Adds a per-contact enrichment pipeline that determines whether a QSO was
most likely carried by rain scatter, tropospheric ducting, or ordinary
troposcatter — using IEM n0q composite reflectivity sampled inside the
lens-shaped intersection of 400 km-radius disks around each endpoint.
Pieces:
* Microwaveprop.Propagation.CommonVolume — lens geometry (haversine,
in-CV test, bbox, area).
* contact_common_volume_radar table (1:1 per contact) storing
aggregate dBZ stats inside the CV + radar_status column on contacts.
* Microwaveprop.Workers.CommonVolumeRadarWorker — Oban :radar queue,
fetches the n0q frame at QSO time, iterates pixels inside the CV
bbox, aggregates rain/heavy/core-pixel counts, max/mean dBZ, and
coverage percentage.
* Microwaveprop.Propagation.RainScatterClassifier — rule-based mapper
from (band, distance, radar stats, duct flags) to one of
:likely_rainscatter | :rainscatter_possible | :tropo_duct |
:troposcatter | :unknown.
* ContactWeatherEnqueueWorker learns a :radar enrichment type and
enqueues the CV worker on contact submission; pre-2014 contacts
(outside IEM n0q coverage) are pinned to :unavailable.
* `mix radar_backfill` bulk-enqueues historical contacts with
--year / --limit / --dry-run.
* Contact detail page renders a mechanism badge with supporting
stats (common-volume area, max dBZ, heavy-rain pixel count,
coverage %).
83 lines
2.4 KiB
Elixir
83 lines
2.4 KiB
Elixir
defmodule Microwaveprop.DataCase do
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@moduledoc """
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This module defines the setup for tests requiring
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access to the application's data layer.
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You may define functions here to be used as helpers in
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your tests.
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Finally, if the test case interacts with the database,
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we enable the SQL sandbox, so changes done to the database
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are reverted at the end of every test. If you are using
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PostgreSQL, you can even run database tests asynchronously
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by setting `use Microwaveprop.DataCase, async: true`, although
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this option is not recommended for other databases.
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"""
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use ExUnit.CaseTemplate
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alias Ecto.Adapters.SQL.Sandbox
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using do
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quote do
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import Ecto
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import Ecto.Changeset
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import Ecto.Query
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import Microwaveprop.DataCase
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alias Microwaveprop.Repo
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end
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end
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setup tags do
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Microwaveprop.DataCase.setup_sandbox(tags)
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Microwaveprop.DataCase.reset_score_files()
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Microwaveprop.DataCase.stub_nexrad_default()
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:ok
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end
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@doc """
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Installs a default 404 stub for the IEM NEXRAD client so tests that
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trigger `CommonVolumeRadarWorker` via `enqueue_for_contact/1` don't
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crash for lack of a Req.Test plug. Individual tests can override with
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their own `Req.Test.stub/2`.
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"""
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def stub_nexrad_default do
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Req.Test.stub(Microwaveprop.Weather.NexradClient, fn conn ->
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Plug.Conn.send_resp(conn, 404, "not found")
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end)
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end
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@doc """
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Sets up the sandbox based on the test tags.
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"""
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def setup_sandbox(tags) do
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pid = Sandbox.start_owner!(Microwaveprop.Repo, shared: not tags[:async])
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on_exit(fn -> Sandbox.stop_owner(pid) end)
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end
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@doc """
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Wipe the propagation ScoresFile tree between tests so files don't
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leak between cases sharing the same tmp dir.
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"""
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def reset_score_files do
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dir = Application.get_env(:microwaveprop, :propagation_scores_dir)
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if is_binary(dir), do: File.rm_rf!(dir)
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end
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@doc """
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A helper that transforms changeset errors into a map of messages.
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assert {:error, changeset} = Accounts.create_user(%{password: "short"})
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assert "password is too short" in errors_on(changeset).password
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assert %{password: ["password is too short"]} = errors_on(changeset)
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"""
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def errors_on(changeset) do
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Ecto.Changeset.traverse_errors(changeset, fn {message, opts} ->
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Regex.replace(~r"%{(\w+)}", message, fn _, key ->
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opts |> Keyword.get(String.to_existing_atom(key), key) |> to_string()
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end)
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end)
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end
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end
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