Arm MCP Server MCP Server
io.github.arm/arm-mcp
AI-powered Arm architecture development, code migration, and optimization tools
What is the Arm MCP Server MCP server?
The Arm MCP Server is an official MCP server that equips AI assistants with specialized tools for Arm architecture development, migration, and optimization. It provides semantic search across Arm documentation, code migration analysis, container architecture inspection, assembly performance analysis, and system information gathering.
This server enables AI assistants to help migrate applications from x86 to Arm, analyze code for Arm compatibility, inspect Docker image architectures, analyze assembly performance, and gather detailed system architecture information. It's designed for developers and teams modernizing applications for Arm processors.
How to install Arm MCP Server
Copy-paste configuration for popular MCP clients.
Tools & capabilities
Tools this server exposes to the agent.
Knowledge Base Search— Semantic search across Arm documentation, learning resources, intrinsics, and software compatibility informationCode Migration Analysis— Scan codebases for Arm compatibility using migrate-ease (supports C++, Python, Go, JavaScript, Java)Container Architecture Inspection— Check Docker image architecture support using integrated Skopeo and check-image toolsAssembly Performance Analysis— Analyze assembly code performance using LLVM-MCAArm Performix— Run APX recipe workflows against a target device over SSH to capture and analyze workload performance dataSystem Information— Instructions for gathering detailed system architecture information via sysreport
Use cases
- Migrate x86 applications to Arm architecture automatically
- Scan codebases for Arm compatibility issues across multiple programming languages
- Analyze Docker image architecture support before deployment
- Optimize assembly code performance on Arm processors
- Capture and analyze workload performance data on target Arm devices
- Search Arm documentation and learning resources for architecture guidance
Arm MCP Server MCP server FAQ
It's an official MCP server from Arm that provides AI assistants with tools for Arm architecture development, code migration, optimization, and compatibility analysis.
Yes, the server is open-source and available under the Apache License 2.0. The Docker image is available on Docker Hub at armlimited/arm-mcp.
Add the server configuration to `.mcp.json` in your project with a Docker run command that mounts your workspace directory. See the README for the exact configuration.
Add the server configuration to `.vscode/mcp.json` or globally at `~/Library/Application Support/Code/User/mcp.json` (macOS). Use the Docker run command provided in the README.
No authentication is required for the core tools. For Arm Performix (remote SSH performance analysis), you need to provide SSH private key and known_hosts files mounted to the container.
The migrate-ease tool supports C++, Python, Go, JavaScript, and Java for Arm compatibility scanning.
README (reference)
Source of truth, from the repository.
Arm MCP Server
An MCP server providing AI assistants with tools and knowledge for Arm architecture development, migration, and optimization.
Using the Arm MCP Server
If your goal is to migrate an application from x86 to Arm as quickly as possible, start here:
Automate x86-to-Arm application migration using Arm MCP Server
Features
This MCP server equips AI assistants with specialized tools for Arm development:
- Knowledge Base Search: Semantic search across Arm documentation, learning resources, intrinsics, and software compatibility information
- Code Migration Analysis: Scan codebases for Arm compatibility using migrate-ease (supports C++, Python, Go, JavaScript, Java)
- Container Architecture Inspection: Check Docker image architecture support using integrated Skopeo and check-image tools.
- Assembly Performance Analysis: Analyze assembly code performance using LLVM-MCA
- Arm Performix: Run APX recipe workflows against a target device over SSH to capture and analyze workload performance data
- System Information: Instructions for gathering detailed system architecture information via sysreport
Pre-Built Image
If you would prefer to use a pre-built, multi-arch image, the official image can be found in Docker Hub here: armlimited/arm-mcp:latest
Prerequisites
- Docker (with buildx support for multi-arch builds)
- An MCP-compatible AI assistant client (e.g. GitHub Copilot, Kiro CLI, Codex CLI, Claude Code, etc)
Quick Start
1. Build the Docker Image
From the root of this repository:
docker buildx build --platform linux/arm64,linux/amd64 -f mcp-local/Dockerfile -t armlimited/arm-mcp .
For a single-platform build (faster):
docker buildx build -f mcp-local/Dockerfile -t armlimited/arm-mcp . --load
2. Configure Your MCP Client
Choose the configuration that matches your MCP client:
The examples below include the optional Docker arguments required for Arm Performix. These SSH-related settings are only needed when you want the MCP server to run remote commands on a target device through Arm Performix. If you are not using Arm Performix, you can omit the SSH -v lines.
Claude Code
Add to .mcp.json in your project:
{
"mcpServers": {
"arm-mcp": {
"command": "docker",
"args": [
"run",
"--rm",
"-i",
"--pull=always",
"-v", "/path/to/your/workspace:/workspace",
"-v", "/path/to/your/ssh/private_key:/run/keys/ssh-key.pem:ro",
"-v", "/path/to/your/ssh/known_hosts:/run/keys/known_hosts:ro",
"armlimited/arm-mcp"
]
}
}
}
GitHub Copilot (VS Code)
Add to .vscode/mcp.json in your project, or globally at ~/Library/Application Support/Code/User/mcp.json (macOS):
{
"servers": {
"arm-mcp": {
"type": "stdio",
"command": "docker",
"args": [
"run",
"--rm",
"-i",
"--pull=always",
"-v", "/path/to/your/workspace:/workspace",
"-v", "/path/to/your/ssh/private_key:/run/keys/ssh-key.pem:ro",
"-v", "/path/to/your/ssh/known_hosts:/run/keys/known_hosts:ro",
"armlimited/arm-mcp"
]
}
}
}
The easiest way to open this file in VS Code for editing is command+shift+p and search for
MCP: Open User Configuration
AWS Kiro CLI
Add to ~/.kiro/settings/mcp.json:
{
"mcpServers": {
"arm-mcp": {
"command": "docker",
"args": [
"run",
"--rm",
"-i",
"--pull=always",
"-v", "/path/to/your/workspace:/workspace",
"-v", "/path/to/your/ssh/private_key:/run/keys/ssh-key.pem:ro",
"-v", "/path/to/your/ssh/known_hosts:/run/keys/known_hosts:ro",
"armlimited/arm-mcp"
],
"timeout": 60000
}
}
}
Gemini CLI
It is recommended to use a project-local configuration file to ensure the relevant workspace is mounted.
Add to .gemini/settings.json in your project root:
{
"mcpServers": {
"arm-mcp": {
"command": "docker",
"args": [
"run",
"--rm",
"-i",
"--pull=always",
"-v", "/path/to/your/workspace:/workspace",
"-v", "/path/to/your/ssh/private_key:/run/keys/ssh-key.pem:ro",
"-v", "/path/to/your/ssh/known_hosts:/run/keys/known_hosts:ro",
"armlimited/arm-mcp"
]
}
}
}
MCP Clients using TOML format (e.g. Codex CLI)
[mcp_servers.arm-mcp]
command = "docker"
args = [
"run",
"--rm",
"-i",
"--pull=always",
"-v", "/path/to/your/workspace:/workspace",
"-v", "/path/to/your/ssh/private_key:/run/keys/ssh-key.pem:ro",
"-v", "/path/to/your/ssh/known_hosts:/run/keys/known_hosts:ro",
"armlimited/arm-mcp"
]
Note: Replace /path/to/your/workspace with the actual path to your project directory that you want the MCP server to access. If you are enabling Arm Performix, also replace the /path/to/your/ssh/private_key and /path/to/your/ssh/known_hosts paths with your local files. The MCP container auto-discovers files mounted under /run/keys, as shown in the configs above.
3. Restart Your MCP Client
After updating the configuration, restart your MCP client to load the Arm MCP server.
Logging
Depending on usage, the server may write two log files under /workspace. With the
configuration examples above, these files appear in the project directory on
your computer:
mcp-traffic.jsonlrecords when tools are used, the inputs provided, and the reason for each tool call. It also records results from knowledge base searches.error_logging.yamlrecords details about errors encountered by the server. This information can help with troubleshooting.
These logs may contain information from your project and tool requests. Review their contents before sharing them.
Repository Structure
mcp-local/: The MCP server implementationserver.py: Main FastMCP server with tool definitionsutils/: Helper modules for each tooldata/: Pre-built knowledge base (embeddings and metadata)Dockerfile: Multi-stage Docker build
embedding-generation/: Scripts for regenerating the knowledge base from source documents
Integration Testing
Pre-requisites
- Build the mcp server docker image
- Install the required test packages using -
pip install -r tests/requirements.txtwithin themcp_localdirectory.
Testing Steps
- Run the test script -
python -m pytest -s tests/test_mcp.py - Check if following 2 docker containers have started - mcp server & testcontainer
- All tests should pass without any errors. Warnings can be ignored.
Troubleshooting
Accessing the Container Shell
To debug or explore the container environment:
docker run --rm -it --entrypoint /bin/bash armlimited/arm-mcp
Common Issues
- Timeout errors during migration scans: Increase the
timeoutvalue in your MCP client configuration (e.g.,"timeout": 120000for 2 minutes) - Empty workspace: Ensure your volume mount path is correct and the directory exists
- Architecture mismatches: If you encounter platform-specific issues, rebuild for your specific platform using
--platform linux/amd64or--platform linux/arm64
Contributing
Contributions are welcome! Please feel free to submit issues or pull requests.
When contributing:
- Follow PEP 8 style guidelines for Python code
- Update documentation for any new features or changes
- Ensure the Docker image builds successfully before submitting
Note:
Images tagged latest and semantic version tags (e.g., 2.3.0) should be treated as the prod environment, while dated tags (YYYY-MM-DD-<run_number>, e.g., 2026-05-31-123) should be treated as the stage environment. The dev environment refers only to locally built images created by individual developers.
License
Copyright © 2026, Arm Limited and Contributors. All rights reserved.
Licensed under the Apache License, Version 2.0. See LICENSE for details.
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