Alerts get a number, assigned server-side and shown in both the push and the
Events list, so a notification on a phone can be matched to a row on a screen
when several fire together. It could not come from the browser: that counter
restarts on reload and differs between tabs. It is persisted next to the
cooldown state, because numbering restarting after a deploy would collide with a
phone's existing notification history — which changed that file from a list to
an object, with the loader still reading the old shape.
Pushes now carry a timestamp in the configured zone rather than the server's.
ALERT_TIMEZONE defaults to America/Chicago; containers run UTC, and a push
reading 02:14 to someone seeing 21:14 costs a translation every time. The
browser already formats its own times locally and is unchanged.
Confluence zones are one line each, ordered by price rather than by proximity,
so the list reads top to bottom the way the chart does and all of them fit on
screen — sixteen zones in 394px, about 25px each, where each previously took a
four-line block. Ordering is a display concern only: the server still returns
them nearest-first, which is what the alert path wants.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
P0 from docs/async_refactor.md. The mutating routes are sync `def`, so FastAPI
runs them in a threadpool, and they reach Runtime.broadcast through
rebuild_levels — writing asyncio.Queue directly from there. That queue is not
thread-safe: it wakes a consumer by resolving a Future, which only the loop
thread may do. A dropped wakeup means a drawing made in one browser does not
reach another until the next market tick.
broadcast now posts through call_soon_threadsafe when it is off the loop, and
publishes directly when it is on it, so the stream's own path pays nothing.
Worth being straight about the tests: the race is timing-dependent and did not
reproduce in twenty attempts — a foreign-thread put_nowait usually lands in the
ready queue before the loop sleeps, and a tick every second covers the rest.
Even asyncio's debug thread-affinity check stays quiet unless a consumer is
parked on the Future at that instant. So the tests assert the contract rather
than provoke the failure: a broadcast from a worker thread must go through
call_soon_threadsafe, one from the loop must deliver synchronously, and both
must arrive.
Also adds the loop-lag probe, which reports scheduling drift as loop_lag_ms on
/api/status. It found P1 on its first run: 19,441ms worst against 1.5ms in
steady state, which is seeding blocking the loop. "The chart feels laggy" is now
a number.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Two things kept the chart quieter than the feed.
Higher timeframes only moved once a minute. Tick bars are 1m and the socket
filters bar events by the subscriber's timeframe, so on the hourly chart every
tick was discarded and only a closed minute passing through the aggregator
showed up. They cannot simply be fed to the aggregator — it accumulates with
current.v += incoming.v, so the same forming minute re-sent on each tick would
add its volume to every higher timeframe again and again. provisional_higher
combines the aggregator's committed state with the live minute instead, without
mutating it; the next closed minute goes through normally and replaces the
result, because the store keys on the bucket timestamp. A test pins the
behaviour: five ticks in one minute leave the hour's volume at closed plus live,
counted exactly once.
Trades known only by their volume were skipped. Level 1 resends only changed
fields, so some trades carry a trade stamp and a moved TOTAL_VOLUME with neither
LAST_PRICE nor LAST_SIZE. Those now count, with size left at zero rather than
guessed from the volume delta — CHART_FUTURES replaces the minute's volume with
the exchange's own figure moments later, and two ways of counting the same
trades is how double counting starts. Measured: 66 to 74 updates per 90s.
The tick throttle drops to 0.25s, which no longer binds. Measured in regular
hours the gaps between updates are whole multiples of 1.005s — 2.01, 3.02,
4.03 — which is Schwab conflating LEVEL_ONE_FUTURES to one update per second
per symbol. One per second is the source's ceiling, not ours; the longer gaps
are seconds in which their feed carried no trade.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
CHART_FUTURES emits a bar only once its minute is over, so the chart stepped
once a minute and sat still in between, which reads as a dead feed.
LEVEL_ONE_FUTURES carries real trades on the same socket and the same login — no
extra REST call, no extra rate limit — and reports delayed: False on this
account. It was verified back in M6 and never subscribed to. It is now, building
a forming bar for the current minute that the authoritative CHART_FUTURES bar
then supersedes.
Three constraints shaped it, each a real bug avoided:
- Tick bars never reach the aggregator. It accumulates with current.v +=
incoming.v, so re-sending the same forming minute would add its volume into
every higher timeframe again on every update. Runtime.on_bar returns early for
an unclosed bar: store, set price, broadcast, stop.
- Emissions are throttled, SCHWAB_TICK_SECONDS default 1.0, because /ES trades
many times a second and each emission is a store write plus a broadcast to
every open socket. Negative drops the Level 1 subscription entirely.
- A tick for a minute CHART_FUTURES has already closed is dropped, or a late
trade would overwrite a settled exchange bar with a partial one.
Bid-only updates are skipped rather than carried forward: a bid is not a trade
and must not extend a candle's high or low. Alerts stay on closed bars — a level
is judged on a settled bar, not a price that may not last the minute — which
needed no change, since on_bar already gated on closed.
Verified against the live socket: 15 forming bars and 2 closed bars in 100
seconds, the closed bar superseding each forming minute. Verified in a browser:
the last candle's high and low visibly extend within the minute, no console
errors. 85 tests pass, four of them new.
The plan gains the cold-restart options asked for: make seeding non-quadratic
first, then persist cooldowns, then persist bars.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Verified against a live account before and after writing it. CHART_FUTURES
delivers one true-OHLCV minute bar per symbol per minute, LEVEL_ONE_FUTURES
reports delayed: false, and consecutive bars arrived sixty seconds apart through
the production code path.
Yahoo stays. Schwab serves no futures history whatever, so seed_source resolves
to Yahoo even when SEED_SOURCE=schwab is asked for — the pairing is the intended
configuration rather than a fallback. The symbols differ, ES=F against /ES, so
Settings.live_symbol picks the live one while seeding always uses Yahoo's.
Three findings worth keeping, each of which cost a round trip:
- get_quote() singular returns the wrong instrument entirely. It puts the symbol
in the URL path, where the leading slash is normalised away, so /ES resolves to
Eversource Energy at $72 and returns HTTP 200 with a populated body. Only
get_quotes() plural, which passes symbols as a query parameter, returns the
future. A 200 is not evidence; assetMainType is.
- Streaming requires the Accounts and Trading product. StreamClient.login() reads
/trader/v1/userPreference for its socket URL, and that path does not exist in
Market Data Production.
- /ES resolves to the active contract on Schwab's side, so the contract roll
handling the plan left open needs no code.
The stream drops the oldest queued message rather than stalling the socket, and
surfaces a dead pump task instead of waiting forever on a queue nothing fills.
schwab-py moves into requirements.txt, imported only when LIVE_SOURCE=schwab.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
The trendline bug: a line continued past its second anchor at a different
slope. Two conventions were fighting, and both were wrong.
Lightweight Charts spaces bars evenly however much time separates them — a
weekend is forty-nine hours and one bar wide. The renderer extended the line by
interpolating between bar indices, which looked straight but disagreed with the
server, since price_at() advances per second. Measured on real bars that reached
147 points: the chart drew a level the alerts did not believe in. Making the
renderer match price_at() fixed the disagreement and made the visible kick worse,
because now the line really did climb an hour's worth of slope across a one-bar
maintenance break.
Neither convention is what a person means by drawing a line. A trendline advances
per bar, so both sides now evaluate in bar space: a new bar_space module the
runtime uses to position sloped levels, mirrored by indexAt() in the chart. The
line is straight on screen and the alert fires where it is drawn.
Also, from testing against the live chart:
- A plain click with the trendline tool armed did nothing and left the tool
armed, so the next click began a new line — which is how the slope change was
first noticed. Click-click and press-drag-release are both supported now, with
the rubber band following the cursor between clicks.
- Hand-placed levels are armed, fire once, then disarm themselves, and can be
re-armed from the sidebar. Verified end to end: created armed, tripped within
thirty seconds, disarmed, re-armed.
- Layers is collapsible.
- The 1h moving averages are gone; only the daily set remains.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Alerts were evaluated inside the WebSocket handler, with a separate AlertEngine
per connection. Three consequences, all of which defeated the point of phone
push:
- No browser connected meant no alert at all. The notification only existed if
a tab was open to receive it, which is precisely when you least need it.
- Two tabs meant two notifications, since each connection evaluated
independently.
- Cooldowns lived and died with the connection, so reloading the page cleared
them and a zone that had just alerted alerted again at once.
The third also meant the calibration in the README described a system nobody was
running: it models a single engine, which is what this now is.
Evaluation moves into Runtime, once per closed 1m bar, over every level. Layer
preferences are deliberately not consulted — they are a display choice made in
one browser, and a push notification should not depend on which checkboxes that
browser has ticked. Sockets now only relay what the runtime produced.
ntfy dispatch is a detached task with its own error handling. It previously ran
inline in the socket loop and called raise_for_status(), where the only except
clause caught disconnects — so a transient ntfy outage dropped the client's
connection.
Delivery verified end to end against ntfy.sh: title, priority and the multi-line
body all arrive as intended. NTFY_TOPIC still has to be set for anything to send.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
The confluence engine had nothing to work with. Daily moving averages were the
only level source, and they sat 163 to 697 points from price, so every cluster
had exactly one member and no alert could ever fire.
Two new sources, chosen for having a real following — the engine is a bet that
many participants watch the same price, which is what makes a level hold:
- Prior day high/low/close, from the last *closed* daily bar so mid-session the
levels do not silently switch to today's own developing range. Full daily
weight rather than the 0.75 average discount: a traded high is structure, not
a derived average.
- Session VWAP, anchored to the 18:00 ET open like the daily bars. Institutional
execution is benchmarked against it, and zero-volume overnight minutes are
skipped rather than dividing by zero.
Both are stamped 1d, so they get their own colours to stay distinguishable from
the daily averages. Prior-day levels draw as price lines, which span the chart
and label the axis instead of relying on bar-index interpolation.
VWAP re-prices every minute while a daily average carries hundreds of points and
changes once a session, so broadcasting the whole level set on the VWAP cadence
would have pushed the entire history every minute. Levels now go out as a delta
that clients merge by id.
Adding the levels then exposed two defects that had been invisible while nothing
could cluster:
- Cluster identity was sha1(side + round(center / tolerance)), and tolerance
derives from ATR, so it changed every bar. The same zone was continually
issued a new id, never matched the cooldown table, and the cooldown did
nothing. Identity is now the set of converging levels.
- Alert suppression keyed on that identity, so a level drifting in or out of a
group read as a new zone. It now suppresses by proximity: two zones within an
ATR are the same zone, and the strongest is the one reported.
Over six replayed sessions at threshold 28 that is 247 alerts, then 54, then 40;
raising the cooldown to 4h — which only affects repeats of the same area, never
a genuinely new zone — gives 17 total with a worst session of 9.
calibrate_alerts.py now sweeps threshold and cooldown together in one pass,
since the threshold turns out to be quantised and nearly useless as a control.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>