Swift Concurrency Expert

by dimillian05ba982bfeb0No license3.9K starsListed Oct 8, 2026Updated Oct 8, 2026Repository updated 6 months ago

Swift Concurrency review and remediation for Swift 6.2+. Use when asked to review Swift Concurrency usage, improve concurrency compliance, or fix Swift concurrency compiler errors in a feature or file. Concrete actions include adding Sendable conformance, applying @MainActor annotations, resolving actor isolation warnings, fixing data race diagnostics, and migrating completion handlers to async/await.

Instructions onlySoftware Development
AI-generated overview

Reviews and fixes Swift 6.2+ concurrency issues such as actor isolation, Sendable errors and data races.

What it does
Guides an agent through triaging Swift concurrency compiler diagnostics, applying the smallest safe fix, and verifying the result by rebuilding and running tests. Typical fixes include adding @MainActor annotations, isolating protocol conformances, adding Sendable conformance, and moving heavy work off the main actor with @concurrent or actors. It also points to bundled reference material on Swift 6.2 concurrency, approachable concurrency mode, and SwiftUI concurrency.
When to use it
Use it when reviewing Swift Concurrency usage, improving concurrency compliance, or resolving Swift concurrency compiler errors in a feature or file. It suits Swift 6.2+ codebases dealing with actor isolation warnings, data race diagnostics, or migration from completion handlers to async/await.
Requirements
Needs a Swift 6.2+ codebase with a build and test setup the agent can run. No scripts are shipped; the skill is instructions plus reference documents.

Swift Concurrency Expert

Overview

Review and fix Swift Concurrency issues in Swift 6.2+ codebases by applying actor isolation, Sendable safety, and modern concurrency patterns with minimal behavior changes.

Workflow

1. Triage the issue

  • Capture the exact compiler diagnostics and the offending symbol(s).
  • Check project concurrency settings: Swift language version (6.2+), strict concurrency level, and whether approachable concurrency (default actor isolation / main-actor-by-default) is enabled.
  • Identify the current actor context (@MainActor, actor, nonisolated) and whether a default actor isolation mode is enabled.
  • Confirm whether the code is UI-bound or intended to run off the main actor.

2. Apply the smallest safe fix

Prefer edits that preserve existing behavior while satisfying data-race safety.

Common fixes:

  • UI-bound types: annotate the type or relevant members with @MainActor.
  • Protocol conformance on main actor types: make the conformance isolated (e.g., extension Foo: @MainActor SomeProtocol).
  • Global/static state: protect with @MainActor or move into an actor.
  • Background work: move expensive work into a @concurrent async function on a nonisolated type or use an actor to guard mutable state.
  • Sendable errors: prefer immutable/value types; add Sendable conformance only when correct; avoid @unchecked Sendable unless you can prove thread safety.

3. Verify the fix

  • Rebuild and confirm all concurrency diagnostics are resolved with no new warnings introduced.
  • Run the test suite to check for regressions — concurrency changes can introduce subtle runtime issues even when the build is clean.
  • If the fix surfaces new warnings, treat each one as a fresh triage (return to step 1) and resolve iteratively until the build is clean and tests pass.

Examples

UI-bound type — adding @MainActor

swift
// Before: data-race warning because ViewModel is accessed from the main thread// but has no actor isolationclass ViewModel: ObservableObject {    @Published var title: String = ""    func load() { title = "Loaded" }}
// After: annotate the whole type so all stored state and methods are// automatically isolated to the main actor@MainActorclass ViewModel: ObservableObject {    @Published var title: String = ""    func load() { title = "Loaded" }}

Protocol conformance isolation

swift
// Before: compiler error — SomeProtocol method is nonisolated but the// conforming type is @MainActor@MainActorclass Foo: SomeProtocol {    func protocolMethod() { /* accesses main-actor state */ }}
// After: scope the conformance to @MainActor so the requirement is// satisfied inside the correct isolation context@MainActorextension Foo: SomeProtocol {    func protocolMethod() { /* safely accesses main-actor state */ }}

Background work with @concurrent

swift
// Before: expensive computation blocks the main actor@MainActorfunc processData(_ input: [Int]) -> [Int] {    input.map { heavyTransform($0) }   // runs on main thread}
// After: hop off the main actor for the heavy work, then return the result// The caller awaits the result and stays on its own actornonisolated func processData(_ input: [Int]) async -> [Int] {    await Task.detached(priority: .userInitiated) {        input.map { heavyTransform($0) }    }.value}
// Or, using a @concurrent async function (Swift 6.2+):@concurrentfunc processData(_ input: [Int]) async -> [Int] {    input.map { heavyTransform($0) }}

Reference material

  • See references/swift-6-2-concurrency.md for Swift 6.2 changes, patterns, and examples.
  • See references/approachable-concurrency.md when the project is opted into approachable concurrency mode.
  • See references/swiftui-concurrency-tour-wwdc.md for SwiftUI-specific concurrency guidance.

Source and attribution

Source:dimillian/skillsinswift-concurrency-expertat commit05ba982

License: No license

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