defmodule Microwaveprop.Weather do @moduledoc false import Ecto.Query alias Microwaveprop.Propagation.ProfilesFile alias Microwaveprop.Repo alias Microwaveprop.Weather.GridCache alias Microwaveprop.Weather.HrrrNativeProfile alias Microwaveprop.Weather.HrrrProfile alias Microwaveprop.Weather.IemClient alias Microwaveprop.Weather.IemreObservation alias Microwaveprop.Weather.Metar5minObservation alias Microwaveprop.Weather.NarrProfile alias Microwaveprop.Weather.RtmaObservation alias Microwaveprop.Weather.SolarIndex alias Microwaveprop.Weather.Sounding alias Microwaveprop.Weather.SoundingParams alias Microwaveprop.Weather.Station alias Microwaveprop.Weather.SurfaceObservation alias Microwaveprop.Weather.WeatherLayers require Logger # Approximate km per degree latitude @km_per_deg_lat 111.0 @spec find_or_create_station(map()) :: {:ok, Station.t()} | {:error, Ecto.Changeset.t()} def find_or_create_station(attrs) do code = attrs[:station_code] || attrs["station_code"] type = attrs[:station_type] || attrs["station_type"] if code && type do case Repo.get_by(Station, station_code: code, station_type: type) do nil -> %Station{} |> Station.changeset(attrs) |> Repo.insert() station -> {:ok, station} end else %Station{} |> Station.changeset(attrs) |> Repo.insert() end end @spec upsert_surface_observation(Station.t(), map()) :: {:ok, SurfaceObservation.t()} | {:error, Ecto.Changeset.t()} def upsert_surface_observation(%Station{} = station, attrs) do attrs = Map.put(attrs, :station_id, station.id) %SurfaceObservation{} |> SurfaceObservation.changeset(attrs) |> Repo.insert( on_conflict: from(s in SurfaceObservation, update: [ set: [ temp_f: fragment("EXCLUDED.temp_f"), dewpoint_f: fragment("EXCLUDED.dewpoint_f"), relative_humidity: fragment("EXCLUDED.relative_humidity"), wind_speed_kts: fragment("EXCLUDED.wind_speed_kts"), sea_level_pressure_mb: fragment("EXCLUDED.sea_level_pressure_mb"), sky_condition: fragment("EXCLUDED.sky_condition"), precip_1h_in: fragment("EXCLUDED.precip_1h_in"), wx_codes: fragment("EXCLUDED.wx_codes"), updated_at: fragment("EXCLUDED.updated_at") ] ], where: s.temp_f != fragment("EXCLUDED.temp_f") or s.dewpoint_f != fragment("EXCLUDED.dewpoint_f") or s.relative_humidity != fragment("EXCLUDED.relative_humidity") or s.wind_speed_kts != fragment("EXCLUDED.wind_speed_kts") or s.sea_level_pressure_mb != fragment("EXCLUDED.sea_level_pressure_mb") ), conflict_target: [:station_id, :observed_at], returning: true, stale_error_field: :id ) end @spec upsert_sounding(Station.t(), map()) :: {:ok, Sounding.t()} | {:error, Ecto.Changeset.t()} def upsert_sounding(%Station{} = station, attrs) do attrs = Map.put(attrs, :station_id, station.id) %Sounding{} |> Sounding.changeset(attrs) |> Repo.insert( on_conflict: from(s in Sounding, update: [ set: [ profile: fragment("EXCLUDED.profile"), level_count: fragment("EXCLUDED.level_count"), surface_pressure_mb: fragment("EXCLUDED.surface_pressure_mb"), surface_temp_c: fragment("EXCLUDED.surface_temp_c"), surface_dewpoint_c: fragment("EXCLUDED.surface_dewpoint_c"), surface_refractivity: fragment("EXCLUDED.surface_refractivity"), min_refractivity_gradient: fragment("EXCLUDED.min_refractivity_gradient"), boundary_layer_depth_m: fragment("EXCLUDED.boundary_layer_depth_m"), precipitable_water_mm: fragment("EXCLUDED.precipitable_water_mm"), k_index: fragment("EXCLUDED.k_index"), lifted_index: fragment("EXCLUDED.lifted_index"), ducting_detected: fragment("EXCLUDED.ducting_detected"), duct_characteristics: fragment("EXCLUDED.duct_characteristics"), updated_at: fragment("EXCLUDED.updated_at") ] ], where: s.level_count != fragment("EXCLUDED.level_count") or s.surface_temp_c != fragment("EXCLUDED.surface_temp_c") or s.surface_refractivity != fragment("EXCLUDED.surface_refractivity") ), conflict_target: [:station_id, :observed_at], returning: true, stale_error_field: :id ) end @spec upsert_solar_index(map()) :: {:ok, SolarIndex.t()} | {:error, Ecto.Changeset.t()} def upsert_solar_index(attrs) do %SolarIndex{} |> SolarIndex.changeset(attrs) |> Repo.insert( on_conflict: from(s in SolarIndex, update: [ set: [ sfi: fragment("EXCLUDED.sfi"), sfi_adjusted: fragment("EXCLUDED.sfi_adjusted"), sunspot_number: fragment("EXCLUDED.sunspot_number"), ap_index: fragment("EXCLUDED.ap_index"), kp_values: fragment("EXCLUDED.kp_values"), updated_at: fragment("EXCLUDED.updated_at") ] ], where: s.sfi != fragment("EXCLUDED.sfi") or s.ap_index != fragment("EXCLUDED.ap_index") ), conflict_target: [:date], returning: true, stale_error_field: :id ) end @spec has_surface_observations?(Ecto.UUID.t(), DateTime.t(), DateTime.t()) :: boolean() def has_surface_observations?(station_id, start_dt, end_dt) do SurfaceObservation |> where([o], o.station_id == ^station_id) |> where([o], o.observed_at >= ^start_dt and o.observed_at <= ^end_dt) |> Repo.exists?() end @doc "Returns a MapSet of station_ids that have surface observations in the time window." @spec station_ids_with_surface_observations([Ecto.UUID.t()], DateTime.t(), DateTime.t()) :: MapSet.t(Ecto.UUID.t()) def station_ids_with_surface_observations(station_ids, start_dt, end_dt) do SurfaceObservation |> where([o], o.station_id in ^station_ids) |> where([o], o.observed_at >= ^start_dt and o.observed_at <= ^end_dt) |> select([o], o.station_id) |> distinct(true) |> Repo.all() |> MapSet.new() end @spec has_sounding?(Ecto.UUID.t(), DateTime.t()) :: boolean() def has_sounding?(station_id, observed_at) do Sounding |> where([s], s.station_id == ^station_id and s.observed_at == ^observed_at) |> Repo.exists?() end @doc "Returns a MapSet of {station_id, observed_at} tuples that have soundings." @spec station_ids_with_soundings([Ecto.UUID.t()], [DateTime.t()]) :: MapSet.t({Ecto.UUID.t(), DateTime.t()}) def station_ids_with_soundings(station_ids, sounding_times) do Sounding |> where([s], s.station_id in ^station_ids and s.observed_at in ^sounding_times) |> select([s], {s.station_id, s.observed_at}) |> distinct(true) |> Repo.all() |> MapSet.new() end @doc "Batch upsert solar indices using insert_all in chunks of 500." @spec upsert_solar_indices_batch([map()]) :: non_neg_integer() def upsert_solar_indices_batch(records) do now = DateTime.truncate(DateTime.utc_now(), :second) records |> Enum.chunk_every(500) |> Enum.reduce(0, fn chunk, acc -> entries = Enum.map(chunk, fn attrs -> %{ id: Ecto.UUID.generate(), date: attrs[:date] || attrs.date, sfi: attrs[:sfi], sfi_adjusted: attrs[:sfi_adjusted], sunspot_number: attrs[:sunspot_number], ap_index: attrs[:ap_index], kp_values: attrs[:kp_values], inserted_at: now, updated_at: now } end) {count, _} = Repo.insert_all(SolarIndex, entries, on_conflict: from(s in SolarIndex, update: [ set: [ sfi: fragment("EXCLUDED.sfi"), sfi_adjusted: fragment("EXCLUDED.sfi_adjusted"), sunspot_number: fragment("EXCLUDED.sunspot_number"), ap_index: fragment("EXCLUDED.ap_index"), kp_values: fragment("EXCLUDED.kp_values"), updated_at: fragment("EXCLUDED.updated_at") ] ], where: s.sfi != fragment("EXCLUDED.sfi") or s.ap_index != fragment("EXCLUDED.ap_index") ), conflict_target: [:date] ) acc + count end) end @spec get_solar_index(Date.t()) :: SolarIndex.t() | nil def get_solar_index(date) do Repo.get_by(SolarIndex, date: date) end @spec existing_solar_dates() :: MapSet.t(Date.t()) def existing_solar_dates do SolarIndex |> select([s], s.date) |> Repo.all() |> MapSet.new() end @spec sync_stations!() :: :ok def sync_stations! do asos = for s <- ~w(AK AL AR AZ CA CO CT DE FL GA HI IA ID IL IN KS KY LA MA MD ME MI MN MO MS MT NC ND NE NH NJ NM NV NY OH OK OR PA RI SC SD TN TX UT VA VT WA WI WV WY), do: "#{s}_ASOS" for network <- asos ++ ["RAOB"] do sync_network(network) Process.sleep(200) end count = Repo.aggregate(Station, :count) Logger.info("Weather stations sync complete: #{count} total") :ok end defp sync_network(network) do type = if String.contains?(network, "ASOS"), do: "asos", else: "sounding" case IemClient.fetch_network(network) do {:ok, stations} -> for s <- stations do %Station{} |> Station.changeset(Map.put(s, :station_type, type)) |> Repo.insert(on_conflict: :nothing, conflict_target: [:station_code, :station_type]) end Logger.info("Synced #{length(stations)} stations from #{network}") {:error, e} -> Logger.warning("Failed to sync #{network}: #{inspect(e)}") end end @spec nearby_stations(float(), float(), String.t(), number()) :: [Station.t()] def nearby_stations(lat, lon, station_type, radius_km) do dlat = radius_km / @km_per_deg_lat dlon = radius_km / (@km_per_deg_lat * :math.cos(lat * :math.pi() / 180)) Station |> where([s], s.station_type == ^station_type) |> where( [s], s.lat >= ^(lat - dlat) and s.lat <= ^(lat + dlat) and s.lon >= ^(lon - dlon) and s.lon <= ^(lon + dlon) ) |> Repo.all() end @spec sounding_times_around(DateTime.t()) :: [DateTime.t()] def sounding_times_around(dt) do date = DateTime.to_date(dt) times = if dt.hour < 12 do [ DateTime.new!(Date.add(date, -1), ~T[12:00:00], "Etc/UTC"), DateTime.new!(date, ~T[00:00:00], "Etc/UTC") ] else [ DateTime.new!(date, ~T[00:00:00], "Etc/UTC"), DateTime.new!(date, ~T[12:00:00], "Etc/UTC") ] end Enum.uniq(times) end @spec weather_for_contact(map(), keyword()) :: %{ surface_observations: [SurfaceObservation.t()], soundings: [Sounding.t()] } def weather_for_contact(contact_params, opts \\ []) do lat = contact_params[:lat] || contact_params.lat lon = contact_params[:lon] || contact_params.lon timestamp = contact_params[:timestamp] || contact_params.timestamp radius_km = Keyword.get(opts, :radius_km, 150) time_window_hours = Keyword.get(opts, :time_window_hours, 6) # Bounding box in degrees dlat = radius_km / @km_per_deg_lat dlon = radius_km / (@km_per_deg_lat * :math.cos(lat * :math.pi() / 180)) time_start = DateTime.add(timestamp, -time_window_hours * 3600, :second) time_end = DateTime.add(timestamp, time_window_hours * 3600, :second) station_ids = Station |> where( [s], s.lat >= ^(lat - dlat) and s.lat <= ^(lat + dlat) and s.lon >= ^(lon - dlon) and s.lon <= ^(lon + dlon) ) |> select([s], s.id) surface_observations = SurfaceObservation |> where([o], o.station_id in subquery(station_ids)) |> where([o], o.observed_at >= ^time_start and o.observed_at <= ^time_end) |> preload(:station) |> Repo.all() soundings = Sounding |> where([s], s.station_id in subquery(station_ids)) |> where([s], s.observed_at >= ^time_start and s.observed_at <= ^time_end) |> preload(:station) |> Repo.all() %{surface_observations: surface_observations, soundings: soundings} end @spec latest_grid_valid_time() :: DateTime.t() | nil def latest_grid_valid_time do cond do vt = GridCache.latest_valid_time() -> vt vt = ProfilesFile.latest_valid_time() -> vt true -> latest_grid_valid_time_from_db() end end # Last-resort fallback for historical data sitting in the legacy # hrrr_profiles table. PropagationGridWorker no longer writes # grid-point rows there, so in steady state this returns nil and # the ProfilesFile fallback above is the real source of truth. defp latest_grid_valid_time_from_db do Repo.one( from(h in HrrrProfile, where: h.is_grid_point == true, select: max(h.valid_time) ) ) end @doc """ Cache-only read for the /weather LiveView mount hot path. Returns whatever is in `GridCache` for the latest valid_time and fires a deduped background fill task on a miss instead of blocking. The async task broadcasts `weather:updated` when done, triggering every connected LiveView to refresh. Callers that genuinely need synchronous data (tests, scripts) should use `load_weather_grid/1` instead. """ @spec latest_weather_grid(map()) :: [map()] def latest_weather_grid(bounds) do case latest_grid_valid_time() do nil -> [] latest_vt -> case GridCache.fetch_bounds(latest_vt, bounds) do {:ok, rows} -> rows :miss -> kickoff_async_grid_fill(latest_vt) [] end end end @doc """ Synchronous cache-or-DB read. Blocks for several seconds on a cold cache because `load_weather_grid_from_db/1` parses 176k rows with JSONB columns. Used by tests and by `weather_point_detail/3` fallbacks. LiveView callers should prefer `latest_weather_grid/1`. """ @spec load_weather_grid(map()) :: [map()] def load_weather_grid(bounds) do case latest_grid_valid_time() do nil -> [] latest_vt -> case GridCache.fetch_bounds(latest_vt, bounds) do {:ok, rows} -> rows :miss -> full = load_grid_rows_for(latest_vt) GridCache.put(latest_vt, full) filter_weather_bounds(full, bounds) end end end @doc """ All persisted weather valid_times sorted ascending. The grid worker writes a ProfilesFile for every forecast hour (f00..f18), so this enumerates the 19-entry forecast timeline the /weather page renders at the bottom of the map. """ @spec available_weather_valid_times() :: [DateTime.t()] def available_weather_valid_times do ProfilesFile.list_valid_times() end @doc """ Read the weather grid for a specific `valid_time` and bounds. Like `load_weather_grid/1` but takes the valid_time explicitly so the timeline can scrub to any forecast hour, not just the analysis hour. Returns `[]` if no profile file exists for that valid_time. Deliberately does NOT write forecast-hour grids back into `GridCache` on a miss: caching 18 forecast hours × 92k points would add ~300 MB per pod. The ProfilesFile read is a single ~2 MB ETF decode per scrub, which is fast enough for a user click. """ @spec weather_grid_at(DateTime.t(), map()) :: [map()] def weather_grid_at(%DateTime{} = valid_time, bounds) do case GridCache.fetch_bounds(valid_time, bounds) do {:ok, rows} -> rows :miss -> case ProfilesFile.read(valid_time) do {:ok, grid_data} -> # Filter-before-derive: only derive the points inside the # viewport instead of all 92k CONUS grid points. On a DFW # viewport that's ~20× less `SoundingParams.derive` work # per timeline scrub. build_grid_cache_rows(grid_data, valid_time, bounds) {:error, _} -> [] end end end # Build derived GridCache rows for a valid_time from whichever # source has data: the persisted ProfilesFile first (hot path in # steady state), then the legacy hrrr_profiles table (historical # data only). defp load_grid_rows_for(valid_time) do case ProfilesFile.read(valid_time) do {:ok, grid_data} -> build_grid_cache_rows(grid_data, valid_time) {:error, _} -> load_weather_grid_from_db(valid_time) end end defp filter_weather_bounds(rows, nil), do: rows defp filter_weather_bounds(rows, %{"south" => s, "north" => n, "west" => w, "east" => e}) do Enum.filter(rows, fn %{lat: lat, lon: lon} -> lat >= s and lat <= n and lon >= w and lon <= e end) end defp kickoff_async_grid_fill(valid_time) do if GridCache.claim_fill(valid_time) do Task.start(fn -> try do Logger.info("Weather.grid_cache async fill starting for #{valid_time}") warm_grid_cache_and_broadcast(valid_time) Phoenix.PubSub.broadcast( Microwaveprop.PubSub, "weather:updated", {:weather_updated, valid_time} ) Logger.info("Weather.grid_cache async fill complete for #{valid_time}") rescue e -> Logger.error("Weather.grid_cache async fill failed: #{inspect(e)}") after GridCache.release_fill(valid_time) end end) end :ok end defp load_weather_grid_from_db(latest_vt) do from(h in HrrrProfile, where: h.valid_time == ^latest_vt and h.is_grid_point == true, select: %{ lat: h.lat, lon: h.lon, valid_time: h.valid_time, temperature: h.surface_temp_c, dewpoint_depression: fragment("? - ?", h.surface_temp_c, h.surface_dewpoint_c), bl_height: h.hpbl_m, pwat: h.pwat_mm, refractivity_gradient: h.min_refractivity_gradient, ducting: h.ducting_detected, surface_pressure_mb: h.surface_pressure_mb, surface_temp_c: h.surface_temp_c, surface_dewpoint_c: h.surface_dewpoint_c, surface_refractivity: h.surface_refractivity, profile: h.profile, duct_characteristics: h.duct_characteristics } ) |> Repo.all(timeout: 60_000) |> Enum.map(&derive_and_clean/1) end @doc """ Eagerly populate the `GridCache` with the full CONUS weather grid for `valid_time` and broadcast it to every node in the cluster. Used by the cold cache fill path (`kickoff_async_grid_fill/1`) — prefer `build_grid_cache_rows/2` inside `PropagationGridWorker`, which already has the in-memory grid data and avoids the ~20s JSONB round trip. """ @spec warm_grid_cache_and_broadcast(DateTime.t()) :: :ok def warm_grid_cache_and_broadcast(valid_time) do rows = load_grid_rows_for(valid_time) GridCache.broadcast_put(valid_time, rows) :ok end @doc """ Warm the local `GridCache` from the latest persisted `ProfilesFile` on pod startup. Makes `/weather` usable immediately after a deploy instead of waiting for the next hourly PropagationGridWorker run. Local put only — every node reads the same NFS mount so no need to broadcast. """ @spec warm_grid_cache_from_latest_profile() :: :ok def warm_grid_cache_from_latest_profile do case ProfilesFile.latest_valid_time() do nil -> :ok valid_time -> try do rows = load_grid_rows_for(valid_time) GridCache.put(valid_time, rows) Logger.info("Weather: warmed GridCache from ProfilesFile for #{valid_time} (#{length(rows)} rows)") rescue e -> Logger.warning("Weather: ProfilesFile warm failed: #{inspect(e)}") end :ok end end @doc """ Build derived weather grid cache rows directly from the in-memory HRRR `grid_data` that `PropagationGridWorker` already has after fetching a forecast hour. Avoids the 15s+ DB round trip that `load_weather_grid_from_db/1` pays to SELECT + JSONB-decode 92k hrrr_profiles rows — the source of the crash loop that stopped forecast hours from being written. `grid_data` is `%{{lat, lon} => profile_map}` as produced by `HrrrClient.fetch_grid/3` (optionally enriched via native duct merge). The output matches the shape of `load_weather_grid_from_db/1` after `derive_and_clean/1`. """ @spec build_grid_cache_rows(%{{float(), float()} => map()}, DateTime.t(), map() | nil) :: [map()] def build_grid_cache_rows(grid_data, valid_time, bounds \\ nil) do grid_data |> filter_grid_data_bounds(bounds) |> Enum.flat_map(fn {{lat, lon}, profile} -> build_grid_cache_row(lat, lon, profile, valid_time) end) end defp filter_grid_data_bounds(grid_data, nil), do: grid_data defp filter_grid_data_bounds(grid_data, %{"south" => s, "north" => n, "west" => w, "east" => e}) do :maps.filter(fn {lat, lon}, _ -> lat >= s and lat <= n and lon >= w and lon <= e end, grid_data) end defp build_grid_cache_row(lat, lon, profile, valid_time) do temp_c = profile[:surface_temp_c] if is_nil(temp_c) or temp_c < -80 or temp_c > 60 do [] else sounding = derive_sounding(profile[:profile]) row = %{ lat: lat, lon: lon, valid_time: valid_time, temperature: temp_c, dewpoint_depression: depression(temp_c, profile[:surface_dewpoint_c]), bl_height: profile[:hpbl_m], pwat: profile[:pwat_mm], refractivity_gradient: sounding[:min_refractivity_gradient], ducting: sounding[:ducting_detected], surface_pressure_mb: profile[:surface_pressure_mb], surface_temp_c: temp_c, surface_dewpoint_c: profile[:surface_dewpoint_c], surface_refractivity: sounding[:surface_refractivity], profile: profile[:profile] || [], duct_characteristics: sounding[:duct_characteristics] } [derive_and_clean(row)] end end defp derive_sounding(profile) when is_list(profile) and length(profile) >= 3 do SoundingParams.derive(profile) || %{} end defp derive_sounding(_), do: %{} defp depression(nil, _), do: nil defp depression(_, nil), do: nil defp depression(t, d), do: t - d @spec weather_point_detail(float(), float(), DateTime.t()) :: map() | nil def weather_point_detail(lat, lon, valid_time) do step = 0.125 snapped_lat = Float.round(Float.round(lat / step) * step, 3) snapped_lon = Float.round(Float.round(lon / step) * step, 3) case GridCache.fetch_point(valid_time, snapped_lat, snapped_lon) do {:ok, row} -> row :miss -> case weather_point_detail_from_profiles(valid_time, snapped_lat, snapped_lon) do nil -> weather_point_detail_from_db(valid_time, snapped_lat, snapped_lon) row -> row end end end # Derive a single GridCache-shaped row from a persisted ProfilesFile # entry for `(valid_time, lat, lon)`. Returns nil when the file # doesn't exist or the point has no profile. defp weather_point_detail_from_profiles(valid_time, snapped_lat, snapped_lon) do case ProfilesFile.read_point(valid_time, snapped_lat, snapped_lon) do nil -> nil profile -> case build_grid_cache_rows(%{{snapped_lat, snapped_lon} => profile}, valid_time) do [row] -> row _ -> nil end end end defp weather_point_detail_from_db(valid_time, snapped_lat, snapped_lon) do from(h in HrrrProfile, where: h.lat == ^snapped_lat and h.lon == ^snapped_lon and h.valid_time == ^valid_time, select: %{ lat: h.lat, lon: h.lon, valid_time: h.valid_time, temperature: h.surface_temp_c, dewpoint_depression: fragment("? - ?", h.surface_temp_c, h.surface_dewpoint_c), bl_height: h.hpbl_m, pwat: h.pwat_mm, refractivity_gradient: h.min_refractivity_gradient, ducting: h.ducting_detected, surface_pressure_mb: h.surface_pressure_mb, surface_temp_c: h.surface_temp_c, surface_dewpoint_c: h.surface_dewpoint_c, surface_refractivity: h.surface_refractivity, profile: h.profile, duct_characteristics: h.duct_characteristics } ) |> Repo.one() |> then(fn nil -> nil row -> derive_and_clean(row) end) end defp derive_and_clean(row) do derived = WeatherLayers.derive(row) row |> Map.merge(derived) |> Map.drop([:profile, :duct_characteristics, :surface_temp_c, :surface_dewpoint_c]) end @spec upsert_hrrr_profile(map()) :: {:ok, HrrrProfile.t()} | {:error, Ecto.Changeset.t()} def upsert_hrrr_profile(attrs) do %HrrrProfile{} |> HrrrProfile.changeset(attrs) |> Repo.insert( on_conflict: :nothing, conflict_target: [:lat, :lon, :valid_time] ) end @spec upsert_hrrr_profiles_batch([map()], keyword()) :: {non_neg_integer(), nil} def upsert_hrrr_profiles_batch(profiles, _opts \\ []) do now = DateTime.truncate(DateTime.utc_now(), :second) profiles |> Enum.chunk_every(500) |> Enum.reduce({0, nil}, fn chunk, {total_count, _} -> entries = Enum.map(chunk, fn attrs -> is_gp = rem(round(attrs.lat * 1000), 125) == 0 and rem(round(attrs.lon * 1000), 125) == 0 Map.merge(attrs, %{ id: Ecto.UUID.generate(), is_grid_point: is_gp, inserted_at: now, updated_at: now }) end) {count, rows} = Repo.insert_all(HrrrProfile, entries, on_conflict: :nothing, conflict_target: [:lat, :lon, :valid_time] ) {total_count + count, rows} end) end @spec has_hrrr_profile?(float(), float(), DateTime.t()) :: boolean() def has_hrrr_profile?(lat, lon, valid_time) do dlat = 0.07 dlon = 0.07 HrrrProfile |> where( [h], h.lat >= ^(lat - dlat) and h.lat <= ^(lat + dlat) and h.lon >= ^(lon - dlon) and h.lon <= ^(lon + dlon) and h.valid_time == ^valid_time ) |> Repo.exists?() end @spec hrrr_for_contact(map()) :: HrrrProfile.t() | nil def hrrr_for_contact(%{pos1: nil}), do: nil def hrrr_for_contact(contact) do lat = contact.pos1["lat"] lon = contact.pos1["lon"] if lat && lon do find_nearest_hrrr(lat, lon, contact.qso_timestamp) end end @spec find_nearest_hrrr(float(), float(), DateTime.t()) :: HrrrProfile.t() | nil def find_nearest_hrrr(lat, lon, timestamp) do dlat = 0.07 dlon = 0.07 time_start = DateTime.add(timestamp, -3600, :second) time_end = DateTime.add(timestamp, 3600, :second) HrrrProfile |> where( [h], h.lat >= ^(lat - dlat) and h.lat <= ^(lat + dlat) and h.lon >= ^(lon - dlon) and h.lon <= ^(lon + dlon) and h.valid_time >= ^time_start and h.valid_time <= ^time_end ) |> order_by([h], asc: fragment( "ABS(? - ?) + ABS(? - ?) + ABS(EXTRACT(EPOCH FROM ? - ?))", h.lat, ^lat, h.lon, ^lon, h.valid_time, ^timestamp ) ) |> limit(1) |> Repo.one() end @spec hrrr_profiles_for_path(map()) :: [HrrrProfile.t()] def hrrr_profiles_for_path(%{pos1: nil}), do: [] def hrrr_profiles_for_path(contact) do contact |> Microwaveprop.Radio.contact_path_points() |> Enum.map(fn {lat, lon} -> find_nearest_hrrr(lat, lon, contact.qso_timestamp) end) |> Enum.reject(&is_nil/1) end @spec find_nearest_native_profile(float(), float(), DateTime.t()) :: HrrrNativeProfile.t() | nil def find_nearest_native_profile(lat, lon, timestamp) do dlat = 0.07 dlon = 0.07 time_start = DateTime.add(timestamp, -3600, :second) time_end = DateTime.add(timestamp, 3600, :second) HrrrNativeProfile |> where( [n], n.lat >= ^(lat - dlat) and n.lat <= ^(lat + dlat) and n.lon >= ^(lon - dlon) and n.lon <= ^(lon + dlon) and n.valid_time >= ^time_start and n.valid_time <= ^time_end ) |> order_by([n], asc: fragment( "ABS(? - ?) + ABS(? - ?) + ABS(EXTRACT(EPOCH FROM ? - ?))", n.lat, ^lat, n.lon, ^lon, n.valid_time, ^timestamp ) ) |> limit(1) |> Repo.one() end @doc """ Find the best available atmospheric profile for a contact. Tries HRRR first (3 km, hourly), falls back to NARR (32 km, 3-hourly). Returns the profile struct or nil. """ @spec best_profile_for_contact(map()) :: HrrrProfile.t() | NarrProfile.t() | nil def best_profile_for_contact(contact) do hrrr_for_contact(contact) || narr_for_contact(contact) end @doc "Find all atmospheric profiles along a contact's path, from any source." @spec profiles_along_path(map()) :: [HrrrProfile.t() | NarrProfile.t()] def profiles_along_path(contact) do hrrr_path = hrrr_profiles_for_path(contact) if hrrr_path == [] do narr_profiles_for_path(contact) else hrrr_path end end @spec narr_for_contact(map()) :: NarrProfile.t() | nil def narr_for_contact(%{pos1: nil}), do: nil def narr_for_contact(contact) do lat = contact.pos1["lat"] lon = contact.pos1["lon"] if lat && lon do find_nearest_narr(lat, lon, contact.qso_timestamp) end end @spec narr_profiles_for_path(map()) :: [NarrProfile.t()] def narr_profiles_for_path(%{pos1: nil}), do: [] def narr_profiles_for_path(contact) do contact |> Microwaveprop.Radio.contact_path_points() |> Enum.map(fn {lat, lon} -> find_nearest_narr(lat, lon, contact.qso_timestamp) end) |> Enum.reject(&is_nil/1) end @spec find_nearest_narr(float(), float(), DateTime.t()) :: NarrProfile.t() | nil def find_nearest_narr(lat, lon, timestamp) do dlat = 0.15 dlon = 0.15 time_start = DateTime.add(timestamp, -1800, :second) time_end = DateTime.add(timestamp, 1800, :second) NarrProfile |> where( [p], p.lat >= ^(lat - dlat) and p.lat <= ^(lat + dlat) and p.lon >= ^(lon - dlon) and p.lon <= ^(lon + dlon) and p.valid_time >= ^time_start and p.valid_time <= ^time_end ) |> order_by([p], asc: fragment( "ABS(? - ?) + ABS(? - ?)", p.lat, ^lat, p.lon, ^lon ) ) |> limit(1) |> Repo.one() end @spec find_nearest_rtma(float(), float(), DateTime.t()) :: RtmaObservation.t() | nil def find_nearest_rtma(lat, lon, timestamp) do dlat = 0.05 dlon = 0.05 time_start = DateTime.add(timestamp, -900, :second) time_end = DateTime.add(timestamp, 900, :second) RtmaObservation |> where( [o], o.lat >= ^(lat - dlat) and o.lat <= ^(lat + dlat) and o.lon >= ^(lon - dlon) and o.lon <= ^(lon + dlon) and o.valid_time >= ^time_start and o.valid_time <= ^time_end ) |> order_by([o], asc: fragment( "ABS(? - ?) + ABS(? - ?) + ABS(EXTRACT(EPOCH FROM ? - ?))", o.lat, ^lat, o.lon, ^lon, o.valid_time, ^timestamp ) ) |> limit(1) |> Repo.one() end @spec round_to_hrrr_grid(float(), float()) :: {float(), float()} def round_to_hrrr_grid(lat, lon) do {Float.round(lat / 1.0, 2), Float.round(lon / 1.0, 2)} end @doc """ Delete every `is_grid_point = true` row from `hrrr_profiles`, regardless of age. Grid-point profiles are historical — the propagation grid now lives in `/data/scores` binary files, nothing reads `is_grid_point = true` rows anymore, and forecast runs no longer write them. This purge walks each partition directly so a single DELETE can't scan the whole parent table. Preserves QSO-linked rows (`is_grid_point = false`), which remain the data path for contact enrichment and the `/path` calculator. """ @spec purge_grid_point_profiles() :: non_neg_integer() def purge_grid_point_profiles do deleted = Enum.reduce(hrrr_profile_partitions(), 0, fn partition, acc -> %{num_rows: n} = Repo.query!( ~s(DELETE FROM "#{partition}" WHERE is_grid_point = true), [], timeout: 600_000 ) if n > 0 do require Logger Logger.info("Purged #{n} grid-point rows from #{partition}") end acc + n end) deleted end @spec hrrr_profile_partitions() :: [String.t()] defp hrrr_profile_partitions do {:ok, %{rows: rows}} = Repo.query( """ SELECT child.relname FROM pg_inherits JOIN pg_class parent ON pg_inherits.inhparent = parent.oid JOIN pg_class child ON pg_inherits.inhrelid = child.oid WHERE parent.relname = 'hrrr_profiles' ORDER BY child.relname """, [], timeout: 60_000 ) Enum.map(rows, fn [name] -> name end) end @spec round_to_iemre_grid(float(), float()) :: {float(), float()} def round_to_iemre_grid(lat, lon) do {Float.round(lat * 8) / 8, Float.round(lon * 8) / 8} end @spec upsert_iemre_observation(map()) :: {:ok, IemreObservation.t()} | {:error, Ecto.Changeset.t()} def upsert_iemre_observation(attrs) do %IemreObservation{} |> IemreObservation.changeset(attrs) |> Repo.insert( on_conflict: :nothing, conflict_target: [:lat, :lon, :date] ) end @spec has_iemre_observation?(float(), float(), Date.t()) :: boolean() def has_iemre_observation?(lat, lon, date) do IemreObservation |> where([i], i.lat == ^lat and i.lon == ^lon and i.date == ^date) |> Repo.exists?() end @spec iemre_for_contact(map()) :: IemreObservation.t() | nil def iemre_for_contact(%{pos1: nil}), do: nil def iemre_for_contact(contact) do lat = contact.pos1["lat"] lon = contact.pos1["lon"] if lat && lon do find_nearest_iemre(lat, lon, contact.qso_timestamp) end end @spec find_nearest_iemre(float(), float(), DateTime.t()) :: IemreObservation.t() | nil def find_nearest_iemre(lat, lon, timestamp) do {rlat, rlon} = round_to_iemre_grid(lat, lon) date = DateTime.to_date(timestamp) IemreObservation |> where([i], i.lat == ^rlat and i.lon == ^rlon and i.date == ^date) |> Repo.one() end @spec iemre_for_path(map()) :: [IemreObservation.t()] def iemre_for_path(%{pos1: nil}), do: [] def iemre_for_path(contact) do contact |> Microwaveprop.Radio.contact_path_points() |> Enum.map(fn {lat, lon} -> find_nearest_iemre(lat, lon, contact.qso_timestamp) end) |> Enum.reject(&is_nil/1) end @doc """ Find the nearest surface observation to a given (lat, lon, time), preferring 5-minute METAR data when available, falling back to the hourly `surface_observations` table. Returns a map with `:temp_f`, `:dewpoint_f`, `:wind_speed_kts`, `:observed_at`, etc. — the same shape regardless of which table the data came from. Returns `nil` if neither source has data. """ @spec recent_surface_obs(float(), float(), DateTime.t()) :: Metar5minObservation.t() | SurfaceObservation.t() | nil def recent_surface_obs(lat, lon, timestamp) do dlat = 0.5 dlon = 0.5 time_start = DateTime.add(timestamp, -1800, :second) time_end = DateTime.add(timestamp, 1800, :second) station_ids = Station |> where( [s], s.lat >= ^(lat - dlat) and s.lat <= ^(lat + dlat) and s.lon >= ^(lon - dlon) and s.lon <= ^(lon + dlon) ) |> select([s], s.id) # Try 5-min first metar_5min = Metar5minObservation |> where([o], o.station_id in subquery(station_ids)) |> where([o], o.observed_at >= ^time_start and o.observed_at <= ^time_end) |> order_by([o], asc: fragment("ABS(EXTRACT(EPOCH FROM ? - ?))", o.observed_at, ^timestamp)) |> limit(1) |> Repo.one() if metar_5min do metar_5min else # Fall back to hourly SurfaceObservation |> where([o], o.station_id in subquery(station_ids)) |> where([o], o.observed_at >= ^time_start and o.observed_at <= ^time_end) |> order_by([o], asc: fragment("ABS(EXTRACT(EPOCH FROM ? - ?))", o.observed_at, ^timestamp)) |> limit(1) |> Repo.one() end end end