Prep for manual rate calcs, handle non-ib backends XD
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ebf3e00438
commit
1fc6429f75
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@ -30,9 +30,10 @@ def wap(
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weights: np.ndarray,
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) -> np.ndarray:
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"""Weighted average price from signal and weights.
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'''
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Weighted average price from signal and weights.
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"""
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'''
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cum_weights = np.cumsum(weights)
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cum_weighted_input = np.cumsum(signal * weights)
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@ -130,6 +131,8 @@ async def dolla_vlm(
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chl3 = (a['close'] + a['high'] + a['low']) / 3
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v = a['volume']
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from ._momo import wma
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# on first iteration yield history
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yield {
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'dolla_vlm': chl3 * v,
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@ -189,9 +192,22 @@ async def dolla_vlm(
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@fsp(
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# TODO: eventually I guess we should support some kinda declarative
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# graphics config syntax per output yah? That seems like a clean way
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# to let users configure things? Not sure how exactly to offer that
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# api as well as how to expose such a thing *inside* the body?
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outputs=(
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# pulled verbatim from `ib` for now
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'1m_trade_rate',
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'1m_vlm_rate',
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# our own instantaneous rate calcs which are all
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# parameterized by a samples count (bars) period
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# 'trade_rate',
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# 'dark_trade_rate',
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# 'dvlm_rate',
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# 'dark_dvlm_rate',
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),
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curve_style='line',
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)
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@ -199,9 +215,30 @@ async def flow_rates(
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source: AsyncReceiver[dict],
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ohlcv: ShmArray, # OHLC sampled history
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# TODO (idea): a dynamic generic / boxing type that can be updated by other
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# FSPs, user input, and possibly any general event stream in
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# real-time. Hint: ideally implemented with caching until mutated
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# ;)
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period: 'Param[int]' = 16, # noqa
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# TODO (idea): a generic for declaring boxed fsps much like ``pytest``
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# fixtures? This probably needs a lot of thought if we want to offer
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# a higher level composition syntax eventually (oh right gotta make
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# an issue for that).
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# ideas for how to allow composition / intercalling:
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# - offer a `Fsp.get_history()` to do the first yield output?
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# * err wait can we just have shm access directly?
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# - how would it work if some consumer fsp wanted to dynamically
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# change params which are input to the callee fsp? i guess we could
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# lazy copy in that case?
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# dvlm: 'Fsp[dolla_vlm]'
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) -> AsyncIterator[
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tuple[str, Union[np.ndarray, float]],
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]:
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# dvlm_shm = dolla_vlm.get_shm(ohlcv)
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# generally no history available prior to real-time calcs
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yield {
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'1m_trade_rate': None,
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@ -210,17 +247,27 @@ async def flow_rates(
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ltr = 0
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lvr = 0
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# TODO: 3.10 do ``anext()``
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quote = await source.__anext__()
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tr = quote.get('tradeRate')
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yield '1m_trade_rate', tr or 0
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vr = quote.get('volumeRate')
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yield '1m_vlm_rate', vr or 0
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async for quote in source:
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if quote:
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tr = quote['tradeRate']
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if tr != ltr:
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# XXX: ib specific schema we should
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# probably pre-pack ourselves.
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tr = quote.get('tradeRate')
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if tr is not None and tr != ltr:
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# print(f'trade rate: {tr}')
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yield '1m_trade_rate', tr
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ltr = tr
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vr = quote['volumeRate']
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if vr != lvr:
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vr = quote.get('volumeRate')
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if vr is not None and vr != lvr:
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# print(f'vlm rate: {vr}')
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yield '1m_vlm_rate', vr
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lvr = vr
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