Performance Optimization
Optimizes application performance across frontend, backend, queries, and databases. Use when performance requirements exist, when you suspect performance regressions, when Core Web Vitals or load times need improvement, when N+1 query patterns need fixing, or when profiling reveals bottlenecks.
- Skill ID
- addyosmani/agent-skills/performance-optimization
- Publisher
- addyosmani
- Repository
- agent-skills
- Installs
- 597
- Files
- 1
- Synced
- Sep 16, 2026
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addyosmani/agent-skills/performance-optimizationInstalls these files- SKILL.md
What this skill tells the agent
Performance Optimization
Overview
Measure before optimizing. Performance work without measurement is guessing — and guessing leads to premature optimization that adds complexity without improving what matters. Profile first, identify the actual bottleneck, fix it, measure again. Optimize only what measurements prove matters.
When to Use
- Performance requirements exist in the spec (load time budgets, response time SLAs)
- Users or monitoring report slow behavior
- Core Web Vitals scores are below thresholds
- You suspect a change introduced a regression
- Building features that handle large datasets or high traffic
When NOT to use: Don't optimize before you have evidence of a problem. Premature optimization adds complexity that costs more than the performance it gains.
Core Web Vitals Targets
| Metric | Good | Needs Improvement | Poor |
|---|---|---|---|
| LCP (Largest Contentful Paint) | ≤ 2.5s | ≤ 4.0s | > 4.0s |
| INP (Interaction to Next Paint) | ≤ 200ms | ≤ 500ms | > 500ms |
| CLS (Cumulative Layout Shift) | ≤ 0.1 | ≤ 0.25 | > 0.25 |
The Optimization Workflow
1. MEASURE → Establish baseline with real data
2. IDENTIFY → Find the actual bottleneck (not assumed)
3. FIX → Address the specific bottleneck
4. VERIFY → Measure again; keep or revert
5. GUARD → Add monitoring or tests to prevent regressionStep 1: Measure
Two complementary approaches — use both:
- Synthetic (Lighthouse, DevTools Performance tab): Controlled conditions, reproducible. Best for CI regression detection and isolating specific issues.
- RUM (web-vitals library, CrUX): Real user data in real conditions. Required to validate that a fix actually improved user experience.
Frontend:
# Synthetic: Lighthouse in Chrome DevTools (or CI)
# Chrome DevTools → Performance tab → Record
# Chrome DevTools MCP → Performance trace
# RUM: Web Vitals library in code
import { onLCP, onINP, onCLS } from 'web-vitals';
onLCP(console.log);
onINP(console.log);
onCLS(console.log);Backend:
# Response time logging
# Application Performance Monitoring (APM)
# Database query logging with timing
# Simple timing
console.time('db-query');
const result = await db.query(...);
console.timeEnd('db-query');Where to Start Measuring
Use the symptom to decide what to measure first:
What is slow?
├── First page load
│ ├── Large bundle? --> Measure bundle size, check code splitting
│ ├── Slow server response? --> Measure TTFB in DevTools Network waterfall
│ │ ├── DNS long? --> Add dns-prefetch / preconnect for known origins
│ │ ├── TCP/TLS long? --> Enable HTTP/2, check edge deployment, keep-alive
│ │ └── Waiting (server) long? --> Profile backend, check queries and caching
│ └── Render-blocking resources? --> Check network waterfall for CSS/JS blocking
├── Interaction feels sluggish
│ ├── UI freezes on click? --> Profile main thread, look for long tasks (>50ms)
│ ├── Form input lag? --> Check re-renders, controlled component overhead
│ └── Animation jank? --> Check layout thrashing, forced reflows
├── Page after navigation
│ ├── Data loading? --> Measure API response times, check for waterfalls
│ └── Client rendering? --> Profile component render time, check for N+1 fetches
└── Backend / API
├── Single endpoint slow? --> Profile database queries, check indexes
├── All endpoints slow? --> Check connection pool, memory, CPU
└── Intermittent slowness? --> Check for lock contention, GC pauses, external depsStep 2: Identify the Bottleneck
Common bottlenecks by category:
Frontend:
| Symptom | Likely Cause | Investigation |
|---|---|---|
| Slow LCP | Large images, render-blocking resources, slow server | Check network waterfall, image sizes |
| High CLS | Images without dimensions, late-loading content, font shifts | Check layout shift attribution |
| Poor INP | Heavy JavaScript on main thread, large DOM updates | Check long tasks in Performance trace |
| Slow initial load | Large bundle, many network requests | Check bundle size, code splitting |
Backend:
| Symptom | Likely Cause | Investigation |
|---|---|---|
| Slow API responses | N+1 queries, missing indexes, unoptimized queries | Check database query log |
| Memory growth | Leaked references, unbounded caches, large payloads | Heap snapshot analysis |
| CPU spikes | Synchronous heavy computation, regex backtracking | CPU profiling |
| High latency | Missing caching, redundant computation, network hops | Trace requests through the stack |
Step 3: Fix Common Anti-Patterns
N+1 Queries (Backend)
// BAD: N+1 — one query per task for the owner
const tasks = await db.tasks.findMany();
for (const task of tasks) {
task.owner = await db.users.findUnique({ where: { id: task.ownerId } });
}
// GOOD: Single query with join/include
const tasks = await db.tasks.findMany({
include: { owner: true },
});Unbounded Data Fetching
// BAD: Fetching all records
const allTasks = await db.tasks.findMany();
// GOOD: Paginated with limits
const tasks = await db.tasks.findMany({
take: 20,
skip: (page - 1) * 20,
orderBy: { createdAt: 'desc' },
});Queries That Ignore Their Index
"Add an index" is the guess. The query plan is the measurement:
EXPLAIN ANALYZE
SELECT id, title FROM tasks
WHERE owner_id = 42 ORDER BY created_at DESC LIMIT 20;Three things in the output decide the fix:
| What you see | What it means |
|---|---|
Seq Scan on a large table where you expected an index | No usable index for this predicate |
Estimated rows= off from actual by an order of magnitude | Stale statistics; the planner is choosing on bad information |
A Sort node above the scan | The index covers the filter but not the ORDER BY |
Index for the shape of the query, not the column in isolation. In a composite index, equality columns come first, then the range or sort column:
CREATE INDEX idx_tasks_owner_created ON tasks (owner_id, created_at DESC);When an index will not help:
| Situation | Why |
|---|---|
Low selectivity, querying the dominant value (a status column that is 95% active, filtered on active) | A sequential scan is genuinely cheaper; the planner will ignore the index. Filtering on the rare value is the opposite case, and a partial index serves it well |
Leading wildcard (LIKE '%term') | A B-tree cannot seek without a prefix; needs trigram or full-text |
Function on the column (WHERE lower(email) = ?) | The plain column index is unusable; index the expression instead |
| Write-heavy table | Every index is a tax on every INSERT/UPDATE; measure the write cost, not just the read gain |
Re-run EXPLAIN ANALYZE after. An index that did not change the plan is a revert (Step 4), and it is not free: it still costs on every write.
Connection Pool Exhaustion
The signature is distinctive: every endpoint slows at once, the slow time is spent waiting for a connection rather than executing, and the database reports mostly idle sessions.
// BAD: a pool per request or per module — under serverless this multiplies
// by instance count and exhausts the database's connection limit
// GOOD: one pool per process, sized against the database's ceiling
const pool = new Pool({
max: 10, // instances × max must stay under max_connections
idleTimeoutMillis: 30_000,
connectionTimeoutMillis: 5_000, // fail fast instead of queueing forever
});Bigger is not faster. A pool larger than what the database can execute concurrently just relocates the queue from your app to the database, where it is harder to see. When instance count is unbounded (serverless, autoscaling), a proxy that multiplexes connections (pgbouncer, RDS Proxy) is the fix, not a higher max.
