered by key so they keep their places.
function cdnGroups() {
const byKey = new Map()
for (const post of state.points.values()) {
if (post.src !== "cdn")
continue
const group = byKey.get(post.cdn) ?? { key: post.cdn, name: post.label, hosts: new Set(), count: 0 }
group.count++
if (post.host)
group.hosts.add(post.host)
byKey.set(post.cdn, group)
}
const groups = [...byKey.values()].sort((a, b) => a.key.localeCompare(b.key))
groups.forEach((group, i) => {
group.lat = 68
group.lng = -180 + (i + 0.5) * 360 / groups.length
})
return groups
}
// Posts at the same place are one point; PrivaPub's own server is a point of its own.
function aggregate() {
const byPlace = new Map()
for (const post of state.points.values()) {
if (!placed(post))
continue
const kind = post.src === "event" ? "place" : post.src
const id = `${kind}:${post.lat.toFixed(2)},${post.lng.toFixed(2)}`
const point = byPlace.get(id) ?? { lat: post.lat, lng: post.lng, src: kind, label: post.label, hosts: new Set(), count: 0 }
point.count++
if (post.host)
point.hosts.add(post.host)
byPlace.set(id, point)
}
const points = [...byPlace.values()]
if (state.self)
points.push({ lat: state.self.lat, lng: state.self.lng, src: "self", label: state.self.label, hosts: new Set([state.self.host]), count: 1 })
return points
}
function drawPoints() {
if (!state?.globe)
return
state.groups = cdnGroups()
state.globe.pointsData(aggregate())
state.globe.htmlElementsData([...state.groups.map(g => ({ kind: "cdn", ...g })), ...state.countries])
drawRings()
}
function cdnLabel(group) {
const element = document.createElement("div")
element.className = "globe-cdn"
element.textContent = `☁ ${group.name} · ${group.count}`
element.title = [...group.hosts].slice(0, 10).join("\n")
return element
}
function label(point) {
const escape = text => String(text ?? "").replace(/[&<>"']/g, c => ({ "&": "&amp;", "<": "&lt;", ">": "&gt;", '"': "&quot;", "'": "&#39;" })[c])
const hosts = [...point.hosts].slice(0, 4).map(escape).join("<br>")
const more = point.hosts.size > 4 ? `<br>+${point.hosts.size - 4}` : ""
return `<div class="globe-label"><b>${escape(point.label || "")}</b><br>${hosts}${more}` +
`<br><span>${point.count} · ${escape(point.src)} · ${point.lat.toFixed(2)}, ${point.lng.toFixed(2)}</span></div>`
}
// The pulse under the hovered post, and the reach of located posts around the reader.
function drawRings() {
if (!state?.globe)
return
const rings = []
const hovered = state.hovered && state.points.get(state.hovered)
if (placed(hovered))
rings.push({ lat: hovered.lat, lng: hovered.lng, radius: 4, speed: 3, period: reducedMotion.matches ? 100000 : 900, colour: colour(hovered.src, 1) })
else if (hovered && Number.isFinite(hovered.beforeLat))
rings.push({ lat: hovered.beforeLat, lng: hovered.beforeLng, radius: 3, speed: 1.5, period: reducedMotion.matches ? 100000 : 1400, colour: colour("country", 1) })
const reach = Math.max(0, ...[...state.points.values()].filter(p => p.src === "nearyou").map(p => p.range ?? 0))
const reader = [...state.points.values()].find(p => p.src === "nearyou")
if (reader && reach > 0)
rings.push({ lat: reader.lat, lng: reader.lng, radius: reach / 111, speed: reach / 111 / 2, period: reducedMotion.matches ? 100000 : 2400, colour: colour("nearyou", 0.8) })
state.globe.ringsData(rings)
}
function hover(key) {
key ??= state?.pinned
if (!state?.globe || state.hovered === key)
return
state.hovered = key
wake(1300)
const post = key && state.points.get(key)
focusOn(key)
drawRings()
if (!post) {
state.globe.arcsData([])
fly(state.view, 900)
return
}
if (!placed(post)) {
const group = state.groups?.find(g => g.key === post.cdn)
state.globe.arcsData(group && state.self ? [{ startLat: state.self.lat, startLng: state.self.lng, endLat: group.lat, endLng: group.lng }] : [])
const target = Number.isFinite(post.beforeLat) ? { lat: post.beforeLat, lng: post.beforeLng } : group
if (target && distance(state.globe.pointOfView(), target) > 2500)
fly({ lat: target.lat, lng: target.lng, altitude: state.globe.pointOfView().altitude }, 900)
return
}
const from = post.src === "place" || post.src === "event"
? (Number.isFinite(post.serverLat) ? { lat: post.serverLat, lng: post.serverLng } : state.self)
: state.self
state.globe.arcsData(from && distance(from, post) > 30
? [{ startLat: from.lat, startLng: from.lng, endLat: post.lat, endLng: post.lng }]
: [])
const camera = state.globe.pointOfView()
if (distance(camera, post) > 2500)
fly({ lat: post.lat, lng: post.lng, altitude: camera.altitude }, 900)
}
let viewTimer = null
function scheduleView() {
clearTimeout(viewTimer)
viewTimer = setTimeout(updateView, 250)
}
// The spherical mean of the located posts in view, and an altitude that fits their spread.
function updateView() {
if (!state?.globe)
return
const located = [...state.visible].map(key => state.points.get(key)).filter(placed)
const controls = state.globe.controls()
if (located.length === 0) {
state.view = null
state.spreadKm = 0
controls.autoRotate = !reducedMotion.matches
wake()
return
}
controls.autoRotate = false
let x = 0, y = 0, z = 0
for (const p of located) {
const lat = p.lat * Math.PI / 180, lng = p.lng * Math.PI / 180
x += Math.cos(lat) * Math.cos(lng)
y += Math.cos(lat) * Math.sin(lng)
z += Math.sin(lat)
}
const mean = {
lat: Math.atan2(z, Math.hypot(x, y)) * 180 / Math.PI,
lng: Math.atan2(y, x) * 180 / Math.PI
}
state.spreadKm = Math.max(0, ...located.map(p => distance(mean, p)))
mean.altitude = Math.min(3.6, (1.5 + state.spreadKm / 3500) * narrowness())
state.view = mean
if (!state.hovered)
fly(mean, 1200)
}
function fly(view, ms) {
if (!view || !state?.globe)
return
wake((reducedMotion.matches ? 0 : ms) + 400)
state.globe.pointOfView(view, reducedMotion.matches ? 0 : ms)
}
// A column taller than wide shows less of the globe across: the camera moves back to keep it whole.
function narrowness() {
const { width, height } = state.element.getBoundingClientRect()
return width > 0 && height > width ? Math.min(1.8, height / width) : 1
}
// Great-circle distance in kilometres.
function distance(a, b) {
const toRadians = degrees => degrees * Math.PI / 180
const dLat = toRadians(b.lat - a.lat), dLng = toRadians(b.lng - a.lng)
const h = Math.sin(dLat / 2) ** 2 + Math.cos(toRadians(a.lat)) * Math.cos(toRadians(b.lat)) * Math.sin(dLng / 2) ** 2
return 2 * 6371 * Math.asin(Math.min(1, Math.sqrt(h)))
}
function readRenderer() {
try {
const gl = state.globe.renderer().getContext()
const info = gl.getExtension("WEBGL_debug_renderer_info")
state.renderer = info ? gl.getParameter(info.UNMASKED_RENDERER_WEBGL) : gl.getParameter(gl.RENDERER)
} catch {
state.renderer = null
}
}
// Frames per second, counted over each second while the globe renders.
function countFrames() {
const current = state
const tick = () => {
if (state !== current)
return
if (state.running)
state.frames++
keepSharp()
stepSun()
placeLabels()
requestAnimationFrame(tick)
}
requestAnimationFrame(tick)
state.timers.push(setInterval(() => {
state.fps = state.running ? state.frames : 0
state.frames = 0
settle()
}, 1000))
}
function round(value, digits) {
return Number.isFinite(value) ? Number(value.toFixed(digits)) : null
}