Plan, diagnose, and verify performance budgets, latency targets, load tests, capacity estimates, bottleneck analysis, caching strategy, query efficiency, queue throughput, and regression gates. Use when a feature may be slow, a system must scale, a performance regression is suspected, or release readiness depends on throughput, cost, memory, CPU, or response time.
Scanned 9/5/2026
Install to Claude Code
npx -y skills add majiayu000/spellbook --skill performance-capacity --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: performance-capacity
description: Plan, diagnose, and verify performance budgets, latency targets, load tests, capacity estimates, bottleneck analysis, caching strategy, query efficiency, queue throughput, and regression gates. Use when a feature may be slow, a system must scale, a performance regression is suspected, or release readiness depends on throughput, cost, memory, CPU, or response time.
---
# Performance Capacity
## Purpose
Use this skill to make performance measurable before optimizing. It turns vague "make it faster" work into budgets, probes, bottleneck hypotheses, and regression gates.
## Baseline First
Before changing code, capture:
1. User-facing operation or background job under test.
2. Current p50/p95/p99 latency or throughput.
3. Data size and concurrency assumptions.
4. Resource limits: CPU, memory, IO, network, database, queue.
5. Existing cache behavior and invalidation rules.
6. Cost or quota constraints.
If no baseline can be gathered, state the nearest measurable proxy and its limitations.
## Budget Design
Define budgets by surface:
| Surface | Examples |
|---|---|
| UI | TTI, interaction latency, bundle size, render count |
| API | p95 latency, error rate, DB query count, payload size |
| Jobs | throughput, max lag, retry cost, idempotency |
| Data | query plan, index coverage, backfill duration |
| Infra | CPU/RSS, concurrency, autoscaling, cost per request |
## Optimization Rules
- Optimize the measured bottleneck, not the most familiar code.
- Prefer algorithmic, query, batching, and cache correctness fixes before capacity-only fixes.
- Define cache invalidation and stale-data tolerance.
- Add a regression test, benchmark, or dashboard check for risky paths.
- Do not trade correctness, authorization, or tenant isolation for speed.
## Output Shape
```text
operation:
baseline:
target_budget:
bottleneck_hypothesis:
measurement_plan:
optimization_options:
capacity_estimate:
regression_gate:
verification_commands:
```
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