Ghidra MCP Server




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A production-ready Model Context Protocol (MCP) server that bridges Ghidra's powerful reverse engineering capabilities with modern AI tools and automation frameworks. 253 MCP tools, battle-tested AI workflows, and the most comprehensive Ghidra-MCP integration available — now including P-code emulation, live debugger integration, and PCode-graph data flow analysis.
Why Ghidra MCP?
Most Ghidra MCP implementations give you a handful of read-only tools and call it a day. This project is different — it was built by a reverse engineer who uses it daily on real binaries, not as a demo.
- 253 MCP tools — 3x more than any competing implementation. Not just read operations — full write access for renaming, typing, commenting, structure creation, script execution, P-code emulation, and live debugging.
- Battle-tested AI workflows — Proven documentation workflows (V5) refined across hundreds of functions. Includes step-by-step prompts, Hungarian notation reference, batch processing guides, and orphaned code discovery.
- Production-grade reliability — Atomic transactions, batch operations (93% API call reduction), configurable timeouts, and graceful error handling. No silent failures.
- Cross-binary documentation transfer — SHA-256 function hash matching propagates documentation across binary versions automatically. Document once, apply everywhere.
- Full Ghidra Server integration — Connect to shared Ghidra servers, manage repositories, version control, checkout/checkin workflows, and multi-user collaboration.
- Headless and GUI modes — Run with or without the Ghidra GUI. Docker-ready for CI/CD pipelines and automated analysis at scale.
- Opinionated by design — v5.0 moves naming conventions, type safety, and documentation standards into the tool layer. AI agents and human engineers produce consistent output without style guides in every prompt.
Convention Enforcement
You've been there: six months into a project you find ProcessItem, process_items, handleItem, and ItemProc in the same codebase — four functions doing the same thing, named by four different sessions or engineers with no shared contract. Fixing it takes longer than it should, and the problem will happen again.
v5.0 moves conventions from "things to remember" into the tool layer, where they can actually be enforced.
For AI agents, this means consistent output across every session, every model, every run — without pasting a style guide into every prompt. The tool knows the rules; the model just needs to make the call.
For teams, it eliminates the entire class of review comment that says "that's not our naming convention." Convention arbitration stays in the tool, not in code review.
For solo work at scale, analyze_function_completeness gives you a 0–100% score that measures honestly: structural deductions (unfixable compiler artifacts) are forgiven in your effective score, log-scaling prevents one bad category from burying everything else, and tiered plate comment quality means you know exactly what's missing and why.
🌟 Features
Core MCP Integration
- Full MCP Compatibility — Complete implementation of Model Context Protocol
- 253 MCP tools — Comprehensive API surface covering every aspect of binary analysis
- Production-Ready Reliability — Atomic transactions, batch operations, configurable timeouts
- Real-time Analysis — Live integration with Ghidra's analysis engine
Compatibility note: MCP tool names are normalized for GitHub Copilot CLI
and CAPI validation. Exposed tool names use lowercase letters, digits,
underscores, and hyphens only; nested HTTP paths such as /debugger/status
are advertised as names like debugger_status_2 when needed to avoid
collisions with static bridge tools.
Binary Analysis Capabilities
- Function Analysis — Decompilation, call graphs, cross-references, completeness scoring
- Data Flow Analysis — PCode-graph value propagation (forward / backward) from any variable or register
- Data Structure Discovery — Struct/union/enum creation with field analysis and naming suggestions
- String Extraction — Regex search, quality filtering, and string-anchored function discovery
- Import/Export Analysis — Symbol tables, external locations, ordinal import resolution
- Memory & Data Inspection — Raw memory reads, byte pattern search, array boundary detection
- Cross-Binary Documentation — Function hash matching and documentation propagation across versions
Dynamic Analysis (v5.4.0)
- P-code Emulation — Run any function in isolation via Ghidra's
EmulatorHelper; brute-force API hash resolution in milliseconds
- Live Debugger Integration — 17 Java endpoints + 22 Python bridge tools over Ghidra's TraceRmi framework (dbgeng on Windows PE, gdb/lldb otherwise): attach, step, breakpoints, registers, memory reads, non-breaking function tracing, ASLR-aware static↔dynamic address translation
AI-Powered Reverse Engineering Workflows
- Function Documentation Workflow V5 — 7-step process for complete function documentation with Hungarian notation, type auditing, and automated verification scoring
- Batch Documentation — Parallel subagent dispatch for documenting multiple functions simultaneously
- Orphaned Code Discovery — Automated scanner finds undiscovered functions in gaps between known code
- Data Type Investigation — Systematic workflows for structure discovery and field analysis
- Cross-Version Matching — Hash-based function matching across different binary versions
Development & Automation
- Ghidra Script Management — Create, run, update, and delete Ghidra scripts entirely via MCP
- Multi-Program Support — Switch between and compare multiple open programs
- Batch Operations — Bulk renaming, commenting, typing, and label management (93% fewer API calls)
- Headless Server — Full analysis without Ghidra GUI — Docker and CI/CD ready
- Project & Version Control — Create projects, manage files, Ghidra Server integration
- Analysis Control — List, configure, and trigger Ghidra analyzers programmatically
🚀 Quick Start
Prerequisites
- Java 21 LTS (OpenJDK recommended)
- Apache Maven 3.9+
- Ghidra 12.1.3 (or compatible version)
- Python 3.10+ with uv (recommended) or pip + venv
Shared Ghidra Server users: Ghidra 12.1.3 clients require a Ghidra
Server at 12.1, 12.0.5, or a newer compatible version. Upgrade the
server before using this plugin from a 12.1 client.
Ghidra 12.1.3 ships Jython as an optional extension. Java scripts work
by default, but .py scripts in ghidra_scripts/ require installing
the Jython extension from File > Install Extensions and restarting
Ghidra.
Installation
Recommended for all platforms: use python -m tools.setup directly.
ensure-prereqs installs runtime Python requirements plus the Ghidra JARs needed in the local Maven repository.
deploy copies the build output, installs the user-profile extension, and patches Ghidra user config.
Clone the repository:
git clone https://github.com/bethington/ghidra-mcp.git
cd ghidra-mcp
Recommended: run environment preflight first:
python -m tools.setup preflight --ghidra-path "F:\ghidra_12.1.3_PUBLIC"
Build and deploy to Ghidra:
python -m tools.setup ensure-prereqs --ghidra-path "F:\ghidra_12.1.3_PUBLIC"
python -m tools.setup build
python -m tools.setup deploy --ghidra-path "F:\ghidra_12.1.3_PUBLIC"
deploy saves/closes an already-running matching Ghidra instance when
needed, installs the extension, starts Ghidra, waits for MCP health, and runs
schema smoke checks.
Prefer to click through Ghidra's own dialogs, or installing a release zip on
a machine without the repo? Follow the illustrated
manual GUI install guide.
Optional strict/manual mode (advanced):
# Skip automatic prerequisite setup
python -m tools.setup build
python -m tools.setup deploy --ghidra-path "F:\ghidra_12.1.3_PUBLIC"
Show command help:
python -m tools.setup --help
Optional build-only mode (advanced/troubleshooting):
python -m tools.setup build
Two Java backends are supported. Gradle is the default for local work — it reads Ghidra's jars straight out of the installation, so there is no install-file step and nothing to install beyond a JDK. CI builds and gates with Maven, so Maven is a maintained peer rather than a fallback.
# Gradle (default) -- the wrapper is committed, so no Gradle install is needed.
# -PGHIDRA_INSTALL_DIR or the GHIDRA_INSTALL_DIR env var both work.
# In Git Bash use forward slashes; a backslash path is mangled before Gradle sees it.
./gradlew buildExtension -PGHIDRA_INSTALL_DIR=/path/to/ghidra
# Maven (peer backend; what CI uses). Needs Ghidra's jars in the local .m2 first:
# python -m tools.setup ensure-prereqs --ghidra-path /path/to/ghidra
mvn clean package assembly:single -DskipTests
python -m tools.setup build routes to Maven by default; set TOOLS_SETUP_BACKEND=gradle to route it to Gradle instead.
Installation (Linux — Ubuntu/Debian)
Clone the repository:
git clone https://github.com/bethington/ghidra-mcp.git
cd ghidra-mcp
Install system prerequisites (if not already installed):
sudo apt update && sudo apt install -y openjdk-21-jdk maven python3 python3-pip python3-venv curl jq unzip
Debian/Kali/Ubuntu 23.04+ note (PEP 668): these distros mark the system
Python as externally managed, so a bare pip install fails with
error: externally-managed-environment. Don't work around it with
--break-system-packages — it can corrupt apt-managed tooling. Instead use
uv (recommended — it creates and manages a
project-local .venv automatically, and is what this repo's commands use):
curl -LsSf https://astral.sh/uv/install.sh | sh
uv run bridge-mcp-ghidra # resolves deps into .venv and starts the bridge
or a classic virtual environment:
python3 -m venv .venv && source .venv/bin/activate
pip install -e .
bridge-mcp-ghidra
Run environment preflight:
python -m tools.setup preflight --ghidra-path ~/ghidra_12.1.3_PUBLIC
Build and deploy to Ghidra (single command):
python -m tools.setup ensure-prereqs --ghidra-path ~/ghidra_12.1.3_PUBLIC
python -m tools.setup build
python -m tools.setup deploy --ghidra-path ~/ghidra_12.1.3_PUBLIC
This will:
- Install Ghidra JAR dependencies into your local
~/.m2/repository
- Build
GhidraMCP-<version>.zip with Maven
- Extract the extension to
~/.config/ghidra/ghidra_<version>_PUBLIC/Extensions/
- Update
preferences with LastExtensionImportDirectory
- Install Python requirements
Optional: setup only Maven dependencies:
python -m tools.setup install-ghidra-deps --ghidra-path ~/ghidra_12.1.3_PUBLIC
Show command help:
python -m tools.setup --help
Linux paths: The extension is installed to $HOME/.config/ghidra/ghidra_<version>_PUBLIC/Extensions/GhidraMCP/.
Ghidra config files are in $HOME/.config/ghidra/ghidra_<version>_PUBLIC/.
Installation (macOS — Homebrew)
Install prerequisites:
brew install openjdk@21 maven python ghidra
Clone the repository:
git clone https://github.com/bethington/ghidra-mcp.git
cd ghidra-mcp
Install Ghidra JARs into local Maven:
python -m tools.setup install-ghidra-deps \
--ghidra-path /opt/homebrew/opt/ghidra/libexec
Build and deploy:
python -m tools.setup ensure-prereqs \
--ghidra-path /opt/homebrew/opt/ghidra/libexec
python -m tools.setup build
python -m tools.setup deploy \
--ghidra-path /opt/homebrew/opt/ghidra/libexec
The extension is installed to ~/Library/ghidra/ghidra_12.1.3_PUBLIC/Extensions/GhidraMCP/.
Note: --ghidra-version is required when using the Homebrew path because the path contains no version string.
Start Ghidra and enable the plugin:
/opt/homebrew/opt/ghidra/libexec/ghidraRun
The server starts with the plugin. Check it from the project window:
Tools > GhidraMCP > Server Status
Configure Cursor/Claude MCP (~/.cursor/mcp.json) — use the absolute
path to uv (which uv), not the bare name; GUI-launched clients do not
inherit your shell's PATH (#441):
{
"mcpServers": {
"ghidra": {
"command": "/opt/homebrew/bin/uv",
"args": ["run", "--directory", "/path/to/ghidra-mcp", "bridge-mcp-ghidra"]
}
}
}
macOS is the sharpest case: apps launched from Finder/Dock get launchd's
PATH, which never contains ~/.local/bin or /opt/homebrew/bin.
Installation (Arch Linux — AUR)
@Pandoriaantje maintains community AUR packages:
Install with your AUR helper of choice, e.g.:
yay -S ghidra-mcp # or ghidra-mcp-git
Basic Usage
uv run bridge-mcp-ghidra # or: python -m bridge_mcp_ghidra
MCP client config (.mcp.json, ~/.cursor/mcp.json, Claude Desktop config, …).
Use the absolute path to uv — see the note below for why:
{
"mcpServers": {
"ghidra-mcp": {
"command": "/home/<you>/.local/bin/uv",
"args": ["run", "--directory", "/path/to/ghidra-mcp", "bridge-mcp-ghidra", "--transport", "stdio"],
"env": { "GHIDRA_MCP_URL": "http://127.0.0.1:8089" }
}
}
}
On Windows the same config points at uv.exe, e.g.
"command": "C:\\Users\\<you>\\.local\\bin\\uv.exe". Find your own path with
which uv (POSIX) or where.exe uv (Windows), or just run
python -m tools.setup preflight, which prints the resolved absolute path and a
ready-to-paste snippet.
Why absolute? "command": "uv" fails under service and GUI launchers.
The MCP client resolves command with its own PATH, not your shell's. A
client started from a systemd user service, a .desktop entry, or any
other GUI session inherits that launcher's environment, which routinely lacks
~/.local/bin and ~/.cargo/bin — the very directories uv installs into.
The failure lands at process-spawn time as spawn uv ENOENT, before any
bridge code runs, so there is nothing in any log to read. An absolute path
makes the client's PATH irrelevant and works on the first try. The same
applies to python, python3, and the bridge-mcp-ghidra console script.
(#441)
To add the bridge to Autohand Code from a cloned checkout:
autohand mcp add ghidra /home/<you>/.local/bin/uv run --directory /path/to/ghidra-mcp bridge-mcp-ghidra
Add --scope project before ghidra to save the server in the current project's .autohand configuration instead of your user configuration.
Option 2: Streamable HTTP Transport (Recommended for web/HTTP clients)
uv run bridge-mcp-ghidra --transport streamable-http --mcp-host 127.0.0.1 --mcp-port 8081
MCP client config for the HTTP transport (add to your client's MCP config file):
{
"mcpServers": {
"ghidra-mcp-http": {
"url": "http://127.0.0.1:8081/mcp"
}
}
}
Browser-based clients (e.g. MCP Inspector)
work out of the box: the HTTP transports answer CORS preflight (OPTIONS) requests and expose
the mcp-session-id / mcp-protocol-version headers to scripts. Allowed origins mirror the
Host-header policy — loopback on any port is always permitted, plus the bind host and any
hosts listed in GHIDRA_MCP_ALLOWED_HOSTS.
GHIDRA_MCP_ALLOWED_HOSTS also supports clients that route a loopback-bound
bridge through another network namespace. For example, a container can address
the host as host.containers.internal without exposing the bridge on a LAN
interface:
GHIDRA_MCP_ALLOWED_HOSTS=host.containers.internal \
uv run bridge-mcp-ghidra --transport streamable-http \
--mcp-host 127.0.0.1 --mcp-port 8081
The setting extends DNS-rebinding Host/Origin validation only; it does not
change the bind address or make the listener reachable on additional interfaces.
Option 3: SSE Transport (Deprecated — use streamable-http instead)
uv run bridge-mcp-ghidra --transport sse --mcp-host 127.0.0.1 --mcp-port 8081
Bridge advanced flags
Advertising all 253 endpoints in a single tools/list is over a hard limit for
at least one major provider. Gemini compiles function declarations into a
constrained-decoding state machine and rejects the whole request before any tool
is ever called:
400 INVALID_ARGUMENT
The specified schema produces a constraint that has too many states for serving
That is not a degradation, it is an outright break, and no client-side setting
could work around a server that only ever offered the full set. So the bridge
now loads listing,function,program (84 endpoints plus the 8 static tools) on
connect and registers the rest on demand.
If your client ignores tools/list_changed it will not notice tools that
are registered later, and should turn lazy loading off:
uv run bridge-mcp-ghidra --no-lazy # when you control the command line
export GHIDRA_MCP_LAZY=0 # when you don't (Docker, uvx, some client configs)
GHIDRA_MCP_LAZY accepts 0/false/no/off and 1/true/yes/on; an explicit
--lazy/--no-lazy on the command line wins over it. Startup logs which mode
is in effect.
Strict program routing (multi-program safety)
Set GHIDRA_MCP_REQUIRE_PROGRAM_SELECTORS=1 to make the bridge refuse any program-scoped
call that omits a program selector, returning a clear error instead of letting the call
ride the server's shared "current program" (the one switch_program and the
active GUI tab move).
export GHIDRA_MCP_REQUIRE_PROGRAM_SELECTORS=1
uv run bridge-mcp-ghidra
Without this, a call that leaves program= out runs against whichever program
is current, which is fine for a single-program workflow but a hazard once
several programs are open: the call can read or edit the wrong binary with no
error. The hazard is worse when more than one client shares a server, since
each one moves that current-program global out from under the others.
With strict mode on, every program-scoped call must name its target. This
covers every selector that picks an open program: plain program= and the
cross-program tools' source_program/target_program or program_a/program_b
(declared required, but the server still falls back to the current program when
one arrives empty). A forgotten selector surfaces as a loud error on the first
bad call instead of a silent write to the wrong binary. Tools with no program
selector (open_program and close_program take path/name) are unaffected.
Off by default: with the variable unset the bridge sends calls unchanged.
Reducing tool-context overhead
The bridge exposes a large catalog, so it loads only listing,function,program
on connect (see above) and lets the model discover the rest on demand
instead of registering everything:
search_tools("rename function") — keyword-search the entire catalog,
including tools whose group isn't loaded. Each result says whether it's
callable now and, if not, the exact load_tool_group(...) call to enable it.
list_tool_groups() — list all categories and their load state.
load_tool_group("datatype") / unload_tool_group("datatype") — load or
drop a category at runtime.
check_tools("rename_symbol,batch_set_comments") — confirm specific tools
are callable right now.
search_tools works in both lazy and --no-lazy modes, so agents that honor
tools/list_changed get full discovery without the upfront context cost.
Minimal read-only allowlist
Some MCP clients gate tools through an explicit allowlist. Cut it too far and
the agent loses discovery — it cannot find entry points or enumerate
functions through MCP, so it works around the allowlist by curl-ing the HTTP
API on 127.0.0.1:8089 directly, which defeats the point of having one. The
allowlist has to be small and self-sufficient.
Minimum viable read-only set (4 tools):
That set is genuinely closed: get_entry_points and list_methods supply the
addresses and names that decompile_function consumes, and a decompiled body
names its callees, which feed straight back into decompile_function.
The three tools suggested in #441
— get_metadata, get_entry_points, decompile_function — all exist under
exactly those names and are a workable floor. list_methods is the one addition
worth making: without it the agent can only reach code that is reachable by name
from something it already decompiled, so anything not referenced from an entry
point is invisible.
Useful next additions, in order:
Every tool above is a GET; none of them writes to the Ghidra database.
Two things to check when your allowlist is narrow:
- Groups, not just names. The bridge registers tools by group, and the
group is the
category on the Java @McpTool annotation (which the running
server publishes at /mcp/schema) — not the category field in
tests/endpoints.json, which is a separate hand-maintained column and does
not always agree. All four tools in the minimum set fall inside the default
listing,function,program groups, so they are registered even under --lazy.
Of the additions above, only the xref ones fall outside: under --lazy you
must either allow load_tool_group as well, or start the bridge with
--default-groups listing,function,program,xref.
- A narrow allowlist plus
--lazy needs the group tools. If you allowlist
only leaf tools and run lazily, the agent has no way to load anything else.
Either run eagerly (--no-lazy, the default) or add search_tools,
list_tool_groups, load_tool_group, and check_tools to the allowlist.
Verify any allowlist against the running server rather than against this table:
curl http://127.0.0.1:8089/mcp/schema lists every tool with the category
the bridge groups it by.
Optional: Connect a standalone debugger server
The debugger server itself moved to the d2-game-exe repository on 2026-08-11
(its D2 calling-convention layer made it game-specific). Start it there, then
point this bridge at it:
export GHIDRA_DEBUGGER_URL=http://127.0.0.1:8099
The bridge's 22 debugger_* proxy tools register only when that variable is
set, so leaving it unset costs nothing — the tools simply do not appear rather
than appearing and failing.
Debugger server flags:
Set GHIDRA_DEBUGGER_URL in .env if you change the default port or host so the bridge can find it.
In Ghidra
- Start Ghidra and open a CodeBrowser window
- In CodeBrowser, enable the plugin via File > Configure > Utility > Configure > GhidraMCPPlugin
- Optional: configure custom port via CodeBrowser > Edit > Tool Options > GhidraMCP HTTP Server
- The server starts with the plugin; check it via Tools > GhidraMCP > Server Status in the project window
- The server runs on
http://127.0.0.1:8089/ by default
Screenshots of every step: docs/INSTALL_GUI.md.
Verify It's Working
# Quick health check
curl http://127.0.0.1:8089/check_connection
# Expected: "Connected: GhidraMCP plugin running with program '<name>'"
# Get version info
curl http://127.0.0.1:8089/get_version
Support This Project
If Ghidra MCP saves you engineering or reverse-engineering time, consider sponsoring the project.
- One-time sponsorship helps fund fixes, compatibility updates, and release work.
- Recurring sponsorship helps keep maintenance, docs, and production hardening moving.
- Company support helps prioritize long-term reliability for the bridge, headless server, debugger integration, and workflow tooling.
🔒 Security
GhidraMCP is designed for localhost-only development. The default configuration — HTTP server bound to 127.0.0.1, no authentication — is safe on a trusted single-user workstation and matches pre-v5.4.1 behavior.
If you expose the server beyond loopback, configure these three environment variables first. The server refuses to start on a non-loopback bind without a token.
Name-quality enforcement is separate from security. By default,
rename_function and global write endpoints reject names that fail
the built-in quality gates, and struct field writes apply the built-in field
prefix convention. Disable the built-in convention layer with Edit > Tool
Options > GhidraMCP HTTP Server > Strict Naming Enforcement. The same Tool
Options checkbox covers rename_symbol (all symbol kinds),
set_global, the apply_data_type prefix/type guard, and struct-field
Hungarian prefix auto-fixes in create_struct, add_struct_field, and
modify_struct_field. The setting is read when the MCP server starts or
restarts. Function/global convention warnings are still returned when
enforcement is disabled.
Example: exposing to a private LAN with auth
export GHIDRA_MCP_AUTH_TOKEN=$(openssl rand -hex 32)
export GHIDRA_MCP_ALLOW_SCRIPTS=1 # only if your workflow needs it
export GHIDRA_MCP_FILE_ROOT=/srv/ghidra/inputs
java -jar GhidraMCPHeadless.jar --bind 0.0.0.0 --port 8089
Ghidra Server authentication
When connecting to a shared Ghidra Server, GhidraMCP can suppress the password dialog automatically. It resolves credentials in this order (first non-empty value wins):
Compatibility note: Ghidra 12.1.3 clients require Ghidra Server 12.1.2,
12.0.5, or a newer compatible server. Older shared servers are not safe
targets for a 12.1 client upgrade.
GHIDRA_SERVER_PASSWORD environment variable (or .env file in the Ghidra install directory or ~)
~/.ghidra-cred — single-line password file in your home directory
<ghidra-install-dir>/.ghidra-cred
Username resolves similarly: GHIDRA_SERVER_USER env var → user.name system property.
If no password is found, Ghidra shows its normal GUI prompt. Set these in .env (see .env.template for the full block) to enable silent auth.
Migration from v5.4.0 → v5.4.1
- Script endpoints now default-off. If you relied on
/run_script_inline or /run_ghidra_script, export GHIDRA_MCP_ALLOW_SCRIPTS=1. This is a deliberate breaking change; the prior default was unsafe.
- Localhost-only deployments need no changes. Auth, bind refusal, and path-root checks are all opt-in.
❓ Troubleshooting
spawn uv ENOENT / spawn python ENOENT when the client starts the server
Cause: the MCP client could not find the command on its own PATH. This
happens before any bridge code runs, so there is nothing in the Ghidra log or
the bridge log to look at — the process was never created.
It shows up when the client is launched by something other than a login shell:
- a systemd user service (
systemctl --user), whose PATH is
/usr/local/bin:/usr/bin:/bin unless you extend it;
- a desktop
.desktop entry, dock icon, or app launcher;
- macOS apps started from Finder, which inherit
launchd's PATH.
None of those contain ~/.local/bin (uv's default install location) or
~/.cargo/bin, so "command": "uv" cannot resolve even though uv works
perfectly in your terminal.
Solution: use an absolute path in the client config.
// before — resolves against the client's PATH, fails under a service/GUI launcher
"command": "uv"
// after — no PATH lookup at all
"command": "/home/<you>/.local/bin/uv"
Find yours with which uv (POSIX) or where.exe uv (Windows). Or run:
python -m tools.setup preflight
which prints the resolved absolute path, the PATH entries it searched when a
launcher is missing, and a ready-to-paste config snippet. Note what that check
can and cannot tell you: it resolves against your shell's PATH, not the
client's, so a pass there is evidence, not proof — the absolute path is what
actually removes the failure mode. (#441)
If you must keep a bare command name, give the service manager the PATH instead
— e.g. Environment="PATH=%h/.local/bin:/usr/local/bin:/usr/bin:/bin" in the
unit file, or systemctl --user import-environment PATH — but the absolute
path is the smaller and more portable fix.
Cause: Plugin not enabled or installed incorrectly.
Solution:
- Verify extension is installed: File > Install Extensions — GhidraMCP should be listed
- Enable the plugin: File > Configure > Utility > Configure > GhidraMCPPlugin (check the box)
- Restart Ghidra after installation/enabling
Illustrated walkthrough: docs/INSTALL_GUI.md.
Server not responding / Connection refused
Cause: Server not started or wrong port.
Solution:
Check the server state: Tools > GhidraMCP > Server Status (it starts with the plugin; use Restart Server if it is stopped)
Check configured port: Edit > Tool Options > GhidraMCP HTTP Server
Check if port is in use:
# Linux/macOS
lsof -i :8089
# Windows
netstat -ano | findstr :8089
Look for errors in Ghidra console: Window > Console
pip install fails with error: externally-managed-environment
Cause: PEP 668. Debian-family distros (Debian 12+, Kali, Ubuntu 23.04+)
mark the system Python as externally managed, so global pip install is
blocked to protect apt-managed packages.
Solution: Use a virtual environment — never --break-system-packages.
The recommended path is uv, which manages a
project-local .venv automatically:
curl -LsSf https://astral.sh/uv/install.sh | sh
cd ghidra-mcp
uv run bridge-mcp-ghidra
Or a classic venv:
python3 -m venv .venv && source .venv/bin/activate
pip install -e .
bridge-mcp-ghidra
Cause: They are registered only when GHIDRA_DEBUGGER_URL is set, and only
on Windows. The debugger server they proxy to lives in the d2-game-exe
repository since 2026-08-11 — this repo ships the proxies, not the server.
Solution: start the debugger server from that repo, then set the URL before
launching the bridge:
export GHIDRA_DEBUGGER_URL=http://127.0.0.1:8099
A ModuleNotFoundError for pybag or comtypes while starting that server is
a missing optional dependency on its side; install its Windows-only extras from
that repo, and make sure you install into and run from the same interpreter.
500 Internal Server Errors
Cause: Server-side exception, often due to missing program data.
Solution:
- Ensure a binary is loaded in CodeBrowser
- Run auto-analysis first: Analysis > Auto Analyze
- Check Ghidra console (Window > Console) for Java exceptions
- Some operations require fully analyzed binaries
404 Not Found Errors
Cause: Endpoint doesn't exist or wrong URL.
Solution:
- Verify endpoint exists:
curl http://127.0.0.1:8089/get_version
- Check for typos in endpoint name
- Ensure you're using correct HTTP method (GET vs POST)
Python Ghidra scripts fail with "No script provider found"
Cause: In Ghidra 12.1.3, Jython support is no longer enabled by
default. .py scripts need the bundled Jython extension; Python 3
scripts should use PyGhidra instead of the Ghidra Script Manager.
Solution:
- In the Ghidra Front End, open File > Install Extensions.
- Check Jython, restart Ghidra, then refresh Script Manager.
- For new automation, prefer Java Ghidra scripts or PyGhidra.
Extension not appearing in Install Extensions
Cause: JAR file in wrong location.
Solution:
- Manual install location:
~/.config/ghidra/ghidra_12.1.3_PUBLIC/Extensions/GhidraMCP/lib/GhidraMCP.jar
(%APPDATA%\ghidra\... on Windows, ~/Library/ghidra/... on macOS)
- Or use: File > Install Extensions > Add and select the ZIP file — see the
illustrated guide
- Ensure JAR/ZIP was built for your Ghidra version
Build fails with "Ghidra dependencies not found"
Cause: Ghidra JARs not installed in local Maven repository.
Solution:
# Windows (recommended)
python -m tools.setup install-ghidra-deps --ghidra-path "C:\ghidra_12.1.3_PUBLIC"
- MCP Tools: 253 tools fully implemented (the whole catalog; the GUI plugin serves 239 of them and the headless server 226)
- Speed: Sub-second response for most operations
- Efficiency: 93% reduction in API calls via batch operations
- Reliability: Atomic transactions with all-or-nothing semantics
- AI Workflows: Proven documentation prompts refined across hundreds of real functions
- Deployment: Automated version-aware deployment script
🛠️ API Reference
253 MCP tools backed by HTTP endpoints, grouped by catalog category. Generated from tests/endpoints.json by python -m tools.gen_readme_api_reference --write; the live schema at /mcp/schema is authoritative at runtime. Usage patterns: docs/prompts/TOOL_USAGE_GUIDE.md.
212 of these are served by both the GUI plugin and the standalone headless server. The rest are marked (GUI only) (27) or (headless only) (14) — calling one against the other server returns a 404, not an error message. See python -m tools.audit_server_scope for how the split is derived.
Program & Session Management
analysis_status - Get auto-analysis status for open programs
close_program - Close an open program by project path or name
create_memory_block - Create memory block, optionally initialized with byte contents (hex or base64)
create_property_map - Create a user property map to store typed values keyed by address
delete_bookmark - Delete bookmark
delete_property_map - Delete a user property map and all values it holds
exit_ghidra - Save and exit Ghidra
get_address_spaces - List all physical and overlay address spaces in the program (overlays include is_overlay flag and overlayed_space name)
get_current_program_info - Get current program info
get_language_metadata - Dump the program's language description: address spaces, registers, default symbols, endianness, pointer size (issue #192)
get_metadata - Get program metadata
get_program_options - Read all options in a program option group with types, current values, defaults, and descriptions
get_property - Read the value stored at an address in a property map
import_file - Import a binary file from disk into the current Ghidra project and open it
list_bookmarks - List bookmarks
list_open_programs - List open programs
list_option_groups - List program option groups (e.g
list_project_files - List project files
list_properties - List (address, value) entries stored in a property map, with pagination
list_property_maps - List user-defined property maps — typed per-address key→value stores
list_scripts - List available Ghidra scripts
open_program - Open program from project
read_memory - Read raw memory
reanalyze - Trigger full auto-analysis on a program
remove_program_option - Remove an option from a program option group
remove_property - Remove the value stored at a single address in a property map
run_ghidra_script - Run script with output capture
run_script_inline - Run inline script code
save_all_programs - Save all open programs
save_program - Save current program
set_bookmark - Set bookmark
set_image_base - Set the base address of the program (rebases all addresses)
set_program_option - Set a typed program option
set_property - Set a value at an address in a property map
switch_program - Switch current program
Project Organization
create_folder - Create a folder in the project
delete_file - Delete a file from the project
delete_project - Delete a Ghidra project (headless only)
list_projects - List available Ghidra projects (headless only)
move_file - Move a program file to a different folder in the project, preserving analysis and documentation
move_folder - Move a project folder and everything under it into another folder
project_info - Get detailed project info including running tools and open programs (GUI only)
Headless Project & Program Lifecycle
Available on the standalone headless server (GhidraMCPHeadlessServer).
archive_project - Archive the currently open project to a Ghidra-native .gar file (headless only)
checkin_program - Check an open program back in to the shared Ghidra Server as a new version (headless only)
close_project - Close the currently open project (headless only)
create_project - Create a new Ghidra project (headless only)
export_program - Export an open or project-resident program to a Ghidra Zip File (.gzf) (headless only)
get_project_info - Get info about the currently open project (headless only)
import_program - Import a Ghidra Zip File (.gzf) into the currently open project as a new DomainFile under target_folder (default '/') (headless only)
load_program - Load a binary file into the headless server for analysis (headless only)
load_program_from_project - Load program from Ghidra project (headless) (headless only)
open_project - Open an existing Ghidra project (.gpr file or directory)
restore_project - Restore a Ghidra .gar archive into a fresh on-disk project at parent_dir/project_name (headless only)
server_status - Check headless server connection status
Listing & Enumeration
convert_number - Convert number between bases
get_entry_points - Get program entry points
get_external_location - Get external location details
get_function_count - Return the number of functions in the loaded program
list_calling_conventions - List available calling conventions
list_classes - List namespace/class names
list_data_items - List defined data
list_data_items_by_xrefs - List data sorted by xref count
list_exports - List exported symbols
list_external_locations - List external locations
list_functions - List functions with addresses
list_functions_enhanced - List functions with metadata
list_globals - List global variables
list_imports - List imported symbols
list_methods - List all function names with pagination
list_namespaces - List all namespaces
list_segments - List memory segments
list_shadowed_globals - List named global DATA symbols that have NO type of their own because a larger data unit starting at an earlier address covers them
list_strings - List defined strings
search_functions - Search functions by name
search_strings - Search defined strings by a regex/substring pattern
Current GUI Context
get_current_address - Get cursor address (GUI only)
get_current_function - Get function at cursor (GUI only)
get_current_selection - Get highlighted address ranges in the CodeBrowser listing (GUI only) (GUI only)
Functions: Decompile, Rename, Prototypes & Variables
add_function_tag - Attach one or more tags to a function
batch_rename_function_components - Batch rename function components
clear_flow_and_repair - Run Ghidra's GUI 'Clear Flow and Repair' action on a seed range: clears instruction flow reachable from the seed, then repairs function bodies and re-disassembles retained flow (ClearFlowAndRepairCmd with clear_data=false, clear_labels=false, repair=true)
clear_instruction_flow_override - Clear flow override
create_function - Create function at address
create_function_tag - Create a program-wide function tag definition with an optional comment
decompile_function - Decompile function
delete_function - Delete function at address
delete_function_tag - Delete a program-wide function tag definition
disassemble_bytes - Disassemble byte range
disassemble_function - Disassemble function
force_decompile - Force fresh decompilation
get_function_by_address - Get function at address
get_function_tags - List all tags assigned to a specific function
get_function_variables - List all variables in a function
list_class_members - List the member functions of a C++ class
list_function_tags - List all program-wide function tag definitions with their use counts
remove_function_tag - Detach one or more tags from a function
rename_function - Rename function by name
rename_variables - Batch rename variables
search_functions_by_tag - List all functions that have a specified tag attached
set_function_no_return - Set no-return attribute
set_function_prototype - Set function prototype (return type, param types, calling convention)
set_function_tag_comment - Update the comment/description on an existing program-wide function tag
set_function_this_type - Set the decompiler/database type of the implicit 'this' pointer (ECX on x86 __thiscall/__fastcall)
set_variable_storage - Set variable storage
set_variable_type - Set the data type of a function variable (local OR parameter) by name at the decompiler (high-level) layer
set_variables - Set types and names for multiple variables atomically
Symbols, Labels & Globals
can_rename_at_address - Check if address can be renamed
create_label - Create label
delete_label - Delete label at address
get_function_labels - Get labels in function
rename_symbol - Rename a symbol of any kind
Cross-References & Call Graphs
add_memory_reference - Create a user-defined cross-reference between two memory addresses that the auto-analyzer can't infer (runtime-populated pointer tables, vtables, late-bound function pointers, missed jump/switch tables)
analyze_call_graph - Analyze function call graph patterns
get_assembly_context - Get assembly context
get_bulk_xrefs - Get xrefs for multiple addresses
get_full_call_graph - Get full call graph
get_function_call_graph - Get call graph
get_function_callees - Get functions called
get_function_callers - Get calling functions
get_function_jump_targets - Get jump targets
get_function_xrefs - Get function cross-references
get_xrefs_from - Get references from address
get_xrefs_to - Get references to address
remove_reference - Remove memory cross-reference(s) from one address to another — the inverse of add_memory_reference
Data Types & Structures
add_struct_field - Add struct field
analyze_global_completeness - Score a global variable's documentation completeness on a budgeted 0-100 scale — the data-address analog of analyze_function_completeness
analyze_struct_field_usage - Analyze struct field usage
apply_data_classification - Apply data classification
apply_data_type - Apply data type
audit_global - Audit a global variable's documentation state
audit_globals_in_function - Audit every global variable referenced from within a function in one call
clone_data_type - Clone data type
create_array_type - Create array type
create_data_type_category - Create data type category
create_enum - Create enumeration
create_function_signature - Create function signature type
create_pointer_type - Create pointer type
create_struct - Create structure
create_typedef - Create typedef
create_union - Create union
delete_data_type - Delete data type
embed_struct_field - Replace a structure field with an embedded struct type by value (e.g
get_enum_values - Get enumeration values
get_struct_layout - Get structure layout
get_type_size - Get data type size and info
get_valid_data_types - Get valid data type names
import_data_types - Import data types from GDT
list_data_type_categories - List data type categories
list_data_types - List data types
modify_struct_field - Modify struct field
modify_struct_field_type - Set a structure field's type by name or offset (offset:N)
move_data_type_to_category - Move data type to category
recreate_struct - Replace a structure in one step: optionally remove an existing same-named type, then create with fields JSON (same shape as create_struct)
remove_struct_field - Remove struct field
rename_data_type - Rename a data type (struct, union, enum, typedef) in place, preserving existing applications of it
resize_struct - Grow or shrink an existing structure by total byte size
resolve_duplicate_type - Find duplicate data types by simple name; delete unused /Demangler size-1 stubs when a larger canonical type exists
search_data_types - Search data types
set_global - Atomically apply name + type + plate-comment + array length to a global variable
suggest_field_names - Suggest field names
validate_data_type - Validate data type syntax
validate_function_prototype - Validate function prototype
batch_get_comments - Get listing comments (plate/pre/eol/post/repeatable) at MANY addresses in one call
batch_set_comments - Set multiple comments
clear_function_comments - Clear all comments for a function
get_comment - Get listing comments (plate/pre/eol/post/repeatable) at ANY address, including data addresses (works on functions and data globals alike)
set_comment - Set a listing comment of a given kind (plate/pre/eol/post/repeatable) at ANY address, including data addresses
Analysis
analyze_control_flow - Analyze control flow
analyze_data_region - Analyze data region
analyze_dataflow - Trace value propagation through a function (PCode graph, forward/backward)
analyze_for_documentation - Composite RE documentation analysis (decompile + classify + variables + completeness)
analyze_function_complete - Comprehensive single-call function analysis
analyze_function_completeness - Analyze documentation completeness
batch_apply_documentation - Apply all documentation to a function in one call (GUI only)
configure_analyzer - Configure an analysis plugin (headless only)
detect_array_bounds - Detect array bounds
find_code_gaps - Find gaps of undefined bytes between functions in executable memory
find_dead_code - Find dead code
find_next_undefined_function - Find next undefined function
find_similar_functions - Find similar functions
get_field_access_context - Get field access context
get_function_pcode - Dump raw P-code for a function (issue #192)
inspect_memory_content - Inspect memory bytes
list_analyzers - List available analysis plugins
run_analysis - Run auto-analysis on the current program
search_byte_patterns - Search for byte patterns
search_functions_enhanced - Advanced function search
search_instructions - Search for instructions by mnemonic and/or operand substring
Malware & Anti-Analysis
analyze_api_call_chains - Analyze API call chains
detect_crypto_constants - Detect crypto constants
detect_malware_behaviors - Detect malware behaviors
extract_iocs_with_context - Extract IOCs with context
find_anti_analysis_techniques - Find anti-analysis techniques
Cross-Binary Documentation & Archive
apply_function_documentation - Apply function documentation
archive_ingest_function - Ingest a single function's documentation into the cross-version archive (re_kb.functions on bsim Postgres)
archive_ingest_program - Bulk-ingest every function in a program into the cross-version documentation archive
batch_string_anchor_report - Report of source file strings and their FUN_* functions
bulk_fuzzy_match - Bulk cross-binary function matching
compare_programs_documentation - Compare documentation across programs
diff_functions - Diff two functions
find_similar_functions_fuzzy - Cross-binary fuzzy function matching
find_undocumented_by_string - Find undocumented functions referencing string
get_bulk_function_hashes - Get bulk function hashes
get_function_documentation - Export function documentation
get_function_hash - Get function hash
get_function_signature - Get function feature signature
merge_program_documentation - Bulk merge: copy all RE documentation (function names, signatures, plate comments, instruction comments at EOL/PRE/POST, non-default labels & global symbols) from one program to another at matching addresses
check_connection - Health check endpoint
get_version - Get plugin version
health - Health check endpoint for headless server (headless only)
mcp_health - HTTP server health: pool stats, uptime, memory, active request count (GUI only)
mcp_schema - Machine-readable API schema with endpoint metadata
tool_goto_address - Navigate CodeBrowser listing and decompiler to a specific address (GUI only)
tool_launch_codebrowser - Open a file in CodeBrowser, launching a new one if needed (GUI only)
tool_running_tools - List all running Ghidra tool windows (GUI only)
Emulation
emulate_function - Emulate a single function with controlled register/memory inputs
emulate_hash_batch - Brute-force API hash resolution
Ghidra Server & Version Control
server_admin_set_permissions - Set user permissions on a repository
server_admin_terminate_all_checkouts - Terminate all checkouts in a folder recursively
server_admin_terminate_checkout - Terminate all checkouts on a single file
server_admin_users - List all users on the server
server_authenticate - Register server credentials for programmatic authentication (GUI only)
server_checkouts - List all checked-out files in a folder, including server-side checkouts
server_connect - Report/establish the Ghidra server connection
server_disconnect - Disconnect from the Ghidra server
server_repositories - List repositories on the connected server
server_repository_create - Create a new repository on the server
server_repository_file - Get file info from a server repository
server_repository_files - List files in a server repository folder
server_version_control_add - Add a file to version control
server_version_control_checkin - Check in a version-controlled file
server_version_control_checkout - Check out a version-controlled file
server_version_control_undo_checkout - Undo a file checkout
server_version_history - Get version history for a file
Debugger (Ghidra TraceRmi)
On Windows hosts where the bridge's WinDbg debugger proxy is active (GHIDRA_DEBUGGER_URL), colliding names get a _2 suffix (e.g. debugger_status_2).
debugger_dynamic_to_static - Translate a runtime dynamic address from the current trace back to a static Ghidra program address (GUI only)
debugger_interrupt - Interrupt (break into) the running target (GUI only)
debugger_launch - Launch an executable through Ghidra's Trace RMI debugger launcher (GUI only)
debugger_launch_offers - List available debugger launch/attach options for the current program (GUI only)
debugger_list_breakpoints - List all breakpoints in the current trace (GUI only)
debugger_modules - List modules (DLLs/EXEs) loaded in the debugged process (GUI only)
debugger_read_memory - Read memory from the debugged process (GUI only)
debugger_registers - Read CPU registers from the current debug trace snapshot (GUI only)
debugger_remove_breakpoint - Remove a breakpoint at an address (GUI only)
debugger_resume - Resume execution of the debugged process (GUI only)
debugger_set_breakpoint - Set a software execution breakpoint at an address in the trace (GUI only)
debugger_stack_trace - Get the call stack backtrace for the current thread (GUI only)
debugger_static_to_dynamic - Translate a static Ghidra program address to a runtime dynamic address in the current trace (GUI only)
debugger_status - Get debugger status: active trace, thread, execution state, module count (GUI only)
debugger_step_into - Single-step into the next instruction (follows calls) (GUI only)
debugger_step_out - Step out of the current function (run to return) (GUI only)
debugger_step_over - Step over the next instruction (does not follow calls) (GUI only)
debugger_traces - List all open debug traces (GUI only)
System
prompt_policy - Temporarily enable, disable, or query scoped automation prompt handling (GUI only)
Defined in the Python bridge itself (instance discovery, tool-group management); always available even before a Ghidra connection. The bridge also proxies 22 debugger_* WinDbg tools when GHIDRA_DEBUGGER_URL points at the standalone debugger server.
check_tools - Report which tools are currently registered and callable
connect_instance - Connect the bridge to a specific Ghidra instance
import_file - Import a binary from disk into the current project and open it
list_instances - Discover running Ghidra MCP instances (UDS + TCP port scan)
list_tool_groups - List tool groups and their load state
load_tool_group - Register a tool group's dynamic tools with the MCP client
search_tools - Search the full tool catalog by keyword
unload_tool_group - Unregister a tool group's dynamic tools
See CHANGELOG.md for version history.
🏗️ Architecture
┌─────────────────┐ ┌─────────────────┐ ┌─────────────────┐
│ AI/Automation │◄──►│ MCP Bridge │◄──►│ Ghidra Plugin │
│ Tools │ │ (bridge_mcp_ │ │ (GhidraMCP.jar) │
│ (Claude, etc.) │ │ ghidra/) │ │ │
└─────────────────┘ └─────────────────┘ └─────────────────┘
│ │ │
MCP Protocol HTTP REST Ghidra API
(stdio/streamable-http) (localhost:8089) (Program, Listing)
Components
- python/bridge_mcp_ghidra/ — Python MCP server package (ships as the
ghidra-mcp-bridge wheel; bridge-mcp-ghidra console script) that translates MCP protocol to HTTP calls (253 catalog entries)
- GhidraMCP.jar — Ghidra plugin that exposes analysis capabilities via HTTP (239 endpoints)
- GhidraMCPHeadlessServer — Standalone headless server — 226 endpoints, no GUI required
- ghidra_scripts/ — Collection of automation scripts for common tasks
🔧 Development
Building from Source
# Recommended: direct Python-first workflow
python -m tools.setup ensure-prereqs --ghidra-path "C:\ghidra_12.1.3_PUBLIC"
python -m tools.setup build
python -m tools.setup deploy --ghidra-path "C:\ghidra_12.1.3_PUBLIC"
# Version bump (updates all maintained version references atomically)
python -m tools.setup bump-version --new X.Y.Z
The authoritative build system today is Maven. tools.setup, the VS Code tasks, and the documented deploy flow all build through pom.xml and write artifacts to target/. build.gradle remains in the repo as a manual fallback for direct Ghidra/Gradle users, but it is not the primary path.
Command Reference
Common flags accepted by most commands:
Deploy test tiers are opt-in because benchmark tiers can import/reset
Benchmark.dll and BenchmarkDebug.exe in the active Ghidra project. Use
--test release before cutting releases, or set
GHIDRA_MCP_DEPLOY_TESTS=release in a local .env when you want every deploy
on your machine to run the live benchmark regression. The value is validated
against the same tier list --test accepts, and an unknown tier is refused
rather than skipped. See Testing and Release Regression.
# Standard first-time setup and deploy
python -m tools.setup ensure-prereqs --ghidra-path "C:\ghidra_12.1.3_PUBLIC"
python -m tools.setup build
python -m tools.setup deploy --ghidra-path "C:\ghidra_12.1.3_PUBLIC"
# Preflight check before deploying
python -m tools.setup preflight --strict --ghidra-path "C:\ghidra_12.1.3_PUBLIC"
# Version bump and tag
python -m tools.setup bump-version --new X.Y.Z --tag
# Run offline Java tests
python -m tools.setup run-tests
# Show full help
python -m tools.setup --help
Project Structure
ghidra-mcp/
├── pyproject.toml # uv project (ghidra-mcp-bridge wheel + dependency groups)
├── python/bridge_mcp_ghidra/ # MCP server package (Python, 253 catalog entries)
├── src/main/java/ # Ghidra plugin + headless server (Java)
│ └── com/xebyte/
│ ├── GhidraMCPPlugin.java # GUI plugin (239 endpoints)
│ ├── headless/ # Headless server (226 endpoints)
│ └── core/ # Shared service layer (14 services)
├── ghidra_scripts/ # Automation scripts for batch workflows
├── tests/ # Python unit tests + endpoint catalog
│ ├── unit/ # Catalog consistency, schema, tool function tests
│ └── endpoints.json # Endpoint specification (225 entries)
├── docs/ # Documentation
│ ├── prompts/ # AI workflow prompts (V5 documentation workflows)
│ ├── releases/ # Version release notes
│ └── project-management/ # Contributor planning docs (Gradle migration, etc.)
├── tools/setup/ # Build and deployment CLI (python -m tools.setup)
├── fun-doc/ # Internal RE curation tool — not part of the MCP plugin
│ # Priority-queue worker, LLM scoring, web dashboard.
│ # See fun-doc/README.md for details.
└── .github/workflows/ # CI/CD pipelines
Library Dependencies
Ghidra JARs must be installed into your local Maven repository (~/.m2/repository) before compilation.
This is a one-time setup per machine, and again when your Ghidra version changes.
-Deploy now installs these automatically by default.
The tool enforces version consistency between:
pom.xml (ghidra.version)
--ghidra-path version segment (e.g., ghidra_12.1.3_PUBLIC)
If these do not match, deployment fails fast with a clear error.
Troubleshooting: Version Mismatch
If you see a version mismatch error, align both values:
pom.xml → ghidra.version
--ghidra-path version segment (ghidra_X.Y.Z_PUBLIC)
Then rerun:
python -m tools.setup preflight --ghidra-path "C:\ghidra_12.1.3_PUBLIC"
# Windows
python -m tools.setup install-ghidra-deps --ghidra-path "C:\path\to\ghidra_12.1.3_PUBLIC"
Required Libraries (14 JARs, ~37MB):
Note: Libraries are NOT included in the repository (see .gitignore). You must install them from your Ghidra installation before building.
Automation entry point:
python -m tools.setup is the supported setup/build/deploy/versioning interface
- use
ensure-prereqs, build, deploy, preflight, clean-all, and bump-version directly
- these commands currently use Maven as the canonical Java build backend
Development Features
- Automated Deployment: Version-aware deployment script
- Batch Operations: Reduces API calls by 93%
- Atomic Transactions: All-or-nothing semantics
- Comprehensive Logging: Debug and trace capabilities
📚 Documentation
Core Documentation
AI Workflow Prompts
Release History
🐳 Headless Server (Docker)
GhidraMCP includes a headless server mode for automated analysis without the Ghidra GUI.
Quick Start with Docker
# Build and run
docker-compose up -d ghidra-mcp
# Test connection
curl http://localhost:8089/check_connection
# Connection OK - GhidraMCP Headless Server v7.0.0
Headless API Workflow
# 1. Load a binary
curl -X POST -d "file=/data/program.exe" http://localhost:8089/load_program
# 2. Run auto-analysis (identifies functions, strings, data types)
curl -X POST http://localhost:8089/run_analysis
# 3. List discovered functions
curl "http://localhost:8089/list_functions?limit=20"
# 4. Decompile a function
curl "http://localhost:8089/decompile_function?address=0x401000"
# 5. Get metadata
curl http://localhost:8089/get_metadata
Key Headless Endpoints
Configuration
Environment variables for Docker:
GHIDRA_MCP_PORT - Server port (default: 8089)
GHIDRA_MCP_BIND_ADDRESS - Bind address (default: 0.0.0.0 in Docker)
JAVA_OPTS - JVM options (default: -Xmx4g -XX:+UseG1GC)
🤝 Contributing
See CONTRIBUTING.md for detailed contribution guidelines.
Quick Start
- Fork the repository
- Create a feature branch (
git checkout -b feature/amazing-feature)
- Build and test your changes (
./gradlew buildExtension -PGHIDRA_INSTALL_DIR=/path/to/ghidra, or mvn clean package assembly:single -DskipTests under the Maven backend)
- Update documentation as needed
- Commit your changes (
git commit -m 'Add amazing feature')
- Push to the branch (
git push origin feature/amazing-feature)
- Open a Pull Request
📄 License
This project is licensed under the Apache License 2.0 - see the LICENSE file for details.
🏆 Production Status
See CHANGELOG.md for version history and release notes.
🙏 Acknowledgments
This project was originally derived from LaurieWired/GhidraMCP in August 2025 and has since been substantially rewritten and extended. We acknowledge LaurieWired's original work as the starting point. See NOTICE for license attribution.
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Tooling provided by JetBrains through their Open Source Support Program.
👥 Contributors
This project has benefited from the work of dedicated contributors:
Core Contributors
@heeen — Significant contributions including:
- Fuzzy function matching and structured diff for cross-binary comparison (#13)
- Script execution improvements and bug fixes (#12)
- New API endpoints:
save_program, exit_ghidra, delete_function, create_memory_block, run_script_inline (#11)
- Architectural vision: annotation-driven design, UDS transport, Python bridge optimization proposals
@huehuehuehueing — Significant contributions including:
Address-space prefix support — added <space>:<hex> syntax (e.g., mem:1000, code:ff00) to address parsing across the entire endpoint surface, unlocking multi-space targets like embedded firmware (#84, closes #65)
Optional program parameter + required-param schema fixes — made program optional on every endpoint with a sane currentProgram fallback, and fixed several required-vs-optional schema bugs the catalog had inherited (#92)
Seeded #44 (data-type / enum tools) — the issue that motivated the v5.0 enum + struct enforcement layer
Ghidra Team - For the incredible reverse engineering platform
Model Context Protocol - For the standardized AI integration framework
Contributors - For testing, feedback, and improvements
- re-universe — Ghidra BSim PostgreSQL platform for large-scale binary similarity analysis. Pairs perfectly with GhidraMCP for AI-driven reverse engineering workflows.
- cheat-engine-server-python — MCP server for dynamic memory analysis and debugging.
Ready for production deployment with enterprise-grade reliability and comprehensive binary analysis capabilities.