99237e1d0a
Five new rostered node types (count-pin 23 -> 28, both the in-crate shape test and the cross-boundary CLI vocabulary e2e): Const is unary with an f64 'value' param — the clock input drives it, its value is ignored, since a zero-input node never evaluates in the total-push engine — mirroring EqConst's constant-as-param pattern; Div is binary IEEE-754 (x/0 -> signed inf, 0/0 -> NaN, unit-tested, no error channel); Abs unary mirroring Sqrt; Max/Min binary pairwise, distinct from the windowed RollingMax/RollingMin. Acceptance proof: the committed executable spec composes an RSI-class gain/loss-split-and-ratio signal purely from blueprint data through std_vocabulary and runs it to hand-computed RS values — the r_meanrev constant-folding workaround is no longer forced. Verified: headline test green, aura-std 163/0, full workspace suite green (independent mini-verify), clippy -D warnings clean. closes #236
79 lines
2.2 KiB
Rust
79 lines
2.2 KiB
Rust
//! `Abs` — one-input f64 absolute value. Turns a signed delta (e.g. the
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//! negative-side split of a price change) into a positive magnitude, e.g.
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//! RSI-class signals' `loss = Abs(Min(delta, 0))`. Emits `None` until its
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//! input has a value.
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use aura_core::{Cell, Ctx, FieldSpec, Firing, Node, NodeSchema, PortSpec, PrimitiveBuilder, ScalarKind};
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/// One-input f64 absolute value, `value.abs()`. Emits `None` until its input
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/// has a value (warm-up filter, C8).
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pub struct Abs {
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out: [Cell; 1],
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}
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impl Abs {
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pub fn new() -> Self {
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Self { out: [Cell::from_f64(0.0)] }
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}
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pub fn builder() -> PrimitiveBuilder {
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PrimitiveBuilder::new(
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"Abs",
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NodeSchema {
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inputs: vec![PortSpec { kind: ScalarKind::F64, firing: Firing::Any, name: "value".into() }],
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output: vec![FieldSpec { name: "value".into(), kind: ScalarKind::F64 }],
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params: vec![],
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},
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|_| Box::new(Abs::new()),
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)
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}
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}
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impl Default for Abs {
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fn default() -> Self {
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Self::new()
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}
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}
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impl Node for Abs {
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fn lookbacks(&self) -> Vec<usize> {
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vec![1]
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}
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fn eval(&mut self, ctx: Ctx<'_>) -> Option<&[Cell]> {
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let w = ctx.f64_in(0);
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if w.is_empty() {
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return None;
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}
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self.out[0] = Cell::from_f64(w[0].abs());
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Some(&self.out)
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}
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fn label(&self) -> String {
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"Abs".to_string()
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}
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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use aura_core::{AnyColumn, Scalar, Timestamp};
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#[test]
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fn abs_of_negative_and_positive_is_the_magnitude() {
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let mut a = Abs::new();
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let mut inputs = vec![AnyColumn::with_capacity(ScalarKind::F64, 1)];
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inputs[0].push(Scalar::f64(-3.0)).unwrap();
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assert_eq!(a.eval(Ctx::new(&inputs, Timestamp(0))), Some([Cell::from_f64(3.0)].as_slice()));
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inputs[0].push(Scalar::f64(3.0)).unwrap();
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assert_eq!(a.eval(Ctx::new(&inputs, Timestamp(0))), Some([Cell::from_f64(3.0)].as_slice()));
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}
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#[test]
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fn abs_is_none_until_input_present() {
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let mut a = Abs::new();
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let inputs = vec![AnyColumn::with_capacity(ScalarKind::F64, 1)];
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assert_eq!(a.eval(Ctx::new(&inputs, Timestamp(0))), None);
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}
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}
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