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latency-critical-systems

Use for latency-sensitive systems such as realtime dashboards, market data, streaming agents, execution gateways, queues, caches, or HFT-like infrastructure where freshness and p95 latency matter. Use when p95 latency or data freshness matters — realtime dashboards, market data, streaming agents, queues, or caches.

DeepseekModel キュレーション済みスキル 品質 優秀 · 90 v1.0.0

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https://deepseekmodel.com/api/download.php?id=affaan-m-ecc-skills-latency-critical-systems-skill-md&format=skill
ダウンロード .skill 標準形式。system_prompt と model_config を収録し、任意の Agent で利用可能
.skill ファイルの system_prompt フィールドの実際の内容。
name latency-critical-systems description Use for latency-sensitive systems such as realtime dashboards, market data, streaming agents, execution gateways, queues, caches, or HFT-like infrastructure where freshness and p95 latency matter. Use when p95 latency or data freshness matters — realtime dashboards, market data, streaming agents, queues, or caches. license MIT metadata {"origin":"ECC"} tools Read, Write, Edit, Bash, Grep, Glob Latency Critical Systems Use this skill when the user cares about realtime behavior, hot paths, streaming freshness, or execution speed. This includes HFT-like infrastructure, but the skill is engineering-focused. It does not authorize live trading or financial advice. Split The Metrics Do not collapse everything into "fast." Track: p50, p95, and p99 latency; throughput; freshness age; queue depth; cache hit rate; provider/API response time; browser render time; correctness under load; failure and retry behavior. Map The Hot Path Write the path from user/event to final visible state: source event -> provider API -> ingest worker -> queue -> cache -> edge route -> client stream -> browser render -> user-visible state Then measure each segment separately. Optimization Order Remove unnecessary round trips. Cache stable reads with freshness metadata. Batch small calls and writes. Move compute closer to the data or the user. Split hot and cold paths. Apply backpressure before queues grow unbounded. Use streaming only when it improves freshness or user experience. Add canaries for stale data, degraded providers, and bad cache state. Verification Use live readbacks when a deployed surface exists: HTTP timing and response headers; provider freshness timestamp; queue or job state; edge/cache state; browser verification for actual UI freshness; logs around retries and degraded mode. For market-data or execution-adjacent paths, also verify orderbook age, VWAP assumptions, provider status, and kill-switch behavior before calling the path ready. Guardrails Do not optimize latency by dropping required validation. Do not hide stale data behind fast cache hits. Do not claim millisecond behavior from client labels without measurement. Do not run live orders, destructive migrations, or customer-impacting deploys without an explicit approval gate. Keep secrets and private payloads out of logs and benchmark artifacts.
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ダウンロードした .skill に含まれるフィールド。
フィールド 説明
formatフォーマット識別子(skill/v1)
skill_idスキル固有 ID
nameスキル名
versionバージョン
description説明
categoryカテゴリ(配列)
trigger_wordsトリガーワード
tagsタグ
sourceソース
source_urlソース URL(本ページ)
exported_atエクスポート日時(ダウンロード毎)
system_promptシステムプロンプト本文
model_configモデル設定:provider / model / temperature / max_tokens / top_p
examplesサンプル
install_guide各プラットフォームの導入説明(Coze / Dify / Claude / カスタム)
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.skill 標準形式。system_prompt と model_config を収録し、任意の Agent で利用可能 ダウンロード
.skillpro 拡張形式。scripts / tools / dependencies / hooks を含む ダウンロード
.json 純粋な JSON 出力。system_prompt とモデル設定のみ ダウンロード
Coze frontmatter 付き Markdown。Coze へのインポート用 ダウンロード
Dify Dify DSL。アプリ作成後にそのままインポート ダウンロード

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