[feat](trx-rs): add ham sat pass predictions; rename SAT tab
- Rename "Weather Satellites" sub-tab to "SAT" - Add "Predictions" view: next 24 h flyby table for 13 ham sats (ISS, AO-91, AO-92, SO-50, AO-73, JO-97, PO-101, LilacSat-2, CAS-4B, EO-88, RS-44, SALSAT, GREENCUBE) - trx-core/geo: add PassPrediction, HAM_SATS, compute_upcoming_passes(), find_passes_for_sat(), compute_az_el() helpers; spawn_tle_refresh_task now also fetches CelesTrak amateur group on startup and every 24 h - trx-frontend-http: add GET /sat_passes endpoint - app.js: locator tooltips now accumulate all receivers per station via remotes Set; _detailPassesRigFilter checks the Set Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com> Signed-off-by: Stan Grams <sjg@haxx.space>
This commit is contained in:
@@ -7002,10 +7002,16 @@ function buildDecodeLocatorTooltipHtml(grid, entry, type) {
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Number.isFinite(detail?.dt_s) ? `dt ${Number(detail.dt_s).toFixed(2)}` : null,
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escapeMapHtml(freq),
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].filter(Boolean).join(" · ");
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const rxLabel = _receiverLabel(detail?.remote);
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const rxHtml = rxLabel
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? `<div class="decode-locator-tip-rx">${escapeMapHtml(rxLabel)}</div>`
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: "";
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const remoteIds = detail?.remotes instanceof Set && detail.remotes.size > 0
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? Array.from(detail.remotes)
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: (detail?.remote ? [detail.remote] : []);
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const rxHtml = remoteIds
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.map(rid => {
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const label = _receiverLabel(rid);
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return label ? `<div class="decode-locator-tip-rx">${escapeMapHtml(label)}</div>` : "";
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})
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.filter(Boolean)
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.join("");
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const message = detail?.message
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? `<div class="decode-locator-tip-note">${escapeMapHtml(String(detail.message))}</div>`
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: "";
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@@ -7113,6 +7119,7 @@ function _locatorEntryVisibleOnMap(entry) {
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function _detailPassesRigFilter(detail) {
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if (!mapRigFilter) return true;
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if (detail?.remotes instanceof Set) return detail.remotes.has(mapRigFilter);
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return detail?.remote === mapRigFilter;
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}
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@@ -7603,6 +7610,7 @@ window.mapAddLocator = function(message, grids, type = "ft8", station = null, de
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freq_hz: Number.isFinite(details?.freq_hz) ? Number(details.freq_hz) : null,
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message: String(details?.message || message || "").trim() || null,
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remote: msgRigId || null,
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remotes: new Set(msgRigId ? [msgRigId] : []),
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};
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const detailKey = detailStationId || `${targetId || "decode"}:${detailEntry.message || "decode"}:${detailEntry.ts_ms || Date.now()}`;
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const key = `${markerType}:${grid}`;
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@@ -7614,7 +7622,10 @@ window.mapAddLocator = function(message, grids, type = "ft8", station = null, de
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? new Map(existing.stationDetails)
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: new Map();
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}
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existing.allStationDetails.set(detailKey, { ...detailEntry });
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const prevDetail = existing.allStationDetails.get(detailKey);
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const mergedRemotes = prevDetail?.remotes instanceof Set ? new Set(prevDetail.remotes) : new Set();
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if (msgRigId) mergedRemotes.add(msgRigId);
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existing.allStationDetails.set(detailKey, { ...detailEntry, remotes: mergedRemotes });
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existing.sourceType = markerType;
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if (msgRigId) {
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if (!existing.rigIds) existing.rigIds = new Set();
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@@ -515,7 +515,7 @@
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<button class="sub-tab" data-subtab="ft2">FT2</button>
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<button class="sub-tab" data-subtab="wspr">WSPR</button>
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<button class="sub-tab" data-subtab="rds">RDS</button>
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<button class="sub-tab" data-subtab="wxsat">Weather Satellites</button>
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<button class="sub-tab" data-subtab="wxsat">SAT</button>
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</div>
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<div id="subtab-overview" class="sub-tab-panel">
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<div class="plugin-item">
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@@ -811,6 +811,7 @@
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<div class="wxsat-view-bar">
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<button id="wxsat-view-live" class="wxsat-view-btn wxsat-view-active" type="button">Live</button>
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<button id="wxsat-view-history" class="wxsat-view-btn" type="button">History</button>
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<button id="wxsat-view-predictions" class="wxsat-view-btn" type="button">Predictions</button>
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</div>
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<!-- Live view -->
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<div id="wxsat-live-view">
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@@ -861,6 +862,18 @@
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<div id="wxsat-history-list"></div>
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<small id="wxsat-history-count" style="color:var(--text-muted);font-size:0.75rem;">No images yet</small>
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</div>
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<!-- Predictions view -->
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<div id="wxsat-predictions-view" style="display:none;">
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<div class="sat-pred-header">
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<span class="sat-pred-col-time">AOS (UTC)</span>
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<span class="sat-pred-col-sat">Satellite</span>
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<span class="sat-pred-col-el">Max El</span>
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<span class="sat-pred-col-dur">Duration</span>
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<span class="sat-pred-col-dir">Direction</span>
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</div>
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<div id="sat-pred-list"></div>
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<small id="sat-pred-status" style="color:var(--text-muted);font-size:0.75rem;">Loading predictions…</small>
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</div>
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</div>
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</div>
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<div id="tab-map" class="tab-panel" style="display:none;">
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@@ -1109,7 +1122,7 @@
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<button id="settings-clear-ft4-history" class="sch-write sch-reset-btn" type="button">Clear full FT4 history</button>
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<button id="settings-clear-ft2-history" class="sch-write sch-reset-btn" type="button">Clear full FT2 history</button>
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<button id="settings-clear-wspr-history" class="sch-write sch-reset-btn" type="button">Clear full WSPR history</button>
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<button id="settings-clear-wxsat-history" class="sch-write sch-reset-btn" type="button">Clear full Weather Sat history</button>
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<button id="settings-clear-wxsat-history" class="sch-write sch-reset-btn" type="button">Clear full Sat history</button>
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</div>
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</div>
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</div>
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@@ -1,11 +1,13 @@
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// --- Weather Satellite Decoder Plugin ---
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// --- SAT Plugin ---
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// Live view: decoder state, latest image card
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// History view: filterable table of all decoded images
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// Predictions view: next 24 h passes for ham satellites
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// ── DOM references ──────────────────────────────────────────────────
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const wxsatStatus = document.getElementById("wxsat-status");
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const wxsatLiveView = document.getElementById("wxsat-live-view");
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const wxsatHistoryView = document.getElementById("wxsat-history-view");
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const wxsatPredictionsView = document.getElementById("wxsat-predictions-view");
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const wxsatLiveLatest = document.getElementById("wxsat-live-latest");
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const wxsatHistoryList = document.getElementById("wxsat-history-list");
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const wxsatHistoryCount = document.getElementById("wxsat-history-count");
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@@ -19,7 +21,7 @@ const wxsatLrptState = document.getElementById("wxsat-lrpt-state");
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let wxsatImageHistory = [];
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const WXSAT_MAX_IMAGES = 100;
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let wxsatFilterText = "";
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let wxsatActiveView = "live"; // "live" | "history"
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let wxsatActiveView = "live"; // "live" | "history" | "predictions"
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// ── UI scheduler helper ─────────────────────────────────────────────
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function scheduleWxsatUi(key, job) {
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@@ -33,24 +35,26 @@ function scheduleWxsatUi(key, job) {
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// ── View switching ──────────────────────────────────────────────────
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const wxsatViewLiveBtn = document.getElementById("wxsat-view-live");
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const wxsatViewHistoryBtn = document.getElementById("wxsat-view-history");
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const wxsatViewPredictionsBtn = document.getElementById("wxsat-view-predictions");
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function switchWxsatView(view) {
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wxsatActiveView = view;
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if (wxsatLiveView) wxsatLiveView.style.display = view === "live" ? "" : "none";
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if (wxsatHistoryView) wxsatHistoryView.style.display = view === "history" ? "" : "none";
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if (wxsatViewLiveBtn) {
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wxsatViewLiveBtn.classList.toggle("wxsat-view-active", view === "live");
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}
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if (wxsatViewHistoryBtn) {
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wxsatViewHistoryBtn.classList.toggle("wxsat-view-active", view === "history");
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}
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if (wxsatPredictionsView) wxsatPredictionsView.style.display = view === "predictions" ? "" : "none";
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if (wxsatViewLiveBtn) wxsatViewLiveBtn.classList.toggle("wxsat-view-active", view === "live");
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if (wxsatViewHistoryBtn) wxsatViewHistoryBtn.classList.toggle("wxsat-view-active", view === "history");
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if (wxsatViewPredictionsBtn) wxsatViewPredictionsBtn.classList.toggle("wxsat-view-active", view === "predictions");
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if (view === "history") {
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renderWxsatHistoryTable();
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} else if (view === "predictions") {
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loadSatPredictions();
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}
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}
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wxsatViewLiveBtn?.addEventListener("click", () => switchWxsatView("live"));
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wxsatViewHistoryBtn?.addEventListener("click", () => switchWxsatView("history"));
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wxsatViewPredictionsBtn?.addEventListener("click", () => switchWxsatView("predictions"));
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// ── Live view: decoder state ────────────────────────────────────────
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// Updated from app.js render() via window.updateWxsatLiveState
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@@ -284,6 +288,89 @@ document
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}
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});
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// ── Predictions view ────────────────────────────────────────────────
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function azToCardinal(deg) {
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const dirs = ["N", "NE", "E", "SE", "S", "SW", "W", "NW"];
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return dirs[Math.round(deg / 45) % 8];
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}
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function formatPredTime(ms) {
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const d = new Date(ms);
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const now = new Date();
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const dayNames = ["Sun", "Mon", "Tue", "Wed", "Thu", "Fri", "Sat"];
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const day = d.getUTCDay() !== now.getUTCDay()
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? dayNames[d.getUTCDay()] + " "
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: "";
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const hh = String(d.getUTCHours()).padStart(2, "0");
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const mm = String(d.getUTCMinutes()).padStart(2, "0");
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return `${day}${hh}:${mm}`;
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}
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function formatPredDuration(s) {
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if (s >= 60) return `${Math.round(s / 60)} min`;
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return `${s}s`;
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}
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function renderSatPredictions(passes, error) {
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const list = document.getElementById("sat-pred-list");
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const status = document.getElementById("sat-pred-status");
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if (!list) return;
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if (error) {
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list.innerHTML = "";
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if (status) status.textContent = error;
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return;
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}
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if (!Array.isArray(passes) || passes.length === 0) {
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list.innerHTML = "";
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if (status) status.textContent = "No passes found in the next 24 hours.";
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return;
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}
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const fragment = document.createDocumentFragment();
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for (const pass of passes) {
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const row = document.createElement("div");
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row.className = "sat-pred-row";
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const elClass = pass.max_elevation_deg >= 45
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? "sat-pred-el-high"
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: pass.max_elevation_deg >= 10
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? "sat-pred-el-mid"
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: "sat-pred-el-low";
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const dir = `${azToCardinal(pass.azimuth_aos_deg)} → ${azToCardinal(pass.azimuth_los_deg)}`;
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row.innerHTML = [
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`<span class="sat-pred-col-time">${formatPredTime(pass.aos_ms)}</span>`,
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`<span class="sat-pred-col-sat">${pass.satellite}</span>`,
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`<span class="sat-pred-col-el ${elClass}">${pass.max_elevation_deg.toFixed(1)}°</span>`,
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`<span class="sat-pred-col-dur">${formatPredDuration(pass.duration_s)}</span>`,
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`<span class="sat-pred-col-dir">${dir}</span>`,
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].join("");
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fragment.appendChild(row);
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}
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list.replaceChildren(fragment);
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if (status) status.textContent = `${passes.length} pass${passes.length === 1 ? "" : "es"} in the next 24 h · times in UTC`;
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}
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async function loadSatPredictions() {
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const status = document.getElementById("sat-pred-status");
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const list = document.getElementById("sat-pred-list");
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if (status) status.textContent = "Loading predictions\u2026";
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if (list) list.innerHTML = "";
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try {
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const resp = await fetch("/sat_passes");
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if (!resp.ok) throw new Error(`HTTP ${resp.status}`);
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const data = await resp.json();
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if (data.error) {
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renderSatPredictions([], data.error);
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} else {
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renderSatPredictions(data.passes || []);
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}
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} catch (e) {
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renderSatPredictions([], `Failed to load predictions: ${e.message}`);
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}
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}
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// ── Navigate to map centered on satellite image bounds ──────────────
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window.wxsatShowOnMap = function (south, west, north, east) {
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// Enable wxsat filter if not active
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@@ -4538,7 +4538,7 @@ button:focus-visible, input:focus-visible, select:focus-visible {
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width: 100%;
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}
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}
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/* ── Weather Satellite panel ────────────────────────────────────────── */
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/* ── SAT panel ──────────────────────────────────────────────────────── */
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.wxsat-view-bar { display: flex; gap: 0; margin-bottom: 0.75rem; border-bottom: 1px solid var(--border); }
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.wxsat-view-btn { flex-shrink: 0; background: transparent; border: none; border-bottom: 2px solid transparent; border-radius: 0; padding: 0.3rem 0.9rem; color: var(--text-muted); cursor: pointer; font-size: 0.82rem; }
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.wxsat-view-active { border-bottom-color: var(--accent-green); color: var(--accent-green); font-weight: 600; }
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@@ -4561,7 +4561,20 @@ button:focus-visible, input:focus-visible, select:focus-visible {
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.wxsat-latest-card { background: var(--bg-secondary); border: 1px solid var(--border); border-radius: 0.4rem; padding: 0.6rem 0.75rem; }
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.wxsat-latest-card .wxsat-latest-title { font-size: 0.82rem; font-weight: 600; margin-bottom: 0.25rem; }
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.wxsat-latest-card .wxsat-latest-meta { font-size: 0.78rem; color: var(--text-muted); }
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.sat-pred-header { display: grid; grid-template-columns: 6rem 1fr 4.5rem 5rem 6rem; gap: 0.25rem; padding: 0.25rem 0.4rem; font-size: 0.75rem; color: var(--text-muted); text-transform: uppercase; letter-spacing: 0.03em; border-bottom: 1px solid var(--border); }
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.sat-pred-row { display: grid; grid-template-columns: 6rem 1fr 4.5rem 5rem 6rem; gap: 0.25rem; padding: 0.35rem 0.4rem; font-size: 0.82rem; border-bottom: 1px solid var(--border-faint, rgba(255,255,255,0.04)); }
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.sat-pred-row:hover { background: var(--bg-hover, rgba(255,255,255,0.02)); }
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.sat-pred-col-time { font-variant-numeric: tabular-nums; color: var(--text-muted); }
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.sat-pred-col-sat { font-weight: 500; }
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.sat-pred-col-el { font-variant-numeric: tabular-nums; text-align: right; }
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.sat-pred-col-dur { font-variant-numeric: tabular-nums; color: var(--text-muted); }
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.sat-pred-col-dir { color: var(--text-muted); }
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.sat-pred-el-high { color: var(--accent-green); font-weight: 600; }
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.sat-pred-el-mid { color: #f0a020; }
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.sat-pred-el-low { color: var(--text-muted); }
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@media (max-width: 600px) {
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.wxsat-live-grid { grid-template-columns: 1fr; }
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.wxsat-history-header, .wxsat-history-row { grid-template-columns: 5rem 4rem 6rem 4rem 3.5rem 1fr; font-size: 0.75rem; }
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.sat-pred-header, .sat-pred-row { grid-template-columns: 5.5rem 1fr 4rem 4.5rem; font-size: 0.75rem; }
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.sat-pred-col-dir { display: none; }
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}
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@@ -1371,6 +1371,43 @@ pub async fn clear_lrpt_decode(
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.await
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}
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#[derive(serde::Serialize)]
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struct SatPassesResponse {
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passes: Vec<trx_core::geo::PassPrediction>,
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#[serde(skip_serializing_if = "Option::is_none")]
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error: Option<String>,
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}
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/// Return predicted passes for all known amateur satellites over the next 24 h.
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///
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/// Requires the server station location to be configured. Returns an empty
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/// `passes` array with an `error` field if the location is missing.
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#[get("/sat_passes")]
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pub async fn sat_passes(state: web::Data<watch::Receiver<RigState>>) -> impl Responder {
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let rig_state = state.get_ref().borrow().clone();
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let lat = rig_state.server_latitude;
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let lon = rig_state.server_longitude;
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let (Some(lat), Some(lon)) = (lat, lon) else {
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return web::Json(SatPassesResponse {
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passes: vec![],
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error: Some("No station location configured".to_string()),
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});
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};
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let now_ms = std::time::SystemTime::now()
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.duration_since(std::time::UNIX_EPOCH)
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.unwrap_or_default()
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.as_millis() as i64;
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let window_ms = 24 * 60 * 60 * 1000_i64;
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let passes = trx_core::geo::compute_upcoming_passes(lat, lon, now_ms, window_ms);
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web::Json(SatPassesResponse {
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passes,
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error: None,
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})
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}
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#[post("/clear_ft8_decode")]
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pub async fn clear_ft8_decode(
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query: web::Query<RemoteQuery>,
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@@ -2087,6 +2124,7 @@ pub fn configure(cfg: &mut web::ServiceConfig) {
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.service(toggle_wspr_decode)
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.service(toggle_wxsat_decode)
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.service(toggle_lrpt_decode)
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.service(sat_passes)
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.service(clear_ais_decode)
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.service(clear_vdes_decode)
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.service(clear_aprs_decode)
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+321
-32
@@ -24,6 +24,10 @@ const EARTH_RADIUS_KM: f64 = 6371.0;
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const CELESTRAK_WEATHER_URL: &str =
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"https://celestrak.org/NORAD/elements/gp.php?GROUP=weather&FORMAT=tle";
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/// CelesTrak amateur satellite TLE endpoint.
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const CELESTRAK_HAM_URL: &str =
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"https://celestrak.org/NORAD/elements/gp.php?GROUP=amateur&FORMAT=tle";
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/// How often to refresh TLEs after the initial fetch (24 hours).
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const TLE_REFRESH_INTERVAL: Duration = Duration::from_secs(24 * 60 * 60);
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@@ -47,6 +51,44 @@ pub struct PassGeo {
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pub ground_track: Vec<TrackPoint>,
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}
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/// A predicted satellite pass over the observer's location.
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#[derive(Debug, Clone, serde::Serialize)]
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pub struct PassPrediction {
|
||||
/// Satellite display name.
|
||||
pub satellite: String,
|
||||
/// NORAD catalog number.
|
||||
pub norad_id: u32,
|
||||
/// Acquisition of Signal: UTC timestamp in milliseconds.
|
||||
pub aos_ms: i64,
|
||||
/// Loss of Signal: UTC timestamp in milliseconds.
|
||||
pub los_ms: i64,
|
||||
/// Maximum elevation angle in degrees above horizon.
|
||||
pub max_elevation_deg: f64,
|
||||
/// Azimuth at AOS in degrees (0 = N, 90 = E).
|
||||
pub azimuth_aos_deg: f64,
|
||||
/// Azimuth at LOS in degrees.
|
||||
pub azimuth_los_deg: f64,
|
||||
/// Pass duration in seconds.
|
||||
pub duration_s: u64,
|
||||
}
|
||||
|
||||
/// Well-known amateur satellites: (display name, NORAD ID).
|
||||
const HAM_SATS: &[(&str, u32)] = &[
|
||||
("ISS (ARISS)", 25544),
|
||||
("AO-91 (RadFxSat)", 43017),
|
||||
("AO-92 (Fox-1D)", 43137),
|
||||
("SO-50", 27607),
|
||||
("AO-73 (FUNcube-1)", 39444),
|
||||
("JO-97 (JY1SAT)", 43803),
|
||||
("PO-101 (Diwata-2B)", 43678),
|
||||
("LilacSat-2", 40908),
|
||||
("CAS-4B", 42759),
|
||||
("EO-88 (Nayif-1)", 42017),
|
||||
("RS-44 (Dosaaf-85)", 44909),
|
||||
("SALSAT", 46926),
|
||||
("GREENCUBE (IO-117)", 52765),
|
||||
];
|
||||
|
||||
/// Map satellite name patterns to NORAD catalog numbers.
|
||||
fn norad_id_for_satellite(name: &str) -> Option<u32> {
|
||||
let upper = name.to_uppercase();
|
||||
@@ -143,15 +185,13 @@ fn parse_tle_response(body: &str) -> HashMap<u32, (String, String)> {
|
||||
result
|
||||
}
|
||||
|
||||
/// Fetch fresh TLE data from CelesTrak and update the global store.
|
||||
///
|
||||
/// Returns the number of TLEs loaded, or an error description.
|
||||
pub async fn refresh_tles_from_celestrak() -> Result<usize, String> {
|
||||
/// Fetch TLEs from a CelesTrak URL and merge them into the global store.
|
||||
async fn fetch_and_merge_tles(url: &str) -> Result<usize, String> {
|
||||
let response = reqwest::Client::builder()
|
||||
.timeout(Duration::from_secs(30))
|
||||
.build()
|
||||
.map_err(|e| format!("HTTP client error: {e}"))?
|
||||
.get(CELESTRAK_WEATHER_URL)
|
||||
.get(url)
|
||||
.send()
|
||||
.await
|
||||
.map_err(|e| format!("CelesTrak fetch failed: {e}"))?;
|
||||
@@ -173,17 +213,33 @@ pub async fn refresh_tles_from_celestrak() -> Result<usize, String> {
|
||||
}
|
||||
|
||||
match TLE_STORE.write() {
|
||||
Ok(mut guard) => *guard = Some(tles),
|
||||
Ok(mut guard) => {
|
||||
if let Some(store) = guard.as_mut() {
|
||||
store.extend(tles);
|
||||
} else {
|
||||
*guard = Some(tles);
|
||||
}
|
||||
}
|
||||
Err(e) => {
|
||||
// Recover from poisoned lock
|
||||
let mut guard = e.into_inner();
|
||||
*guard = Some(parse_tle_response(&body));
|
||||
if let Some(store) = guard.as_mut() {
|
||||
store.extend(tles);
|
||||
} else {
|
||||
*guard = Some(tles);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
Ok(count)
|
||||
}
|
||||
|
||||
/// Fetch fresh TLE data from CelesTrak and update the global store.
|
||||
///
|
||||
/// Returns the number of TLEs loaded, or an error description.
|
||||
pub async fn refresh_tles_from_celestrak() -> Result<usize, String> {
|
||||
fetch_and_merge_tles(CELESTRAK_WEATHER_URL).await
|
||||
}
|
||||
|
||||
/// Spawn a background task that fetches TLEs from CelesTrak on start and
|
||||
/// then refreshes once per day.
|
||||
///
|
||||
@@ -191,10 +247,20 @@ pub async fn refresh_tles_from_celestrak() -> Result<usize, String> {
|
||||
/// do not stop the periodic refresh — hardcoded fallback TLEs remain usable.
|
||||
pub fn spawn_tle_refresh_task() {
|
||||
tokio::spawn(async {
|
||||
// Initial fetch at startup.
|
||||
match refresh_tles_from_celestrak().await {
|
||||
Ok(n) => tracing::info!("TLE refresh: loaded {n} satellite TLEs from CelesTrak"),
|
||||
Err(e) => tracing::warn!("TLE refresh: initial fetch failed ({e}), using hardcoded TLEs"),
|
||||
// Initial fetch at startup: weather + amateur satellites.
|
||||
match fetch_and_merge_tles(CELESTRAK_WEATHER_URL).await {
|
||||
Ok(n) => {
|
||||
tracing::info!("TLE refresh: loaded {n} weather satellite TLEs from CelesTrak")
|
||||
}
|
||||
Err(e) => {
|
||||
tracing::warn!("TLE refresh: weather fetch failed ({e}), using hardcoded TLEs")
|
||||
}
|
||||
}
|
||||
match fetch_and_merge_tles(CELESTRAK_HAM_URL).await {
|
||||
Ok(n) => {
|
||||
tracing::info!("TLE refresh: loaded {n} amateur satellite TLEs from CelesTrak")
|
||||
}
|
||||
Err(e) => tracing::warn!("TLE refresh: amateur fetch failed ({e})"),
|
||||
}
|
||||
|
||||
// Periodic refresh every 24 hours.
|
||||
@@ -204,14 +270,219 @@ pub fn spawn_tle_refresh_task() {
|
||||
|
||||
loop {
|
||||
interval.tick().await;
|
||||
match refresh_tles_from_celestrak().await {
|
||||
Ok(n) => tracing::info!("TLE refresh: updated {n} satellite TLEs from CelesTrak"),
|
||||
Err(e) => tracing::warn!("TLE refresh: fetch failed ({e}), keeping previous TLEs"),
|
||||
match fetch_and_merge_tles(CELESTRAK_WEATHER_URL).await {
|
||||
Ok(n) => {
|
||||
tracing::info!("TLE refresh: updated {n} weather satellite TLEs from CelesTrak")
|
||||
}
|
||||
Err(e) => {
|
||||
tracing::warn!("TLE refresh: weather fetch failed ({e}), keeping previous TLEs")
|
||||
}
|
||||
}
|
||||
match fetch_and_merge_tles(CELESTRAK_HAM_URL).await {
|
||||
Ok(n) => {
|
||||
tracing::info!("TLE refresh: updated {n} amateur satellite TLEs from CelesTrak")
|
||||
}
|
||||
Err(e) => {
|
||||
tracing::warn!("TLE refresh: amateur fetch failed ({e}), keeping previous TLEs")
|
||||
}
|
||||
}
|
||||
}
|
||||
});
|
||||
}
|
||||
|
||||
// ---------------------------------------------------------------------------
|
||||
// Pass prediction
|
||||
// ---------------------------------------------------------------------------
|
||||
|
||||
/// Convert geodetic lat/lon (degrees) to ECEF position (km, spherical).
|
||||
fn latlon_to_ecef(lat_deg: f64, lon_deg: f64) -> [f64; 3] {
|
||||
let lat = lat_deg * PI / 180.0;
|
||||
let lon = lon_deg * PI / 180.0;
|
||||
[
|
||||
EARTH_RADIUS_KM * lat.cos() * lon.cos(),
|
||||
EARTH_RADIUS_KM * lat.cos() * lon.sin(),
|
||||
EARTH_RADIUS_KM * lat.sin(),
|
||||
]
|
||||
}
|
||||
|
||||
/// Convert ECI position (km) to ECEF using GMST rotation.
|
||||
fn eci_to_ecef(x: f64, y: f64, z: f64, time_ms: i64) -> [f64; 3] {
|
||||
let gmst = gmst_from_ms(time_ms);
|
||||
[
|
||||
x * gmst.cos() + y * gmst.sin(),
|
||||
-x * gmst.sin() + y * gmst.cos(),
|
||||
z,
|
||||
]
|
||||
}
|
||||
|
||||
/// Compute elevation and azimuth from observer to satellite.
|
||||
///
|
||||
/// Returns `(elevation_deg, azimuth_deg)` where elevation is degrees above the
|
||||
/// horizon and azimuth is clockwise degrees from north.
|
||||
fn compute_az_el(
|
||||
sat_ecef: [f64; 3],
|
||||
obs_ecef: [f64; 3],
|
||||
obs_lat_rad: f64,
|
||||
obs_lon_rad: f64,
|
||||
) -> (f64, f64) {
|
||||
let dx = sat_ecef[0] - obs_ecef[0];
|
||||
let dy = sat_ecef[1] - obs_ecef[1];
|
||||
let dz = sat_ecef[2] - obs_ecef[2];
|
||||
|
||||
// Transform delta to local East-North-Up frame.
|
||||
let east = -obs_lon_rad.sin() * dx + obs_lon_rad.cos() * dy;
|
||||
let north = -obs_lat_rad.sin() * obs_lon_rad.cos() * dx
|
||||
- obs_lat_rad.sin() * obs_lon_rad.sin() * dy
|
||||
+ obs_lat_rad.cos() * dz;
|
||||
let up = obs_lat_rad.cos() * obs_lon_rad.cos() * dx
|
||||
+ obs_lat_rad.cos() * obs_lon_rad.sin() * dy
|
||||
+ obs_lat_rad.sin() * dz;
|
||||
|
||||
let horiz = (east * east + north * north).sqrt();
|
||||
let el_deg = up.atan2(horiz) * 180.0 / PI;
|
||||
let az_deg = east.atan2(north).to_degrees().rem_euclid(360.0);
|
||||
|
||||
(el_deg, az_deg)
|
||||
}
|
||||
|
||||
/// Scan for passes of one satellite over a time window.
|
||||
fn find_passes_for_sat(
|
||||
name: &str,
|
||||
norad_id: u32,
|
||||
line1: &str,
|
||||
line2: &str,
|
||||
obs_lat: f64,
|
||||
obs_lon: f64,
|
||||
start_ms: i64,
|
||||
window_ms: i64,
|
||||
) -> Vec<PassPrediction> {
|
||||
let elements =
|
||||
match Elements::from_tle(Some(name.to_string()), line1.as_bytes(), line2.as_bytes()) {
|
||||
Ok(e) => e,
|
||||
Err(_) => return vec![],
|
||||
};
|
||||
let constants = match Constants::from_elements(&elements) {
|
||||
Ok(c) => c,
|
||||
Err(_) => return vec![],
|
||||
};
|
||||
let epoch_ms = elements_epoch_ms(&elements);
|
||||
|
||||
let obs_ecef = latlon_to_ecef(obs_lat, obs_lon);
|
||||
let obs_lat_rad = obs_lat * PI / 180.0;
|
||||
let obs_lon_rad = obs_lon * PI / 180.0;
|
||||
|
||||
// 30-second scan step; fine enough for pass detection.
|
||||
let step_ms = 30_000_i64;
|
||||
let n_steps = (window_ms / step_ms) as usize + 2;
|
||||
|
||||
let mut passes = Vec::new();
|
||||
let mut in_pass = false;
|
||||
let mut aos_ms = 0_i64;
|
||||
let mut aos_az = 0.0_f64;
|
||||
let mut max_el = 0.0_f64;
|
||||
let mut prev_az = 0.0_f64;
|
||||
|
||||
for i in 0..n_steps {
|
||||
let t_ms = start_ms + i as i64 * step_ms;
|
||||
if t_ms > start_ms + window_ms {
|
||||
break;
|
||||
}
|
||||
let minutes = (t_ms - epoch_ms) as f64 / 60_000.0;
|
||||
let pred = match constants.propagate(MinutesSinceEpoch(minutes)) {
|
||||
Ok(p) => p,
|
||||
Err(_) => continue,
|
||||
};
|
||||
let sat_ecef = eci_to_ecef(pred.position[0], pred.position[1], pred.position[2], t_ms);
|
||||
let (el, az) = compute_az_el(sat_ecef, obs_ecef, obs_lat_rad, obs_lon_rad);
|
||||
|
||||
if el > 0.0 {
|
||||
if !in_pass {
|
||||
in_pass = true;
|
||||
aos_ms = t_ms;
|
||||
aos_az = az;
|
||||
max_el = el;
|
||||
} else if el > max_el {
|
||||
max_el = el;
|
||||
}
|
||||
} else if in_pass {
|
||||
// LOS occurred between previous step and this step.
|
||||
passes.push(PassPrediction {
|
||||
satellite: name.to_string(),
|
||||
norad_id,
|
||||
aos_ms,
|
||||
los_ms: t_ms,
|
||||
max_elevation_deg: (max_el * 10.0).round() / 10.0,
|
||||
azimuth_aos_deg: (aos_az * 10.0).round() / 10.0,
|
||||
azimuth_los_deg: (prev_az * 10.0).round() / 10.0,
|
||||
duration_s: ((t_ms - aos_ms) / 1000) as u64,
|
||||
});
|
||||
in_pass = false;
|
||||
max_el = 0.0;
|
||||
}
|
||||
prev_az = az;
|
||||
}
|
||||
|
||||
// Pass in progress at end of window.
|
||||
if in_pass {
|
||||
passes.push(PassPrediction {
|
||||
satellite: name.to_string(),
|
||||
norad_id,
|
||||
aos_ms,
|
||||
los_ms: start_ms + window_ms,
|
||||
max_elevation_deg: (max_el * 10.0).round() / 10.0,
|
||||
azimuth_aos_deg: (aos_az * 10.0).round() / 10.0,
|
||||
azimuth_los_deg: (prev_az * 10.0).round() / 10.0,
|
||||
duration_s: ((start_ms + window_ms - aos_ms) / 1000) as u64,
|
||||
});
|
||||
}
|
||||
|
||||
passes
|
||||
}
|
||||
|
||||
/// Compute upcoming passes for all known amateur satellites over the next
|
||||
/// `window_ms` milliseconds, starting from `start_ms`.
|
||||
///
|
||||
/// Satellites without TLE data in the store are silently skipped.
|
||||
/// Results are sorted by AOS time.
|
||||
pub fn compute_upcoming_passes(
|
||||
station_lat: f64,
|
||||
station_lon: f64,
|
||||
start_ms: i64,
|
||||
window_ms: i64,
|
||||
) -> Vec<PassPrediction> {
|
||||
let guard = match TLE_STORE.read() {
|
||||
Ok(g) => g,
|
||||
Err(e) => e.into_inner(),
|
||||
};
|
||||
|
||||
let mut all_passes = Vec::new();
|
||||
|
||||
for &(name, norad_id) in HAM_SATS {
|
||||
let tle = guard
|
||||
.as_ref()
|
||||
.and_then(|s| s.get(&norad_id))
|
||||
.cloned()
|
||||
.or_else(|| hardcoded_tle(norad_id).map(|(l1, l2)| (l1.to_string(), l2.to_string())));
|
||||
|
||||
if let Some((line1, line2)) = tle {
|
||||
let passes = find_passes_for_sat(
|
||||
name,
|
||||
norad_id,
|
||||
&line1,
|
||||
&line2,
|
||||
station_lat,
|
||||
station_lon,
|
||||
start_ms,
|
||||
window_ms,
|
||||
);
|
||||
all_passes.extend(passes);
|
||||
}
|
||||
}
|
||||
|
||||
all_passes.sort_by_key(|p| p.aos_ms);
|
||||
all_passes
|
||||
}
|
||||
|
||||
/// Compute geographic bounds and ground track for a satellite pass.
|
||||
///
|
||||
/// Returns `None` if the satellite is unknown or propagation fails.
|
||||
@@ -228,7 +499,8 @@ pub fn compute_pass_geo(
|
||||
Some(satellite.to_string()),
|
||||
line1.as_bytes(),
|
||||
line2.as_bytes(),
|
||||
).ok()?;
|
||||
)
|
||||
.ok()?;
|
||||
|
||||
let constants = Constants::from_elements(&elements).ok()?;
|
||||
|
||||
@@ -249,7 +521,9 @@ pub fn compute_pass_geo(
|
||||
let t_ms = pass_start_ms + (i as i64 * duration_ms / (n_points as i64 - 1).max(1));
|
||||
let minutes_since_epoch = (t_ms - epoch_ms) as f64 / 60_000.0;
|
||||
|
||||
let prediction = constants.propagate(MinutesSinceEpoch(minutes_since_epoch)).ok()?;
|
||||
let prediction = constants
|
||||
.propagate(MinutesSinceEpoch(minutes_since_epoch))
|
||||
.ok()?;
|
||||
|
||||
// Convert ECI position to geodetic lat/lon
|
||||
let (lat, lon) = eci_to_geodetic(
|
||||
@@ -338,12 +612,7 @@ pub fn estimate_pass_geo_from_station(
|
||||
/// `x`, `y`, `z` are in km (as returned by sgp4). `time_ms` is the UTC
|
||||
/// timestamp used to compute GMST for the ECI→ECEF rotation.
|
||||
fn eci_to_geodetic(x: f64, y: f64, z: f64, time_ms: i64) -> (f64, f64) {
|
||||
let gmst = gmst_from_ms(time_ms);
|
||||
|
||||
// Rotate ECI → ECEF
|
||||
let ecef_x = x * gmst.cos() + y * gmst.sin();
|
||||
let ecef_y = -x * gmst.sin() + y * gmst.cos();
|
||||
let ecef_z = z;
|
||||
let [ecef_x, ecef_y, ecef_z] = eci_to_ecef(x, y, z, time_ms);
|
||||
|
||||
// Geodetic latitude (simple spherical approximation, sufficient for overlays)
|
||||
let r_xy = (ecef_x * ecef_x + ecef_y * ecef_y).sqrt();
|
||||
@@ -363,8 +632,7 @@ fn gmst_from_ms(time_ms: i64) -> f64 {
|
||||
let t = (jd - 2_451_545.0) / 36_525.0;
|
||||
|
||||
// GMST in degrees (IAU formula)
|
||||
let gmst_deg = 280.46061837 + 360.98564736629 * (jd - 2_451_545.0)
|
||||
+ 0.000387933 * t * t
|
||||
let gmst_deg = 280.46061837 + 360.98564736629 * (jd - 2_451_545.0) + 0.000387933 * t * t
|
||||
- t * t * t / 38_710_000.0;
|
||||
|
||||
(gmst_deg % 360.0) * PI / 180.0
|
||||
@@ -406,20 +674,29 @@ mod tests {
|
||||
fn test_km_to_deg_lat() {
|
||||
// ~111 km per degree of latitude
|
||||
let deg = km_to_deg_lat(111.0);
|
||||
assert!((deg - 1.0).abs() < 0.05, "111 km should be ~1 degree, got {deg}");
|
||||
assert!(
|
||||
(deg - 1.0).abs() < 0.05,
|
||||
"111 km should be ~1 degree, got {deg}"
|
||||
);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_km_to_deg_lon_equator() {
|
||||
let deg = km_to_deg_lon(111.0, 0.0);
|
||||
assert!((deg - 1.0).abs() < 0.05, "111 km at equator should be ~1 degree, got {deg}");
|
||||
assert!(
|
||||
(deg - 1.0).abs() < 0.05,
|
||||
"111 km at equator should be ~1 degree, got {deg}"
|
||||
);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_km_to_deg_lon_high_lat() {
|
||||
// At 60°, cos(60°) = 0.5, so 111 km ≈ 2 degrees
|
||||
let deg = km_to_deg_lon(111.0, 60.0);
|
||||
assert!((deg - 2.0).abs() < 0.1, "111 km at 60° should be ~2 degrees, got {deg}");
|
||||
assert!(
|
||||
(deg - 2.0).abs() < 0.1,
|
||||
"111 km at 60° should be ~2 degrees, got {deg}"
|
||||
);
|
||||
}
|
||||
|
||||
#[test]
|
||||
@@ -482,11 +759,17 @@ NOAA 19
|
||||
let result = compute_pass_geo("NOAA-19", start, end, Some(48.0), Some(11.0));
|
||||
assert!(result.is_some(), "Should produce geo for NOAA-19");
|
||||
let geo = result.unwrap();
|
||||
assert!(geo.ground_track.len() >= 3, "Should have at least 3 track points");
|
||||
assert!(
|
||||
geo.ground_track.len() >= 3,
|
||||
"Should have at least 3 track points"
|
||||
);
|
||||
assert!(geo.bounds[0] < geo.bounds[2], "south < north");
|
||||
// Bounds should cover a reasonable area
|
||||
let lat_span = geo.bounds[2] - geo.bounds[0];
|
||||
assert!(lat_span > 10.0, "Pass should span >10 deg lat, got {lat_span}");
|
||||
assert!(
|
||||
lat_span > 10.0,
|
||||
"Pass should span >10 deg lat, got {lat_span}"
|
||||
);
|
||||
}
|
||||
|
||||
#[test]
|
||||
@@ -517,7 +800,13 @@ NOAA 19
|
||||
.unwrap();
|
||||
let ms = elements_epoch_ms(&elements);
|
||||
// Should be in the year 2026 range (approx 1.77e12)
|
||||
assert!(ms > 1_700_000_000_000, "Epoch should be after 2023, got {ms}");
|
||||
assert!(ms < 1_900_000_000_000, "Epoch should be before 2030, got {ms}");
|
||||
assert!(
|
||||
ms > 1_700_000_000_000,
|
||||
"Epoch should be after 2023, got {ms}"
|
||||
);
|
||||
assert!(
|
||||
ms < 1_900_000_000_000,
|
||||
"Epoch should be before 2030, got {ms}"
|
||||
);
|
||||
}
|
||||
}
|
||||
|
||||
Reference in New Issue
Block a user