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- miles990/claude-software-skills
- 최근 소스 활동
- 2026년 1월 8일 02:34
- 감지된 SKILL.md 언어
- 영어
- 스타
- 20
- 포크
- 5
설치 방법
기본적으로 소스를 먼저 확인하는 Prompt가 선택됩니다. 직접 명령으로 전환하거나 로컬 사본을 다운로드할 수도 있습니다.
소스 파일 검토
설치 여부를 결정하기 전에 SKILL.md와 SkillsMP에 표시된 보조 파일을 읽어 보세요.
메뉴
기본적으로 소스를 먼저 확인하는 Prompt가 선택됩니다. 직접 명령으로 전환하거나 로컬 사본을 다운로드할 수도 있습니다.
설치 여부를 결정하기 전에 SKILL.md와 SkillsMP에 표시된 보조 파일을 읽어 보세요.
Codex 또는 Claude로 설치 이 Prompt를 복사해 Codex, Claude 또는 다른 어시스턴트에 붙여 넣으면 Skill 페이지를 검토하고 설치를 진행할 수 있습니다.
직접 명령은 검토 Prompt를 거치지 않습니다. 실행하기 전에 소스를 확인하세요.
npx skills add https://github.com/miles990/claude-software-skills --skill system-design명령은 한 줄로 유지됩니다. 복사하기 전에 가로로 스크롤해 전체 내용을 확인하세요.
로컬 사본을 원하시나요? SkillsMP에서 현재 제공할 수 있는 파일을 다운로드하세요.
Enterprise-grade repository analysis with arc42/C4 architecture documentation, technical debt quantification, security assessment, and multi-stakeholder reporting
Claude Code Plugin 開發、發布、安裝、更新與 Marketplace 管理完整指南
Flame Engine core fundamentals - components, input, collision, camera, animation, scenes
SOC 직업 분류 기준
SKILL.md 표시 중
| name | system-design |
| description | Scalability, availability, and distributed systems design |
| domain | software-design |
| version | 1.0.0 |
| tags | ["scalability","availability","distributed","caching","load-balancing","database"] |
| triggers | {"keywords":{"primary":["system design","scalability","distributed","architecture","high availability"],"secondary":["load balancer","caching","sharding","replication","cap theorem","microservices"]},"context_boost":["interview","scale","performance","infrastructure"],"context_penalty":["frontend","ui","mobile"],"priority":"high"} |
Principles for designing systems that handle scale, remain available, and perform well under load.
Vertical Scaling (Scale Up):
┌─────────────────────┐
│ Bigger Server │
│ - More CPU │
│ - More RAM │
│ - Faster disk │
└─────────────────────┘
Limit: Hardware ceiling
Horizontal Scaling (Scale Out):
┌──────┐ ┌──────┐ ┌──────┐ ┌──────┐
│Server│ │Server│ │Server│ │Server│
└──────┘ └──────┘ └──────┘ └──────┘
↑
Load Balancer
Limit: Coordination complexity
// ❌ Stateful - stores session in memory
class BadService {
private sessions = new Map();
login(userId: string) {
this.sessions.set(userId, { loggedIn: true });
}
}
// ✅ Stateless - external session store
class GoodService {
constructor(private sessionStore: Redis) {}
async login(userId: string) {
await this.sessionStore.set(`session:${userId}`, { loggedIn: true });
}
}
| Strategy | Description | Use Case |
|---|---|---|
| Round Robin | Cycle through servers | Equal capacity servers |
| Weighted RR | Based on server capacity | Mixed capacity |
| Least Connections | Route to least busy | Long-lived connections |
| IP Hash | Same IP → same server | Session stickiness |
| URL Hash | Same URL → same server | Cache optimization |
# Kubernetes-style health checks
livenessProbe:
httpGet:
path: /health/live
port: 8080
initialDelaySeconds: 3
periodSeconds: 10
readinessProbe:
httpGet:
path: /health/ready
port: 8080
initialDelaySeconds: 5
periodSeconds: 5
// Health check endpoints
app.get('/health/live', (req, res) => {
// Am I running?
res.status(200).json({ status: 'alive' });
});
app.get('/health/ready', async (req, res) => {
// Can I serve traffic?
const dbOk = await checkDatabase();
const cacheOk = await checkCache();
if (dbOk && cacheOk) {
res.status(200).json({ status: 'ready' });
} else {
res.status(503).json({ status: 'not ready', db: dbOk, cache: cacheOk });
}
});
Cache-Aside (Lazy Loading):
┌────────┐ miss ┌────────┐
│ App │ ──────────→ │ Cache │
│ │ ←────────── │ │
└────────┘ null └────────┘
│
│ read
↓
┌────────┐
│ DB │ ──── write ──→ Cache
└────────┘
Write-Through:
App → Cache → DB (synchronous)
Write-Behind (Write-Back):
App → Cache → (async) → DB
// Cache-aside implementation
class CachedUserService {
constructor(
private cache: Redis,
private db: Database
) {}
async getUser(id: string): Promise<User> {
// Try cache first
const cached = await this.cache.get(`user:${id}`);
if (cached) return JSON.parse(cached);
// Cache miss - read from DB
const user = await this.db.users.findById(id);
if (user) {
// Store in cache with TTL
await this.cache.set(`user:${id}`, JSON.stringify(user), 'EX', 3600);
}
return user;
}
async updateUser(id: , : <>): <> {
user = ...(id, data);
..();
user;
}
}
| Strategy | Description | Complexity |
|---|---|---|
| TTL | Expire after time | Simple |
| Event-based | Invalidate on write | Medium |
| Version-based | Key includes version | Medium |
| Tag-based | Group related keys | Complex |
┌─────────────────┐
Writes ──────→ │ Primary DB │
└────────┬────────┘
│ replication
┌─────────────────┼─────────────────┐
↓ ↓ ↓
┌──────────┐ ┌──────────┐ ┌──────────┐
│ Replica 1│ │ Replica 2│ │ Replica 3│
└──────────┘ └──────────┘ └──────────┘
↑ ↑ ↑
└─────── Reads ───┴────────────────┘
// Hash-based sharding
function getShard(userId: string, numShards: number): number {
const hash = crypto.createHash('md5').update(userId).digest('hex');
return parseInt(hash.slice(0, 8), 16) % numShards;
}
// Range-based sharding
function getShardByDate(date: Date): string {
const year = date.getFullYear();
const month = date.getMonth() + 1;
return `orders_${year}_${month.toString().padStart(2, '0')}`;
}
// Consistent hashing for dynamic shards
class ConsistentHash {
private ring: Map<number, string> = new Map();
addNode(node: string) {
for ( i = ; i < ; i++) {
hash = .();
..(hash, node);
}
}
(: ): {
hash = .(key);
( [nodeHash, node] [.....()].()) {
(nodeHash >= hash) node;
}
..().().;
}
}
Point-to-Point:
Producer → Queue → Consumer
Pub/Sub:
┌─→ Subscriber 1
Publisher → Topic ─→ Subscriber 2
└─→ Subscriber 3
Work Queue:
┌─→ Worker 1
Producer → Queue ─→ Worker 2 (competing consumers)
└─→ Worker 3
| Guarantee | Description | Implementation |
|---|---|---|
| At-most-once | May lose messages | Fire and forget |
| At-least-once | May duplicate | Ack after process |
| Exactly-once | No loss, no dupe | Idempotency + dedup |
// Idempotent processing
async function processOrder(event: OrderEvent) {
// Check if already processed
const processed = await redis.get(`processed:${event.id}`);
if (processed) {
console.log(`Already processed ${event.id}`);
return;
}
// Process the order
await db.orders.create(event.order);
// Mark as processed (with TTL for cleanup)
await redis.set(`processed:${event.id}`, '1', 'EX', 86400 * 7);
}
Active-Active:
┌────────┐ ┌────────┐
│Server A│ ←─→ │Server B│ Both handle traffic
└────────┘ └────────┘
Active-Passive:
┌────────┐ ┌────────┐
│ Active │ ──→ │Standby │ Failover on failure
└────────┘ └────────┘
class CircuitBreaker {
private failures = 0;
private lastFailure: Date | null = null;
private state: 'closed' | 'open' | 'half-open' = 'closed';
constructor(
private threshold: number = 5,
private timeout: number = 30000
) {}
async execute<T>(fn: () => Promise<T>): Promise<T> {
if (this.state === 'open') {
if (Date.now() - this.lastFailure!.getTime() > this.timeout) {
this.state = 'half-open';
} else {
throw new Error('Circuit is open');
}
}
try {
const result = await ();
.();
result;
} (error) {
.();
error;
}
}
() {
. = ;
. = ;
}
() {
.++;
. = ();
(. >= .) {
. = ;
}
}
}
Consistency
/\
/ \
/ \
/ \
/ CA \
/──────────\
/ \
/ CP AP \
/________________\
Partition Availability
Tolerance
CA: Single node (RDBMS)
CP: MongoDB, HBase (may reject writes during partition)
AP: Cassandra, DynamoDB (eventual consistency)
| Model | Description | Example |
|---|---|---|
| Strong | Read sees latest write | RDBMS |
| Eventual | Eventually consistent | DNS, Cassandra |
| Causal | Respects causality | Chat apps |
| Read-your-writes | See your own writes | Social feeds |
// Token Bucket
class TokenBucket {
private tokens: number;
private lastRefill: number;
constructor(
private capacity: number,
private refillRate: number // tokens per second
) {
this.tokens = capacity;
this.lastRefill = Date.now();
}
consume(tokens: number = 1): boolean {
this.refill();
if (this.tokens >= tokens) {
this.tokens -= tokens;
return true;
}
return false;
}
private refill() {
const now = Date.now();
const elapsed = (now - this.lastRefill) / 1000;
this.tokens = .(
.,
. + elapsed * .
);
. = now;
}
}
{
() {}
(: ): <> {
now = .();
windowStart = now - . * ;
pipe = ..();
pipe.(key, , windowStart);
pipe.(key, now, );
pipe.(key);
pipe.(key, .);
results = pipe.();
count = results[][] ;
count <= .;
}
}
| System | Key Components |
|---|---|
| URL Shortener | Hash function, Redis cache, DB |
| Twitter Feed | Fan-out, Redis timeline, Kafka |
| Chat App | WebSocket, Presence, Message queue |
| E-commerce | Cart service, Inventory, Payment |
| Video Streaming | CDN, Chunking, Adaptive bitrate |