#[macro_use] extern crate log; mod common; mod log_reader_forward; mod log_reader_reverse; mod memtable_primary; mod memtable_secondary; pub use common::*; use fs2::FileExt; pub use log_reader_forward::ForwardLogReader; pub use log_reader_reverse::ReverseLogReader; use memtable_primary::PrimaryMemtable; use memtable_secondary::SecondaryMemtable; use std::collections::BTreeMap; use std::fmt::Debug; use std::fs::{self}; use std::io::{self, Read, Seek, SeekFrom, Write}; use std::os::unix::fs::MetadataExt; use std::path::{Path, PathBuf}; use uuid::Uuid; pub struct ConfigBuilder { data_dir: Option, segment_size: Option, fields: Option>, primary_key: Option, secondary_keys: Option>, write_durability: Option, } impl<'a, Field: Eq + Clone + Debug> ConfigBuilder { pub fn new() -> ConfigBuilder { ConfigBuilder:: { data_dir: None, segment_size: None, fields: None, primary_key: None, secondary_keys: None, write_durability: None, } } /// The directory where the database will store its data. pub fn data_dir(&mut self, data_dir: &str) -> &mut Self { self.data_dir = Some(data_dir.to_string()); self } /// The maximum size of a segment file in bytes. /// Once a segment file reaches this size, it can be closed, rotated and compacted. /// Note that this is not a hard limit: if `db.do_maintenance_tasks()` is not called, /// the segment file may continue to grow. pub fn segment_size(&mut self, segment_size: usize) -> &mut Self { self.segment_size = Some(segment_size); self } /// The field schema of the database. pub fn fields(&mut self, fields: &[(Field, RecordField)]) -> &mut Self { self.fields = Some(fields.to_vec()); self } /// The primary key of the database, used to construct /// the primary memtable index. This should be the field /// that is most frequently queried. pub fn primary_key(&mut self, primary_key: Field) -> &mut Self { self.primary_key = Some(primary_key); self } /// The secondary keys of the database, used to construct /// the secondary memtable indexes. pub fn secondary_keys(&mut self, secondary_keys: Vec) -> &mut Self { self.secondary_keys = Some(secondary_keys); self } /// The write durability policy for the database. /// This determines how writes are persisted to disk. /// The default is WriteDurability::Flush. pub fn write_durability(&mut self, write_durability: WriteDurability) -> &mut Self { self.write_durability = Some(write_durability); self } pub fn initialize(&self) -> Result, io::Error> { let config = Config:: { data_dir: self.data_dir.clone().unwrap_or("db_data".to_string()), segment_size: self.segment_size.unwrap_or(4 * 1024 * 1024), // 4MB fields: self .fields .as_ref() .ok_or(io::Error::new( io::ErrorKind::InvalidInput, "Required config value \"fields\" is not set", ))? .clone(), primary_key: self.primary_key.clone().ok_or(io::Error::new( io::ErrorKind::InvalidInput, "Required config value \"primary_key\" is not set", ))?, secondary_keys: self.secondary_keys.clone().unwrap_or(Vec::new()), write_durability: self .write_durability .clone() .unwrap_or(WriteDurability::Flush), }; DB::initialize(&config) } } #[derive(Clone)] struct Config { pub data_dir: String, pub segment_size: usize, pub fields: Vec<(Field, RecordField)>, pub primary_key: Field, pub secondary_keys: Vec, pub write_durability: WriteDurability, } pub struct DB { config: Config, data_dir: PathBuf, active_metadata_file: fs::File, active_data_file: fs::File, primary_key_index: usize, primary_memtable: PrimaryMemtable, secondary_memtables: Vec, } impl DB { /// Create a new database configuration builder. pub fn configure() -> ConfigBuilder { ConfigBuilder::new() } fn initialize(config: &Config) -> Result, io::Error> { info!("Initializing DB..."); // If data_dir does not exist or is empty, create it and any necessary files // After creation, the directory should always be in a complete state // without missing files. // A tempdir-move strategy is used to achieve one-phase commit. // Ensure the data directory exists let data_dir_path = Path::new(&config.data_dir); match fs::create_dir(&data_dir_path) { Ok(_) => {} Err(e) => { if e.kind() != io::ErrorKind::AlreadyExists { return Err(e); } } } // Create an initialize lock file to prevent multiple concurrent initializations let init_lock_file = fs::OpenOptions::new() .create(true) .write(true) .open(&data_dir_path.join(INIT_LOCK_FILENAME))?; init_lock_file.lock_exclusive()?; // We have acquired the lock, check if the data directory is in a complete state // If not, initialize it, otherwise skip. if !fs::exists(data_dir_path.join(ACTIVE_SYMLINK_FILENAME))? { let (segment_uuid, _) = create_segment_data_file(data_dir_path)?; let (segment_num, _) = create_segment_metadata_file(data_dir_path, &segment_uuid)?; set_active_segment(data_dir_path, segment_num)?; // Create the exclusive lock request file fs::OpenOptions::new() .create(true) .write(true) .open(data_dir_path.join(EXCL_LOCK_REQUEST_FILENAME))?; } init_lock_file.unlock()?; // Calculate the index of the primary value in a record let primary_key_index = config .fields .iter() .position(|(field, _)| field == &config.primary_key) .ok_or(io::Error::new( io::ErrorKind::InvalidInput, "Primary key not found in schema after initialize", ))?; // Join primary key and secondary keys vec into a single vec let mut all_keys = vec![&config.primary_key]; all_keys.extend(&config.secondary_keys); // If any of the keys is not in the schema or // is not an IndexableValue, return an error for &key in &all_keys { let (_, RecordField { field_type, .. }) = config .fields .iter() .find(|(field, _)| field == key) .ok_or(io::Error::new( io::ErrorKind::InvalidInput, "Secondary key must be present in the field schema", ))?; match field_type { RecordFieldType::Int | RecordFieldType::String => {} _ => { return Err(io::Error::new( io::ErrorKind::InvalidInput, "Secondary key must be an IndexableValue", )) } } } let primary_memtable = PrimaryMemtable::new(); let secondary_memtables = config .secondary_keys .iter() .map(|_| SecondaryMemtable::new()) .collect(); let active_symlink = Path::new(&config.data_dir).join(ACTIVE_SYMLINK_FILENAME); let active_target = fs::read_link(&active_symlink)?; let active_metadata_path = Path::new(&config.data_dir).join(active_target); let mut active_metadata_file = APPEND_MODE.open(&active_metadata_path)?; let active_metadata_header = read_metadata_header(&mut active_metadata_file)?; validate_metadata_header(&active_metadata_header)?; let active_data_path = Path::new(&config.data_dir).join(active_metadata_header.uuid.to_string()); let active_data_file = APPEND_MODE.open(&active_data_path)?; let db = DB:: { config: config.clone(), data_dir: data_dir_path.to_path_buf(), active_metadata_file, active_data_file, primary_key_index, primary_memtable, secondary_memtables, }; // info!("Rebuilding memtable indexes..."); // TODO FIXME build memtable indexes info!("Database ready."); Ok(db) } /// Insert a record into the database. If the primary key value already exists, /// the existing record will be replaced by the supplied one. pub fn upsert(&mut self, record: &Record) -> Result<(), io::Error> { debug!("Upserting record: {:?}", record); record.validate(&self.config.fields)?; debug!("Record is valid"); debug!("Opening file in append mode and acquiring exclusive lock..."); // Acquire an exclusive lock for writing request_exclusive_lock(&self.data_dir, &mut self.active_metadata_file)?; if !self.ensure_metadata_file_is_active()? || !ensure_active_metadata_is_valid(&self.data_dir, &mut self.active_metadata_file)? { // The log file has been rotated, so we must try again self.active_metadata_file.unlock()?; return self.upsert(record); } self.active_data_file.lock_exclusive()?; debug!("Exclusive lock acquired, appending to log file"); // Write the record to the log let serialized = &record.serialize(); let record_offset = self.active_data_file.seek(SeekFrom::End(0))?; let record_length = serialized.len() as u64; self.active_data_file.write_all(serialized)?; // Flush and sync data to disk if self.config.write_durability == WriteDurability::Flush { self.active_data_file.flush()?; } if self.config.write_durability == WriteDurability::FlushSync { self.active_data_file.flush()?; self.active_data_file.sync_all()?; } // Write the record metadata to the metadata file let mut metadata_buf = vec![]; metadata_buf.extend(&record_offset.to_be_bytes()); metadata_buf.extend(&record_length.to_be_bytes()); assert_eq!(metadata_buf.len(), 16); self.active_metadata_file.write_all(&metadata_buf)?; // Flush and sync metadata to disk if self.config.write_durability == WriteDurability::Flush { self.active_metadata_file.flush()?; } if self.config.write_durability == WriteDurability::FlushSync { self.active_metadata_file.flush()?; self.active_metadata_file.sync_all()?; } // Manually release the locks because the file handles are left open self.active_data_file.unlock()?; self.active_metadata_file.unlock()?; debug!("Record appended to log file, lock released"); let len = self.active_metadata_file.seek(SeekFrom::End(0))?; assert!(len >= METADATA_FILE_HEADER_SIZE as u64); assert_eq!((len - METADATA_FILE_HEADER_SIZE as u64) % 16, 0); // Depending on write durability, the data might not be written to disk yet //let data_file_len = self.active_data_file.seek(SeekFrom::End(0))?; //assert_eq!(data_file_len, record_offset + record_length); Ok(()) } /// Get a record by its primary index value. /// E.g. `db.get(Value::Int(10))`. pub fn get(&mut self, query_key: &Value) -> Result, io::Error> { let query_key_original = query_key; debug!( "Getting record with field {:?} = {:?}", &self.config.primary_key, query_key ); let query_key = query_key_original.as_indexable().ok_or(io::Error::new( io::ErrorKind::InvalidInput, "Queried value must be indexable", ))?; match is_metadata_file_valid(&mut self.active_metadata_file)? { IsMetadatafileValidResult::Ok => {} _ => { debug!("Active metadata file is invalid, acquiring exclusive lock to start autorepair..."); request_exclusive_lock(&self.data_dir, &mut self.active_metadata_file)?; ensure_active_metadata_is_valid(&self.data_dir, &mut self.active_metadata_file)?; self.ensure_metadata_file_is_active()?; // The lock should be dropped by RAII, but just in case self.active_metadata_file.unlock()?; debug!("Active metadata file is now valid, retrying get operation..."); return self.get(query_key_original); } }; debug!("Looking up key {:?} in primary memtable", query_key); let found = self.primary_memtable.get(&query_key); if let Some(log_key) = found { debug!("Found log_key in primary memtable: {:?}", log_key); let segment_num = log_key.segment_num(); let segment_index = log_key.index(); let metadata_path = &self.data_dir.join(format!("metadata.{}", segment_num)); let mut metadata_file = READ_MODE.open(&metadata_path)?; request_shared_lock(&self.data_dir, &mut metadata_file)?; let metadata_header = read_metadata_header(&mut metadata_file)?; metadata_file.seek_relative(segment_index as i64 * 16)?; let mut metadata_buf = [0; 2 * 8]; metadata_file.read_exact(&mut metadata_buf)?; metadata_file.unlock()?; let data_offset = u64::from_be_bytes(metadata_buf[0..8].try_into().unwrap()); let data_length = u64::from_be_bytes(metadata_buf[8..16].try_into().unwrap()); let data_path = &self.data_dir.join(metadata_header.uuid.to_string()); let mut data_file = READ_MODE.open(&data_path)?; request_shared_lock(&self.data_dir, &mut data_file)?; data_file.seek(SeekFrom::Start(data_offset))?; let mut data_buf = vec![0; data_length as usize]; data_file.read_exact(&mut data_buf)?; let record = Record::deserialize(&data_buf); return Ok(Some(record)); } debug!( "No memtable entry found, looking up key {:?} in log file", query_key ); debug!( "Matching records based on value at primary key index ({})", &self.primary_key_index ); let greatest = greatest_segment_number(&self.data_dir)?; debug!("Searching segments {} through 1", greatest); let mut found_record: Option = None; for segment_num in (1..=greatest).rev() { let segment_path = &self.data_dir.join(format!("metadata.{}", segment_num)); debug!( "Opening segment {} in read mode and acquiring shared lock...", segment_num ); let mut metadata_file = READ_MODE.open(&segment_path)?; request_shared_lock(&self.data_dir, &mut metadata_file)?; let metadata_header = read_metadata_header(&mut metadata_file)?; validate_metadata_header(&metadata_header)?; let data_path = &self.data_dir.join(metadata_header.uuid.to_string()); let data_file = READ_MODE.open(&data_path)?; // We should not "request_shared_lock()" here because we do not want // to give way to writers at this point. That would possibly lead to a deadlock. data_file.lock_shared()?; let mut reader = ReverseLogReader::new(metadata_file, data_file)?; if let Some(found) = reader.find(|record| { let record_key = record .at(self.primary_key_index) .as_indexable() .expect("Primary key must be indexable"); record_key == query_key }) { found_record = Some(found); break; } } debug!("Record search complete"); debug!("Found matching record in log file."); Ok(found_record) } /// Get a collection of records based on a field value. /// Indexes will be used if they contain the requested key. pub fn find_all(&mut self, field: &Field, query_key: &Value) -> Result, io::Error> { // If querying by primary key, return the result of `get` wrapped in a vec. if field == &self.config.primary_key { return match self.get(query_key)? { Some(record) => Ok(vec![record.clone()]), None => Ok(vec![]), }; } // Otherwise, continue with querying secondary indexes. let query_key_original = query_key; debug!( "Finding all records with field {:?} = {:?}", field, query_key ); let query_key = query_key_original.as_indexable().ok_or(io::Error::new( io::ErrorKind::InvalidInput, "Queried value must be indexable", ))?; match is_metadata_file_valid(&mut self.active_metadata_file)? { IsMetadatafileValidResult::Ok => {} _ => { debug!("Active metadata file is invalid, acquiring exclusive lock to start autorepair..."); request_exclusive_lock(&self.data_dir, &mut self.active_metadata_file)?; ensure_active_metadata_is_valid(&self.data_dir, &mut self.active_metadata_file)?; self.ensure_metadata_file_is_active()?; // The lock should be dropped by RAII, but just in case self.active_metadata_file.unlock()?; debug!("Active metadata file is now valid, retrying find_all operation..."); return self.find_all(field, query_key_original); } }; // Try to find a memtable with the queried key let found_memtable_index = get_secondary_memtable_index_by_field(&self.config.secondary_keys, field); if let Some(memtable_index) = found_memtable_index { debug!( "Found suitable secondary index. Looking up key {:?} in the memtable", query_key ); // TODO: Implement secondary memtable search } debug!( "No memtable entry found, looking up key {:?} in log file", query_key ); // Get the index of the requested field let key_index = self .config .fields .iter() .position(|(schema_field, _)| schema_field == field) .ok_or(io::Error::new( io::ErrorKind::InvalidInput, "Key not found in schema after initialize", ))?; let greatest = greatest_segment_number(&self.data_dir)?; let mut found_records = vec![]; for segment_num in (1..=greatest).rev() { let segment_path = &self.data_dir.join(format!("metadata.{}", segment_num)); debug!( "Opening segment {} in read mode and acquiring shared lock...", segment_num ); let mut metadata_file = READ_MODE.open(&segment_path)?; request_shared_lock(&self.data_dir, &mut metadata_file)?; let metadata_header = read_metadata_header(&mut metadata_file)?; if metadata_header.version != 1 { return Err(io::Error::new( io::ErrorKind::InvalidData, "Unsupported segment version", )); } let data_path = &self.data_dir.join(metadata_header.uuid.to_string()); let data_file = READ_MODE.open(&data_path)?; // We should not "request_shared_lock()" here because we do not want // to give way to writers at this point. That would possibly lead to a deadlock. data_file.lock_shared()?; let reader = ReverseLogReader::new(metadata_file, data_file)?; for record in reader { let record_key = record .at(key_index) .as_indexable() .expect("Secondary key must be indexable"); if record_key == query_key { found_records.push(record); } } } debug!("Record search complete"); debug!( "Number of matching records found in log file: {}", found_records.len() ); Ok(found_records) } /// Ensures that the `self.metadata_file` and `self.data_file` handles are still pointing to the correct files. /// If the segment has been rotated, the handle will be closed and reopened. /// Returns `false` if the file has been rotated and the handle has been reopened, `true` otherwise. fn ensure_metadata_file_is_active(&mut self) -> Result { let active_target = fs::read_link(&self.data_dir.join(ACTIVE_SYMLINK_FILENAME))?; let active_metadata_path = &self.data_dir.join(active_target); let correct = is_file_same_as_path(&self.active_metadata_file, &active_metadata_path)?; if !correct { debug!("Metadata file has been rotated. Reopening..."); let mut metadata_file = APPEND_MODE.open(&active_metadata_path)?; request_shared_lock(&self.data_dir, &mut metadata_file)?; let metadata_header = read_metadata_header(&mut self.active_metadata_file)?; validate_metadata_header(&metadata_header)?; let data_file_path = &self.data_dir.join(metadata_header.uuid.to_string()); self.active_metadata_file = metadata_file; self.active_data_file = APPEND_MODE.open(&data_file_path)?; return Ok(false); } else { return Ok(true); } } /// Check if there are any pending tasks and do them. Tasks include: /// - Rotating the active log file if it has reached capacity and compacting it. /// /// This function should be called periodically to ensure that the database remains in an optimal state. /// Note that this function is synchronous and may block for a relatively long time. /// You may call this function in a separate thread or process to avoid blocking the main thread. /// However, the database will be exclusively locked, so all writes will be blocked during the tasks. pub fn do_maintenance_tasks(&mut self) -> Result<(), io::Error> { let active_log_path = &self.data_dir.join(ACTIVE_SYMLINK_FILENAME); let active_target = fs::read_link(&active_log_path)?; let active_metadata_path = &self.data_dir.join(active_target); let active_log_md = fs::metadata(&active_log_path)?; let mut already_locked = false; match is_metadata_file_valid(&mut self.active_metadata_file)? { IsMetadatafileValidResult::Ok => {} _ => { debug!("Active metadata is invalid, acquiring exclusive lock..."); request_exclusive_lock(&self.data_dir, &mut self.active_metadata_file)?; already_locked = true; ensure_active_metadata_is_valid(&self.data_dir, &mut self.active_metadata_file)?; } }; if active_log_md.size() >= self.config.segment_size as u64 { // Rotate the active log file debug!("Starting rotation"); if !already_locked { debug!("Requesting exclusive lock on active log file..."); request_exclusive_lock(&self.data_dir, &mut self.active_metadata_file)?; } debug!("Exclusive lock acquired, rotating active log file..."); // Create a new active log segment let (data_uuid, _) = create_segment_data_file(&self.data_dir)?; let (new_segment_num, _) = create_segment_metadata_file(&self.data_dir, &data_uuid)?; set_active_segment(&self.data_dir, new_segment_num)?; // The new active log file is not locked by this client so it cannot be touched. debug!("Active log file rotated, new segment: {}", new_segment_num); let new_metadata_path = &self.data_dir.join(format!("metadata.{}", new_segment_num)); self.active_metadata_file = APPEND_MODE.open(&new_metadata_path)?; let new_data_path = &self.data_dir.join(data_uuid.to_string()); self.active_data_file = APPEND_MODE.open(&new_data_path)?; // Compact the rotated segment without a lock. // Since the rotated segment and the compacted segment based on it will be // a) read-only, and b) identical in effective content, there is no need to lock it. self.compact_segment(&active_metadata_path)?; // The new active log file is not locked by this client so it cannot be touched. debug!("Active log file rotated, new segment: {}", new_segment_num); debug!("Segment compacted"); } self.active_metadata_file.unlock()?; self.active_data_file.unlock()?; Ok(()) } fn compact_segment(&self, metadata_path: &Path) -> Result<(), io::Error> { debug!("Opening segment file {:?} for compaction", metadata_path); let mut metadata_file = READ_MODE.open(metadata_path)?; let metadata_header = read_metadata_header(&mut metadata_file)?; validate_metadata_header(&metadata_header)?; let data_file_path = &self.data_dir.join(metadata_header.uuid.to_string()); let data_file = READ_MODE.open(&data_file_path)?; debug!("Reading segment data into a BTreeMap"); let mut map = BTreeMap::new(); let forward_log_reader = ForwardLogReader::new(metadata_file, data_file); for entry in forward_log_reader { let primary_key = entry .at(self.primary_key_index) .as_indexable() .expect("Primary key was not indexable"); map.insert(primary_key, entry); } debug!("Opening temporary files for writing compacted data"); let temp_data_file = tempfile::NamedTempFile::new()?; let temp_data_path = temp_data_file.as_ref(); let mut temp_data_file = APPEND_MODE.open(temp_data_path)?; let temp_metadata_file = tempfile::NamedTempFile::new()?; let temp_metadata_path = temp_metadata_file.as_ref(); let mut temp_metadata_file = APPEND_MODE.open(temp_metadata_path)?; let new_data_uuid = Uuid::new_v4(); debug!("Writing compacted data to temporary files"); let metadata_header = MetadataHeader { version: 1, uuid: new_data_uuid, }; temp_metadata_file.write_all(&metadata_header.serialize())?; let mut offset = 0u64; for entry in map.values() { let serialized = entry.serialize(); let len = serialized.len() as u64; temp_data_file.write_all(&serialized)?; let mut metadata_buf = vec![]; metadata_buf.extend(&offset.to_be_bytes()); metadata_buf.extend(&len.to_be_bytes()); temp_metadata_file.write_all(&metadata_buf)?; offset += len; } // Sync the temporary files to disk // This is fine to do without consulting WriteDurability because this is a one-off // operation that is not part of the normal write path. temp_metadata_file.flush()?; temp_data_file.flush()?; let final_len = temp_metadata_file.seek(io::SeekFrom::End(0))?; debug!("Moving temporary files to their final locations"); let target_data_file_path = &self.data_dir.join(new_data_uuid.to_string()); fs::rename(&temp_data_path, &target_data_file_path)?; fs::rename(&temp_metadata_path, metadata_path)?; debug!("Compaction complete, resulting size: {}", final_len); Ok(()) } } #[cfg(test)] mod tests { use super::*; #[derive(Eq, PartialEq, Clone, Debug)] enum Field { Id, } #[test] fn test_compaction() { let _ = env_logger::builder().is_test(true).try_init(); let temp_dir = tempfile::tempdir().unwrap(); let data_dir = temp_dir.path(); let capacity = 5; let segment_size = capacity * 2 * 8 + METADATA_FILE_HEADER_SIZE; let mut db = DB::configure() .data_dir(data_dir.to_str().unwrap()) .segment_size(segment_size) .fields(&[(Field::Id, RecordField::int())]) .primary_key(Field::Id) .initialize() .expect("Failed to create DB"); // Insert records with same value until we reach the capacity for _ in 0..capacity { let record = Record::from(&[Value::Int(0 as i64)]); db.upsert(&record).expect("Failed to insert record"); } // Rotate and compact db.do_maintenance_tasks() .expect("Failed to do maintenance tasks"); // Insert one extra with different value, this goes into another segment let record = Record::from(&[Value::Int(1 as i64)]); db.upsert(&record).expect("Failed to insert record"); // Check that rotation resulted in 2 segments assert!(fs::exists(data_dir.join("metadata.1")).unwrap()); assert!(fs::exists(data_dir.join("metadata.2")).unwrap()); // Note negation here assert!(!fs::exists(data_dir.join("metadata.3")).unwrap()); // Check that the first segment was compacted let segment1_size = fs::metadata(data_dir.join("metadata.1")).unwrap().len(); assert_eq!(segment1_size, 2 * 8 + METADATA_FILE_HEADER_SIZE as u64); // Check that the records can be read let rec0 = db .get(&Value::Int(0 as i64)) .expect("Failed to get record") .expect("Record not found"); assert!(match rec0.at(0) { Value::Int(0) => true, _ => false, }); let rec1 = db .get(&Value::Int(1 as i64)) .expect("Failed to get record") .expect("Record not found"); assert!(match rec1.at(0) { Value::Int(1) => true, _ => false, }); } #[test] fn test_repair() { let _ = env_logger::builder().is_test(true).try_init(); let temp_dir = tempfile::tempdir().unwrap(); let data_dir = temp_dir.path(); let mut db = DB::configure() .data_dir(data_dir.to_str().unwrap()) .fields(&[(Field::Id, RecordField::int())]) .primary_key(Field::Id) .initialize() .expect("Failed to create DB"); // Insert records let n_recs = 100; for i in 0..n_recs { let record = Record::from(&[Value::Int(i as i64)]); db.upsert(&record).expect("Failed to insert record"); } // Open the segment file and write garbage to it to simulate corruption let segment_metadata_path = data_dir.join("metadata.1"); let mut file = APPEND_MODE .open(&segment_metadata_path) .expect("Failed to open file"); file.write_all(&[0, 1, 2, 3]) .expect("Failed to write garbage"); file.flush().unwrap(); let len = file.seek(SeekFrom::End(0)).expect("Failed to seek"); assert_ne!(len, METADATA_FILE_HEADER_SIZE as u64 + n_recs * 16); // Try to read from the file, triggering autorepair db.get(&Value::Int(0)).expect("Failed to get record"); // Reopen file and check that it has the correct size let mut file = READ_MODE .open(&segment_metadata_path) .expect("Failed to open file"); let len = file.seek(SeekFrom::End(0)).expect("Failed to seek"); assert_eq!(len, METADATA_FILE_HEADER_SIZE as u64 + n_recs * 16); } }