github-actions[bot] 44d6d3dfea chore: version packages (#733)
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# Releases
## deepagents-acp@0.1.24

### Patch Changes

- Updated dependencies
[[`77e104f`](https://github.com/langchain-ai/deepagentsjs/commit/77e104f26a62ae34afbb1393edf191009d37280c),
[`239be7e`](https://github.com/langchain-ai/deepagentsjs/commit/239be7e883227e463504652bc00272ec947a21a6),
[`1439bbf`](https://github.com/langchain-ai/deepagentsjs/commit/1439bbfb267e92b7a19ce0924399591495976c21)]:
  - deepagents@1.12.3
## deepagents@1.12.3

### Patch Changes

- [#724](https://github.com/langchain-ai/deepagentsjs/pull/724)
[`77e104f`](https://github.com/langchain-ai/deepagentsjs/commit/77e104f26a62ae34afbb1393edf191009d37280c)
Thanks [@gethin-langchain](https://github.com/gethin-langchain)! -
feat(deepagents): add `output_mode` parameter to the `grep` tool
(`files_with_matches` / `content` / `count`)

- [#732](https://github.com/langchain-ai/deepagentsjs/pull/732)
[`239be7e`](https://github.com/langchain-ai/deepagentsjs/commit/239be7e883227e463504652bc00272ec947a21a6)
Thanks [@hntrl](https://github.com/hntrl)! - fix(deepagents): disable
summary-input trimming by default

Match Python DeepAgents by providing the full selected conversation to
the summarizer unless `trimTokensToSummarize` is explicitly configured.
This prevents oversized tool results from producing context-empty
summaries under the default configuration.

- [#739](https://github.com/langchain-ai/deepagentsjs/pull/739)
[`1439bbf`](https://github.com/langchain-ai/deepagentsjs/commit/1439bbfb267e92b7a19ce0924399591495976c21)
Thanks [@taoche](https://github.com/taoche)! - fix(deepagents): extract
text from content blocks when building the summary
## @deepagents/evals@0.0.23

### Patch Changes

- Updated dependencies
[[`77e104f`](https://github.com/langchain-ai/deepagentsjs/commit/77e104f26a62ae34afbb1393edf191009d37280c),
[`239be7e`](https://github.com/langchain-ai/deepagentsjs/commit/239be7e883227e463504652bc00272ec947a21a6),
[`1439bbf`](https://github.com/langchain-ai/deepagentsjs/commit/1439bbfb267e92b7a19ce0924399591495976c21)]:
  - deepagents@1.12.3

Co-authored-by: github-actions[bot] <41898282+github-actions[bot]@users.noreply.github.com>
2026-08-12 16:02:01 -07:00
2026-08-12 16:02:01 -07:00
2026-07-29 09:47:28 -07:00
2026-08-12 16:02:01 -07:00
2025-08-05 10:25:41 -04:00
2025-08-05 11:47:34 -07:00
2026-01-09 15:10:42 -08:00

The batteries-included agent harness.

npm version License: MIT TypeScript Twitter / X

Deep Agents is an agent harness. An opinionated, ready-to-run agent out of the box. Instead of wiring prompts, tools, and context management yourself, you get a working agent immediately and customize what you need.

What's included:

  • Planningwrite_todos for task breakdown and progress tracking
  • Filesystemread_file, write_file, edit_file, ls, glob, grep for working memory
  • Sub-agentstask for delegating work with isolated context windows
  • Smart defaults — built-in prompt and middleware that make these tools useful out of the box
  • Context management — file-based workflows to keep long tasks manageable

Note

Looking for the Python package? See langchain-ai/deepagents.

Quickstart

npm install deepagents
# or
pnpm add deepagents
# or
yarn add deepagents

Important

deepagents declares the LangChain runtime packages as peer dependencies so your app controls their versions and everything resolves to a single shared copy. npm 7+ and pnpm 8+ install these automatically; Yarn users must add them explicitly:

yarn add @langchain/core @langchain/langgraph @langchain/langgraph-checkpoint @langchain/langgraph-sdk langchain langsmith
import { createDeepAgent } from "deepagents";

const agent = createDeepAgent();

const result = await agent.invoke({
  messages: [
    {
      role: "user",
      content: "Research LangGraph and write a summary in summary.md",
    },
  ],
});

The agent can plan, read/write files, and manage longer tasks with sub-agents and filesystem tools.

Tip

For developing, debugging, and deploying AI agents and LLM applications, see LangSmith.

Runtime Entrypoints

deepagents now publishes environment-specific entrypoints:

  • deepagents - default Node.js/server entrypoint with the full API.
  • deepagents/browser - recommended browser entrypoint (no Node-only exports).
  • deepagents/node - optional explicit Node.js entrypoint (same full API as deepagents).
// Browser-safe usage
import { createDeepAgent, StateBackend } from "deepagents/browser";

// Node.js usage (recommended)
import { createDeepAgent, FilesystemBackend } from "deepagents";

// Optional explicit Node.js usage
// import { createDeepAgent, FilesystemBackend } from "deepagents/node";

Customization

Add tools, swap models, and customize prompts as needed:

import { ChatOpenAI } from "@langchain/openai";
import { createDeepAgent } from "deepagents";

const agent = createDeepAgent({
  model: new ChatOpenAI({ model: "gpt-5", temperature: 0 }),
  tools: [myCustomTool],
  systemPrompt: "You are a research assistant.",
});

See the JavaScript Deep Agents docs for full configuration options.

LangGraph Native

createDeepAgent returns a compiled LangGraph graph, so you can use streaming, Studio, checkpointers, and other LangGraph features.

Why Use It

  • 100% open source — MIT licensed and extensible
  • Provider agnostic — works with tool-calling chat models
  • Built on LangGraph — production runtime with streaming and persistence
  • Batteries included — planning, file access, sub-agents, and defaults out of the box
  • Fast to start — install and run with sensible defaults
  • Easy to customize — add tools/models/prompts when you need to

Documentation

Security

Deep Agents follows a "trust the LLM" model. The agent can do anything its tools allow. Enforce boundaries at the tool/sandbox level, not by expecting the model to self-police. See the security policy for more information.

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