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# React Best Practices
<!-- Generated by scripts/compile-react-guidance.ts. Edit rules/ or metadata.json instead. -->
**Version 1.0.0**
Vercel Engineering
January 2026
Use [SKILL.md](SKILL.md) and only the rules relevant to the task. This compiled reference is for deliberate full-guide reading. Apply optimizations only for a supported performance mechanism; ratings and example gains are not measurements of the current application.
Repository-maintained React and Next.js guidance adapted from Vercel's rules. Select rules by a concrete performance mechanism and workload. Dependencies and caches are conditional options, and impact ratings prioritize investigation rather than establish application performance gains.
## Contents
1. **Eliminating Waterfalls**
- 1.1 [Check Cheap Conditions Before Async Flags](#async-cheap-condition-before-await)
- 1.2 [Defer Await Until Needed](#async-defer-await)
- 1.3 [Dependency-Based Parallelization](#async-dependencies)
- 1.4 [Prevent Waterfall Chains in API Routes](#async-api-routes)
- 1.5 [Promise.all() for Independent Operations](#async-parallel)
- 1.6 [Strategic Suspense Boundaries](#async-suspense-boundaries)
2. **Bundle Size Optimization**
- 2.1 [Avoid Barrel File Imports](#bundle-barrel-imports)
- 2.2 [Conditional Module Loading](#bundle-conditional)
- 2.3 [Defer Non-Critical Third-Party Libraries](#bundle-defer-third-party)
- 2.4 [Dynamic Imports for Heavy Components](#bundle-dynamic-imports)
- 2.5 [Prefer Statically Analyzable Paths](#bundle-analyzable-paths)
- 2.6 [Preload Based on User Intent](#bundle-preload)
3. **Server-Side Performance**
- 3.1 [Authenticate Server Actions Like API Routes](#server-auth-actions)
- 3.2 [Avoid Duplicate Serialization in RSC Props](#server-dedup-props)
- 3.3 [Avoid Shared Module State for Request Data](#server-no-shared-module-state)
- 3.4 [Cross-Request LRU Caching](#server-cache-lru)
- 3.5 [Hoist Static I/O to Module Level](#server-hoist-static-io)
- 3.6 [Minimize Serialization at RSC Boundaries](#server-serialization)
- 3.7 [Parallel Data Fetching with Component Composition](#server-parallel-fetching)
- 3.8 [Parallel Nested Data Fetching](#server-parallel-nested-fetching)
- 3.9 [Per-Request Deduplication with React.cache()](#server-cache-react)
- 3.10 [Use after() for Non-Blocking Operations](#server-after-nonblocking)
4. **Client-Side Data Fetching**
- 4.1 [Deduplicate Global Event Listeners](#client-event-listeners)
- 4.2 [Use Passive Event Listeners for Scrolling Performance](#client-passive-event-listeners)
- 4.3 [Use SWR for Automatic Deduplication](#client-swr-dedup)
- 4.4 [Version and Minimize localStorage Data](#client-localstorage-schema)
5. **Re-render Optimization**
- 5.1 [Calculate Derived State During Rendering](#rerender-derived-state-no-effect)
- 5.2 [Defer State Reads to Usage Point](#rerender-defer-reads)
- 5.3 [Do not wrap a simple expression with a primitive result type in useMemo](#rerender-simple-expression-in-memo)
- 5.4 [Don't Define Components Inside Components](#rerender-no-inline-components)
- 5.5 [Extract Default Non-primitive Parameter Value from Memoized Component to Constant](#rerender-memo-with-default-value)
- 5.6 [Extract to Memoized Components](#rerender-memo)
- 5.7 [Narrow Effect Dependencies](#rerender-dependencies)
- 5.8 [Put Interaction Logic in Event Handlers](#rerender-move-effect-to-event)
- 5.9 [Split Combined Hook Computations](#rerender-split-combined-hooks)
- 5.10 [Subscribe to Derived State](#rerender-derived-state)
- 5.11 [Use Functional setState Updates](#rerender-functional-setstate)
- 5.12 [Use Lazy State Initialization](#rerender-lazy-state-init)
- 5.13 [Use Transitions for Non-Urgent Updates](#rerender-transitions)
- 5.14 [Use useDeferredValue for Expensive Derived Renders](#rerender-use-deferred-value)
- 5.15 [Use useRef for Transient Values](#rerender-use-ref-transient-values)
6. **Rendering Performance**
- 6.1 [Animate SVG Wrapper Instead of SVG Element](#rendering-animate-svg-wrapper)
- 6.2 [CSS content-visibility for Long Lists](#rendering-content-visibility)
- 6.3 [Hoist Static JSX Elements](#rendering-hoist-jsx)
- 6.4 [Optimize SVG Precision](#rendering-svg-precision)
- 6.5 [Prevent Hydration Mismatch Without Flickering](#rendering-hydration-no-flicker)
- 6.6 [Suppress Expected Hydration Mismatches](#rendering-hydration-suppress-warning)
- 6.7 [Use Activity Component for Show/Hide](#rendering-activity)
- 6.8 [Use Explicit Conditional Rendering](#rendering-conditional-render)
- 6.9 [Use React DOM Resource Hints](#rendering-resource-hints)
- 6.10 [Use defer or async on Script Tags](#rendering-script-defer-async)
- 6.11 [Use useTransition Over Manual Loading States](#rendering-usetransition-loading)
7. **JavaScript Performance**
- 7.1 [Avoid Layout Thrashing](#js-batch-dom-css)
- 7.2 [Build Index Maps for Repeated Lookups](#js-index-maps)
- 7.3 [Cache Property Access in Loops](#js-cache-property-access)
- 7.4 [Cache Repeated Function Calls](#js-cache-function-results)
- 7.5 [Cache Storage API Calls](#js-cache-storage)
- 7.6 [Combine Multiple Array Iterations](#js-combine-iterations)
- 7.7 [Defer Non-Critical Work with requestIdleCallback](#js-request-idle-callback)
- 7.8 [Early Length Check for Array Comparisons](#js-length-check-first)
- 7.9 [Early Return from Functions](#js-early-exit)
- 7.10 [Hoist RegExp Creation](#js-hoist-regexp)
- 7.11 [Use Loop for Min/Max Instead of Sort](#js-min-max-loop)
- 7.12 [Use Set/Map for O(1) Lookups](#js-set-map-lookups)
- 7.13 [Use flatMap to Map and Filter in One Pass](#js-flatmap-filter)
- 7.14 [Use toSorted() Instead of sort() for Immutability](#js-tosorted-immutable)
8. **Advanced Patterns**
- 8.1 [Do Not Put Effect Events in Dependency Arrays](#advanced-effect-event-deps)
- 8.2 [Initialize App Once, Not Per Mount](#advanced-init-once)
- 8.3 [Store Event Handlers in Refs](#advanced-event-handler-refs)
- 8.4 [useEffectEvent for Stable Callback Refs](#advanced-use-latest)
## 1. Eliminating Waterfalls
**Investigation priority: CRITICAL**
Remove sequential waits on the critical path when the operations are genuinely independent. The benefit depends on their durations and required ordering.
---
<a id="async-cheap-condition-before-await"></a>
### 1.1 Check Cheap Conditions Before Async Flags
[Source rule](rules/async-cheap-condition-before-await.md)
**Investigation priority: HIGH (avoids unnecessary async work when a synchronous guard already fails)**
When a branch uses `await` for a flag or remote value and also requires a **cheap synchronous** condition (local props, request metadata, already-loaded state), evaluate the cheap condition **first**. Otherwise you pay for the async call even when the compound condition can never be true.
This is a specialization of [Defer Await Until Needed](rules/async-defer-await.md) for `flag && cheapCondition` style checks.
**Incorrect:**
```typescript
const someFlag = await getFlag()
if (someFlag && someCondition) {
// ...
}
```
**Correct:**
```typescript
if (someCondition) {
const someFlag = await getFlag()
if (someFlag) {
// ...
}
}
```
This matters when `getFlag` hits the network, a feature-flag service, or `React.cache` / DB work: skipping it when `someCondition` is false removes that cost on the cold path.
Keep the original order if `someCondition` is expensive, depends on the flag, or you must run side effects in a fixed order.
---
<a id="async-defer-await"></a>
### 1.2 Defer Await Until Needed
[Source rule](rules/async-defer-await.md)
**Investigation priority: HIGH (avoids blocking unused code paths)**
Move `await` operations into the branches where they're actually used to avoid blocking code paths that don't need them.
**Incorrect (blocks both branches):**
```typescript
async function handleRequest(userId: string, skipProcessing: boolean) {
const userData = await fetchUserData(userId)
if (skipProcessing) {
// Returns immediately but still waited for userData
return { skipped: true }
}
// Only this branch uses userData
return processUserData(userData)
}
```
**Correct (only blocks when needed):**
```typescript
async function handleRequest(userId: string, skipProcessing: boolean) {
if (skipProcessing) {
// Returns immediately without waiting
return { skipped: true }
}
// Fetch only when needed
const userData = await fetchUserData(userId)
return processUserData(userData)
}
```
**Another example (early return optimization):**
```typescript
// Incorrect: always fetches permissions
async function updateResource(resourceId: string, userId: string) {
const permissions = await fetchPermissions(userId)
const resource = await getResource(resourceId)
if (!resource) {
return { error: 'Not found' }
}
if (!permissions.canEdit) {
return { error: 'Forbidden' }
}
return await updateResourceData(resource, permissions)
}
// Correct: fetches only when needed
async function updateResource(resourceId: string, userId: string) {
const resource = await getResource(resourceId)
if (!resource) {
return { error: 'Not found' }
}
const permissions = await fetchPermissions(userId)
if (!permissions.canEdit) {
return { error: 'Forbidden' }
}
return await updateResourceData(resource, permissions)
}
```
This optimization is especially valuable when the skipped branch is frequently taken, or when the deferred operation is expensive.
For `await getFlag()` combined with a cheap synchronous guard (`flag && someCondition`), see [Check Cheap Conditions Before Async Flags](rules/async-cheap-condition-before-await.md).
---
<a id="async-dependencies"></a>
### 1.3 Dependency-Based Parallelization
[Source rule](rules/async-dependencies.md)
**Investigation priority: CRITICAL (avoids waiting on unrelated dependencies; gains depend on task durations)**
Use this pattern when an operation waits for work it does not depend on and that wait matters on the actual path. Express the dependency graph with existing scheduling facilities or ordinary promises first. Preserve required sequencing, error handling, and cancellation behavior.
**Incorrect (profile waits for config unnecessarily):**
```typescript
const [user, config] = await Promise.all([
fetchUser(),
fetchConfig()
])
const profile = await fetchProfile(user.id)
```
**Direct dependency scheduling:**
```typescript
const userPromise = fetchUser()
const profilePromise = userPromise.then(user => fetchProfile(user.id))
const [user, config, profile] = await Promise.all([
userPromise,
fetchConfig(),
profilePromise
])
```
**Optional library for a sufficiently complex graph:**
Consider `better-all` when it is already used by the project or its dependency scheduling materially simplifies the demonstrated workload. Do not add it for a small graph that is already clear with promises.
```typescript
import { all } from 'better-all'
const { user, config, profile } = await all({
async user() { return fetchUser() },
async config() { return fetchConfig() },
async profile() {
return fetchProfile((await this.$.user).id)
}
})
```
Reference: [https://github.com/shuding/better-all](https://github.com/shuding/better-all)
---
<a id="async-api-routes"></a>
### 1.4 Prevent Waterfall Chains in API Routes
[Source rule](rules/async-api-routes.md)
**Investigation priority: CRITICAL (overlaps independent work when sequencing is unnecessary)**
When a route's critical path contains avoidable sequential waits, start genuinely independent operations together. Do not move authorized work before its authorization check, or change ordering, failure, or resource-use semantics merely to overlap requests.
**Incorrect (config waits for auth, data waits for both):**
```typescript
export async function GET(request: Request) {
const session = await auth()
const config = await fetchConfig()
const data = await fetchData(session.user.id)
return Response.json({ data, config })
}
```
**Correct (auth and config start immediately):**
```typescript
export async function GET(request: Request) {
const sessionPromise = auth()
const configPromise = fetchConfig()
const session = await sessionPromise
const [config, data] = await Promise.all([
configPromise,
fetchData(session.user.id)
])
return Response.json({ data, config })
}
```
For more complex dependency chains, compare existing scheduling facilities and direct promise composition before considering `better-all`. See [Dependency-Based Parallelization](rules/async-dependencies.md) for the conditions that justify it.
---
<a id="async-parallel"></a>
### 1.5 Promise.all() for Independent Operations
[Source rule](rules/async-parallel.md)
**Investigation priority: CRITICAL (2-10× improvement)**
When async operations have no interdependencies, execute them concurrently using `Promise.all()`.
**Incorrect (sequential execution, 3 round trips):**
```typescript
const user = await fetchUser()
const posts = await fetchPosts()
const comments = await fetchComments()
```
**Correct (parallel execution, 1 round trip):**
```typescript
const [user, posts, comments] = await Promise.all([
fetchUser(),
fetchPosts(),
fetchComments()
])
```
---
<a id="async-suspense-boundaries"></a>
### 1.6 Strategic Suspense Boundaries
[Source rule](rules/async-suspense-boundaries.md)
**Investigation priority: HIGH (faster initial paint)**
Instead of awaiting data in async components before returning JSX, use Suspense boundaries to show the wrapper UI faster while data loads.
**Incorrect (wrapper blocked by data fetching):**
```tsx
async function Page() {
const data = await fetchData() // Blocks entire page
return (
<div>
<div>Sidebar</div>
<div>Header</div>
<div>
<DataDisplay data={data} />
</div>
<div>Footer</div>
</div>
)
}
```
The entire layout waits for data even though only the middle section needs it.
**Correct (wrapper shows immediately, data streams in):**
```tsx
function Page() {
return (
<div>
<div>Sidebar</div>
<div>Header</div>
<div>
<Suspense fallback={<Skeleton />}>
<DataDisplay />
</Suspense>
</div>
<div>Footer</div>
</div>
)
}
async function DataDisplay() {
const data = await fetchData() // Only blocks this component
return <div>{data.content}</div>
}
```
Sidebar, Header, and Footer render immediately. Only DataDisplay waits for data.
**Alternative (share promise across components):**
```tsx
function Page() {
// Start fetch immediately, but don't await
const dataPromise = fetchData()
return (
<div>
<div>Sidebar</div>
<div>Header</div>
<Suspense fallback={<Skeleton />}>
<DataDisplay dataPromise={dataPromise} />
<DataSummary dataPromise={dataPromise} />
</Suspense>
<div>Footer</div>
</div>
)
}
function DataDisplay({ dataPromise }: { dataPromise: Promise<Data> }) {
const data = use(dataPromise) // Unwraps the promise
return <div>{data.content}</div>
}
function DataSummary({ dataPromise }: { dataPromise: Promise<Data> }) {
const data = use(dataPromise) // Reuses the same promise
return <div>{data.summary}</div>
}
```
Both components share the same promise, so only one fetch occurs. Layout renders immediately while both components wait together.
**When NOT to use this pattern:**
- Critical data needed for layout decisions (affects positioning)
- SEO-critical content above the fold
- Small, fast queries where suspense overhead isn't worth it
- When you want to avoid layout shift (loading → content jump)
**Trade-off:** Faster initial paint vs potential layout shift. Choose based on your UX priorities.
---
## 2. Bundle Size Optimization
**Investigation priority: CRITICAL**
Reducing initial bundle size improves Time to Interactive and Largest Contentful Paint.
---
<a id="bundle-barrel-imports"></a>
### 2.1 Avoid Barrel File Imports
[Source rule](rules/bundle-barrel-imports.md)
**Investigation priority: CRITICAL (200-800ms import cost, slow builds)**
Import directly from source files instead of barrel files to avoid loading thousands of unused modules. **Barrel files** are entry points that re-export multiple modules (e.g., `index.js` that does `export * from './module'`).
Popular icon and component libraries can have **up to 10,000 re-exports** in their entry file. For many React packages, **it takes 200-800ms just to import them**, affecting both development speed and production cold starts.
**Why tree-shaking doesn't help:** When a library is marked as external (not bundled), the bundler can't optimize it. If you bundle it to enable tree-shaking, builds become substantially slower analyzing the entire module graph.
**Incorrect (imports entire library):**
```tsx
import { Check, X, Menu } from 'lucide-react'
// Loads 1,583 modules, takes ~2.8s extra in dev
// Runtime cost: 200-800ms on every cold start
import { Button, TextField } from '@mui/material'
// Loads 2,225 modules, takes ~4.2s extra in dev
```
**Correct - Next.js 13.5+ (recommended):**
```js
// next.config.js - automatically optimizes barrel imports at build time
module.exports = {
experimental: {
optimizePackageImports: ['lucide-react', '@mui/material']
}
}
```
```tsx
// Keep the standard imports - Next.js transforms them to direct imports
import { Check, X, Menu } from 'lucide-react'
// Full TypeScript support, no manual path wrangling
```
This is the recommended approach because it preserves TypeScript type safety and editor autocompletion while still eliminating the barrel import cost.
**Correct - Direct imports (non-Next.js projects):**
```tsx
import Button from '@mui/material/Button'
import TextField from '@mui/material/TextField'
// Loads only what you use
```
> **TypeScript warning:** Some libraries (notably `lucide-react`) don't ship `.d.ts` files for their deep import paths. Importing from `lucide-react/dist/esm/icons/check` resolves to an implicit `any` type, causing errors under `strict` or `noImplicitAny`. Prefer `optimizePackageImports` when available, or verify the library exports types for its subpaths before using direct imports.
These optimizations provide 15-70% faster dev boot, 28% faster builds, 40% faster cold starts, and significantly faster HMR.
Libraries commonly affected: `lucide-react`, `@mui/material`, `@mui/icons-material`, `@tabler/icons-react`, `react-icons`, `@headlessui/react`, `@radix-ui/react-*`, `lodash`, `ramda`, `date-fns`, `rxjs`, `react-use`.
Reference: [How we optimized package imports in Next.js](https://vercel.com/blog/how-we-optimized-package-imports-in-next-js)
---
<a id="bundle-conditional"></a>
### 2.2 Conditional Module Loading
[Source rule](rules/bundle-conditional.md)
**Investigation priority: HIGH (loads large data only when needed)**
Load large data or modules only when a feature is activated.
**Example (lazy-load animation frames):**
```tsx
function AnimationPlayer({ enabled, setEnabled }: { enabled: boolean; setEnabled: React.Dispatch<React.SetStateAction<boolean>> }) {
const [frames, setFrames] = useState<Frame[] | null>(null)
useEffect(() => {
if (enabled && !frames && typeof window !== 'undefined') {
import('./animation-frames.js')
.then(mod => setFrames(mod.frames))
.catch(() => setEnabled(false))
}
}, [enabled, frames, setEnabled])
if (!frames) return <Skeleton />
return <Canvas frames={frames} />
}
```
The `typeof window !== 'undefined'` check prevents bundling this module for SSR, optimizing server bundle size and build speed.
---
<a id="bundle-defer-third-party"></a>
### 2.3 Defer Non-Critical Third-Party Libraries
[Source rule](rules/bundle-defer-third-party.md)
**Investigation priority: MEDIUM (loads after hydration)**
Analytics, logging, and error tracking don't block user interaction. Load them after hydration.
**Incorrect (blocks initial bundle):**
```tsx
import { Analytics } from '@vercel/analytics/react'
export default function RootLayout({ children }) {
return (
<html>
<body>
{children}
<Analytics />
</body>
</html>
)
}
```
**Correct (loads after hydration):**
```tsx
import dynamic from 'next/dynamic'
const Analytics = dynamic(
() => import('@vercel/analytics/react').then(m => m.Analytics),
{ ssr: false }
)
export default function RootLayout({ children }) {
return (
<html>
<body>
{children}
<Analytics />
</body>
</html>
)
}
```
---
<a id="bundle-dynamic-imports"></a>
### 2.4 Dynamic Imports for Heavy Components
[Source rule](rules/bundle-dynamic-imports.md)
**Investigation priority: CRITICAL (directly affects TTI and LCP)**
Use `next/dynamic` to lazy-load large components not needed on initial render.
**Incorrect (Monaco bundles with main chunk ~300KB):**
```tsx
import { MonacoEditor } from './monaco-editor'
function CodePanel({ code }: { code: string }) {
return <MonacoEditor value={code} />
}
```
**Correct (Monaco loads on demand):**
```tsx
import dynamic from 'next/dynamic'
const MonacoEditor = dynamic(
() => import('./monaco-editor').then(m => m.MonacoEditor),
{ ssr: false }
)
function CodePanel({ code }: { code: string }) {
return <MonacoEditor value={code} />
}
```
---
<a id="bundle-analyzable-paths"></a>
### 2.5 Prefer Statically Analyzable Paths
[Source rule](rules/bundle-analyzable-paths.md)
**Investigation priority: HIGH (avoids accidental broad bundles and file traces)**
Build tools work best when import and file-system paths are obvious at build time. If you hide the real path inside a variable or compose it too dynamically, the tool either has to include a broad set of possible files, warn that it cannot analyze the import, or widen file tracing to stay safe.
Prefer explicit maps or literal paths so the set of reachable files stays narrow and predictable. This is the same rule whether you are choosing modules with `import()` or reading files in server/build code.
When analysis becomes too broad, the cost is real:
- Larger server bundles
- Slower builds
- Worse cold starts
- More memory use
#### Import Paths
**Incorrect (the bundler cannot tell what may be imported):**
```ts
const PAGE_MODULES = {
home: './pages/home',
settings: './pages/settings',
} as const
const Page = await import(PAGE_MODULES[pageName])
```
**Correct (use an explicit map of allowed modules):**
```ts
const PAGE_MODULES = {
home: () => import('./pages/home'),
settings: () => import('./pages/settings'),
} as const
const Page = await PAGE_MODULES[pageName]()
```
#### File-System Paths
**Incorrect (a 2-value enum still hides the final path from static analysis):**
```ts
const baseDir = path.join(process.cwd(), 'content/' + contentKind)
```
**Correct (make each final path literal at the callsite):**
```ts
const baseDir =
kind === ContentKind.Blog
? path.join(process.cwd(), 'content/blog')
: path.join(process.cwd(), 'content/docs')
```
In Next.js server code, this matters for output file tracing too. `path.join(process.cwd(), someVar)` can widen the traced file set because Next.js statically analyze `import`, `require`, and `fs` usage.
Reference: [Next.js output](https://nextjs.org/docs/app/api-reference/config/next-config-js/output), [Next.js dynamic imports](https://nextjs.org/learn/seo/dynamic-imports), [Vite features](https://vite.dev/guide/features.html), [esbuild API](https://esbuild.github.io/api/), [Rollup dynamic import vars](https://www.npmjs.com/package/@rollup/plugin-dynamic-import-vars), [Webpack dependency management](https://webpack.js.org/guides/dependency-management/)
---
<a id="bundle-preload"></a>
### 2.6 Preload Based on User Intent
[Source rule](rules/bundle-preload.md)
**Investigation priority: MEDIUM (reduces perceived latency)**
Preload heavy bundles before they're needed to reduce perceived latency.
**Example (preload on hover/focus):**
```tsx
function EditorButton({ onClick }: { onClick: () => void }) {
const preload = () => {
if (typeof window !== 'undefined') {
void import('./monaco-editor')
}
}
return (
<button
onMouseEnter={preload}
onFocus={preload}
onClick={onClick}
>
Open Editor
</button>
)
}
```
**Example (preload when feature flag is enabled):**
```tsx
function FlagsProvider({ children, flags }: Props) {
useEffect(() => {
if (flags.editorEnabled && typeof window !== 'undefined') {
void import('./monaco-editor').then(mod => mod.init())
}
}, [flags.editorEnabled])
return <FlagsContext.Provider value={flags}>
{children}
</FlagsContext.Provider>
}
```
The `typeof window !== 'undefined'` check prevents bundling preloaded modules for SSR, optimizing server bundle size and build speed.
---
## 3. Server-Side Performance
**Investigation priority: HIGH**
Optimizing server-side rendering and data fetching eliminates server-side waterfalls and reduces response times.
---
<a id="server-auth-actions"></a>
### 3.1 Authenticate Server Actions Like API Routes
[Source rule](rules/server-auth-actions.md)
**Investigation priority: CRITICAL (prevents unauthorized access to server mutations)**
Server Actions (functions with `"use server"`) are exposed as public endpoints, just like API routes. Always verify authentication and authorization **inside** each Server Action—do not rely solely on middleware, layout guards, or page-level checks, as Server Actions can be invoked directly.
Next.js documentation explicitly states: "Treat Server Actions with the same security considerations as public-facing API endpoints, and verify if the user is allowed to perform a mutation."
**Incorrect (no authentication check):**
```typescript
'use server'
export async function deleteUser(userId: string) {
// Anyone can call this! No auth check
await db.user.delete({ where: { id: userId } })
return { success: true }
}
```
**Correct (authentication inside the action):**
```typescript
'use server'
import { verifySession } from '@/lib/auth'
import { unauthorized } from '@/lib/errors'
export async function deleteUser(userId: string) {
// Always check auth inside the action
const session = await verifySession()
if (!session) {
throw unauthorized('Must be logged in')
}
// Check authorization too
if (session.user.role !== 'admin' && session.user.id !== userId) {
throw unauthorized('Cannot delete other users')
}
await db.user.delete({ where: { id: userId } })
return { success: true }
}
```
**With input validation:**
```typescript
'use server'
import { verifySession } from '@/lib/auth'
import { z } from 'zod'
const updateProfileSchema = z.object({
userId: z.string().uuid(),
name: z.string().min(1).max(100),
email: z.string().email()
})
export async function updateProfile(data: unknown) {
// Validate input first
const validated = updateProfileSchema.parse(data)
// Then authenticate
const session = await verifySession()
if (!session) {
throw new Error('Unauthorized')
}
// Then authorize
if (session.user.id !== validated.userId) {
throw new Error('Can only update own profile')
}
// Finally perform the mutation
await db.user.update({
where: { id: validated.userId },
data: {
name: validated.name,
email: validated.email
}
})
return { success: true }
}
```
Reference: [https://nextjs.org/docs/app/guides/authentication](https://nextjs.org/docs/app/guides/authentication)
---
<a id="server-dedup-props"></a>
### 3.2 Avoid Duplicate Serialization in RSC Props
[Source rule](rules/server-dedup-props.md)
**Investigation priority: LOW (reduces network payload by avoiding duplicate serialization)**
RSC→client serialization deduplicates by object reference, not value. Same reference = serialized once; new reference = serialized again. Do transformations (`.toSorted()`, `.filter()`, `.map()`) in client, not server.
**Incorrect (duplicates array):**
```tsx
// RSC: sends 6 strings (2 arrays × 3 items)
<ClientList usernames={usernames} usernamesOrdered={usernames.toSorted()} />
```
**Correct (sends 3 strings):**
```tsx
// RSC: send once
<ClientList usernames={usernames} />
// Client: transform there
'use client'
const sorted = useMemo(() => [...usernames].sort(), [usernames])
```
**Nested deduplication behavior:**
Deduplication works recursively. Impact varies by data type:
- `string[]`, `number[]`, `boolean[]`: **HIGH impact** - array + all primitives fully duplicated
- `object[]`: **LOW impact** - array duplicated, but nested objects deduplicated by reference
```tsx
// string[] - duplicates everything
usernames={['a','b']} sorted={usernames.toSorted()} // sends 4 strings
// object[] - duplicates array structure only
users={[{id:1},{id:2}]} sorted={users.toSorted()} // sends 2 arrays + 2 unique objects (not 4)
```
**Operations breaking deduplication (create new references):**
- Arrays: `.toSorted()`, `.filter()`, `.map()`, `.slice()`, `[...arr]`
- Objects: `{...obj}`, `Object.assign()`, `structuredClone()`, `JSON.parse(JSON.stringify())`
**More examples:**
```tsx
// ❌ Bad
<C users={users} active={users.filter(u => u.active)} />
<C product={product} productName={product.name} />
// ✅ Good
<C users={users} />
<C product={product} />
// Do filtering/destructuring in client
```
**Exception:** Pass derived data when transformation is expensive or client doesn't need original.
---
<a id="server-no-shared-module-state"></a>
### 3.3 Avoid Shared Module State for Request Data
[Source rule](rules/server-no-shared-module-state.md)
**Investigation priority: HIGH (prevents concurrency bugs and request data leaks)**
For React Server Components and client components rendered during SSR, avoid using mutable module-level variables to share request-scoped data. Server renders can run concurrently in the same process. If one render writes to shared module state and another render reads it, you can get race conditions, cross-request contamination, and security bugs where one user's data appears in another user's response.
Treat module scope on the server as process-wide shared memory, not request-local state.
**Incorrect (request data leaks across concurrent renders):**
```tsx
let currentUser: User | null = null
export default async function Page() {
currentUser = await auth()
return <Dashboard />
}
async function Dashboard() {
return <div>{currentUser?.name}</div>
}
```
If two requests overlap, request A can set `currentUser`, then request B overwrites it before request A finishes rendering `Dashboard`.
**Correct (keep request data local to the render tree):**
```tsx
export default async function Page() {
const user = await auth()
return <Dashboard user={user} />
}
function Dashboard({ user }: { user: User | null }) {
return <div>{user?.name}</div>
}
```
Safe exceptions:
- Immutable static assets or config loaded once at module scope
- Shared caches intentionally designed for cross-request reuse and keyed correctly
- Process-wide singletons that do not store request- or user-specific mutable data
For static assets and config, see [Hoist Static I/O to Module Level](rules/server-hoist-static-io.md).
---
<a id="server-cache-lru"></a>
### 3.4 Cross-Request LRU Caching
[Source rule](rules/server-cache-lru.md)
**Investigation priority: HIGH (reuses costly reads when freshness and isolation permit)**
Consider a bounded cross-request cache only when repeated reads have meaningful cost and the data may be reused under an explicit freshness and isolation policy. Reuse an existing cache first. Define key identity, lifetime, size bounds, and invalidation ownership before adding an LRU dependency; ordinary sequential requests alone do not justify it.
An LRU cache can help when a bounded working set recurs and evicting entries is acceptable. Choose limits from the workload and memory budget. TTL and invalidation must match the data contract; do not copy example limits as application requirements.
Cache public data only when it has the same meaning for every caller. Include tenant, locale, version, or other relevant identity when results differ. Do not share authorization-dependent data or accept stale results when the contract requires fresh state. Choose a narrower scope or no cache when those guarantees cannot be preserved.
Use precise cache value types and distinguish a cache miss from valid falsy values. Account for failed loads and concurrent fills when they affect correctness. The write path or another identified owner must invalidate entries when the freshness contract requires it.
A process-local cache is an optimization, not durable storage or a guarantee of reuse across replicas and restarts. Verify the deployment's process lifetime and measure hit rate, latency, and memory cost. A shared cache service needs its own demonstrated requirement; do not add one automatically when local reuse is limited.
Reference: [lru-cache documentation](https://isaacs.github.io/node-lru-cache/)
---
<a id="server-hoist-static-io"></a>
### 3.5 Hoist Static I/O to Module Level
[Source rule](rules/server-hoist-static-io.md)
**Investigation priority: HIGH (avoids repeated file/network I/O per request)**
When loading static assets (fonts, logos, images, config files) in route handlers or server functions, hoist the I/O operation to module level. Module-level code runs once when the module is first imported, not on every request. This eliminates redundant file system reads or network fetches that would otherwise run on every invocation.
**Incorrect (reads font file on every request):**
```typescript
// app/api/og/route.tsx
import { ImageResponse } from 'next/og'
export async function GET(request: Request) {
// Runs on EVERY request - expensive!
const fontData = await fetch(
new URL('./fonts/Inter.ttf', import.meta.url)
).then(res => res.arrayBuffer())
const logoData = await fetch(
new URL('./images/logo.png', import.meta.url)
).then(res => res.arrayBuffer())
return new ImageResponse(
<div style={{ fontFamily: 'Inter' }}>
<img src={logoData} />
Hello World
</div>,
{ fonts: [{ name: 'Inter', data: fontData }] }
)
}
```
**Correct (loads once at module initialization):**
```typescript
// app/api/og/route.tsx
import { ImageResponse } from 'next/og'
// Module-level: runs ONCE when module is first imported
const fontData = fetch(
new URL('./fonts/Inter.ttf', import.meta.url)
).then(res => res.arrayBuffer())
const logoData = fetch(
new URL('./images/logo.png', import.meta.url)
).then(res => res.arrayBuffer())
export async function GET(request: Request) {
// Await the already-started promises
const [font, logo] = await Promise.all([fontData, logoData])
return new ImageResponse(
<div style={{ fontFamily: 'Inter' }}>
<img src={logo} />
Hello World
</div>,
{ fonts: [{ name: 'Inter', data: font }] }
)
}
```
**Correct (synchronous fs at module level):**
```typescript
// app/api/og/route.tsx
import { ImageResponse } from 'next/og'
import { readFileSync } from 'fs'
import { join } from 'path'
// Synchronous read at module level - blocks only during module init
const fontData = readFileSync(
join(process.cwd(), 'public/fonts/Inter.ttf')
)
const logoData = readFileSync(
join(process.cwd(), 'public/images/logo.png')
)
export async function GET(request: Request) {
return new ImageResponse(
<div style={{ fontFamily: 'Inter' }}>
<img src={logoData} />
Hello World
</div>,
{ fonts: [{ name: 'Inter', data: fontData }] }
)
}
```
**Incorrect (reads config on every call):**
```typescript
import fs from 'node:fs/promises'
export async function processRequest(data: Data) {
const config = JSON.parse(
await fs.readFile('./config.json', 'utf-8')
)
const template = await fs.readFile('./template.html', 'utf-8')
return render(template, data, config)
}
```
**Correct (hoists config and template to module level):**
```typescript
import fs from 'node:fs/promises'
const configPromise = fs
.readFile('./config.json', 'utf-8')
.then(JSON.parse)
const templatePromise = fs.readFile('./template.html', 'utf-8')
export async function processRequest(data: Data) {
const [config, template] = await Promise.all([
configPromise,
templatePromise,
])
return render(template, data, config)
}
```
When to use this pattern:
- Loading fonts for OG image generation
- Loading static logos, icons, or watermarks
- Reading configuration files that don't change at runtime
- Loading email templates or other static templates
- Any static asset that's the same across all requests
When not to use this pattern:
- Assets that vary per request or user
- Files that may change during runtime (use caching with TTL instead)
- Large files that would consume too much memory if kept loaded
- Sensitive data that shouldn't persist in memory
With Vercel's [Fluid Compute](https://vercel.com/docs/fluid-compute), module-level caching is especially effective because multiple concurrent requests share the same function instance. The static assets stay loaded in memory across requests without cold start penalties.
In traditional serverless, each cold start re-executes module-level code, but subsequent warm invocations reuse the loaded assets until the instance is recycled.
---
<a id="server-serialization"></a>
### 3.6 Minimize Serialization at RSC Boundaries
[Source rule](rules/server-serialization.md)
**Investigation priority: HIGH (reduces data transfer size)**
The React Server/Client boundary serializes all object properties into strings and embeds them in the HTML response and subsequent RSC requests. This serialized data directly impacts page weight and load time, so **size matters a lot**. Only pass fields that the client actually uses.
**Incorrect (serializes all 50 fields):**
```tsx
async function Page() {
const user = await fetchUser() // 50 fields
return <Profile user={user} />
}
'use client'
function Profile({ user }: { user: User }) {
return <div>{user.name}</div> // uses 1 field
}
```
**Correct (serializes only 1 field):**
```tsx
async function Page() {
const user = await fetchUser()
return <Profile name={user.name} />
}
'use client'
function Profile({ name }: { name: string }) {
return <div>{name}</div>
}
```
---
<a id="server-parallel-fetching"></a>
### 3.7 Parallel Data Fetching with Component Composition
[Source rule](rules/server-parallel-fetching.md)
**Investigation priority: CRITICAL (eliminates server-side waterfalls)**
React Server Components execute sequentially within a tree. Restructure with composition to parallelize data fetching.
**Incorrect (Sidebar waits for Page's fetch to complete):**
```tsx
export default async function Page() {
const header = await fetchHeader()
return (
<div>
<div>{header}</div>
<Sidebar />
</div>
)
}
async function Sidebar() {
const items = await fetchSidebarItems()
return <nav>{items.map(renderItem)}</nav>
}
```
**Correct (both fetch simultaneously):**
```tsx
async function Header() {
const data = await fetchHeader()
return <div>{data}</div>
}
async function Sidebar() {
const items = await fetchSidebarItems()
return <nav>{items.map(renderItem)}</nav>
}
export default function Page() {
return (
<div>
<Header />
<Sidebar />
</div>
)
}
```
**Alternative with children prop:**
```tsx
async function Header() {
const data = await fetchHeader()
return <div>{data}</div>
}
async function Sidebar() {
const items = await fetchSidebarItems()
return <nav>{items.map(renderItem)}</nav>
}
function Layout({ children }: { children: ReactNode }) {
return (
<div>
<Header />
{children}
</div>
)
}
export default function Page() {
return (
<Layout>
<Sidebar />
</Layout>
)
}
```
---
<a id="server-parallel-nested-fetching"></a>
### 3.8 Parallel Nested Data Fetching
[Source rule](rules/server-parallel-nested-fetching.md)
**Investigation priority: CRITICAL (eliminates server-side waterfalls)**
When fetching nested data in parallel, chain dependent fetches within each item's promise so a slow item doesn't block the rest.
**Incorrect (a single slow item blocks all nested fetches):**
```tsx
const chats = await Promise.all(
chatIds.map(id => getChat(id))
)
const chatAuthors = await Promise.all(
chats.map(chat => getUser(chat.author))
)
```
If one `getChat(id)` out of 100 is extremely slow, the authors of the other 99 chats can't start loading even though their data is ready.
**Correct (each item chains its own nested fetch):**
```tsx
const chatAuthors = await Promise.all(
chatIds.map(id => getChat(id).then(chat => getUser(chat.author)))
)
```
Each item independently chains `getChat` → `getUser`, so a slow chat doesn't block author fetches for the others.
---
<a id="server-cache-react"></a>
### 3.9 Per-Request Deduplication with React.cache()
[Source rule](rules/server-cache-react.md)
**Investigation priority: MEDIUM (deduplicates within request)**
Consider `React.cache()` when the same costly computation or read repeats during a React Server Component render and sharing its result within that request preserves behavior. Reuse existing deduplication first. It is not a general-purpose server cache or a reason to cache every authentication check or database query.
**Usage:**
```typescript
import { cache } from 'react'
export const getCurrentUser = cache(async () => {
const session = await auth()
if (!session?.user?.id) return null
return await db.user.findUnique({
where: { id: session.user.id }
})
})
```
During a supported server render, calls to the same memoized function can share the result. React invalidates this cache between server requests, and errors are cached too. Verify that those semantics fit the operation.
**Avoid inline objects as arguments:**
`React.cache()` uses shallow equality (`Object.is`) to determine cache hits. Inline objects create new references each call, preventing cache hits.
**Incorrect (always cache miss):**
```typescript
const getUser = cache(async (params: { uid: number }) => {
return await db.user.findUnique({ where: { id: params.uid } })
})
// Each call creates new object, never hits cache
getUser({ uid: 1 })
getUser({ uid: 1 }) // Cache miss, runs query again
```
**Correct (cache hit):**
```typescript
const getUser = cache(async (uid: number) => {
return await db.user.findUnique({ where: { id: uid } })
})
// Primitive args use value equality
getUser(1)
getUser(1) // Cache hit, returns cached result
```
If you must pass objects, pass the same reference:
```typescript
const params = { uid: 1 }
getUser(params) // Query runs
getUser(params) // Cache hit (same reference)
```
**Next.js-Specific Note:**
Check the installed Next.js version and execution context for existing request memoization before adding another layer. Consider `React.cache()` for repeated non-fetch work only when its request scope and result/error reuse fit the requirement. A single call or an already-deduplicated operation gains nothing merely from another wrapper.
Reference: [React.cache documentation](https://react.dev/reference/react/cache)
---
<a id="server-after-nonblocking"></a>
### 3.10 Use after() for Non-Blocking Operations
[Source rule](rules/server-after-nonblocking.md)
**Investigation priority: MEDIUM (faster response times)**
Use Next.js's `after()` to schedule work that should execute after a response is sent. This prevents logging, analytics, and other side effects from blocking the response.
**Incorrect (blocks response):**
```tsx
import { logUserAction } from '@/app/utils'
export async function POST(request: Request) {
// Perform mutation
await updateDatabase(request)
// Logging blocks the response
const userAgent = request.headers.get('user-agent') || 'unknown'
await logUserAction({ userAgent })
return new Response(JSON.stringify({ status: 'success' }), {
status: 200,
headers: { 'Content-Type': 'application/json' }
})
}
```
**Correct (non-blocking):**
```tsx
import { after } from 'next/server'
import { headers, cookies } from 'next/headers'
import { logUserAction } from '@/app/utils'
export async function POST(request: Request) {
// Perform mutation
await updateDatabase(request)
// Log after response is sent
after(async () => {
const userAgent = (await headers()).get('user-agent') || 'unknown'
const sessionCookie = (await cookies()).get('session-id')?.value || 'anonymous'
logUserAction({ sessionCookie, userAgent })
})
return new Response(JSON.stringify({ status: 'success' }), {
status: 200,
headers: { 'Content-Type': 'application/json' }
})
}
```
The response is sent immediately while logging happens in the background.
**Common use cases:**
- Analytics tracking
- Audit logging
- Sending notifications
- Cache invalidation
- Cleanup tasks
**Important notes:**
- `after()` runs even if the response fails or redirects
- Works in Server Actions, Route Handlers, and Server Components
Reference: [https://nextjs.org/docs/app/api-reference/functions/after](https://nextjs.org/docs/app/api-reference/functions/after)
---
## 4. Client-Side Data Fetching
**Investigation priority: MEDIUM-HIGH**
Automatic deduplication and efficient data fetching patterns reduce redundant network requests.
---
<a id="client-event-listeners"></a>
### 4.1 Deduplicate Global Event Listeners
[Source rule](rules/client-event-listeners.md)
**Investigation priority: LOW (single listener for N components)**
Consider sharing listeners when repeated subscriptions create meaningful dispatch or lifecycle cost. Reuse an existing event owner or subscription facility first. `useSWRSubscription()` is an option in a project already using SWR; do not add SWR solely to replace a few inexpensive listeners. Preserve callback identity, cleanup, and event semantics.
**Incorrect (N instances = N listeners):**
```tsx
function useKeyboardShortcut(key: string, callback: () => void) {
useEffect(() => {
const handler = (e: KeyboardEvent) => {
if (e.metaKey && e.key === key) {
callback()
}
}
window.addEventListener('keydown', handler)
return () => window.removeEventListener('keydown', handler)
}, [key, callback])
}
```
When using the `useKeyboardShortcut` hook multiple times, each instance will register a new listener.
**Correct (N instances = 1 listener):**
```tsx
import useSWRSubscription from 'swr/subscription'
// Module-level Map to track callbacks per key
const keyCallbacks = new Map<string, Set<() => void>>()
function useKeyboardShortcut(key: string, callback: () => void) {
// Register this callback in the Map
useEffect(() => {
if (!keyCallbacks.has(key)) {
keyCallbacks.set(key, new Set())
}
keyCallbacks.get(key)!.add(callback)
return () => {
const set = keyCallbacks.get(key)
if (set) {
set.delete(callback)
if (set.size === 0) {
keyCallbacks.delete(key)
}
}
}
}, [key, callback])
useSWRSubscription('global-keydown', () => {
const handler = (e: KeyboardEvent) => {
if (e.metaKey && keyCallbacks.has(e.key)) {
keyCallbacks.get(e.key)!.forEach(cb => cb())
}
}
window.addEventListener('keydown', handler)
return () => window.removeEventListener('keydown', handler)
})
}
function Profile() {
// Multiple shortcuts will share the same listener
useKeyboardShortcut('p', () => { /* ... */ })
useKeyboardShortcut('k', () => { /* ... */ })
// ...
}
```
---
<a id="client-passive-event-listeners"></a>
### 4.2 Use Passive Event Listeners for Scrolling Performance
[Source rule](rules/client-passive-event-listeners.md)
**Investigation priority: MEDIUM (eliminates scroll delay caused by event listeners)**
Add `{ passive: true }` to touch and wheel event listeners to enable immediate scrolling. Browsers normally wait for listeners to finish to check if `preventDefault()` is called, causing scroll delay.
**Incorrect:**
```typescript
useEffect(() => {
const handleTouch = (e: TouchEvent) => console.log(e.touches[0].clientX)
const handleWheel = (e: WheelEvent) => console.log(e.deltaY)
document.addEventListener('touchstart', handleTouch)
document.addEventListener('wheel', handleWheel)
return () => {
document.removeEventListener('touchstart', handleTouch)
document.removeEventListener('wheel', handleWheel)
}
}, [])
```
**Correct:**
```typescript
useEffect(() => {
const handleTouch = (e: TouchEvent) => console.log(e.touches[0].clientX)
const handleWheel = (e: WheelEvent) => console.log(e.deltaY)
document.addEventListener('touchstart', handleTouch, { passive: true })
document.addEventListener('wheel', handleWheel, { passive: true })
return () => {
document.removeEventListener('touchstart', handleTouch)
document.removeEventListener('wheel', handleWheel)
}
}, [])
```
**Use passive when:** tracking/analytics, logging, any listener that doesn't call `preventDefault()`.
**Don't use passive when:** implementing custom swipe gestures, custom zoom controls, or any listener that needs `preventDefault()`.
---
<a id="client-swr-dedup"></a>
### 4.3 Use SWR for Automatic Deduplication
[Source rule](rules/client-swr-dedup.md)
**Investigation priority: MEDIUM-HIGH (automatic deduplication)**
Apply request deduplication when several consumers make equivalent requests and the redundant work matters. Reuse the project's existing data layer first. SWR is one option when already adopted or when its caching and revalidation model meets a demonstrated need; this rule does not require installing or migrating to it.
Check request identity, cache scope, user-dependent data, and mutation freshness before sharing results. A one-off request without meaningful duplication does not justify a new data-fetching layer.
**Potential repeated work when many instances mount:**
```tsx
function UserList() {
const [users, setUsers] = useState([])
useEffect(() => {
fetch('/api/users')
.then(r => r.json())
.then(setUsers)
}, [])
}
```
**SWR option when it fits the project:**
```tsx
import useSWR from 'swr'
function UserList() {
const { data: users } = useSWR('/api/users', fetcher)
}
```
**For immutable data, when the project provides this helper:**
```tsx
import { useImmutableSWR } from '@/lib/swr'
function StaticContent() {
const { data } = useImmutableSWR('/api/config', fetcher)
}
```
**For mutations:**
```tsx
import useSWRMutation from 'swr/mutation'
function UpdateButton() {
const { trigger } = useSWRMutation('/api/user', updateUser)
return <button onClick={() => trigger()}>Update</button>
}
```
Reference: [https://swr.vercel.app](https://swr.vercel.app)
---
<a id="client-localstorage-schema"></a>
### 4.4 Version and Minimize localStorage Data
[Source rule](rules/client-localstorage-schema.md)
**Investigation priority: MEDIUM (prevents schema conflicts, reduces storage size)**
Add version prefix to keys and store only needed fields. Prevents schema conflicts and accidental storage of sensitive data.
**Incorrect:**
```typescript
// No version, stores everything, no error handling
localStorage.setItem('userConfig', JSON.stringify(fullUserObject))
const data = localStorage.getItem('userConfig')
```
**Correct:**
```typescript
const VERSION = 'v2'
function saveConfig(config: { theme: string; language: string }) {
try {
localStorage.setItem(`userConfig:${VERSION}`, JSON.stringify(config))
} catch {
// Throws in incognito/private browsing, quota exceeded, or disabled
}
}
function loadConfig() {
try {
const data = localStorage.getItem(`userConfig:${VERSION}`)
return data ? JSON.parse(data) : null
} catch {
return null
}
}
// Migration from v1 to v2
function migrate() {
try {
const v1 = localStorage.getItem('userConfig:v1')
if (v1) {
const old = JSON.parse(v1)
saveConfig({ theme: old.darkMode ? 'dark' : 'light', language: old.lang })
localStorage.removeItem('userConfig:v1')
}
} catch {}
}
```
**Store minimal fields from server responses:**
```typescript
// User object has 20+ fields, only store what UI needs
function cachePrefs(user: FullUser) {
try {
localStorage.setItem('prefs:v1', JSON.stringify({
theme: user.preferences.theme,
notifications: user.preferences.notifications
}))
} catch {}
}
```
**Always wrap in try-catch:** `getItem()` and `setItem()` throw in incognito/private browsing (Safari, Firefox), when quota exceeded, or when disabled.
**Benefits:** Schema evolution via versioning, reduced storage size, prevents storing tokens/PII/internal flags.
---
## 5. Re-render Optimization
**Investigation priority: MEDIUM**
Reducing unnecessary re-renders minimizes wasted computation and improves UI responsiveness.
---
<a id="rerender-derived-state-no-effect"></a>
### 5.1 Calculate Derived State During Rendering
[Source rule](rules/rerender-derived-state-no-effect.md)
**Investigation priority: MEDIUM (avoids redundant renders and state drift)**
If a value can be computed from current props/state, do not store it in state or update it in an effect. Derive it during render to avoid extra renders and state drift. Do not set state in effects solely in response to prop changes; prefer derived values or keyed resets instead.
**Incorrect (redundant state and effect):**
```tsx
function Form() {
const [firstName, setFirstName] = useState('First')
const [lastName, setLastName] = useState('Last')
const [fullName, setFullName] = useState('')
useEffect(() => {
setFullName(firstName + ' ' + lastName)
}, [firstName, lastName])
return <p>{fullName}</p>
}
```
**Correct (derive during render):**
```tsx
function Form() {
const [firstName, setFirstName] = useState('First')
const [lastName, setLastName] = useState('Last')
const fullName = firstName + ' ' + lastName
return <p>{fullName}</p>
}
```
References: [You Might Not Need an Effect](https://react.dev/learn/you-might-not-need-an-effect)
---
<a id="rerender-defer-reads"></a>
### 5.2 Defer State Reads to Usage Point
[Source rule](rules/rerender-defer-reads.md)
**Investigation priority: MEDIUM (avoids unnecessary subscriptions)**
Don't subscribe to dynamic state (searchParams, localStorage) if you only read it inside callbacks.
**Incorrect (subscribes to all searchParams changes):**
```tsx
function ShareButton({ chatId }: { chatId: string }) {
const searchParams = useSearchParams()
const handleShare = () => {
const ref = searchParams.get('ref')
shareChat(chatId, { ref })
}
return <button onClick={handleShare}>Share</button>
}
```
**Correct (reads on demand, no subscription):**
```tsx
function ShareButton({ chatId }: { chatId: string }) {
const handleShare = () => {
const params = new URLSearchParams(window.location.search)
const ref = params.get('ref')
shareChat(chatId, { ref })
}
return <button onClick={handleShare}>Share</button>
}
```
---
<a id="rerender-simple-expression-in-memo"></a>
### 5.3 Do not wrap a simple expression with a primitive result type in useMemo
[Source rule](rules/rerender-simple-expression-in-memo.md)
**Investigation priority: LOW-MEDIUM (wasted computation on every render)**
When an expression is simple (few logical or arithmetical operators) and has a primitive result type (boolean, number, string), do not wrap it in `useMemo`.
Calling `useMemo` and comparing hook dependencies may consume more resources than the expression itself.
**Incorrect:**
```tsx
function Header({ user, notifications }: Props) {
const isLoading = useMemo(() => {
return user.isLoading || notifications.isLoading
}, [user.isLoading, notifications.isLoading])
if (isLoading) return <Skeleton />
// return some markup
}
```
**Correct:**
```tsx
function Header({ user, notifications }: Props) {
const isLoading = user.isLoading || notifications.isLoading
if (isLoading) return <Skeleton />
// return some markup
}
```
---
<a id="rerender-no-inline-components"></a>
### 5.4 Don't Define Components Inside Components
[Source rule](rules/rerender-no-inline-components.md)
**Investigation priority: HIGH (prevents remount on every render)**
Defining a component inside another component creates a new component type on every render. React sees a different component each time and fully remounts it, destroying all state and DOM.
A common reason developers do this is to access parent variables without passing props. Always pass props instead.
**Incorrect (remounts on every render):**
```tsx
function UserProfile({ user, theme }) {
// Defined inside to access `theme` - BAD
const Avatar = () => (
<img
src={user.avatarUrl}
className={theme === 'dark' ? 'avatar-dark' : 'avatar-light'}
/>
)
// Defined inside to access `user` - BAD
const Stats = () => (
<div>
<span>{user.followers} followers</span>
<span>{user.posts} posts</span>
</div>
)
return (
<div>
<Avatar />
<Stats />
</div>
)
}
```
Every time `UserProfile` renders, `Avatar` and `Stats` are new component types. React unmounts the old instances and mounts new ones, losing any internal state, running effects again, and recreating DOM nodes.
**Correct (pass props instead):**
```tsx
function Avatar({ src, theme }: { src: string; theme: string }) {
return (
<img
src={src}
className={theme === 'dark' ? 'avatar-dark' : 'avatar-light'}
/>
)
}
function Stats({ followers, posts }: { followers: number; posts: number }) {
return (
<div>
<span>{followers} followers</span>
<span>{posts} posts</span>
</div>
)
}
function UserProfile({ user, theme }) {
return (
<div>
<Avatar src={user.avatarUrl} theme={theme} />
<Stats followers={user.followers} posts={user.posts} />
</div>
)
}
```
**Symptoms of this bug:**
- Input fields lose focus on every keystroke
- Animations restart unexpectedly
- `useEffect` cleanup/setup runs on every parent render
- Scroll position resets inside the component
---
<a id="rerender-memo-with-default-value"></a>
### 5.5 Extract Default Non-primitive Parameter Value from Memoized Component to Constant
[Source rule](rules/rerender-memo-with-default-value.md)
**Investigation priority: MEDIUM (restores memoization by using a constant for default value)**
When memoized component has a default value for some non-primitive optional parameter, such as an array, function, or object, calling the component without that parameter results in broken memoization. This is because new value instances are created on every rerender, and they do not pass strict equality comparison in `memo()`.
To address this issue, extract the default value into a constant.
**Incorrect (`onClick` has different values on every rerender):**
```tsx
const UserAvatar = memo(function UserAvatar({ onClick = () => {} }: { onClick?: () => void }) {
// ...
})
// Used without optional onClick
<UserAvatar />
```
**Correct (stable default value):**
```tsx
const NOOP = () => {};
const UserAvatar = memo(function UserAvatar({ onClick = NOOP }: { onClick?: () => void }) {
// ...
})
// Used without optional onClick
<UserAvatar />
```
---
<a id="rerender-memo"></a>
### 5.6 Extract to Memoized Components
[Source rule](rules/rerender-memo.md)
**Investigation priority: MEDIUM (enables early returns)**
Extract expensive work into memoized components to enable early returns before computation.
**Incorrect (computes avatar even when loading):**
```tsx
function Profile({ user, loading }: Props) {
const avatar = useMemo(() => {
const id = computeAvatarId(user)
return <Avatar id={id} />
}, [user])
if (loading) return <Skeleton />
return <div>{avatar}</div>
}
```
**Correct (skips computation when loading):**
```tsx
const UserAvatar = memo(function UserAvatar({ user }: { user: User }) {
const id = useMemo(() => computeAvatarId(user), [user])
return <Avatar id={id} />
})
function Profile({ user, loading }: Props) {
if (loading) return <Skeleton />
return (
<div>
<UserAvatar user={user} />
</div>
)
}
```
**Note:** If your project has [React Compiler](https://react.dev/learn/react-compiler) enabled, manual memoization with `memo()` and `useMemo()` is not necessary. The compiler automatically optimizes re-renders.
---
<a id="rerender-dependencies"></a>
### 5.7 Narrow Effect Dependencies
[Source rule](rules/rerender-dependencies.md)
**Investigation priority: LOW (minimizes effect re-runs)**
Specify primitive dependencies instead of objects to minimize effect re-runs.
**Incorrect (re-runs on any user field change):**
```tsx
useEffect(() => {
console.log(user.id)
}, [user])
```
**Correct (re-runs only when id changes):**
```tsx
useEffect(() => {
console.log(user.id)
}, [user.id])
```
**For derived state, compute outside effect:**
```tsx
// Incorrect: runs on width=767, 766, 765...
useEffect(() => {
if (width < 768) {
enableMobileMode()
}
}, [width])
// Correct: runs only on boolean transition
const isMobile = width < 768
useEffect(() => {
if (isMobile) {
enableMobileMode()
}
}, [isMobile])
```
---
<a id="rerender-move-effect-to-event"></a>
### 5.8 Put Interaction Logic in Event Handlers
[Source rule](rules/rerender-move-effect-to-event.md)
**Investigation priority: MEDIUM (avoids effect re-runs and duplicate side effects)**
If a side effect is triggered by a specific user action (submit, click, drag), run it in that event handler. Do not model the action as state + effect; it makes effects re-run on unrelated changes and can duplicate the action.
**Incorrect (event modeled as state + effect):**
```tsx
function Form() {
const [submitted, setSubmitted] = useState(false)
const theme = useContext(ThemeContext)
useEffect(() => {
if (submitted) {
post('/api/register')
showToast('Registered', theme)
}
}, [submitted, theme])
return <button onClick={() => setSubmitted(true)}>Submit</button>
}
```
**Correct (do it in the handler):**
```tsx
function Form() {
const theme = useContext(ThemeContext)
function handleSubmit() {
post('/api/register')
showToast('Registered', theme)
}
return <button onClick={handleSubmit}>Submit</button>
}
```
Reference: [Should this code move to an event handler?](https://react.dev/learn/removing-effect-dependencies#should-this-code-move-to-an-event-handler)
---
<a id="rerender-split-combined-hooks"></a>
### 5.9 Split Combined Hook Computations
[Source rule](rules/rerender-split-combined-hooks.md)
**Investigation priority: MEDIUM (avoids recomputing independent steps)**
When a hook contains multiple independent tasks with different dependencies, split them into separate hooks. A combined hook reruns all tasks when any dependency changes, even if some tasks don't use the changed value.
**Incorrect (changing `sortOrder` recomputes filtering):**
```tsx
const sortedProducts = useMemo(() => {
const filtered = products.filter((p) => p.category === category)
const sorted = filtered.toSorted((a, b) =>
sortOrder === "asc" ? a.price - b.price : b.price - a.price
)
return sorted
}, [products, category, sortOrder])
```
**Correct (filtering only recomputes when products or category change):**
```tsx
const filteredProducts = useMemo(
() => products.filter((p) => p.category === category),
[products, category]
)
const sortedProducts = useMemo(
() =>
filteredProducts.toSorted((a, b) =>
sortOrder === "asc" ? a.price - b.price : b.price - a.price
),
[filteredProducts, sortOrder]
)
```
This pattern also applies to `useEffect` when combining unrelated side effects:
**Incorrect (both effects run when either dependency changes):**
```tsx
useEffect(() => {
analytics.trackPageView(pathname)
document.title = `${pageTitle} | My App`
}, [pathname, pageTitle])
```
**Correct (effects run independently):**
```tsx
useEffect(() => {
analytics.trackPageView(pathname)
}, [pathname])
useEffect(() => {
document.title = `${pageTitle} | My App`
}, [pageTitle])
```
**Note:** If your project has [React Compiler](https://react.dev/learn/react-compiler) enabled, it automatically optimizes dependency tracking and may handle some of these cases for you.
---
<a id="rerender-derived-state"></a>
### 5.10 Subscribe to Derived State
[Source rule](rules/rerender-derived-state.md)
**Investigation priority: MEDIUM (reduces re-render frequency)**
Subscribe to derived boolean state instead of continuous values to reduce re-render frequency.
**Incorrect (re-renders on every pixel change):**
```tsx
function Sidebar() {
const width = useWindowWidth() // updates continuously
const isMobile = width < 768
return <nav className={isMobile ? 'mobile' : 'desktop'} />
}
```
**Correct (re-renders only when boolean changes):**
```tsx
function Sidebar() {
const isMobile = useMediaQuery('(max-width: 767px)')
return <nav className={isMobile ? 'mobile' : 'desktop'} />
}
```
---
<a id="rerender-functional-setstate"></a>
### 5.11 Use Functional setState Updates
[Source rule](rules/rerender-functional-setstate.md)
**Investigation priority: MEDIUM (prevents stale closures and unnecessary callback recreations)**
When updating state based on the current state value, use the functional update form of setState instead of directly referencing the state variable. This prevents stale closures, eliminates unnecessary dependencies, and creates stable callback references.
**Incorrect (requires state as dependency):**
```tsx
function TodoList() {
const [items, setItems] = useState(initialItems)
// Callback must depend on items, recreated on every items change
const addItems = useCallback((newItems: Item[]) => {
setItems([...items, ...newItems])
}, [items]) // ❌ items dependency causes recreations
// Risk of stale closure if dependency is forgotten
const removeItem = useCallback((id: string) => {
setItems(items.filter(item => item.id !== id))
}, []) // ❌ Missing items dependency - will use stale items!
return <ItemsEditor items={items} onAdd={addItems} onRemove={removeItem} />
}
```
The first callback is recreated every time `items` changes, which can cause child components to re-render unnecessarily. The second callback has a stale closure bug—it will always reference the initial `items` value.
**Correct (stable callbacks, no stale closures):**
```tsx
function TodoList() {
const [items, setItems] = useState(initialItems)
// Stable callback, never recreated
const addItems = useCallback((newItems: Item[]) => {
setItems(curr => [...curr, ...newItems])
}, []) // ✅ No dependencies needed
// Always uses latest state, no stale closure risk
const removeItem = useCallback((id: string) => {
setItems(curr => curr.filter(item => item.id !== id))
}, []) // ✅ Safe and stable
return <ItemsEditor items={items} onAdd={addItems} onRemove={removeItem} />
}
```
**Benefits:**
1. **Stable callback references** - Callbacks don't need to be recreated when state changes
2. **No stale closures** - Always operates on the latest state value
3. **Fewer dependencies** - Simplifies dependency arrays and reduces memory leaks
4. **Prevents bugs** - Eliminates the most common source of React closure bugs
**When to use functional updates:**
- Any setState that depends on the current state value
- Inside useCallback/useMemo when state is needed
- Event handlers that reference state
- Async operations that update state
**When direct updates are fine:**
- Setting state to a static value: `setCount(0)`
- Setting state from props/arguments only: `setName(newName)`
- State doesn't depend on previous value
**Note:** If your project has [React Compiler](https://react.dev/learn/react-compiler) enabled, the compiler can automatically optimize some cases, but functional updates are still recommended for correctness and to prevent stale closure bugs.
---
<a id="rerender-lazy-state-init"></a>
### 5.12 Use Lazy State Initialization
[Source rule](rules/rerender-lazy-state-init.md)
**Investigation priority: MEDIUM (wasted computation on every render)**
Pass a function to `useState` for expensive initial values. Without the function form, the initializer runs on every render even though the value is only used once.
**Incorrect (runs on every render):**
```tsx
function FilteredList({ items }: { items: Item[] }) {
// buildSearchIndex() runs on EVERY render, even after initialization
const [searchIndex, setSearchIndex] = useState(buildSearchIndex(items))
const [query, setQuery] = useState('')
// When query changes, buildSearchIndex runs again unnecessarily
return <SearchResults index={searchIndex} query={query} />
}
function UserProfile() {
// JSON.parse runs on every render
const [settings, setSettings] = useState(
JSON.parse(localStorage.getItem('settings') || '{}')
)
return <SettingsForm settings={settings} onChange={setSettings} />
}
```
**Correct (runs only once):**
```tsx
function FilteredList({ items }: { items: Item[] }) {
// buildSearchIndex() runs ONLY on initial render
const [searchIndex, setSearchIndex] = useState(() => buildSearchIndex(items))
const [query, setQuery] = useState('')
return <SearchResults index={searchIndex} query={query} />
}
function UserProfile() {
// JSON.parse runs only on initial render
const [settings, setSettings] = useState(() => {
const stored = localStorage.getItem('settings')
return stored ? JSON.parse(stored) : {}
})
return <SettingsForm settings={settings} onChange={setSettings} />
}
```
Use lazy initialization when computing initial values from localStorage/sessionStorage, building data structures (indexes, maps), reading from the DOM, or performing heavy transformations.
For simple primitives (`useState(0)`), direct references (`useState(props.value)`), or cheap literals (`useState({})`), the function form is unnecessary.
---
<a id="rerender-transitions"></a>
### 5.13 Use Transitions for Non-Urgent Updates
[Source rule](rules/rerender-transitions.md)
**Investigation priority: MEDIUM (maintains UI responsiveness)**
Mark frequent, non-urgent state updates as transitions to maintain UI responsiveness.
**Incorrect (blocks UI on every scroll):**
```tsx
function ScrollTracker() {
const [scrollY, setScrollY] = useState(0)
useEffect(() => {
const handler = () => setScrollY(window.scrollY)
window.addEventListener('scroll', handler, { passive: true })
return () => window.removeEventListener('scroll', handler)
}, [])
}
```
**Correct (non-blocking updates):**
```tsx
import { startTransition } from 'react'
function ScrollTracker() {
const [scrollY, setScrollY] = useState(0)
useEffect(() => {
const handler = () => {
startTransition(() => setScrollY(window.scrollY))
}
window.addEventListener('scroll', handler, { passive: true })
return () => window.removeEventListener('scroll', handler)
}, [])
}
```
---
<a id="rerender-use-deferred-value"></a>
### 5.14 Use useDeferredValue for Expensive Derived Renders
[Source rule](rules/rerender-use-deferred-value.md)
**Investigation priority: MEDIUM (keeps input responsive during heavy computation)**
When user input triggers expensive computations or renders, use `useDeferredValue` to keep the input responsive. The deferred value lags behind, allowing React to prioritize the input update and render the expensive result when idle.
**Incorrect (input feels laggy while filtering):**
```tsx
function Search({ items }: { items: Item[] }) {
const [query, setQuery] = useState('')
const filtered = items.filter(item => fuzzyMatch(item, query))
return (
<>
<input value={query} onChange={e => setQuery(e.target.value)} />
<ResultsList results={filtered} />
</>
)
}
```
**Correct (input stays snappy, results render when ready):**
```tsx
function Search({ items }: { items: Item[] }) {
const [query, setQuery] = useState('')
const deferredQuery = useDeferredValue(query)
const filtered = useMemo(
() => items.filter(item => fuzzyMatch(item, deferredQuery)),
[items, deferredQuery]
)
const isStale = query !== deferredQuery
return (
<>
<input value={query} onChange={e => setQuery(e.target.value)} />
<div style={{ opacity: isStale ? 0.7 : 1 }}>
<ResultsList results={filtered} />
</div>
</>
)
}
```
**When to use:**
- Filtering/searching large lists
- Expensive visualizations (charts, graphs) reacting to input
- Any derived state that causes noticeable render delays
**Note:** Wrap the expensive computation in `useMemo` with the deferred value as a dependency, otherwise it still runs on every render.
Reference: [React useDeferredValue](https://react.dev/reference/react/useDeferredValue)
---
<a id="rerender-use-ref-transient-values"></a>
### 5.15 Use useRef for Transient Values
[Source rule](rules/rerender-use-ref-transient-values.md)
**Investigation priority: MEDIUM (avoids unnecessary re-renders on frequent updates)**
When a value changes frequently and you don't want a re-render on every update (e.g., mouse trackers, intervals, transient flags), store it in `useRef` instead of `useState`. Keep component state for UI; use refs for temporary DOM-adjacent values. Updating a ref does not trigger a re-render.
**Incorrect (renders every update):**
```tsx
function Tracker() {
const [lastX, setLastX] = useState(0)
useEffect(() => {
const onMove = (e: MouseEvent) => setLastX(e.clientX)
window.addEventListener('mousemove', onMove)
return () => window.removeEventListener('mousemove', onMove)
}, [])
return (
<div
style={{
position: 'fixed',
top: 0,
left: lastX,
width: 8,
height: 8,
background: 'black',
}}
/>
)
}
```
**Correct (no re-render for tracking):**
```tsx
function Tracker() {
const lastXRef = useRef(0)
const dotRef = useRef<HTMLDivElement>(null)
useEffect(() => {
const onMove = (e: MouseEvent) => {
lastXRef.current = e.clientX
const node = dotRef.current
if (node) {
node.style.transform = `translateX(${e.clientX}px)`
}
}
window.addEventListener('mousemove', onMove)
return () => window.removeEventListener('mousemove', onMove)
}, [])
return (
<div
ref={dotRef}
style={{
position: 'fixed',
top: 0,
left: 0,
width: 8,
height: 8,
background: 'black',
transform: 'translateX(0px)',
}}
/>
)
}
```
---
## 6. Rendering Performance
**Investigation priority: MEDIUM**
Optimizing the rendering process reduces the work the browser needs to do.
---
<a id="rendering-animate-svg-wrapper"></a>
### 6.1 Animate SVG Wrapper Instead of SVG Element
[Source rule](rules/rendering-animate-svg-wrapper.md)
**Investigation priority: LOW (enables hardware acceleration)**
Many browsers don't have hardware acceleration for CSS3 animations on SVG elements. Wrap SVG in a `<div>` and animate the wrapper instead.
**Incorrect (animating SVG directly - no hardware acceleration):**
```tsx
function LoadingSpinner() {
return (
<svg
className="animate-spin"
width="24"
height="24"
viewBox="0 0 24 24"
>
<circle cx="12" cy="12" r="10" stroke="currentColor" />
</svg>
)
}
```
**Correct (animating wrapper div - hardware accelerated):**
```tsx
function LoadingSpinner() {
return (
<div className="animate-spin">
<svg
width="24"
height="24"
viewBox="0 0 24 24"
>
<circle cx="12" cy="12" r="10" stroke="currentColor" />
</svg>
</div>
)
}
```
This applies to all CSS transforms and transitions (`transform`, `opacity`, `translate`, `scale`, `rotate`). The wrapper div allows browsers to use GPU acceleration for smoother animations.
---
<a id="rendering-content-visibility"></a>
### 6.2 CSS content-visibility for Long Lists
[Source rule](rules/rendering-content-visibility.md)
**Investigation priority: HIGH (faster initial render)**
Apply `content-visibility: auto` to defer off-screen rendering.
**CSS:**
```css
.message-item {
content-visibility: auto;
contain-intrinsic-size: 0 80px;
}
```
**Example:**
```tsx
function MessageList({ messages }: { messages: Message[] }) {
return (
<div className="overflow-y-auto h-screen">
{messages.map(msg => (
<div key={msg.id} className="message-item">
<Avatar user={msg.author} />
<div>{msg.content}</div>
</div>
))}
</div>
)
}
```
For 1000 messages, browser skips layout/paint for ~990 off-screen items (10× faster initial render).
---
<a id="rendering-hoist-jsx"></a>
### 6.3 Hoist Static JSX Elements
[Source rule](rules/rendering-hoist-jsx.md)
**Investigation priority: LOW (avoids re-creation)**
Extract static JSX outside components to avoid re-creation.
**Incorrect (recreates element every render):**
```tsx
function LoadingSkeleton() {
return <div className="animate-pulse h-20 bg-gray-200" />
}
function Container() {
return (
<div>
{loading && <LoadingSkeleton />}
</div>
)
}
```
**Correct (reuses same element):**
```tsx
const loadingSkeleton = (
<div className="animate-pulse h-20 bg-gray-200" />
)
function Container() {
return (
<div>
{loading && loadingSkeleton}
</div>
)
}
```
This is especially helpful for large and static SVG nodes, which can be expensive to recreate on every render.
**Note:** If your project has [React Compiler](https://react.dev/learn/react-compiler) enabled, the compiler automatically hoists static JSX elements and optimizes component re-renders, making manual hoisting unnecessary.
---
<a id="rendering-svg-precision"></a>
### 6.4 Optimize SVG Precision
[Source rule](rules/rendering-svg-precision.md)
**Investigation priority: LOW (reduces file size)**
Reduce SVG coordinate precision to decrease file size. The optimal precision depends on the viewBox size, but in general reducing precision should be considered.
**Incorrect (excessive precision):**
```svg
<path d="M 10.293847 20.847362 L 30.938472 40.192837" />
```
**Correct (1 decimal place):**
```svg
<path d="M 10.3 20.8 L 30.9 40.2" />
```
**Automate with SVGO:**
```bash
npx svgo --precision=1 --multipass icon.svg
```
---
<a id="rendering-hydration-no-flicker"></a>
### 6.5 Prevent Hydration Mismatch Without Flickering
[Source rule](rules/rendering-hydration-no-flicker.md)
**Investigation priority: MEDIUM (avoids visual flicker and hydration errors)**
When rendering content that depends on client-side storage (localStorage, cookies), avoid both SSR breakage and post-hydration flickering by injecting a synchronous script that updates the DOM before React hydrates.
**Incorrect (breaks SSR):**
```tsx
function ThemeWrapper({ children }: { children: ReactNode }) {
// localStorage is not available on server - throws error
const theme = localStorage.getItem('theme') || 'light'
return (
<div className={theme}>
{children}
</div>
)
}
```
Server-side rendering will fail because `localStorage` is undefined.
**Incorrect (visual flickering):**
```tsx
function ThemeWrapper({ children }: { children: ReactNode }) {
const [theme, setTheme] = useState('light')
useEffect(() => {
// Runs after hydration - causes visible flash
const stored = localStorage.getItem('theme')
if (stored) {
setTheme(stored)
}
}, [])
return (
<div className={theme}>
{children}
</div>
)
}
```
Component first renders with default value (`light`), then updates after hydration, causing a visible flash of incorrect content.
**Correct (no flicker, no hydration mismatch):**
```tsx
function ThemeWrapper({ children }: { children: ReactNode }) {
return (
<>
<div id="theme-wrapper">
{children}
</div>
<script
dangerouslySetInnerHTML={{
__html: `
(function() {
try {
var theme = localStorage.getItem('theme') || 'light';
var el = document.getElementById('theme-wrapper');
if (el) el.className = theme;
} catch (e) {}
})();
`,
}}
/>
</>
)
}
```
The inline script executes synchronously before showing the element, ensuring the DOM already has the correct value. No flickering, no hydration mismatch.
This pattern is especially useful for theme toggles, user preferences, authentication states, and any client-only data that should render immediately without flashing default values.
---
<a id="rendering-hydration-suppress-warning"></a>
### 6.6 Suppress Expected Hydration Mismatches
[Source rule](rules/rendering-hydration-suppress-warning.md)
**Investigation priority: LOW-MEDIUM (avoids noisy hydration warnings for known differences)**
In SSR frameworks (e.g., Next.js), some values are intentionally different on server vs client (random IDs, dates, locale/timezone formatting). For these *expected* mismatches, wrap the dynamic text in an element with `suppressHydrationWarning` to prevent noisy warnings. Do not use this to hide real bugs. Don’t overuse it.
**Incorrect (known mismatch warnings):**
```tsx
function Timestamp() {
return <span>{new Date().toLocaleString()}</span>
}
```
**Correct (suppress expected mismatch only):**
```tsx
function Timestamp() {
return (
<span suppressHydrationWarning>
{new Date().toLocaleString()}
</span>
)
}
```
---
<a id="rendering-activity"></a>
### 6.7 Use Activity Component for Show/Hide
[Source rule](rules/rendering-activity.md)
**Investigation priority: MEDIUM (preserves state/DOM)**
Use React's `<Activity>` to preserve state/DOM for expensive components that frequently toggle visibility.
**Usage:**
```tsx
import { Activity } from 'react'
function Dropdown({ isOpen }: Props) {
return (
<Activity mode={isOpen ? 'visible' : 'hidden'}>
<ExpensiveMenu />
</Activity>
)
}
```
Avoids expensive re-renders and state loss.
---
<a id="rendering-conditional-render"></a>
### 6.8 Use Explicit Conditional Rendering
[Source rule](rules/rendering-conditional-render.md)
**Investigation priority: LOW (prevents rendering 0 or NaN)**
Use explicit ternary operators (`? :`) instead of `&&` for conditional rendering when the condition can be `0`, `NaN`, or other falsy values that render.
**Incorrect (renders "0" when count is 0):**
```tsx
function Badge({ count }: { count: number }) {
return (
<div>
{count && <span className="badge">{count}</span>}
</div>
)
}
// When count = 0, renders: <div>0</div>
// When count = 5, renders: <div><span class="badge">5</span></div>
```
**Correct (renders nothing when count is 0):**
```tsx
function Badge({ count }: { count: number }) {
return (
<div>
{count > 0 ? <span className="badge">{count}</span> : null}
</div>
)
}
// When count = 0, renders: <div></div>
// When count = 5, renders: <div><span class="badge">5</span></div>
```
---
<a id="rendering-resource-hints"></a>
### 6.9 Use React DOM Resource Hints
[Source rule](rules/rendering-resource-hints.md)
**Investigation priority: HIGH (reduces load time for critical resources)**
React DOM provides APIs to hint the browser about resources it will need. These are especially useful in server components to start loading resources before the client even receives the HTML.
- **`prefetchDNS(href)`**: Resolve DNS for a domain you expect to connect to
- **`preconnect(href)`**: Establish connection (DNS + TCP + TLS) to a server
- **`preload(href, options)`**: Fetch a resource (stylesheet, font, script, image) you'll use soon
- **`preloadModule(href)`**: Fetch an ES module you'll use soon
- **`preinit(href, options)`**: Fetch and evaluate a stylesheet or script
- **`preinitModule(href)`**: Fetch and evaluate an ES module
**Example (preconnect to third-party APIs):**
```tsx
import { preconnect, prefetchDNS } from 'react-dom'
export default function App() {
prefetchDNS('https://analytics.example.com')
preconnect('https://api.example.com')
return <main>{/* content */}</main>
}
```
**Example (preload critical fonts and styles):**
```tsx
import { preload, preinit } from 'react-dom'
export default function RootLayout({ children }) {
// Preload font file
preload('/fonts/inter.woff2', { as: 'font', type: 'font/woff2', crossOrigin: 'anonymous' })
// Fetch and apply critical stylesheet immediately
preinit('/styles/critical.css', { as: 'style' })
return (
<html>
<body>{children}</body>
</html>
)
}
```
**Example (preload modules for code-split routes):**
```tsx
import { preloadModule, preinitModule } from 'react-dom'
function Navigation() {
const preloadDashboard = () => {
preloadModule('/dashboard.js', { as: 'script' })
}
return (
<nav>
<a href="/dashboard" onMouseEnter={preloadDashboard}>
Dashboard
</a>
</nav>
)
}
```
**When to use each:**
| API | Use case |
|-----|----------|
| `prefetchDNS` | Third-party domains you'll connect to later |
| `preconnect` | APIs or CDNs you'll fetch from immediately |
| `preload` | Critical resources needed for current page |
| `preloadModule` | JS modules for likely next navigation |
| `preinit` | Stylesheets/scripts that must execute early |
| `preinitModule` | ES modules that must execute early |
Reference: [React DOM Resource Preloading APIs](https://react.dev/reference/react-dom#resource-preloading-apis)
---
<a id="rendering-script-defer-async"></a>
### 6.10 Use defer or async on Script Tags
[Source rule](rules/rendering-script-defer-async.md)
**Investigation priority: HIGH (eliminates render-blocking)**
Script tags without `defer` or `async` block HTML parsing while the script downloads and executes. This delays First Contentful Paint and Time to Interactive.
- **`defer`**: Downloads in parallel, executes after HTML parsing completes, maintains execution order
- **`async`**: Downloads in parallel, executes immediately when ready, no guaranteed order
Use `defer` for scripts that depend on DOM or other scripts. Use `async` for independent scripts like analytics.
**Incorrect (blocks rendering):**
```tsx
export default function Document() {
return (
<html>
<head>
<script src="https://example.com/analytics.js" />
<script src="/scripts/utils.js" />
</head>
<body>{/* content */}</body>
</html>
)
}
```
**Correct (non-blocking):**
```tsx
export default function Document() {
return (
<html>
<head>
{/* Independent script - use async */}
<script src="https://example.com/analytics.js" async />
{/* DOM-dependent script - use defer */}
<script src="/scripts/utils.js" defer />
</head>
<body>{/* content */}</body>
</html>
)
}
```
**Note:** In Next.js, prefer the `next/script` component with `strategy` prop instead of raw script tags:
```tsx
import Script from 'next/script'
export default function Page() {
return (
<>
<Script src="https://example.com/analytics.js" strategy="afterInteractive" />
<Script src="/scripts/utils.js" strategy="beforeInteractive" />
</>
)
}
```
Reference: [MDN - Script element](https://developer.mozilla.org/en-US/docs/Web/HTML/Element/script#defer)
---
<a id="rendering-usetransition-loading"></a>
### 6.11 Use useTransition Over Manual Loading States
[Source rule](rules/rendering-usetransition-loading.md)
**Investigation priority: LOW (reduces re-renders and improves code clarity)**
Use `useTransition` instead of manual `useState` for loading states. This provides built-in `isPending` state and automatically manages transitions.
**Incorrect (manual loading state):**
```tsx
function SearchResults() {
const [query, setQuery] = useState('')
const [results, setResults] = useState([])
const [isLoading, setIsLoading] = useState(false)
const handleSearch = async (value: string) => {
setIsLoading(true)
setQuery(value)
const data = await fetchResults(value)
setResults(data)
setIsLoading(false)
}
return (
<>
<input onChange={(e) => handleSearch(e.target.value)} />
{isLoading && <Spinner />}
<ResultsList results={results} />
</>
)
}
```
**Correct (useTransition with built-in pending state):**
```tsx
import { useTransition, useState } from 'react'
function SearchResults() {
const [query, setQuery] = useState('')
const [results, setResults] = useState([])
const [isPending, startTransition] = useTransition()
const handleSearch = (value: string) => {
setQuery(value) // Update input immediately
startTransition(async () => {
// Fetch and update results
const data = await fetchResults(value)
setResults(data)
})
}
return (
<>
<input onChange={(e) => handleSearch(e.target.value)} />
{isPending && <Spinner />}
<ResultsList results={results} />
</>
)
}
```
**Benefits:**
- **Automatic pending state**: No need to manually manage `setIsLoading(true/false)`
- **Error resilience**: Pending state correctly resets even if the transition throws
- **Better responsiveness**: Keeps the UI responsive during updates
- **Interrupt handling**: New transitions automatically cancel pending ones
Reference: [useTransition](https://react.dev/reference/react/useTransition)
---
## 7. JavaScript Performance
**Investigation priority: LOW-MEDIUM**
Investigate repeated work on demonstrated hot paths; keep direct code when runtime savings do not justify additional machinery.
---
<a id="js-batch-dom-css"></a>
### 7.1 Avoid Layout Thrashing
[Source rule](rules/js-batch-dom-css.md)
**Investigation priority: MEDIUM (prevents forced synchronous layouts and reduces performance bottlenecks)**
Avoid interleaving style writes with layout reads. When you read a layout property (like `offsetWidth`, `getBoundingClientRect()`, or `getComputedStyle()`) between style changes, the browser is forced to trigger a synchronous reflow.
**This is OK (browser batches style changes):**
```typescript
function updateElementStyles(element: HTMLElement) {
// Each line invalidates style, but browser batches the recalculation
element.style.width = '100px'
element.style.height = '200px'
element.style.backgroundColor = 'blue'
element.style.border = '1px solid black'
}
```
**Incorrect (interleaved reads and writes force reflows):**
```typescript
function layoutThrashing(element: HTMLElement) {
element.style.width = '100px'
const width = element.offsetWidth // Forces reflow
element.style.height = '200px'
const height = element.offsetHeight // Forces another reflow
}
```
**Correct (batch writes, then read once):**
```typescript
function updateElementStyles(element: HTMLElement) {
// Batch all writes together
element.style.width = '100px'
element.style.height = '200px'
element.style.backgroundColor = 'blue'
element.style.border = '1px solid black'
// Read after all writes are done (single reflow)
const { width, height } = element.getBoundingClientRect()
}
```
**Correct (batch reads, then writes):**
```typescript
function avoidThrashing(element: HTMLElement) {
// Read phase - all layout queries first
const rect1 = element.getBoundingClientRect()
const offsetWidth = element.offsetWidth
const offsetHeight = element.offsetHeight
// Write phase - all style changes after
element.style.width = '100px'
element.style.height = '200px'
}
```
**Better: use CSS classes**
```css
.highlighted-box {
width: 100px;
height: 200px;
background-color: blue;
border: 1px solid black;
}
```
```typescript
function updateElementStyles(element: HTMLElement) {
element.classList.add('highlighted-box')
const { width, height } = element.getBoundingClientRect()
}
```
**React example:**
```tsx
// Incorrect: interleaving style changes with layout queries
function Box({ isHighlighted }: { isHighlighted: boolean }) {
const ref = useRef<HTMLDivElement>(null)
useEffect(() => {
if (ref.current && isHighlighted) {
ref.current.style.width = '100px'
const width = ref.current.offsetWidth // Forces layout
ref.current.style.height = '200px'
}
}, [isHighlighted])
return <div ref={ref}>Content</div>
}
// Correct: toggle class
function Box({ isHighlighted }: { isHighlighted: boolean }) {
return (
<div className={isHighlighted ? 'highlighted-box' : ''}>
Content
</div>
)
}
```
Prefer CSS classes over inline styles when possible. CSS files are cached by the browser, and classes provide better separation of concerns and are easier to maintain.
See [this gist](https://gist.github.com/paulirish/5d52fb081b3570c81e3a) and [CSS Triggers](https://csstriggers.com/) for more information on layout-forcing operations.
---
<a id="js-index-maps"></a>
### 7.2 Build Index Maps for Repeated Lookups
[Source rule](rules/js-index-maps.md)
**Investigation priority: LOW-MEDIUM (1M ops to 2K ops)**
Multiple `.find()` calls by the same key should use a Map.
**Incorrect (O(n) per lookup):**
```typescript
function processOrders(orders: Order[], users: User[]) {
return orders.map(order => ({
...order,
user: users.find(u => u.id === order.userId)
}))
}
```
**Correct (O(1) per lookup):**
```typescript
function processOrders(orders: Order[], users: User[]) {
const userById = new Map(users.map(u => [u.id, u]))
return orders.map(order => ({
...order,
user: userById.get(order.userId)
}))
}
```
Build map once (O(n)), then all lookups are O(1).
For 1000 orders × 1000 users: 1M ops → 2K ops.
---
<a id="js-cache-property-access"></a>
### 7.3 Cache Property Access in Loops
[Source rule](rules/js-cache-property-access.md)
**Investigation priority: LOW-MEDIUM (reduces lookups)**
Consider hoisting repeated property reads only on a demonstrated hot path when the values stay invariant during the loop. Getters, proxies, or mutation by the loop body may make repeated reads observable. Preserve that behavior and skip the rewrite when the measured or expected saving does not justify the added local state.
**Incorrect (3 lookups × N iterations):**
```typescript
for (let i = 0; i < arr.length; i++) {
process(obj.config.settings.value)
}
```
**Correct (1 lookup total):**
```typescript
const value = obj.config.settings.value
const len = arr.length
for (let i = 0; i < len; i++) {
process(value)
}
```
---
<a id="js-cache-function-results"></a>
### 7.4 Cache Repeated Function Calls
[Source rule](rules/js-cache-function-results.md)
**Investigation priority: MEDIUM (avoids costly repeated computation under a suitable cache policy)**
Cache a computation only when repeated inputs create meaningful work and returning a prior result preserves the contract. Prefer an existing cache or reuse within the current operation before adding shared state. Cheap or infrequent computation may be clearer and faster without cache bookkeeping.
Choose keys that include every input affecting the result. Establish cache ownership, lifetime, memory bounds, and invalidation. Module scope is appropriate only when sharing across those callers is intended; it is not the default merely because a Map can be accessed anywhere.
**Example: reuse an expensive calculation within one render:**
```tsx
function ProjectList({ projects }: { projects: Project[] }) {
const slugs = new Map<string, string>()
return (
<div>
{projects.map(project => {
let slug = slugs.get(project.name)
if (slug === undefined) {
slug = slugify(project.name)
slugs.set(project.name, slug)
}
return <ProjectCard key={project.id} slug={slug} />
})}
</div>
)
}
```
This example is useful only if repeated names and the computation's cost justify the Map. Entries expire with the render rather than accumulating across the process. For reuse across renders or requests, evaluate the relevant framework facility and its lifetime before choosing a broader cache.
Do not cache authentication state or mutable external data using this pure-computation pattern. Their changing inputs and freshness requirements need an explicit owner and invalidation policy.
---
<a id="js-cache-storage"></a>
### 7.5 Cache Storage API Calls
[Source rule](rules/js-cache-storage.md)
**Investigation priority: LOW-MEDIUM (avoids repeated synchronous reads when they are a meaningful cost)**
Consider caching storage reads only when repeated synchronous access is a demonstrated cost on the affected path. Reuse the application's existing state or storage owner first. A rare preference read does not justify another cache.
Use a browser-scoped cache only when its owner can keep it consistent with relevant writes, removals, clears, and external changes. Same-tab writes and other-tab changes need appropriate handling; a storage-event listener alone does not cover every writer. If the application cannot maintain the required freshness, read the authoritative source instead.
Choose keys, lifetime, and memory limits from the actual access pattern. Avoid creating module-level browser state that is accidentally shared or accessed during server rendering. Preserve behavior when storage is unavailable or a write fails.
Cookies may change through server responses as well as client code. Do not infer authentication from the presence of a cached cookie string or assume a visibility event guarantees fresh session state. Prefer the established session or cookie owner and skip caching when its invalidation contract is unclear.
Measure whether avoided reads outweigh invalidation and bookkeeping cost. Verify updates and cross-tab behavior as well as repeated-read performance before claiming an improvement.
---
<a id="js-combine-iterations"></a>
### 7.6 Combine Multiple Array Iterations
[Source rule](rules/js-combine-iterations.md)
**Investigation priority: LOW-MEDIUM (reduces iterations)**
Multiple `.filter()` or `.map()` calls iterate the array multiple times. Combine into one loop.
**Incorrect (3 iterations):**
```typescript
const admins = users.filter(u => u.isAdmin)
const testers = users.filter(u => u.isTester)
const inactive = users.filter(u => !u.isActive)
```
**Correct (1 iteration):**
```typescript
const admins: User[] = []
const testers: User[] = []
const inactive: User[] = []
for (const user of users) {
if (user.isAdmin) admins.push(user)
if (user.isTester) testers.push(user)
if (!user.isActive) inactive.push(user)
}
```
---
<a id="js-request-idle-callback"></a>
### 7.7 Defer Non-Critical Work with requestIdleCallback
[Source rule](rules/js-request-idle-callback.md)
**Investigation priority: MEDIUM (keeps UI responsive during background tasks)**
Use `requestIdleCallback()` to schedule non-critical work during browser idle periods. This keeps the main thread free for user interactions and animations, reducing jank and improving perceived performance.
**Incorrect (blocks main thread during user interaction):**
```typescript
function handleSearch(query: string) {
const results = searchItems(query)
setResults(results)
// These block the main thread immediately
analytics.track('search', { query })
saveToRecentSearches(query)
prefetchTopResults(results.slice(0, 3))
}
```
**Correct (defers non-critical work to idle time):**
```typescript
function handleSearch(query: string) {
const results = searchItems(query)
setResults(results)
// Defer non-critical work to idle periods
requestIdleCallback(() => {
analytics.track('search', { query })
})
requestIdleCallback(() => {
saveToRecentSearches(query)
})
requestIdleCallback(() => {
prefetchTopResults(results.slice(0, 3))
})
}
```
**With timeout for required work:**
```typescript
// Ensure analytics fires within 2 seconds even if browser stays busy
requestIdleCallback(
() => analytics.track('page_view', { path: location.pathname }),
{ timeout: 2000 }
)
```
**Chunking large tasks:**
```typescript
function processLargeDataset(items: Item[]) {
let index = 0
function processChunk(deadline: IdleDeadline) {
// Process items while we have idle time (aim for <50ms chunks)
while (index < items.length && deadline.timeRemaining() > 0) {
processItem(items[index])
index++
}
// Schedule next chunk if more items remain
if (index < items.length) {
requestIdleCallback(processChunk)
}
}
requestIdleCallback(processChunk)
}
```
**With fallback for unsupported browsers:**
```typescript
const scheduleIdleWork = window.requestIdleCallback ?? ((cb: () => void) => setTimeout(cb, 1))
scheduleIdleWork(() => {
// Non-critical work
})
```
**When to use:**
- Analytics and telemetry
- Saving state to localStorage/IndexedDB
- Prefetching resources for likely next actions
- Processing non-urgent data transformations
- Lazy initialization of non-critical features
**When NOT to use:**
- User-initiated actions that need immediate feedback
- Rendering updates the user is waiting for
- Time-sensitive operations
---
<a id="js-length-check-first"></a>
### 7.8 Early Length Check for Array Comparisons
[Source rule](rules/js-length-check-first.md)
**Investigation priority: MEDIUM-HIGH (avoids expensive operations when lengths differ)**
When comparing arrays with expensive operations (sorting, deep equality, serialization), check lengths first. If lengths differ, the arrays cannot be equal.
In real-world applications, this optimization is especially valuable when the comparison runs in hot paths (event handlers, render loops).
**Incorrect (always runs expensive comparison):**
```typescript
function hasChanges(current: string[], original: string[]) {
// Always sorts and joins, even when lengths differ
return current.sort().join() !== original.sort().join()
}
```
Two O(n log n) sorts run even when `current.length` is 5 and `original.length` is 100. There is also overhead of joining the arrays and comparing the strings.
**Correct (O(1) length check first):**
```typescript
function hasChanges(current: string[], original: string[]) {
// Early return if lengths differ
if (current.length !== original.length) {
return true
}
// Only sort when lengths match
const currentSorted = current.toSorted()
const originalSorted = original.toSorted()
for (let i = 0; i < currentSorted.length; i++) {
if (currentSorted[i] !== originalSorted[i]) {
return true
}
}
return false
}
```
This new approach is more efficient because:
- It avoids the overhead of sorting and joining the arrays when lengths differ
- It avoids consuming memory for the joined strings (especially important for large arrays)
- It avoids mutating the original arrays
- It returns early when a difference is found
---
<a id="js-early-exit"></a>
### 7.9 Early Return from Functions
[Source rule](rules/js-early-exit.md)
**Investigation priority: LOW-MEDIUM (avoids unnecessary computation)**
Return early when result is determined to skip unnecessary processing.
**Incorrect (processes all items even after finding answer):**
```typescript
function validateUsers(users: User[]) {
let hasError = false
let errorMessage = ''
for (const user of users) {
if (!user.email) {
hasError = true
errorMessage = 'Email required'
}
if (!user.name) {
hasError = true
errorMessage = 'Name required'
}
// Continues checking all users even after error found
}
return hasError ? { valid: false, error: errorMessage } : { valid: true }
}
```
**Correct (returns immediately on first error):**
```typescript
function validateUsers(users: User[]) {
for (const user of users) {
if (!user.email) {
return { valid: false, error: 'Email required' }
}
if (!user.name) {
return { valid: false, error: 'Name required' }
}
}
return { valid: true }
}
```
---
<a id="js-hoist-regexp"></a>
### 7.10 Hoist RegExp Creation
[Source rule](rules/js-hoist-regexp.md)
**Investigation priority: LOW-MEDIUM (avoids recreation)**
Don't create RegExp inside render. Hoist to module scope or memoize with `useMemo()`.
**Incorrect (new RegExp every render):**
```tsx
function Highlighter({ text, query }: Props) {
const regex = new RegExp(`(${query})`, 'gi')
const parts = text.split(regex)
return <>{parts.map((part, i) => ...)}</>
}
```
**Correct (memoize or hoist):**
```tsx
const EMAIL_REGEX = /^[^\s@]+@[^\s@]+\.[^\s@]+$/
function Highlighter({ text, query }: Props) {
const regex = useMemo(
() => new RegExp(`(${escapeRegex(query)})`, 'gi'),
[query]
)
const parts = text.split(regex)
return <>{parts.map((part, i) => ...)}</>
}
```
**Warning (global regex has mutable state):**
Global regex (`/g`) has mutable `lastIndex` state:
```typescript
const regex = /foo/g
regex.test('foo') // true, lastIndex = 3
regex.test('foo') // false, lastIndex = 0
```
---
<a id="js-min-max-loop"></a>
### 7.11 Use Loop for Min/Max Instead of Sort
[Source rule](rules/js-min-max-loop.md)
**Investigation priority: LOW (O(n) instead of O(n log n))**
Finding the smallest or largest element only requires a single pass through the array. Sorting is wasteful and slower.
**Incorrect (O(n log n) - sort to find latest):**
```typescript
interface Project {
id: string
name: string
updatedAt: number
}
function getLatestProject(projects: Project[]) {
const sorted = [...projects].sort((a, b) => b.updatedAt - a.updatedAt)
return sorted[0]
}
```
Sorts the entire array just to find the maximum value.
**Incorrect (O(n log n) - sort for oldest and newest):**
```typescript
function getOldestAndNewest(projects: Project[]) {
const sorted = [...projects].sort((a, b) => a.updatedAt - b.updatedAt)
return { oldest: sorted[0], newest: sorted[sorted.length - 1] }
}
```
Still sorts unnecessarily when only min/max are needed.
**Correct (O(n) - single loop):**
```typescript
function getLatestProject(projects: Project[]) {
if (projects.length === 0) return null
let latest = projects[0]
for (let i = 1; i < projects.length; i++) {
if (projects[i].updatedAt > latest.updatedAt) {
latest = projects[i]
}
}
return latest
}
function getOldestAndNewest(projects: Project[]) {
if (projects.length === 0) return { oldest: null, newest: null }
let oldest = projects[0]
let newest = projects[0]
for (let i = 1; i < projects.length; i++) {
if (projects[i].updatedAt < oldest.updatedAt) oldest = projects[i]
if (projects[i].updatedAt > newest.updatedAt) newest = projects[i]
}
return { oldest, newest }
}
```
Single pass through the array, no copying, no sorting.
**Alternative (Math.min/Math.max for small arrays):**
```typescript
const numbers = [5, 2, 8, 1, 9]
const min = Math.min(...numbers)
const max = Math.max(...numbers)
```
This works for small arrays, but can be slower or just throw an error for very large arrays due to spread operator limitations. Maximal array length is approximately 124000 in Chrome 143 and 638000 in Safari 18; exact numbers may vary - see [the fiddle](https://jsfiddle.net/qw1jabsx/4/). Use the loop approach for reliability.
---
<a id="js-set-map-lookups"></a>
### 7.12 Use Set/Map for O(1) Lookups
[Source rule](rules/js-set-map-lookups.md)
**Investigation priority: LOW-MEDIUM (O(n) to O(1))**
Convert arrays to Set/Map for repeated membership checks.
**Incorrect (O(n) per check):**
```typescript
const allowedIds = ['a', 'b', 'c', ...]
items.filter(item => allowedIds.includes(item.id))
```
**Correct (O(1) per check):**
```typescript
const allowedIds = new Set(['a', 'b', 'c', ...])
items.filter(item => allowedIds.has(item.id))
```
---
<a id="js-flatmap-filter"></a>
### 7.13 Use flatMap to Map and Filter in One Pass
[Source rule](rules/js-flatmap-filter.md)
**Investigation priority: LOW-MEDIUM (eliminates intermediate array)**
Chaining `.map().filter(Boolean)` creates an intermediate array and iterates twice. Use `.flatMap()` to transform and filter in a single pass.
**Incorrect (2 iterations, intermediate array):**
```typescript
const userNames = users
.map(user => user.isActive ? user.name : null)
.filter(Boolean)
```
**Correct (1 iteration, no intermediate array):**
```typescript
const userNames = users.flatMap(user =>
user.isActive ? [user.name] : []
)
```
**More examples:**
```typescript
// Extract valid emails from responses
// Before
const emails = responses
.map(r => r.success ? r.data.email : null)
.filter(Boolean)
// After
const emails = responses.flatMap(r =>
r.success ? [r.data.email] : []
)
// Parse and filter valid numbers
// Before
const numbers = strings
.map(s => parseInt(s, 10))
.filter(n => !isNaN(n))
// After
const numbers = strings.flatMap(s => {
const n = parseInt(s, 10)
return isNaN(n) ? [] : [n]
})
```
**When to use:**
- Transforming items while filtering some out
- Conditional mapping where some inputs produce no output
- Parsing/validating where invalid inputs should be skipped
---
<a id="js-tosorted-immutable"></a>
### 7.14 Use toSorted() Instead of sort() for Immutability
[Source rule](rules/js-tosorted-immutable.md)
**Investigation priority: MEDIUM-HIGH (prevents mutation bugs in React state)**
`.sort()` mutates the array in place, which can cause bugs with React state and props. Use `.toSorted()` to create a new sorted array without mutation.
**Incorrect (mutates original array):**
```typescript
function UserList({ users }: { users: User[] }) {
// Mutates the users prop array!
const sorted = useMemo(
() => users.sort((a, b) => a.name.localeCompare(b.name)),
[users]
)
return <div>{sorted.map(renderUser)}</div>
}
```
**Correct (creates new array):**
```typescript
function UserList({ users }: { users: User[] }) {
// Creates new sorted array, original unchanged
const sorted = useMemo(
() => users.toSorted((a, b) => a.name.localeCompare(b.name)),
[users]
)
return <div>{sorted.map(renderUser)}</div>
}
```
**Why this matters in React:**
1. Props/state mutations break React's immutability model - React expects props and state to be treated as read-only
2. Causes stale closure bugs - Mutating arrays inside closures (callbacks, effects) can lead to unexpected behavior
**Browser support (fallback for older browsers):**
`.toSorted()` is available in all modern browsers (Chrome 110+, Safari 16+, Firefox 115+, Node.js 20+). For older environments, use spread operator:
```typescript
// Fallback for older browsers
const sorted = [...items].sort((a, b) => a.value - b.value)
```
**Other immutable array methods:**
- `.toSorted()` - immutable sort
- `.toReversed()` - immutable reverse
- `.toSpliced()` - immutable splice
- `.with()` - immutable element replacement
---
## 8. Advanced Patterns
**Investigation priority: LOW**
Advanced patterns for specific cases that require careful implementation.
---
<a id="advanced-effect-event-deps"></a>
### 8.1 Do Not Put Effect Events in Dependency Arrays
[Source rule](rules/advanced-effect-event-deps.md)
**Investigation priority: LOW (avoids unnecessary effect re-runs and lint errors)**
Effect Event functions do not have a stable identity. Their identity intentionally changes on every render. Do not include the function returned by `useEffectEvent` in a `useEffect` dependency array. Keep the actual reactive values as dependencies and call the Effect Event from inside the effect body or subscriptions created by that effect.
**Incorrect (Effect Event added as a dependency):**
```tsx
import { useEffect, useEffectEvent } from 'react'
function ChatRoom({ roomId, onConnected }: {
roomId: string
onConnected: () => void
}) {
const handleConnected = useEffectEvent(onConnected)
useEffect(() => {
const connection = createConnection(roomId)
connection.on('connected', handleConnected)
connection.connect()
return () => connection.disconnect()
}, [roomId, handleConnected])
}
```
Including the Effect Event in dependencies makes the effect re-run every render and triggers the React Hooks lint rule.
**Correct (depend on reactive values, not the Effect Event):**
```tsx
import { useEffect, useEffectEvent } from 'react'
function ChatRoom({ roomId, onConnected }: {
roomId: string
onConnected: () => void
}) {
const handleConnected = useEffectEvent(onConnected)
useEffect(() => {
const connection = createConnection(roomId)
connection.on('connected', handleConnected)
connection.connect()
return () => connection.disconnect()
}, [roomId])
}
```
Reference: [React useEffectEvent: Effect Event in deps](https://react.dev/reference/react/useEffectEvent#effect-event-in-deps)
---
<a id="advanced-init-once"></a>
### 8.2 Initialize App Once, Not Per Mount
[Source rule](rules/advanced-init-once.md)
**Investigation priority: LOW-MEDIUM (avoids duplicate init in development)**
Do not put app-wide initialization that must run once per app load inside `useEffect([])` of a component. Components can remount and effects will re-run. Use a module-level guard or top-level init in the entry module instead.
**Incorrect (runs twice in dev, re-runs on remount):**
```tsx
function Comp() {
useEffect(() => {
loadFromStorage()
checkAuthToken()
}, [])
// ...
}
```
**Correct (once per app load):**
```tsx
let didInit = false
function Comp() {
useEffect(() => {
if (didInit) return
didInit = true
loadFromStorage()
checkAuthToken()
}, [])
// ...
}
```
Reference: [Initializing the application](https://react.dev/learn/you-might-not-need-an-effect#initializing-the-application)
---
<a id="advanced-event-handler-refs"></a>
### 8.3 Store Event Handlers in Refs
[Source rule](rules/advanced-event-handler-refs.md)
**Investigation priority: LOW (stable subscriptions)**
Store callbacks in refs when used in effects that shouldn't re-subscribe on callback changes.
**Incorrect (re-subscribes on every render):**
```tsx
function useWindowEvent(event: string, handler: (e) => void) {
useEffect(() => {
window.addEventListener(event, handler)
return () => window.removeEventListener(event, handler)
}, [event, handler])
}
```
**Correct (stable subscription):**
```tsx
function useWindowEvent(event: string, handler: (e) => void) {
const handlerRef = useRef(handler)
useEffect(() => {
handlerRef.current = handler
}, [handler])
useEffect(() => {
const listener = (e) => handlerRef.current(e)
window.addEventListener(event, listener)
return () => window.removeEventListener(event, listener)
}, [event])
}
```
**Alternative: use `useEffectEvent` if you're on latest React:**
```tsx
import { useEffectEvent } from 'react'
function useWindowEvent(event: string, handler: (e) => void) {
const onEvent = useEffectEvent(handler)
useEffect(() => {
window.addEventListener(event, onEvent)
return () => window.removeEventListener(event, onEvent)
}, [event])
}
```
`useEffectEvent` provides a cleaner API for the same pattern: it creates a stable function reference that always calls the latest version of the handler.
---
<a id="advanced-use-latest"></a>
### 8.4 useEffectEvent for Stable Callback Refs
[Source rule](rules/advanced-use-latest.md)
**Investigation priority: LOW (prevents effect re-runs)**
Access latest values in callbacks without adding them to dependency arrays. Prevents effect re-runs while avoiding stale closures.
**Incorrect (effect re-runs on every callback change):**
```tsx
function SearchInput({ onSearch }: { onSearch: (q: string) => void }) {
const [query, setQuery] = useState('')
useEffect(() => {
const timeout = setTimeout(() => onSearch(query), 300)
return () => clearTimeout(timeout)
}, [query, onSearch])
}
```
**Correct (using React's useEffectEvent):**
```tsx
import { useEffectEvent } from 'react';
function SearchInput({ onSearch }: { onSearch: (q: string) => void }) {
const [query, setQuery] = useState('')
const onSearchEvent = useEffectEvent(onSearch)
useEffect(() => {
const timeout = setTimeout(() => onSearchEvent(query), 300)
return () => clearTimeout(timeout)
}, [query])
}
```