swift-concurrency-6-2
affaan-m/everything-claude-code
Swift 6.2 concurrency with single-threaded default and explicit background offloading via @concurrent.
What is swift-concurrency-6-2?
Patterns for adopting Swift 6.2's Approachable Concurrency model where code runs single-threaded by default and background execution is opt-in via @concurrent. Eliminates implicit data-race errors without sacrificing performance. Use when migrating to Swift 6.2 or resolving data-race safety compiler errors.
- Async functions stay on the calling actor by default, eliminating implicit background offloading
- Isolated conformances allow MainActor types to safely conform to non-isolated protocols
- @concurrent annotation explicitly offloads CPU-intensive work to background threads
- MainActor default inference mode reduces boilerplate annotations for app targets
- Global and static variables protected with MainActor to prevent shared mutable state issues
- Compile-time data-race detection with opt-in adoption path
How to install swift-concurrency-6-2
npx skills add https://github.com/affaan-m/everything-claude-code --skill swift-concurrency-6-2- Xcode 26 or later with Swift 6.2 compiler
- Swift Compiler Concurrency build settings enabled
- Optional: SwiftSettings API in package manifest for SPM projects
- Understanding of Swift actor model and async/await basics
How to use swift-concurrency-6-2
- 1.Enable Approachable Concurrency in Xcode Build Settings under Swift Compiler > Concurrency section
- 2.Enable MainActor default inference mode for app targets to reduce boilerplate annotations
- 3.Mark types with @MainActor if they manage UI state or shared mutable state
- 4.Use @concurrent annotation on static functions that perform CPU-intensive work requiring background execution
- 5.Add await at call sites when invoking @concurrent functions
- 6.Run migration tooling from swift.org/migration to automatically update code
- 7.Test thoroughly to verify data-race issues become compile-time errors instead of runtime bugs
Use cases
- Migrating Swift 5.x or 6.0/6.1 projects to Swift 6.2 concurrency model
- Resolving data-race safety compiler errors during Xcode 26 adoption
- Designing MainActor-based app architecture for UI-heavy applications
- Offloading CPU-intensive work like image processing or compression to background threads
- Implementing protocol conformances on MainActor-isolated types without unsafe workarounds
- Swift app developers migrating to Swift 6.2
- iOS/macOS developers building MainActor-centric UI applications
- Backend developers adopting Swift 6.2 concurrency patterns
- Teams resolving data-race safety compiler errors
- Developers optimizing performance-critical code paths
swift-concurrency-6-2 FAQ
Single-threaded by default is the most natural code pattern and eliminates implicit data-race errors. Concurrency is opt-in via @concurrent when you actually need background execution.
Use @concurrent only for CPU-intensive work like image processing or compression. Profile first to find actual bottlenecks. Most app code should stay single-threaded on MainActor.
Isolated conformances let MainActor types conform to non-isolated protocols safely. The compiler ensures the conformance is only used in MainActor contexts, eliminating unsafe workarounds.
No. Enable features incrementally in build settings. Start with MainActor default inference for app targets, then add @concurrent where profiling shows it's needed.
Annotate them with @MainActor. This ensures they're only accessed from the main thread, preventing concurrent access to mutable state.
Full instructions (SKILL.md)
Source of truth, from affaan-m/everything-claude-code.
name: swift-concurrency-6-2 description: Swift 6.2 Approachable Concurrency — single-threaded by default, @concurrent for explicit background offloading, isolated conformances for main actor types.
Swift 6.2 Approachable Concurrency
Patterns for adopting Swift 6.2's concurrency model where code runs single-threaded by default and concurrency is introduced explicitly. Eliminates common data-race errors without sacrificing performance.
When to Activate
- Migrating Swift 5.x or 6.0/6.1 projects to Swift 6.2
- Resolving data-race safety compiler errors
- Designing MainActor-based app architecture
- Offloading CPU-intensive work to background threads
- Implementing protocol conformances on MainActor-isolated types
- Enabling Approachable Concurrency build settings in Xcode 26
Core Problem: Implicit Background Offloading
In Swift 6.1 and earlier, async functions could be implicitly offloaded to background threads, causing data-race errors even in seemingly safe code:
// Swift 6.1: ERROR
@MainActor
final class StickerModel {
let photoProcessor = PhotoProcessor()
func extractSticker(_ item: PhotosPickerItem) async throws -> Sticker? {
guard let data = try await item.loadTransferable(type: Data.self) else { return nil }
// Error: Sending 'self.photoProcessor' risks causing data races
return await photoProcessor.extractSticker(data: data, with: item.itemIdentifier)
}
}
Swift 6.2 fixes this: async functions stay on the calling actor by default.
// Swift 6.2: OK — async stays on MainActor, no data race
@MainActor
final class StickerModel {
let photoProcessor = PhotoProcessor()
func extractSticker(_ item: PhotosPickerItem) async throws -> Sticker? {
guard let data = try await item.loadTransferable(type: Data.self) else { return nil }
return await photoProcessor.extractSticker(data: data, with: item.itemIdentifier)
}
}
Core Pattern — Isolated Conformances
MainActor types can now conform to non-isolated protocols safely:
protocol Exportable {
func export()
}
// Swift 6.1: ERROR — crosses into main actor-isolated code
// Swift 6.2: OK with isolated conformance
extension StickerModel: @MainActor Exportable {
func export() {
photoProcessor.exportAsPNG()
}
}
The compiler ensures the conformance is only used on the main actor:
// OK — ImageExporter is also @MainActor
@MainActor
struct ImageExporter {
var items: [any Exportable]
mutating func add(_ item: StickerModel) {
items.append(item) // Safe: same actor isolation
}
}
// ERROR — nonisolated context can't use MainActor conformance
nonisolated struct ImageExporter {
var items: [any Exportable]
mutating func add(_ item: StickerModel) {
items.append(item) // Error: Main actor-isolated conformance cannot be used here
}
}
Core Pattern — Global and Static Variables
Protect global/static state with MainActor:
// Swift 6.1: ERROR — non-Sendable type may have shared mutable state
final class StickerLibrary {
static let shared: StickerLibrary = .init() // Error
}
// Fix: Annotate with @MainActor
@MainActor
final class StickerLibrary {
static let shared: StickerLibrary = .init() // OK
}
MainActor Default Inference Mode
Swift 6.2 introduces a mode where MainActor is inferred by default — no manual annotations needed:
// With MainActor default inference enabled:
final class StickerLibrary {
static let shared: StickerLibrary = .init() // Implicitly @MainActor
}
final class StickerModel {
let photoProcessor: PhotoProcessor
var selection: [PhotosPickerItem] // Implicitly @MainActor
}
extension StickerModel: Exportable { // Implicitly @MainActor conformance
func export() {
photoProcessor.exportAsPNG()
}
}
This mode is opt-in and recommended for apps, scripts, and other executable targets.
Core Pattern — @concurrent for Background Work
When you need actual parallelism, explicitly offload with @concurrent:
Important: This example requires Approachable Concurrency build settings — SE-0466 (MainActor default isolation) and SE-0461 (NonisolatedNonsendingByDefault). With these enabled,
extractStickerstays on the caller's actor, making mutable state access safe. Without these settings, this code has a data race — the compiler will flag it.
nonisolated final class PhotoProcessor {
private var cachedStickers: [String: Sticker] = [:]
func extractSticker(data: Data, with id: String) async -> Sticker {
if let sticker = cachedStickers[id] {
return sticker
}
let sticker = await Self.extractSubject(from: data)
cachedStickers[id] = sticker
return sticker
}
// Offload expensive work to concurrent thread pool
@concurrent
static func extractSubject(from data: Data) async -> Sticker { /* ... */ }
}
// Callers must await
let processor = PhotoProcessor()
processedPhotos[item.id] = await processor.extractSticker(data: data, with: item.id)
To use @concurrent:
- Mark the containing type as
nonisolated - Add
@concurrentto the function - Add
asyncif not already asynchronous - Add
awaitat call sites
Key Design Decisions
| Decision | Rationale |
|---|---|
| Single-threaded by default | Most natural code is data-race free; concurrency is opt-in |
| Async stays on calling actor | Eliminates implicit offloading that caused data-race errors |
| Isolated conformances | MainActor types can conform to protocols without unsafe workarounds |
@concurrent explicit opt-in | Background execution is a deliberate performance choice, not accidental |
| MainActor default inference | Reduces boilerplate @MainActor annotations for app targets |
| Opt-in adoption | Non-breaking migration path — enable features incrementally |
Migration Steps
- Enable in Xcode: Swift Compiler > Concurrency section in Build Settings
- Enable in SPM: Use
SwiftSettingsAPI in package manifest - Use migration tooling: Automatic code changes via swift.org/migration
- Start with MainActor defaults: Enable inference mode for app targets
- Add
@concurrentwhere needed: Profile first, then offload hot paths - Test thoroughly: Data-race issues become compile-time errors
Best Practices
- Start on MainActor — write single-threaded code first, optimize later
- Use
@concurrentonly for CPU-intensive work — image processing, compression, complex computation - Enable MainActor inference mode for app targets that are mostly single-threaded
- Profile before offloading — use Instruments to find actual bottlenecks
- Protect globals with MainActor — global/static mutable state needs actor isolation
- Use isolated conformances instead of
nonisolatedworkarounds or@Sendablewrappers - Migrate incrementally — enable features one at a time in build settings
Anti-Patterns to Avoid
- Applying
@concurrentto every async function (most don't need background execution) - Using
nonisolatedto suppress compiler errors without understanding isolation - Keeping legacy
DispatchQueuepatterns when actors provide the same safety - Skipping
model.availabilitychecks in concurrency-related Foundation Models code - Fighting the compiler — if it reports a data race, the code has a real concurrency issue
- Assuming all async code runs in the background (Swift 6.2 default: stays on calling actor)
When to Use
- All new Swift 6.2+ projects (Approachable Concurrency is the recommended default)
- Migrating existing apps from Swift 5.x or 6.0/6.1 concurrency
- Resolving data-race safety compiler errors during Xcode 26 adoption
- Building MainActor-centric app architectures (most UI apps)
- Performance optimization — offloading specific heavy computations to background
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