1use crate::{
2 db::{
3 Db, EntityName,
4 data::{DataKey, StorageKey},
5 index::IndexKey,
6 },
7 error::InternalError,
8 traits::CanisterKind,
9 value::Value,
10};
11use candid::CandidType;
12use serde::{Deserialize, Serialize};
13use std::collections::BTreeMap;
14
15#[derive(CandidType, Clone, Debug, Default, Deserialize, Serialize)]
21pub struct StorageReport {
22 pub storage_data: Vec<DataStoreSnapshot>,
23 pub storage_index: Vec<IndexStoreSnapshot>,
24 pub entity_storage: Vec<EntitySnapshot>,
25 pub corrupted_keys: u64,
26 pub corrupted_entries: u64,
27}
28
29#[derive(CandidType, Clone, Debug, Default, Deserialize, Serialize)]
35pub struct DataStoreSnapshot {
36 pub path: String,
37 pub entries: u64,
38 pub memory_bytes: u64,
39}
40
41#[derive(CandidType, Clone, Debug, Default, Deserialize, Serialize)]
47pub struct IndexStoreSnapshot {
48 pub path: String,
49 pub entries: u64,
50 pub user_entries: u64,
51 pub system_entries: u64,
52 pub memory_bytes: u64,
53}
54
55#[derive(CandidType, Clone, Debug, Default, Deserialize, Serialize)]
61pub struct EntitySnapshot {
62 pub store: String,
64
65 pub path: String,
67
68 pub entries: u64,
70
71 pub memory_bytes: u64,
73
74 pub min_key: Option<Value>,
76
77 pub max_key: Option<Value>,
79}
80
81#[derive(Default)]
87struct EntityStats {
88 entries: u64,
89 memory_bytes: u64,
90 min_key: Option<StorageKey>,
91 max_key: Option<StorageKey>,
92}
93
94impl EntityStats {
95 fn update(&mut self, dk: &DataKey, value_len: u64) {
96 self.entries = self.entries.saturating_add(1);
97 self.memory_bytes = self
98 .memory_bytes
99 .saturating_add(DataKey::entry_size_bytes(value_len));
100
101 let k = dk.storage_key();
102
103 match &mut self.min_key {
104 Some(min) if k < *min => *min = k,
105 None => self.min_key = Some(k),
106 _ => {}
107 }
108
109 match &mut self.max_key {
110 Some(max) if k > *max => *max = k,
111 None => self.max_key = Some(k),
112 _ => {}
113 }
114 }
115}
116
117pub(crate) fn storage_report<C: CanisterKind>(
119 db: &Db<C>,
120 name_to_path: &[(&'static str, &'static str)],
121) -> Result<StorageReport, InternalError> {
122 db.ensure_recovered_state()?;
123 let name_map: BTreeMap<&'static str, &str> = name_to_path.iter().copied().collect();
125 let mut data = Vec::new();
126 let mut index = Vec::new();
127 let mut entity_storage: Vec<EntitySnapshot> = Vec::new();
128 let mut corrupted_keys = 0u64;
129 let mut corrupted_entries = 0u64;
130
131 db.with_store_registry(|reg| {
132 let mut stores = reg.iter().collect::<Vec<_>>();
134 stores.sort_by_key(|(path, _)| *path);
135
136 for (path, store_handle) in stores {
137 store_handle.with_data(|store| {
139 data.push(DataStoreSnapshot {
140 path: path.to_string(),
141 entries: store.len(),
142 memory_bytes: store.memory_bytes(),
143 });
144
145 let mut by_entity: BTreeMap<EntityName, EntityStats> = BTreeMap::new();
147
148 for entry in store.iter() {
149 let Ok(dk) = DataKey::try_from_raw(entry.key()) else {
150 corrupted_keys = corrupted_keys.saturating_add(1);
151 continue;
152 };
153
154 let value_len = entry.value().len() as u64;
155
156 by_entity
157 .entry(*dk.entity_name())
158 .or_default()
159 .update(&dk, value_len);
160 }
161
162 for (entity_name, stats) in by_entity {
163 let path_name = name_map
164 .get(entity_name.as_str())
165 .copied()
166 .unwrap_or(entity_name.as_str());
167 entity_storage.push(EntitySnapshot {
168 store: path.to_string(),
169 path: path_name.to_string(),
170 entries: stats.entries,
171 memory_bytes: stats.memory_bytes,
172 min_key: stats.min_key.map(|key| key.as_value()),
173 max_key: stats.max_key.map(|key| key.as_value()),
174 });
175 }
176 });
177
178 store_handle.with_index(|store| {
180 let mut user_entries = 0u64;
181 let mut system_entries = 0u64;
182
183 for (key, value) in store.entries() {
184 let Ok(decoded_key) = IndexKey::try_from_raw(&key) else {
185 corrupted_entries = corrupted_entries.saturating_add(1);
186 continue;
187 };
188
189 if decoded_key.uses_system_namespace() {
190 system_entries = system_entries.saturating_add(1);
191 } else {
192 user_entries = user_entries.saturating_add(1);
193 }
194
195 if value.validate().is_err() {
196 corrupted_entries = corrupted_entries.saturating_add(1);
197 }
198 }
199
200 index.push(IndexStoreSnapshot {
201 path: path.to_string(),
202 entries: store.len(),
203 user_entries,
204 system_entries,
205 memory_bytes: store.memory_bytes(),
206 });
207 });
208 }
209 });
210
211 Ok(StorageReport {
212 storage_data: data,
213 storage_index: index,
214 entity_storage,
215 corrupted_keys,
216 corrupted_entries,
217 })
218}
219
220#[cfg(test)]
225mod tests {
226 use crate::{
227 db::{
228 Db,
229 commit::{ensure_recovered_for_write, init_commit_store_for_tests},
230 data::{DataKey, DataStore, RawDataKey, RawRow, StorageKey},
231 identity::{EntityName, IndexName},
232 index::{IndexId, IndexKey, IndexKeyKind, IndexStore, RawIndexEntry, RawIndexKey},
233 registry::StoreRegistry,
234 },
235 test_support::test_memory,
236 traits::Storable,
237 };
238 use std::{borrow::Cow, cell::RefCell};
239
240 use super::{StorageReport, storage_report};
241
242 crate::test_canister! {
243 ident = DiagnosticsCanister,
244 }
245
246 const STORE_Z_PATH: &str = "diagnostics_tests::z_store";
247 const STORE_A_PATH: &str = "diagnostics_tests::a_store";
248 const SINGLE_ENTITY_NAME: &str = "diag_single_entity";
249 const SINGLE_ENTITY_PATH: &str = "diagnostics_tests::entity::single";
250 const FIRST_ENTITY_NAME: &str = "diag_first_entity";
251 const FIRST_ENTITY_PATH: &str = "diagnostics_tests::entity::first";
252 const SECOND_ENTITY_NAME: &str = "diag_second_entity";
253 const SECOND_ENTITY_PATH: &str = "diagnostics_tests::entity::second";
254 const MINMAX_ENTITY_NAME: &str = "diag_minmax_entity";
255 const MINMAX_ENTITY_PATH: &str = "diagnostics_tests::entity::minmax";
256 const VALID_ENTITY_NAME: &str = "diag_valid_entity";
257 const VALID_ENTITY_PATH: &str = "diagnostics_tests::entity::valid";
258
259 thread_local! {
260 static STORE_Z_DATA: RefCell<DataStore> = RefCell::new(DataStore::init(test_memory(153)));
261 static STORE_Z_INDEX: RefCell<IndexStore> = RefCell::new(IndexStore::init(test_memory(154)));
262 static STORE_A_DATA: RefCell<DataStore> = RefCell::new(DataStore::init(test_memory(155)));
263 static STORE_A_INDEX: RefCell<IndexStore> = RefCell::new(IndexStore::init(test_memory(156)));
264 static DIAGNOSTICS_REGISTRY: StoreRegistry = {
265 let mut registry = StoreRegistry::new();
266 registry
267 .register_store(STORE_Z_PATH, &STORE_Z_DATA, &STORE_Z_INDEX)
268 .expect("diagnostics test z-store registration should succeed");
269 registry
270 .register_store(STORE_A_PATH, &STORE_A_DATA, &STORE_A_INDEX)
271 .expect("diagnostics test a-store registration should succeed");
272 registry
273 };
274 }
275
276 static DB: Db<DiagnosticsCanister> = Db::new(&DIAGNOSTICS_REGISTRY);
277
278 fn with_data_store_mut<R>(path: &'static str, f: impl FnOnce(&mut DataStore) -> R) -> R {
279 DB.with_store_registry(|registry| {
280 registry
281 .try_get_store(path)
282 .map(|store_handle| store_handle.with_data_mut(f))
283 })
284 .expect("data store lookup should succeed")
285 }
286
287 fn with_index_store_mut<R>(path: &'static str, f: impl FnOnce(&mut IndexStore) -> R) -> R {
288 DB.with_store_registry(|registry| {
289 registry
290 .try_get_store(path)
291 .map(|store_handle| store_handle.with_index_mut(f))
292 })
293 .expect("index store lookup should succeed")
294 }
295
296 fn reset_stores() {
297 init_commit_store_for_tests().expect("commit store init should succeed");
298 ensure_recovered_for_write(&DB).expect("write-side recovery should succeed");
299 DB.with_store_registry(|registry| {
300 for (_, store_handle) in registry.iter() {
301 store_handle.with_data_mut(DataStore::clear);
302 store_handle.with_index_mut(IndexStore::clear);
303 }
304 });
305 }
306
307 fn insert_data_row(path: &'static str, entity_name: &str, key: StorageKey, row_len: usize) {
308 let entity =
309 EntityName::try_from_str(entity_name).expect("diagnostics test entity name is valid");
310 let raw_key = DataKey::raw_from_parts(entity, key)
311 .expect("diagnostics test data key should encode from valid parts");
312 let row_bytes = vec![0xAB; row_len.max(1)];
313 let raw_row = RawRow::try_new(row_bytes).expect("diagnostics test row should encode");
314
315 with_data_store_mut(path, |store| {
316 store.insert(raw_key, raw_row);
317 });
318 }
319
320 fn insert_corrupted_data_key(path: &'static str) {
321 let valid = DataKey::raw_from_parts(
322 EntityName::try_from_str(VALID_ENTITY_NAME).expect("valid test entity name"),
323 StorageKey::Int(1),
324 )
325 .expect("valid data key should encode");
326
327 let mut corrupted_bytes = valid.as_bytes().to_vec();
328 corrupted_bytes[0] = 0;
329 let corrupted_key = <RawDataKey as Storable>::from_bytes(Cow::Owned(corrupted_bytes));
330 let raw_row = RawRow::try_new(vec![0xCD]).expect("diagnostics test row should encode");
331
332 with_data_store_mut(path, |store| {
333 store.insert(corrupted_key, raw_row);
334 });
335 }
336
337 fn index_id(entity_name: &str, field: &str) -> IndexId {
338 let entity =
339 EntityName::try_from_str(entity_name).expect("diagnostics test entity name is valid");
340 let name = IndexName::try_from_parts(&entity, &[field])
341 .expect("diagnostics test index name should encode");
342
343 IndexId(name)
344 }
345
346 fn index_key(kind: IndexKeyKind, entity_name: &str, field: &str) -> RawIndexKey {
347 let id = index_id(entity_name, field);
348 IndexKey::empty_with_kind(&id, kind).to_raw()
349 }
350
351 fn insert_index_entry(path: &'static str, key: RawIndexKey, entry: RawIndexEntry) {
352 with_index_store_mut(path, |store| {
353 store.insert(key, entry);
354 });
355 }
356
357 fn diagnostics_report(name_to_path: &[(&'static str, &'static str)]) -> StorageReport {
358 storage_report(&DB, name_to_path).expect("diagnostics snapshot should succeed")
359 }
360
361 fn data_paths(report: &StorageReport) -> Vec<&str> {
362 report
363 .storage_data
364 .iter()
365 .map(|snapshot| snapshot.path.as_str())
366 .collect()
367 }
368
369 fn index_paths(report: &StorageReport) -> Vec<&str> {
370 report
371 .storage_index
372 .iter()
373 .map(|snapshot| snapshot.path.as_str())
374 .collect()
375 }
376
377 #[test]
378 fn storage_report_empty_store_snapshot() {
379 reset_stores();
380
381 let report = diagnostics_report(&[]);
382
383 assert_eq!(report.corrupted_keys, 0);
384 assert_eq!(report.corrupted_entries, 0);
385 assert!(report.entity_storage.is_empty());
386
387 assert_eq!(data_paths(&report), vec![STORE_A_PATH, STORE_Z_PATH]);
388 assert_eq!(index_paths(&report), vec![STORE_A_PATH, STORE_Z_PATH]);
389 assert!(
390 report
391 .storage_data
392 .iter()
393 .all(|snapshot| snapshot.entries == 0)
394 );
395 assert!(
396 report
397 .storage_index
398 .iter()
399 .all(|snapshot| snapshot.entries == 0)
400 );
401 }
402
403 #[test]
404 fn storage_report_single_entity_multiple_rows() {
405 reset_stores();
406
407 insert_data_row(STORE_A_PATH, SINGLE_ENTITY_NAME, StorageKey::Int(3), 3);
408 insert_data_row(STORE_A_PATH, SINGLE_ENTITY_NAME, StorageKey::Int(1), 1);
409 insert_data_row(STORE_A_PATH, SINGLE_ENTITY_NAME, StorageKey::Int(2), 2);
410
411 let report = diagnostics_report(&[(SINGLE_ENTITY_NAME, SINGLE_ENTITY_PATH)]);
412 let entity_snapshot = report
413 .entity_storage
414 .iter()
415 .find(|snapshot| snapshot.store == STORE_A_PATH && snapshot.path == SINGLE_ENTITY_PATH)
416 .expect("single-entity snapshot should exist");
417
418 assert_eq!(entity_snapshot.entries, 3);
419 }
420
421 #[test]
422 fn storage_report_multiple_entities_in_same_store() {
423 reset_stores();
424
425 insert_data_row(STORE_A_PATH, FIRST_ENTITY_NAME, StorageKey::Int(10), 1);
426 insert_data_row(STORE_A_PATH, FIRST_ENTITY_NAME, StorageKey::Int(11), 1);
427 insert_data_row(STORE_A_PATH, SECOND_ENTITY_NAME, StorageKey::Int(20), 1);
428
429 let report = diagnostics_report(&[
430 (FIRST_ENTITY_NAME, FIRST_ENTITY_PATH),
431 (SECOND_ENTITY_NAME, SECOND_ENTITY_PATH),
432 ]);
433
434 let first = report
435 .entity_storage
436 .iter()
437 .find(|snapshot| snapshot.store == STORE_A_PATH && snapshot.path == FIRST_ENTITY_PATH)
438 .expect("first-entity snapshot should exist");
439 let second = report
440 .entity_storage
441 .iter()
442 .find(|snapshot| snapshot.store == STORE_A_PATH && snapshot.path == SECOND_ENTITY_PATH)
443 .expect("second-entity snapshot should exist");
444
445 assert_eq!(first.entries, 2);
446 assert_eq!(second.entries, 1);
447 }
448
449 #[test]
450 fn storage_report_min_max_key_correctness() {
451 reset_stores();
452
453 insert_data_row(STORE_A_PATH, MINMAX_ENTITY_NAME, StorageKey::Int(9), 1);
454 insert_data_row(STORE_A_PATH, MINMAX_ENTITY_NAME, StorageKey::Int(-5), 1);
455 insert_data_row(STORE_A_PATH, MINMAX_ENTITY_NAME, StorageKey::Int(3), 1);
456
457 let report = diagnostics_report(&[(MINMAX_ENTITY_NAME, MINMAX_ENTITY_PATH)]);
458 let entity_snapshot = report
459 .entity_storage
460 .iter()
461 .find(|snapshot| snapshot.store == STORE_A_PATH && snapshot.path == MINMAX_ENTITY_PATH)
462 .expect("min/max snapshot should exist");
463
464 assert_eq!(
465 entity_snapshot.min_key,
466 Some(StorageKey::Int(-5).as_value())
467 );
468 assert_eq!(entity_snapshot.max_key, Some(StorageKey::Int(9).as_value()));
469 }
470
471 #[test]
472 fn storage_report_corrupted_key_detection() {
473 reset_stores();
474
475 insert_data_row(STORE_A_PATH, VALID_ENTITY_NAME, StorageKey::Int(7), 1);
476 insert_corrupted_data_key(STORE_A_PATH);
477
478 let report = diagnostics_report(&[(VALID_ENTITY_NAME, VALID_ENTITY_PATH)]);
479
480 assert_eq!(report.corrupted_keys, 1);
481 let entity_snapshot = report
482 .entity_storage
483 .iter()
484 .find(|snapshot| snapshot.store == STORE_A_PATH && snapshot.path == VALID_ENTITY_PATH)
485 .expect("valid-entity snapshot should exist");
486 assert_eq!(entity_snapshot.entries, 1);
487 }
488
489 #[test]
490 fn storage_report_corrupted_index_value_detection() {
491 reset_stores();
492
493 let key = index_key(IndexKeyKind::User, "diag_index_entity", "email");
494 let corrupted_entry = <RawIndexEntry as Storable>::from_bytes(Cow::Owned(vec![0, 0, 0, 0]));
495 insert_index_entry(STORE_A_PATH, key, corrupted_entry);
496
497 let report = diagnostics_report(&[]);
498 let index_snapshot = report
499 .storage_index
500 .iter()
501 .find(|snapshot| snapshot.path == STORE_A_PATH)
502 .expect("index snapshot should exist");
503
504 assert_eq!(report.corrupted_entries, 1);
505 assert_eq!(index_snapshot.entries, 1);
506 assert_eq!(index_snapshot.user_entries, 1);
507 assert_eq!(index_snapshot.system_entries, 0);
508 }
509
510 #[test]
511 fn storage_report_system_vs_user_namespace_split() {
512 reset_stores();
513
514 let user_key = index_key(IndexKeyKind::User, "diag_namespace_entity", "email");
515 let system_key = index_key(IndexKeyKind::System, "diag_namespace_entity", "email");
516 let user_entry =
517 RawIndexEntry::try_from_keys([StorageKey::Int(1)]).expect("user entry should encode");
518 let system_entry =
519 RawIndexEntry::try_from_keys([StorageKey::Int(2)]).expect("system entry should encode");
520 insert_index_entry(STORE_A_PATH, user_key, user_entry);
521 insert_index_entry(STORE_A_PATH, system_key, system_entry);
522
523 let report = diagnostics_report(&[]);
524 let index_snapshot = report
525 .storage_index
526 .iter()
527 .find(|snapshot| snapshot.path == STORE_A_PATH)
528 .expect("index snapshot should exist");
529
530 assert_eq!(report.corrupted_entries, 0);
531 assert_eq!(index_snapshot.entries, 2);
532 assert_eq!(index_snapshot.user_entries, 1);
533 assert_eq!(index_snapshot.system_entries, 1);
534 }
535}