//! `LinComb` — weighted sum of `N` f64 inputs (`Σ weights[i] · input[i]`), the //! general combinator for the north-star "combine signals with weights" move //! (C10). `LinComb([1.0, 1.0])` is `Add`; `LinComb([1.0, -1.0])` is `Sub`. The //! weights are construction parameters that configure the node and fix its //! arity (`weights.len()` inputs); they are also the combination's tunable //! params, declared in the schema (cycle 0015) as `weights[0..N]` — N flat //! indexed `F64` knobs that `Composite::param_space` aggregates (C8/C12/C19). use aura_core::{ Ctx, FieldSpec, Firing, Node, NodeSchema, ParamSpec, PortSpec, PrimitiveBuilder, Scalar, ScalarKind, }; /// Weighted sum of `N` f64 inputs: `Σ weights[i] · input[i]`. The `weights` are /// construction parameters that configure the node and fix its arity /// (`weights.len()` inputs, in slot order). Emits `None` until *all* inputs /// have a value. /// /// # Firing and warm-up /// /// Every input is [`Firing::Any`](aura_core::Firing::Any) — a *mode-A as-of /// join*: the node fires on every cycle in which any leg is fresh (once all /// legs have produced a value), pairing each fresh leg with the held value of /// the others. Until every leg has a value it emits `None` (no cold-leg-as- /// `0.0`). With heterogeneous sources sharing a timestamp (same `ts` from two /// sources = two distinct cycles, C4), a fired node emits one row per *cycle*, /// so a recorded combined stream may carry more than one row per timestamp. pub struct LinComb { weights: Vec, out: [Scalar; 1], } impl LinComb { /// Build a `LinComb` with one weight per input (at least one required). /// /// # Panics /// Panics if `weights` is empty. pub fn new(weights: Vec) -> Self { assert!(!weights.is_empty(), "LinComb needs at least one weight"); Self { weights, out: [Scalar::F64(0.0)] } } /// The param-generic recipe for a blueprint primitive. The `arity` is topology /// (fixed per blueprint, C19), taken as a builder arg; only the weight *values* /// are injected, slot by slot, through `LinComb::new` (the single sizing gate). pub fn builder(arity: usize) -> PrimitiveBuilder { let inputs = (0..arity) .map(|_| PortSpec { kind: ScalarKind::F64, firing: Firing::Any }) .collect(); let params = (0..arity) .map(|i| ParamSpec { name: format!("weights[{i}]"), kind: ScalarKind::F64 }) .collect(); PrimitiveBuilder::new( "LinComb", NodeSchema { inputs, output: vec![FieldSpec { name: "value", kind: ScalarKind::F64 }], params }, |p| Box::new(LinComb::new( p.iter().map(|s| s.as_f64().expect("weight slot is F64")).collect(), )), ) } } impl Node for LinComb { fn lookbacks(&self) -> Vec { vec![1; self.weights.len()] } fn eval(&mut self, ctx: Ctx<'_>) -> Option<&[Scalar]> { let mut acc = 0.0; for (i, &w) in self.weights.iter().enumerate() { let w_in = ctx.f64_in(i); if w_in.is_empty() { return None; // not yet warmed up — withhold until every leg is present } acc += w * w_in[0]; } self.out[0] = Scalar::F64(acc); Some(&self.out) } fn label(&self) -> String { "LinComb".to_string() } } #[cfg(test)] mod tests { use super::*; use aura_core::{AnyColumn, Timestamp}; #[test] fn lincomb_weighted_sum_once_all_present() { let mut lc = LinComb::new(vec![0.5, 2.0]); let mut inputs = vec![ AnyColumn::with_capacity(ScalarKind::F64, 1), AnyColumn::with_capacity(ScalarKind::F64, 1), ]; // only input 0 present -> None inputs[0].push(Scalar::F64(10.0)).unwrap(); assert_eq!(lc.eval(Ctx::new(&inputs, Timestamp(0))), None); // both present -> 0.5*10 + 2.0*3 = 11.0 inputs[1].push(Scalar::F64(3.0)).unwrap(); assert_eq!(lc.eval(Ctx::new(&inputs, Timestamp(0))), Some([Scalar::F64(11.0)].as_slice())); } #[test] fn lincomb_unit_weights_equal_add() { let mut lc = LinComb::new(vec![1.0, 1.0]); let mut inputs = vec![ AnyColumn::with_capacity(ScalarKind::F64, 1), AnyColumn::with_capacity(ScalarKind::F64, 1), ]; inputs[0].push(Scalar::F64(7.0)).unwrap(); inputs[1].push(Scalar::F64(5.0)).unwrap(); // unit weights reproduce Add: 7 + 5 assert_eq!(lc.eval(Ctx::new(&inputs, Timestamp(0))), Some([Scalar::F64(12.0)].as_slice())); } #[test] fn lincomb_three_inputs_warm_up() { let mut lc = LinComb::new(vec![1.0, 1.0, 1.0]); let mut inputs = vec![ AnyColumn::with_capacity(ScalarKind::F64, 1), AnyColumn::with_capacity(ScalarKind::F64, 1), AnyColumn::with_capacity(ScalarKind::F64, 1), ]; inputs[0].push(Scalar::F64(1.0)).unwrap(); inputs[1].push(Scalar::F64(2.0)).unwrap(); // third leg still cold -> None (withheld until every leg is present) assert_eq!(lc.eval(Ctx::new(&inputs, Timestamp(0))), None); inputs[2].push(Scalar::F64(3.0)).unwrap(); // all warm -> 1 + 2 + 3 assert_eq!(lc.eval(Ctx::new(&inputs, Timestamp(0))), Some([Scalar::F64(6.0)].as_slice())); } #[test] #[should_panic(expected = "LinComb needs at least one weight")] fn lincomb_empty_weights_panics() { let _ = LinComb::new(vec![]); } }