polydat_core/iteration/comprehension/strategies/mod.rs
1// Copyright 2024-2026 Jonathan Shook
2// SPDX-License-Identifier: Apache-2.0
3
4//! Strategy implementations — spec §3.6 + §10.2 R2 + §10.7.8.
5//!
6//! ## Single invocation surface
7//!
8//! Every named strategy exposes one public entry point —
9//! [`Strategy::apply`]. The caller passes an [`EvaluatedInput`]
10//! carrying the materialized tuples, their cardinality, and the
11//! `IndexFn` they actually satisfy. The strategy decides
12//! internally whether to dispatch its closed-form indexed
13//! algorithm (when `has_closed_form_for(&input.index_fn)`) or
14//! its fallback reorder over the materialized tuples.
15//!
16//! Per spec §10.7.8 this is the **strategy invocation
17//! contract**: V4 fires at `apply` time against the
18//! `EvaluatedInput`'s `index_fn` — definitively, regardless of
19//! how the input source was authored (literal, range,
20//! registry-recognized generator, or workload-param).
21//!
22//! ## Internal split
23//!
24//! Per-strategy modules organise the implementation into two
25//! private helpers (`apply_indexed` for the R2 closed-form path
26//! when applicable, `apply_naive` for the generic fallback);
27//! [`Strategy::apply`] is the dispatcher. The trait surface
28//! exposes only the dispatcher plus the V4/R2 introspection
29//! predicates ([`Strategy::accepts_input`],
30//! [`Strategy::has_closed_form_for`]).
31//!
32//! Strategies are selected by [`StrategyName`]; [`for_name`]
33//! dispatches a strategy name to its boxed [`Strategy`] impl.
34
35use super::metadata::IndexFn;
36use super::strategy::StrategyName;
37
38pub mod antidiagonal;
39pub mod diagonal;
40pub mod extrema;
41pub mod halton;
42pub mod lex;
43pub mod lhs;
44pub mod prng;
45pub mod reverse_lex;
46pub mod shells;
47pub mod shuffle;
48pub mod sobol;
49
50/// A multi-coordinate index. Each component is the per-axis
51/// position in the input's index space. Length equals the
52/// input's dimensionality (1 for `Lockstep` / `Modular` /
53/// `Concatenation`; N for `Lattice` / `Continuous` /
54/// `Hybrid`).
55///
56/// `MultiIndex` is the indexed-form output type. The R2 IR
57/// opcode emitted by the IR compiler consumes these and resolves
58/// each through the input's `IndexFn` to dispense the actual
59/// tuple.
60pub type MultiIndex = Vec<u64>;
61
62/// A named-tuple value. Subset of the polydat `Value` set that
63/// is the strategy layer's currency; the runtime walker
64/// converts `Value`s to it before `apply` and maps results
65/// back. For the strategy module in isolation, this
66/// lightweight type lets tests run without pulling in the
67/// broader runtime.
68#[derive(Debug, Clone, PartialEq)]
69pub struct Tuple {
70 /// The tuple's `(name, value)` pairs, in shape order.
71 pub bindings: Vec<(String, TupleValue)>,
72}
73
74/// Subset of polydat's `Value` enum. `TupleValue` is the
75/// strategy layer's currency; the runtime walker converts
76/// `Value`s to it before `apply` and maps results back.
77#[derive(Debug, Clone, PartialEq)]
78pub enum TupleValue {
79 /// An unsigned integer.
80 U64(u64),
81 /// A signed integer.
82 I64(i64),
83 /// A float.
84 F64(f64),
85 /// A string.
86 Str(String),
87 /// A boolean.
88 Bool(bool),
89}
90
91impl Tuple {
92 /// An empty tuple.
93 pub fn new() -> Self {
94 Self {
95 bindings: Vec::new(),
96 }
97 }
98
99 /// The tuple with one more binding.
100 pub fn with<K: Into<String>>(mut self, key: K, value: TupleValue) -> Self {
101 self.bindings.push((key.into(), value));
102 self
103 }
104}
105
106impl Default for Tuple {
107 fn default() -> Self {
108 Self::new()
109 }
110}
111
112/// The materialized input to a strategy at invocation time
113/// (spec §10.7.8).
114///
115/// `tuples` are the input stream's tuples in source order (the
116/// natural enumeration of the upstream comprehension subtree).
117/// `cardinality` matches `tuples.len() as u64`. `index_fn` is
118/// the addressing scheme the input actually satisfies —
119/// derived from observed shape for Generator /
120/// WorkloadParamList leaves via the [`crate::iteration::comprehension::eval_source`]
121/// layer, combined upward by the runtime walker per spec
122/// §10.7.2 propagation rules.
123pub struct EvaluatedInput {
124 /// The input's tuples, in source order.
125 pub tuples: Vec<Tuple>,
126 /// How many tuples: `tuples.len()`.
127 pub cardinality: u64,
128 /// The addressing scheme the input satisfies.
129 pub index_fn: IndexFn,
130}
131
132/// The strategy invocation surface per spec §10.7.8.
133///
134/// Implementations are stateless — every call to [`apply`](Strategy::apply)
135/// produces the same output given the same inputs
136/// (deterministic). PRNG-based strategies (`Shuffle`, `Lhs`)
137/// derive their seed from a module constant plus the input
138/// length; no per-streamer seed is threaded.
139pub trait Strategy {
140 /// The strategy's name. Mirrors [`StrategyName`].
141 fn name(&self) -> StrategyName;
142
143 /// V4 input-shape check (spec §3.6). `None` represents an
144 /// input with no closed-form index function; only `Lex`
145 /// accepts that. Concrete `IndexFn` variants are accepted
146 /// per the per-strategy rules in spec §3.6's table.
147 fn accepts_input(&self, idx: Option<&IndexFn>) -> bool;
148
149 /// R2 push-down eligibility (spec §10.2 R2). `true` if
150 /// this strategy has a closed-form indexed lookup over the
151 /// given input. If `false`, [`apply`](Strategy::apply) uses the strategy's
152 /// fallback reorder over the materialized tuples.
153 fn has_closed_form_for(&self, idx: &IndexFn) -> bool;
154
155 /// Apply this strategy to the given input.
156 ///
157 /// Internally dispatches: when the strategy has a
158 /// closed-form rule for `input.index_fn`, it uses the
159 /// indexed-form algorithm (compute multi-indices over the
160 /// index space, look up against `input.tuples` via
161 /// [`multi_index_to_flat`]). Otherwise it falls back to a
162 /// per-strategy reorder over `input.tuples` directly.
163 ///
164 /// V4 is the caller's responsibility — call
165 /// `accepts_input(Some(&input.index_fn))` before `apply`
166 /// to fire V4 at strategy-invocation time per spec §10.7.8.
167 fn apply(&self, input: &EvaluatedInput, truncation: Option<u64>) -> Vec<Tuple>;
168}
169
170/// Dispatch a [`StrategyName`] to its concrete [`Strategy`]
171/// implementation. The returned trait object is stateless;
172/// callers can hold a single instance per strategy name for
173/// the life of the process if desired.
174pub fn for_name(name: StrategyName) -> Box<dyn Strategy + Send + Sync> {
175 match name {
176 StrategyName::Lex => Box::new(lex::Lex),
177 StrategyName::ReverseLex => Box::new(reverse_lex::ReverseLex),
178 StrategyName::Shuffle => Box::new(shuffle::Shuffle),
179 StrategyName::Halton => Box::new(halton::Halton),
180 StrategyName::Sobol => Box::new(sobol::Sobol),
181 StrategyName::Lhs => Box::new(lhs::Lhs),
182 StrategyName::Extrema => Box::new(extrema::Extrema),
183 StrategyName::Shells => Box::new(shells::Shells),
184 StrategyName::Diagonal => Box::new(diagonal::Diagonal),
185 StrategyName::Antidiagonal => Box::new(antidiagonal::Antidiagonal),
186 }
187}
188
189/// Resolve a [`MultiIndex`] to a flat position in the
190/// input's tuple list, given the input's [`IndexFn`].
191///
192/// The flat position matches the natural enumeration order
193/// the runtime walker produces:
194///
195/// - `Lattice { axis_sizes: [s0, s1, …, sN-1] }` — row-major
196/// over the axes: `flat = i0 * s1 * s2 * … + i1 * s2 * … + … + iN-1`.
197/// This matches the runtime walker's cartesian enumeration
198/// (head axis varies slowest, tail nested).
199/// - `Lockstep { length }` — one-axis identity:
200/// `flat = mi[0]`.
201/// - `Modular { axis_sizes }` — one-axis identity over `max(axis_sizes)`:
202/// `flat = mi[0]`.
203/// - `Concatenation { segment_sizes }` — one-axis identity
204/// over `Σ segment_sizes`: `flat = mi[0]`.
205/// - `Continuous` / `Hybrid` — `None`; these inputs have no
206/// pre-materialized tuple list (the strategy's multi-indices
207/// are quantiles, not lookups).
208///
209/// Returns `None` for out-of-range positions or dimension
210/// mismatches.
211pub fn multi_index_to_flat(idx: &IndexFn, mi: &MultiIndex) -> Option<usize> {
212 match idx {
213 IndexFn::Lattice { axis_sizes } => {
214 if mi.len() != axis_sizes.len() {
215 return None;
216 }
217 let mut flat: u64 = 0;
218 let mut stride: u64 = 1;
219 for i in (0..axis_sizes.len()).rev() {
220 let pos = mi[i];
221 let size = axis_sizes[i];
222 if pos >= size {
223 return None;
224 }
225 flat = flat.checked_add(pos.checked_mul(stride)?)?;
226 stride = stride.checked_mul(size)?;
227 }
228 Some(flat as usize)
229 }
230 IndexFn::Lockstep { length } => {
231 if mi.len() != 1 || mi[0] >= *length {
232 return None;
233 }
234 Some(mi[0] as usize)
235 }
236 IndexFn::Modular { axis_sizes } => {
237 let max = axis_sizes.iter().copied().max().unwrap_or(0);
238 if mi.len() != 1 || mi[0] >= max {
239 return None;
240 }
241 Some(mi[0] as usize)
242 }
243 IndexFn::Concatenation { segment_sizes } => {
244 let total: u64 = segment_sizes.iter().copied().sum();
245 if mi.len() != 1 || mi[0] >= total {
246 return None;
247 }
248 Some(mi[0] as usize)
249 }
250 IndexFn::Continuous { .. } | IndexFn::Hybrid { .. } => None,
251 }
252}
253
254/// `true` when [`multi_index_to_flat`] returns a usable
255/// position for in-range multi-indices over this `IndexFn`.
256/// `false` for `Continuous` / `Hybrid` where the indexed
257/// strategy emits quantiles, not lookups.
258pub fn index_fn_supports_lookup(idx: &IndexFn) -> bool {
259 !matches!(idx, IndexFn::Continuous { .. } | IndexFn::Hybrid { .. })
260}
261
262/// Cardinality of an `IndexFn`. Used by strategies to size
263/// their output when no truncation is specified. Mirrors the
264/// helper in `metadata.rs` but lives here to avoid a circular
265/// dependency.
266pub(crate) fn index_fn_size(idx: &IndexFn) -> u64 {
267 match idx {
268 IndexFn::Lattice { axis_sizes } => axis_sizes
269 .iter()
270 .copied()
271 .fold(1u64, |a, b| a.saturating_mul(b)),
272 IndexFn::Lockstep { length } => *length,
273 IndexFn::Modular { axis_sizes } => axis_sizes.iter().copied().max().unwrap_or(0),
274 IndexFn::Concatenation { segment_sizes } => segment_sizes
275 .iter()
276 .copied()
277 .fold(0u64, |a, b| a.saturating_add(b)),
278 IndexFn::Continuous { .. } | IndexFn::Hybrid { .. } => 0,
279 }
280}
281
282/// Lattice dimensionality of an `IndexFn`. Used by strategies
283/// that branch on dimensionality (Extrema's corner count,
284/// Lhs's per-axis stratification).
285pub(crate) fn index_fn_dim(idx: &IndexFn) -> usize {
286 match idx {
287 IndexFn::Lattice { axis_sizes } => axis_sizes.len(),
288 IndexFn::Continuous { intervals, .. } => intervals.len(),
289 IndexFn::Hybrid {
290 discrete_axes,
291 continuous_axes,
292 ..
293 } => discrete_axes.len() + continuous_axes.len(),
294 IndexFn::Lockstep { .. } | IndexFn::Modular { .. } => 1,
295 IndexFn::Concatenation { segment_sizes } => segment_sizes.len(),
296 }
297}
298
299#[cfg(test)]
300mod tests {
301 use super::*;
302
303 #[test]
304 fn for_name_dispatches_to_correct_strategy() {
305 assert_eq!(for_name(StrategyName::Lex).name(), StrategyName::Lex);
306 assert_eq!(for_name(StrategyName::Halton).name(), StrategyName::Halton);
307 assert_eq!(
308 for_name(StrategyName::Extrema).name(),
309 StrategyName::Extrema
310 );
311 }
312
313 #[test]
314 fn index_fn_size_lattice() {
315 let idx = IndexFn::Lattice {
316 axis_sizes: vec![3, 4, 5],
317 };
318 assert_eq!(index_fn_size(&idx), 60);
319 }
320
321 #[test]
322 fn index_fn_size_concatenation() {
323 let idx = IndexFn::Concatenation {
324 segment_sizes: vec![10, 20, 30],
325 };
326 assert_eq!(index_fn_size(&idx), 60);
327 }
328
329 #[test]
330 fn index_fn_dim_classifies_correctly() {
331 assert_eq!(
332 index_fn_dim(&IndexFn::Lattice {
333 axis_sizes: vec![3, 4]
334 }),
335 2
336 );
337 assert_eq!(index_fn_dim(&IndexFn::Lockstep { length: 10 }), 1);
338 assert_eq!(
339 index_fn_dim(&IndexFn::Concatenation {
340 segment_sizes: vec![1, 2, 3]
341 }),
342 3
343 );
344 }
345}