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langgraph-typescript-quickstart

GitHub

指导用户基于官方文档快速搭建本地 TypeScript LangGraph Agent,支持自定义模型提供商,强调最小化配置与环境隔离。

config/skills/langgraph-typescript-quickstart/SKILL.md langchain-ai/langchain-skills

触发场景

用户希望快速构建或尝试 LangGraph Agent 需要初始化本地 TypeScript LangGraph 项目

安装

npx skills add langchain-ai/langchain-skills --skill langgraph-typescript-quickstart -g -y
更多选项

非标准路径

npx skills add https://github.com/langchain-ai/langchain-skills/tree/main/config/skills/langgraph-typescript-quickstart -g -y

不安装直接使用

npx skills use langchain-ai/langchain-skills@langgraph-typescript-quickstart

指定 Agent (Claude Code)

npx skills add langchain-ai/langchain-skills --skill langgraph-typescript-quickstart -a claude-code -g -y

安装 repo 全部 skill

npx skills add langchain-ai/langchain-skills --all -g -y

预览 repo 内 skill

npx skills add langchain-ai/langchain-skills --list

SKILL.md

Frontmatter
{
    "name": "langgraph-typescript-quickstart",
    "description": "Scaffold a minimal local LangGraph agent in TypeScript by following the official quickstart. Use when the user wants to quickly build or try a LangGraph agent locally."
}

LangGraph TypeScript quickstart

Follow the live docs — do not invent an alternate API from memory:

https://docs.langchain.com/oss/javascript/langgraph/quickstart

Fetch that page (Docs MCP or HTTP) and implement what it shows (calculator / math agent with the Graph API). Prefer the Graph API path over the Functional API unless the user asks otherwise. Skip graph visualization.

Local setup constraints

Apply these on top of the quickstart (they keep setup minimal and model-agnostic):

  1. Ask which provider/model to use. Showcase that LangGraph works with any LangChain chat model. Suggested prompt:

    Which model should this agent use? Pass a provider:model string — e.g. openai:gpt-5.5, anthropic:claude-sonnet-5, google-genai:gemini-2.5-flash-lite. Default if you're unsure: anthropic:claude-sonnet-5.

    The docs often hardcode Anthropic — replace with initChatModel("<MODEL>") (or equivalent) using their choice. If using Claude Sonnet 5+, omit temperature / top_p / top_k (unsupported).

  2. Create a new directory (e.g. langgraph-agent/) and do all work there — do not pollute the open project.

  3. Only secret: the provider API key in .env (gitignored). No LangSmith / Tavily unless they ask. Prefer they edit .env themselves — don't paste keys into chat.

  4. Install packages from the quickstart plus the provider package for their model.

  5. Run the example (e.g. “Add 3 and 4.”), show output, then stop. Point to langgraph-fundamentals for next steps. For a higher-level agent API, use LangChain createAgent instead.

版本历史

  • f3ea282 当前 2026-08-02 21:50

同 Skill 集合

config/skills/deep-agents-core/SKILL.md
config/skills/deep-agents-memory/SKILL.md
config/skills/deep-agents-orchestration/SKILL.md
config/skills/deepagents-python-quickstart/SKILL.md
config/skills/deepagents-typescript-quickstart/SKILL.md
config/skills/ecosystem-primer/SKILL.md
config/skills/eval-engineering/SKILL.md
config/skills/langchain-dependencies/SKILL.md
config/skills/langchain-fundamentals/SKILL.md
config/skills/langchain-middleware/SKILL.md
config/skills/langchain-python-quickstart/SKILL.md
config/skills/langchain-rag/SKILL.md
config/skills/langchain-typescript-quickstart/SKILL.md
config/skills/langgraph-cli/SKILL.md
config/skills/langgraph-fundamentals/SKILL.md
config/skills/langgraph-human-in-the-loop/SKILL.md
config/skills/langgraph-persistence/SKILL.md
config/skills/langgraph-python-quickstart/SKILL.md
config/skills/langsmith-online-eval-engineering/SKILL.md
config/skills/managed-deep-agents/SKILL.md
config/skills/swarm/SKILL.md

元信息

文件数
0
版本
f3ea282
Hash
fb6382b2
收录时间
2026-08-02 21:50

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