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Works with

Claude CodeClaude DesktopCursorVS CodeClineCodex CLIOpenClaw+ any MCP client

Install to Claude Code

This server doesn't publish a one-line install command. Follow the setup in the source repository.

Summary

Token-optimized Playwright MCP server that reduces context window usage by 73.8% by grouping 22 tools into 6 semantic operations, enabling AI assistants to control browsers with minimal token overhead.

README.md

playwright-slim

Playwright MCP server optimized for AI assistants — Reduce context window tokens by 73.8% while keeping full functionality. Compatible with Claude, ChatGPT, Gemini, Cursor, and all MCP clients.

![npm version](https://www.npmjs.com/package/playwright-slim) ![Test Status](https://github.com/mcpslim/mcpslim) ![MCP Compatible](https://modelcontextprotocol.io)

What is playwright-slim?

A token-optimized version of the Playwright Model Context Protocol (MCP) server.

The Problem

MCP tool schemas consume significant context window tokens. When AI assistants like Claude or ChatGPT load MCP tools, each tool definition takes up valuable context space.

The original @playwright/mcp loads 22 tools consuming approximately ~15,462 tokens — that's space you could use for actual conversation.

The Solution

playwright-slim intelligently groups 22 tools into 6 semantic operations, reducing token usage by 73.8% — with zero functionality loss.

Your AI assistant sees fewer, smarter tools. Every original capability remains available.

Performance

| Metric | Original | Slim | Reduction | |--------|----------|------|-----------| | Tools | 22 | 6 | -73% | | Schema Tokens | 2,922 | 638 | 78.2% | | Claude Code (est.) | ~15,462 | ~4,058 | ~73.8% |

Benchmark Info - Original: @playwright/mcp@0.0.54 - Schema tokens measured with tiktoken (cl100k_base) - Claude Code estimate includes ~570 tokens/tool overhead

Quick Start

One-Command Setup (Recommended)

# Claude Desktop - auto-configure
npx playwright-slim --setup claude

# Cursor - auto-configure
npx playwright-slim --setup cursor

# Interactive mode (choose your client)
npx playwright-slim --setup

Done! Restart your app to use playwright.

CLI Tools (already have CLI?)

# Claude Code (creates .mcp.json in project root)
claude mcp add playwright -s project -- npx -y playwright-slim@latest

# Windows: use cmd /c wrapper
claude mcp add playwright -s project -- cmd /c npx -y playwright-slim@latest

# VS Code (Copilot, Cline, Roo Code)
code --add-mcp '{"name":"playwright","command":"npx","args":["-y","playwright-slim@latest"]}'

Manual Setup

<details> <summary>Click to expand manual configuration options</summary>

Claude Desktop

Add to your claude_desktop_config.json:

| OS | Path | |----|------| | Windows | %APPDATA%\Claude\claude_desktop_config.json | | macOS | ~/Library/Application Support/Claude/claude_desktop_config.json |

{
  "mcpServers": {
    "playwright": {
      "command": "npx",
      "args": ["-y", "playwright-slim@latest"]
    }
  }
}

Cursor

Add to .cursor/mcp.json (global) or <project>/.cursor/mcp.json (project):

{
  "mcpServers": {
    "playwright": {
      "command": "npx",
      "args": ["-y", "playwright-slim@latest"]
    }
  }
}

</details>

How It Works

MCPSlim acts as a transparent bridge between AI models and the original MCP server:

┌─────────────────────────────────────────────────────────────────┐
│  Without MCPSlim                                                │
│                                                                 │
│  [AI Model] ──── reads 22 tool schemas ────→ [Original MCP]    │
│             (~15,462 tokens loaded into context)                 │
├─────────────────────────────────────────────────────────────────┤
│  With MCPSlim                                                   │
│                                                                 │
│  [AI Model] ───→ [MCPSlim Bridge] ───→ [Original MCP]           │
│       │                │                      │                 │
│   Sees 6 grouped      Translates to        Executes actual   │
│   tools only         original call       tool & returns    │
│   (~4,058 tokens)                                              │
└─────────────────────────────────────────────────────────────────┘

How Translation Works

  1. AI reads slim schema — Only 6 grouped tools instead of 22
  2. AI calls grouped tool — e.g., interaction({ action: "click", ... })
  3. MCPSlim translates — Converts to original: browser_click({ ... })
  4. Original MCP executes — Real server processes the request
  5. Response returned — Result passes back unchanged

Zero functionality loss. 73.8% token savings.

Available Tool Groups

| Group | Actions | |-------|---------| | capture | 4 | | control | 5 | | interaction | 8 | | navigation | 3 |

Plus 2 passthrough tools — tools that don't group well are kept as-is with optimized descriptions.

Compatibility

  • Full functionality — All original @playwright/mcp features preserved
  • All AI assistants — Works with Claude, ChatGPT, Gemini, Copilot, and any MCP client
  • Drop-in replacement — Same capabilities, just use grouped action names
  • Tested — Schema compatibility verified via automated tests

FAQ

Does this reduce functionality?

No. Every original tool is accessible. Tools are grouped semantically (e.g., click, hover, draginteraction), but all actions remain available via the action parameter.

Why do AI assistants need token optimization?

AI models have limited context windows. MCP tool schemas consume tokens that could be used for conversation, code, or documents. Reducing tool schema size means more room for actual work.

Is this officially supported?

MCPSlim is a community project. It wraps official MCP servers transparently — the original server does all the real work.

License

MIT

---

<p align="center"> Powered by <a href="https://github.com/mcpslim/mcpslim"><b>MCPSlim</b></a> — MCP Token Optimizer <br> <sub>Reduce AI context usage. Keep full functionality.</sub> </p>

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