Swift Actors for Thread-Safe Persistence
SkillFiles & storageThis skill helps an AI agent write Swift code that persists data safely across threads. It uses actors to combine an in-memory cache with file-backed storage, so data races are designed out rather than patched later. Use it when you are saving data in Swift and need thread safety to be part of the design.
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Details
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Have a Swift project where data is persisted and shared across threads.
What your AI can do with it
- Design an actor that owns an in-memory cache and file-backed storage
- Write Swift persistence code that avoids data races by design
- Separate cached reads from writes that go to disk
- Review existing Swift persistence code for thread-safety problems
- Explain how actor isolation protects shared mutable state
Getting started
- Have a Swift project where data is persisted and shared across threads.
- Add the skill to your agent's available skills or configuration.
- Describe the data you persist and where it is stored on disk.
- Ask the agent to design or review the persistence layer using actors.
What this skill tells your AI
The instructions your AI receives, as published by affaan-m/ecc in skills/swift-actor-persistence/SKILL.md and read by ahel’s review.
Patterns for building thread-safe data persistence layers using Swift actors. Combines in-memory caching with file-backed storage, leveraging the actor model to eliminate data races at compile time.
When to Activate
- Building a data persistence layer in Swift 5.5+
- Need thread-safe access to shared mutable state
- Want to eliminate manual synchronization (locks, DispatchQueues)
- Building offline-first apps with local storage
Core Pattern
Actor-Based Repository
The actor model guarantees serialized access — no data races, enforced by the compiler.
public actor LocalRepository<T: Codable & Identifiable> where T.ID == String {
private var cache: [String: T] = [:]
private let fileURL: URL
public init(directory: URL = .documentsDirectory, filename: String = "data.json") {
self.fileURL = directory.appendingPathComponent(filename)
// Synchronous load during init (actor isolation not yet active)
self.cache = Self.loadSynchronously(from: fileURL)
}
// MARK: - Public API
public func save(_ item: T) throws {
cache[item.id] = item
try persistToFile()
}
public func delete(_ id: String) throws {
cache[id] = nil
try persistToFile()
}
public func find(by id: String) -> T? {
cache[id]
}
public func loadAll() -> [T] {
Array(cache.values)
}
// MARK: - Private
private func persistToFile() throws {
let data = try JSONEncoder().encode(Array(cache.values))
try data.write(to: fileURL, options: .atomic)
}
private static func loadSynchronously(from url: URL) -> [String: T] {
guard let data = try? Data(contentsOf: url),
let items = try? JSONDecoder().decode([T].self, from: data) else {
return [:]
}
return Dictionary(uniqueKeysWithValues: items.map { ($0.id, $0) })
}
}
Usage
All calls are automatically async due to actor isolation:
let repository = LocalRepository<Question>()
// Read — fast O(1) lookup from in-memory cache
let question = await repository.find(by: "q-001")
let allQuestions = await repository.loadAll()
// Write — updates cache and persists to file atomically
try await repository.save(newQuestion)
try await repository.delete("q-001")
Combining with @Observable ViewModel
@Observable
final class QuestionListViewModel {
private(set) var questions: [Question] = []
private let repository: LocalRepository<Question>
init(repository: LocalRepository<Question> = LocalRepository()) {
self.repository = repository
}
func load() async {
questions = await repository.loadAll()
}
func add(_ question: Question) async throws {
try await repository.save(question)
questions = await repository.loadAll()
}
}
Key Design Decisions
| Decision | Rationale |
|---|---|
| Actor (not class + lock) | Compiler-enforced thread safety, no manual synchronization |
| In-memory cache + file persistence | Fast reads from cache, durable writes to disk |
| Synchronous init loading | Avoids async initialization complexity |
| Dictionary keyed by ID | O(1) lookups by identifier |
Generic over Codable & Identifiable | Reusable across any model type |
Atomic file writes (.atomic) | Prevents partial writes on crash |
Best Practices
- Use
Sendabletypes for all data crossing actor boundaries - Keep the actor's public API minimal — only expose domain operations, not persistence details
- Use
.atomicwrites to prevent data corruption if the app crashes mid-write - Load synchronously in
init— async initializers add complexity with minimal benefit for local files - Combine with
@ObservableViewModels for reactive UI updates
Anti-Patterns to Avoid
- Using
DispatchQueueorNSLockinstead of actors for new Swift concurrency code - Exposing the internal cache dictionary to external callers
- Making the file URL configurable without validation
- Forgetting that all actor method calls are
await— callers must handle async context - Using
nonisolatedto bypass actor isolation (defeats the purpose)
When to Use
- Local data storage in iOS/macOS apps (user data, settings, cached content)
- Offline-first architectures that sync to a server later
- Any shared mutable state that multiple parts of the app access concurrently
- Replacing legacy
DispatchQueue-based thread safety with modern Swift concurrency
Signals
- GitHub stars
- 270k
- Forks
- 40k
- Last commit
- Sep 2026
Others that do the same job
Questions
- What kind of tool is this?
- It is a skill for an AI agent. It guides the agent to write Swift persistence code that uses actors for thread safety.
- When should I use it?
- Use it when persisting data in Swift and a data race or thread-safety problem needs designing out.
- Does it replace my existing database?
- No. It covers an in-memory cache with file-backed storage. It does not describe other storage systems.
- Does it work with any Swift project?
- It applies to Swift code that persists data and shares it across threads. The project needs to support actors.
Advanced
- Item type
- skill
- Key
swift-actor-persistence- Source
- github.com/affaan-m/ecc