Best fit
- 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
affaan-m/ECC
Thread-safe data persistence in Swift using actors — in-memory cache with file-backed storage, eliminating data races by design.
npx skills add https://github.com/affaan-m/ECC --skill ".kiro/skills/swift-actor-persistence"Source checked Jul 28, 2026·Refresh due Oct 26, 2026
Reorganized from the pinned upstream SKILL.md
According to the pinned SKILL.md from affaan-m/ECC: 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.
npx skills add https://github.com/affaan-m/ECC --skill ".kiro/skills/swift-actor-persistence"Best fit
Bring this context
Expected outputs
Key source sections
Sections are extracted automatically from the pinned SKILL.md and link back to the source.
All calls are automatically async due to actor isolation:
Building a data persistence layer in Swift 5.9+ (iOS 17+, macOS 14+)
The actor model guarantees serialized access — no data races, enforced by the compiler.
The actor model guarantees serialized access — no data races, enforced by the compiler.
Review the “Combining with @Observable ViewModel” section in the pinned source before continuing.
SkillSignal prompt templates
These prompts were written by SkillSignal from the source structure; they are not upstream text.
Task-start prompt
Confirm source fit, inputs, and outputs before acting.
Use swift-actor-persistence to help me with: [specific task]. Context: [files, data, or background]. Constraints: [environment, scope, and prohibited actions]. Before acting, check the pinned SKILL.md and explain which sections apply, what inputs are still missing, and what you will deliver.
Source-guided execution
Make the Agent explicitly follow the key extracted sections.
Apply the pinned swift-actor-persistence source to [task]. Pay particular attention to these source sections: “Usage”, “When to Activate”, “Core Pattern”, “Actor-Based Repository”, “Combining with @Observable ViewModel”. Preserve the important decision at each step. Mark facts not covered by the source as “needs confirmation” instead of inventing them. Then verify the result against my acceptance criteria: [criteria].
Result-review prompt
Check omissions, permissions, and source drift before delivery.
Review the current swift-actor-persistence result: (1) does it satisfy the original task; (2) were any applicable steps or limits in the pinned SKILL.md missed; (3) did it perform any unauthorized file, command, network, or data action; and (4) which conclusions remain unverified? List issues first, then fix only what the source or user authorization supports.
Output checklist
The task matches the purpose documented in the SKILL.md.
The source section “Usage” has been checked.
The source section “When to Activate” has been checked.
The source section “Core Pattern” has been checked.
The source section “Actor-Based Repository” has been checked.
Inputs, constraints, and acceptance criteria are explicit.
Unverified facts, compatibility, and outcome claims are clearly marked.
Any file, command, network, or data action has been reviewed.
Choose a different workflow
Thread-safe data persistence in Swift using actors — in-memory cache with file-backed storage, eliminating data races by design.
A separate implementation from affaan-m/ECC; compare its source, maintenance signals, and permission requirements.
Open source detailSwiftでactorを使用してスレッドセーフなデータ永続化を実装する——メモリキャッシュとファイルバックドストレージを組み合わせ、設計によってデータ競合を排除する。
A separate implementation from affaan-m/ECC; compare its source, maintenance signals, and permission requirements.
Open source detail在 Swift 中使用 actor 实现线程安全的数据持久化——基于内存缓存与文件支持的存储,通过设计消除数据竞争。
A separate implementation from affaan-m/ECC; compare its source, maintenance signals, and permission requirements.
Open source detailFAQ
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.
The catalog detected this source-specific install command: npx skills add https://github.com/affaan-m/ECC --skill ".kiro/skills/swift-actor-persistence". Inspect the command and pinned source before running it.
No dedicated Agent platform is declared in the pinned source record.
Quality breakdown
Based on traceable docs and repository signals; stars are not treated as quality.
Compare before choosing
These links are selected from shared tasks, functions, stacks, platforms, and same-name variants. Compare the source owner, documentation, permissions, and maintenance signals.
Thread-safe data persistence in Swift using actors — in-memory cache with file-backed storage, eliminating data races by design.
Swiftでactorを使用してスレッドセーフなデータ永続化を実装する——メモリキャッシュとファイルバックドストレージを組み合わせ、設計によってデータ競合を排除する。
在 Swift 中使用 actor 实现线程安全的数据持久化——基于内存缓存与文件支持的存储,通过设计消除数据竞争。
When the user wants to plan, design, or implement an A/B test or experiment, or build a growth experimentation program. Also use when the user mentions "A/B test," "split test," "experiment," "test this change," "variant copy," "multivariate test," "hypothesis," "should I test this," "which version is better," "test two versions," "statistical significance," "how long should I run this test," "growth experiments," "experiment velocity," "experiment backlog," "ICE score," "experimentation program
When the user wants to reduce churn, build cancellation flows, set up save offers, recover failed payments, or implement retention strategies. Also use when the user mentions 'churn,' 'cancel flow,' 'offboarding,' 'save offer,' 'dunning,' 'failed payment recovery,' 'win-back,' 'retention,' 'exit survey,' 'pause subscription,' 'involuntary churn,' 'people keep canceling,' 'churn rate is too high,' 'how do I keep users,' or 'customers are leaving.' Use this whenever someone is losing subscribers o
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.
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(items.map { ($0.id, $0) }, uniquingKeysWith: { _, latest in latest })
}
}
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")
@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()
}
}
| 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 |
Sendable types for all data crossing actor boundaries.atomic writes to prevent data corruption if the app crashes mid-writeinit — async initializers add complexity with minimal benefit for local files@Observable ViewModels for reactive UI updatesDispatchQueue or NSLock instead of actors for new Swift concurrency codeawait — callers must handle async contextnonisolated to bypass actor isolation (defeats the purpose)DispatchQueue-based thread safety with modern Swift concurrency