1use std::sync::{Mutex, OnceLock};
16
17use super::hnsw::{AnnIndex, FlatEmbeddings, brute_force_topk};
18
19pub const ANN_MIN_VECTORS: usize = 2_500;
25
26struct Cached {
27 fingerprint: u64,
28 index: AnnIndex,
29}
30
31fn cache() -> &'static Mutex<Option<Cached>> {
32 static CACHE: OnceLock<Mutex<Option<Cached>>> = OnceLock::new();
33 CACHE.get_or_init(|| Mutex::new(None))
34}
35
36pub fn clear() {
42 if let Ok(mut guard) = cache().lock() {
43 *guard = None;
44 }
45}
46
47#[must_use]
51pub fn memory_usage_bytes() -> usize {
52 let Ok(guard) = cache().lock() else {
53 return 0;
54 };
55 guard.as_ref().map_or(0, |c| c.index.memory_usage_bytes())
56}
57
58#[must_use]
67pub fn topk(embeddings: &FlatEmbeddings, query: &[f32], top_k: usize) -> Vec<(usize, f32)> {
68 topk_gated(embeddings, query, top_k, ANN_MIN_VECTORS)
69}
70
71fn topk_gated(
74 embeddings: &FlatEmbeddings,
75 query: &[f32],
76 top_k: usize,
77 min_vectors: usize,
78) -> Vec<(usize, f32)> {
79 if embeddings.n_vectors() < min_vectors {
80 return brute_force_topk(embeddings, query, top_k);
81 }
82
83 let fp = fingerprint(embeddings);
84 let Ok(mut guard) = cache().lock() else {
85 return brute_force_topk(embeddings, query, top_k);
86 };
87
88 let needs_build = match guard.as_ref() {
89 Some(c) => c.fingerprint != fp,
90 None => true,
91 };
92 if needs_build {
93 *guard = Some(Cached {
94 fingerprint: fp,
95 index: AnnIndex::build(embeddings.clone()),
96 });
97 }
98
99 match guard.as_ref() {
100 Some(c) => c.index.search(query, top_k),
101 None => brute_force_topk(embeddings, query, top_k),
102 }
103}
104
105fn fingerprint(embeddings: &FlatEmbeddings) -> u64 {
108 let mut h: u64 = 0xcbf2_9ce4_8422_2325;
109 macro_rules! mix {
110 ($x:expr_2021) => {{
111 h ^= $x;
112 h = h.wrapping_mul(0x0000_0100_0000_01b3);
113 }};
114 }
115 let n = embeddings.n_vectors();
116 mix!(n as u64);
117 mix!(embeddings.dim as u64);
118 for i in 0..n {
119 let v = embeddings.get(i);
120 mix!(i as u64);
121 if let Some(&f) = v.first() {
122 mix!(u64::from(f.to_bits()));
123 }
124 if let Some(&f) = v.get(v.len() / 2) {
125 mix!(u64::from(f.to_bits()));
126 }
127 if let Some(&f) = v.last() {
128 mix!(u64::from(f.to_bits()));
129 }
130 }
131 h
132}
133
134#[cfg(test)]
135mod tests {
136 use super::*;
137 use std::collections::HashSet;
138
139 const TEST_GATE: usize = 1000;
142
143 static TEST_LOCK: Mutex<()> = Mutex::new(());
148
149 fn serial() -> std::sync::MutexGuard<'static, ()> {
150 TEST_LOCK
151 .lock()
152 .unwrap_or_else(std::sync::PoisonError::into_inner)
153 }
154
155 fn cached_fingerprint() -> Option<u64> {
158 cache()
159 .lock()
160 .ok()
161 .and_then(|g| g.as_ref().map(|c| c.fingerprint))
162 }
163
164 fn random_vec(dim: usize, seed: u64) -> Vec<f32> {
165 let mut v = Vec::with_capacity(dim);
166 let mut s = seed;
167 for _ in 0..dim {
168 s = s.wrapping_mul(6_364_136_223_846_793_005).wrapping_add(1);
169 v.push((s as f32 / u64::MAX as f32) * 2.0 - 1.0);
170 }
171 v
172 }
173
174 fn flat_from(vecs: Vec<Vec<f32>>) -> FlatEmbeddings {
175 FlatEmbeddings::from_vecs(vecs)
176 }
177
178 fn jitter(base: &[f32], seed: u64, scale: f32) -> Vec<f32> {
180 base.iter()
181 .enumerate()
182 .map(|(i, &b)| {
183 let s = seed
184 .wrapping_add(i as u64)
185 .wrapping_mul(6_364_136_223_846_793_005)
186 .wrapping_add(1);
187 b + ((s as f32 / u64::MAX as f32) * 2.0 - 1.0) * scale
188 })
189 .collect()
190 }
191
192 fn clustered(
193 n_clusters: usize,
194 per_cluster: usize,
195 dim: usize,
196 ) -> (FlatEmbeddings, Vec<Vec<f32>>) {
197 let centers: Vec<Vec<f32>> = (0..n_clusters)
198 .map(|c| random_vec(dim, (c as u64 + 1) * 1_000))
199 .collect();
200 let mut vectors = Vec::with_capacity(n_clusters * per_cluster);
201 for (c, center) in centers.iter().enumerate() {
202 for j in 0..per_cluster {
203 vectors.push(jitter(center, (c * per_cluster + j) as u64 + 7, 0.02));
204 }
205 }
206 (flat_from(vectors), centers)
207 }
208
209 #[test]
210 fn small_corpus_matches_brute_force_exactly() {
211 let flat = flat_from((0..200).map(|i| random_vec(32, i)).collect());
212 let query = random_vec(32, 9_999);
213
214 let via_cache = topk(&flat, &query, 8);
216 let exact = brute_force_topk(&flat, &query, 8);
217
218 assert_eq!(via_cache.len(), exact.len());
219 for (a, b) in via_cache.iter().zip(exact.iter()) {
220 assert_eq!(a.0, b.0, "below threshold must be exact brute force");
221 }
222 }
223
224 #[test]
225 fn hnsw_path_recall_matches_brute_force_on_clusters() {
226 let _serial = serial();
227 let (flat, centers) = clustered(24, 60, 32); let query = ¢ers[5];
229 let k = 20;
230
231 let ann = topk_gated(&flat, query, k, TEST_GATE); let exact = brute_force_topk(&flat, query, k);
233 assert_eq!(ann.len(), k);
234
235 let exact_set: HashSet<usize> = exact.iter().map(|(i, _)| *i).collect();
236 let overlap = ann.iter().filter(|(i, _)| exact_set.contains(i)).count();
237 assert!(
238 overlap * 100 >= k * 50,
239 "HNSW recall@{k} too low: {overlap}/{k}"
240 );
241 }
242
243 #[test]
244 fn hnsw_path_results_are_descending() {
245 let _serial = serial();
246 let (flat, centers) = clustered(20, 60, 24); let results = topk_gated(&flat, ¢ers[3], 10, TEST_GATE);
248 for w in results.windows(2) {
249 assert!(
250 w[0].1 >= w[1].1,
251 "results must be sorted by descending similarity"
252 );
253 }
254 }
255
256 #[test]
257 fn rebuilds_when_corpus_changes() {
258 let _serial = serial();
259 let (a, ca) = clustered(20, 55, 32); let (b, cb) = clustered(18, 60, 32); let _ = topk_gated(&a, &ca[7], 5, TEST_GATE);
263 assert_eq!(
264 cached_fingerprint(),
265 Some(fingerprint(&a)),
266 "first query caches corpus A's index"
267 );
268
269 let _ = topk_gated(&b, &cb[4], 5, TEST_GATE);
270 assert_eq!(
271 cached_fingerprint(),
272 Some(fingerprint(&b)),
273 "a different corpus must force a rebuild to B"
274 );
275
276 let _ = topk_gated(&a, &ca[7], 5, TEST_GATE);
277 assert_eq!(
278 cached_fingerprint(),
279 Some(fingerprint(&a)),
280 "re-querying A must rebuild A — never serve stale B"
281 );
282 }
283
284 #[test]
285 fn fingerprint_differs_on_content_change() {
286 let a = flat_from((0..10).map(|i| random_vec(8, i)).collect());
287 let mut b_vecs: Vec<Vec<f32>> = (0..10).map(|i| random_vec(8, i)).collect();
288 b_vecs[3][0] += 0.5;
289 let b = flat_from(b_vecs);
290 assert_ne!(fingerprint(&a), fingerprint(&b));
291 }
292}