Files
jellytau/src-tauri/src/storage/db_service.rs
T
dtourolle 3fbf6afdbc Background-audio handoff for video + repository/player refactor
Hand video playback off to a native audio-only stream when the app is
backgrounded or locked, with no on-device video decode (UR-040). Adds
player_enter/exit_background_audio commands, an audio-only stream URL
for video items across the repository layer, and the frontend handoff
state machine wired into VideoPlayer. Includes accompanying
repository/offline/player refactoring and regenerates the traceability
matrix.
2026-07-22 21:52:07 +02:00

414 lines
13 KiB
Rust

//! Database service abstraction layer
//!
//! This module provides an async database interface that abstracts away
//! the underlying database implementation. This makes it easy to:
//! - Switch between sync (rusqlite) and async (tokio-rusqlite) implementations
//! - Prevent blocking the async runtime with synchronous database calls
//! - Test with different database backends
//! - Migrate to other database systems in the future
use async_trait::async_trait;
use rusqlite::{params_from_iter, Connection, Result as SqliteResult, Row};
use std::sync::{Arc, Mutex};
/// Database query result type
pub type DbResult<T> = Result<T, String>;
/// Represents a database query that can be executed
#[derive(Clone)]
pub struct Query {
pub sql: String,
pub params: Vec<QueryParam>,
}
/// Query parameter types supported by the database
#[derive(Clone, Debug)]
pub enum QueryParam {
String(String),
Int(i32),
Int64(i64),
Float(f64),
#[allow(dead_code)]
Bool(bool),
Null,
}
impl Query {
pub fn new(sql: impl Into<String>) -> Self {
Self {
sql: sql.into(),
params: Vec::new(),
}
}
pub fn with_params(sql: impl Into<String>, params: Vec<QueryParam>) -> Self {
Self {
sql: sql.into(),
params,
}
}
}
/// Database service trait - abstraction over database operations
#[async_trait]
pub trait DatabaseService: Send + Sync {
/// Execute a query that doesn't return results (INSERT, UPDATE, DELETE)
async fn execute(&self, query: Query) -> DbResult<usize>;
/// Execute a batch of SQL statements (for migrations)
#[allow(dead_code)]
async fn execute_batch(&self, sql: &str) -> DbResult<()>;
/// Query a single row
async fn query_one<T, F>(&self, query: Query, mapper: F) -> DbResult<T>
where
T: Send + 'static,
F: Fn(&Row) -> SqliteResult<T> + Send + 'static;
/// Query a single optional row
async fn query_optional<T, F>(&self, query: Query, mapper: F) -> DbResult<Option<T>>
where
T: Send + 'static,
F: Fn(&Row) -> SqliteResult<T> + Send + 'static;
/// Query multiple rows
async fn query_many<T, F>(&self, query: Query, mapper: F) -> DbResult<Vec<T>>
where
T: Send + 'static,
F: Fn(&Row) -> SqliteResult<T> + Send + 'static;
/// Run a transaction with multiple operations
async fn transaction<F, T>(&self, f: F) -> DbResult<T>
where
F: FnOnce(&mut Transaction) -> DbResult<T> + Send + 'static,
T: Send + 'static;
/// Get the row ID of the most recent successful INSERT
async fn last_insert_rowid(&self) -> DbResult<i64>;
}
/// Transaction handle for batching multiple operations
pub struct Transaction<'a> {
conn: &'a Connection,
}
impl<'a> Transaction<'a> {
pub fn new(conn: &'a Connection) -> Self {
Self { conn }
}
pub fn execute(&mut self, query: Query) -> DbResult<usize> {
execute_query(self.conn, query)
}
pub fn query_many<T, F>(&self, query: Query, mapper: F) -> DbResult<Vec<T>>
where
F: Fn(&Row) -> SqliteResult<T>,
{
query_many(self.conn, query, mapper)
}
}
/// Rusqlite-based database service implementation
///
/// This implementation wraps synchronous rusqlite operations in tokio::task::spawn_blocking
/// to prevent blocking the async runtime.
pub struct RusqliteService {
conn: Arc<Mutex<Connection>>,
}
impl RusqliteService {
pub fn new(conn: Arc<Mutex<Connection>>) -> Self {
Self { conn }
}
}
#[async_trait]
impl DatabaseService for RusqliteService {
async fn execute(&self, query: Query) -> DbResult<usize> {
let conn = Arc::clone(&self.conn);
tokio::task::spawn_blocking(move || {
let conn = conn
.lock()
.map_err(|e| format!("Failed to lock connection: {}", e))?;
execute_query(&conn, query)
})
.await
.map_err(|e| format!("Task join error: {}", e))?
}
async fn execute_batch(&self, sql: &str) -> DbResult<()> {
let conn = Arc::clone(&self.conn);
let sql = sql.to_string();
tokio::task::spawn_blocking(move || {
let conn = conn
.lock()
.map_err(|e| format!("Failed to lock connection: {}", e))?;
conn.execute_batch(&sql)
.map_err(|e| format!("Execute batch failed: {}", e))
})
.await
.map_err(|e| format!("Task join error: {}", e))?
}
async fn query_one<T, F>(&self, query: Query, mapper: F) -> DbResult<T>
where
T: Send + 'static,
F: Fn(&Row) -> SqliteResult<T> + Send + 'static,
{
let conn = Arc::clone(&self.conn);
tokio::task::spawn_blocking(move || {
let conn = conn
.lock()
.map_err(|e| format!("Failed to lock connection: {}", e))?;
query_one(&conn, query, mapper)
})
.await
.map_err(|e| format!("Task join error: {}", e))?
}
async fn query_optional<T, F>(&self, query: Query, mapper: F) -> DbResult<Option<T>>
where
T: Send + 'static,
F: Fn(&Row) -> SqliteResult<T> + Send + 'static,
{
let conn = Arc::clone(&self.conn);
tokio::task::spawn_blocking(move || {
let conn = conn
.lock()
.map_err(|e| format!("Failed to lock connection: {}", e))?;
query_optional(&conn, query, mapper)
})
.await
.map_err(|e| format!("Task join error: {}", e))?
}
async fn query_many<T, F>(&self, query: Query, mapper: F) -> DbResult<Vec<T>>
where
T: Send + 'static,
F: Fn(&Row) -> SqliteResult<T> + Send + 'static,
{
let conn = Arc::clone(&self.conn);
tokio::task::spawn_blocking(move || {
let conn = conn
.lock()
.map_err(|e| format!("Failed to lock connection: {}", e))?;
query_many(&conn, query, mapper)
})
.await
.map_err(|e| format!("Task join error: {}", e))?
}
async fn transaction<F, T>(&self, f: F) -> DbResult<T>
where
F: FnOnce(&mut Transaction) -> DbResult<T> + Send + 'static,
T: Send + 'static,
{
let conn = Arc::clone(&self.conn);
tokio::task::spawn_blocking(move || {
let conn = conn
.lock()
.map_err(|e| format!("Failed to lock connection: {}", e))?;
conn.execute("BEGIN TRANSACTION", [])
.map_err(|e| format!("Failed to begin transaction: {}", e))?;
let mut transaction = Transaction::new(&conn);
let result = f(&mut transaction);
match result {
Ok(value) => {
conn.execute("COMMIT", [])
.map_err(|e| format!("Failed to commit transaction: {}", e))?;
Ok(value)
}
Err(e) => {
conn.execute("ROLLBACK", [])
.map_err(|e| format!("Failed to rollback transaction: {}", e))?;
Err(e)
}
}
})
.await
.map_err(|e| format!("Task join error: {}", e))?
}
async fn last_insert_rowid(&self) -> DbResult<i64> {
let conn = Arc::clone(&self.conn);
tokio::task::spawn_blocking(move || {
let conn = conn
.lock()
.map_err(|e| format!("Failed to lock connection: {}", e))?;
Ok(conn.last_insert_rowid())
})
.await
.map_err(|e| format!("Task join error: {}", e))?
}
}
// Helper functions for executing queries synchronously
fn execute_query(conn: &Connection, query: Query) -> DbResult<usize> {
let params = convert_params(&query.params);
conn.execute(&query.sql, params_from_iter(params.iter()))
.map_err(|e| format!("Execute failed: {}", e))
}
fn query_one<T, F>(conn: &Connection, query: Query, mapper: F) -> DbResult<T>
where
F: Fn(&Row) -> SqliteResult<T>,
{
let params = convert_params(&query.params);
conn.query_row(&query.sql, params_from_iter(params.iter()), mapper)
.map_err(|e| format!("Query one failed: {}", e))
}
fn query_optional<T, F>(conn: &Connection, query: Query, mapper: F) -> DbResult<Option<T>>
where
F: Fn(&Row) -> SqliteResult<T>,
{
match query_one(conn, query, mapper) {
Ok(value) => Ok(Some(value)),
Err(e) if e.contains("Query returned no rows") || e.contains("QueryReturnedNoRows") => {
Ok(None)
}
Err(e) => Err(e),
}
}
fn query_many<T, F>(conn: &Connection, query: Query, mapper: F) -> DbResult<Vec<T>>
where
F: Fn(&Row) -> SqliteResult<T>,
{
let params = convert_params(&query.params);
let mut stmt = conn
.prepare(&query.sql)
.map_err(|e| format!("Prepare failed: {}", e))?;
let rows = stmt
.query_map(params_from_iter(params.iter()), mapper)
.map_err(|e| format!("Query map failed: {}", e))?;
rows.collect::<SqliteResult<Vec<T>>>()
.map_err(|e| format!("Collect failed: {}", e))
}
/// Convert QueryParam to rusqlite::types::Value
fn convert_params(params: &[QueryParam]) -> Vec<rusqlite::types::Value> {
params
.iter()
.map(|p| match p {
QueryParam::String(s) => rusqlite::types::Value::Text(s.clone()),
QueryParam::Int(i) => rusqlite::types::Value::Integer(*i as i64),
QueryParam::Int64(i) => rusqlite::types::Value::Integer(*i),
QueryParam::Float(f) => rusqlite::types::Value::Real(*f),
QueryParam::Bool(b) => rusqlite::types::Value::Integer(if *b { 1 } else { 0 }),
QueryParam::Null => rusqlite::types::Value::Null,
})
.collect()
}
// TRACES: UR-002, UR-012 | DR-012 | UT-014, UT-015, UT-016, UT-017, UT-018, UT-019, UT-020, UT-021, UT-022, UT-023, UT-025
#[cfg(test)]
mod tests {
use super::*;
#[tokio::test]
async fn test_execute_query() {
let conn = Connection::open_in_memory().unwrap();
conn.execute_batch("CREATE TABLE test (id INTEGER PRIMARY KEY, name TEXT)")
.unwrap();
let service = RusqliteService::new(Arc::new(Mutex::new(conn)));
let query = Query::with_params(
"INSERT INTO test (name) VALUES (?)",
vec![QueryParam::String("Alice".to_string())],
);
let rows = service.execute(query).await.unwrap();
assert_eq!(rows, 1);
}
#[tokio::test]
async fn test_query_one() {
let conn = Connection::open_in_memory().unwrap();
conn.execute_batch("CREATE TABLE test (id INTEGER PRIMARY KEY, name TEXT)")
.unwrap();
conn.execute("INSERT INTO test (name) VALUES ('Bob')", [])
.unwrap();
let service = RusqliteService::new(Arc::new(Mutex::new(conn)));
let query = Query::new("SELECT name FROM test WHERE id = 1");
let name: String = service.query_one(query, |row| row.get(0)).await.unwrap();
assert_eq!(name, "Bob");
}
#[tokio::test]
async fn test_query_many() {
let conn = Connection::open_in_memory().unwrap();
conn.execute_batch("CREATE TABLE test (id INTEGER PRIMARY KEY, name TEXT)")
.unwrap();
conn.execute("INSERT INTO test (name) VALUES ('Alice')", [])
.unwrap();
conn.execute("INSERT INTO test (name) VALUES ('Bob')", [])
.unwrap();
let service = RusqliteService::new(Arc::new(Mutex::new(conn)));
let query = Query::new("SELECT name FROM test ORDER BY id");
let names: Vec<String> = service.query_many(query, |row| row.get(0)).await.unwrap();
assert_eq!(names, vec!["Alice", "Bob"]);
}
#[tokio::test]
async fn test_query_optional() {
let conn = Connection::open_in_memory().unwrap();
conn.execute_batch("CREATE TABLE test (id INTEGER PRIMARY KEY, name TEXT)")
.unwrap();
let service = RusqliteService::new(Arc::new(Mutex::new(conn)));
let query = Query::new("SELECT name FROM test WHERE id = 999");
let result: Option<String> = service
.query_optional(query, |row| row.get(0))
.await
.unwrap();
assert_eq!(result, None);
}
#[tokio::test]
async fn test_transaction() {
let conn = Connection::open_in_memory().unwrap();
conn.execute_batch("CREATE TABLE test (id INTEGER PRIMARY KEY, name TEXT)")
.unwrap();
let service = RusqliteService::new(Arc::new(Mutex::new(conn)));
let result = service
.transaction(|tx| {
tx.execute(Query::with_params(
"INSERT INTO test (name) VALUES (?)",
vec![QueryParam::String("Alice".to_string())],
))?;
tx.execute(Query::with_params(
"INSERT INTO test (name) VALUES (?)",
vec![QueryParam::String("Bob".to_string())],
))?;
Ok(())
})
.await;
assert!(result.is_ok());
// Verify both rows were inserted
let query = Query::new("SELECT COUNT(*) FROM test");
let count: i32 = service.query_one(query, |row| row.get(0)).await.unwrap();
assert_eq!(count, 2);
}
}