The full upstream README, mirrored here for reference. Install config, tool schemas, adoption signals, and an original overview live on the Ghost listing page.
Verified control of the whole desktop, for agents and programs, on Windows and Linux. Ghost gives Claude Code, Codex, Cursor, any MCP harness, or a plain script the operating system's own control surface: the apps with no API, the windows, the shell, and the browser you are already logged into - in the background without taking your screen or cursor, with every action proven to have happened.
Like Playwright, but for the native desktop, and built for agents. Ghost does the perceiving, the acting, and the verifying; the model you are already running does any looking that is needed, so there is no vision API key to set.
One MCP surface, two engines: Win32 UI Automation on Windows, AT-SPI2 over D-Bus on Linux. The verbs, the locator tiers and the act-then-verify loop are written once and behave the same on both. Platform support · Linux setup
background. Since 0.20 it is also constructive: anything Ghost
starts (an app, a windowed browser) is born on a hidden desktop that has its own
input queue and cannot take your foreground, and the ordinary verbs drive it there
by window title. A call that truly has no background path fails naming the action
instead of quietly taking the screen. Since 0.22 the policy is locked there:
no tool call can raise it, so an agent cannot decide on its own to take your
mouse. You can, by setting GHOST_FOCUS_LOCK=off in the server's environment.
And since 0.23 a window that grabs the foreground on its own - browsers do, on
their own accessibility calls - is handed straight back, so your typing keeps
going where you are looking. Measured on a real desktop with a person typing
throughout: of roughly 490 keystrokes a run, zero to one reached the window
the agent was driving.
(how)ghost verify drives the real MCP server over
stdio and audits every claim above against hard timing budgets, exiting non-zero
if any of them does not hold on your hardware.verified / focus_confirmed - never a
blind ok:true. Agents fail by acting and not knowing if it worked; Ghost closes
that loop.ghost_see (every element with
its name, role and on-screen centre) or ghost_screenshot itself. Ghost's own
vision tier is optional, exists for callers with no model of their own, and is off
until configured.See it in one script: examples/background_agent_demo.py
drives an app in the background while the foreground stays yours.
Honest comparison vs Playwright-MCP / cua-driver / Computer Use:
docs/comparison.md.
Vision is the smallest part of it. In a typical session an agent calls Ghost mostly to act, to manage windows and processes, to run commands, and to read state back.
| Use | Tools | Typical caller |
|---|---|---|
| Driving apps with no API: installers, legacy line-of-business software, vendor portals, WPF and Electron tools | ghost_act, ghost_key, ghost_scroll, ghost_drag | agents, RPA scripts |
| Window and process control: launch invisibly, focus, minimize, restore, close, recover hidden windows, sweep orphaned browsers | ghost_window, ghost_desktop_*, ghost_stats | agents, ops scripts |
| A terminal for the agent: builds, git, CLIs, persistent PowerShell state, spawning another Claude Code session | ghost_shell, ghost_run | coding agents on Windows |
| Driving the browser you are already signed into, through its DevTools port: tabs, navigation, DOM clicks, JS eval, page text | 19 ghost_browser_* and ghost_tab_* tools | agents, web automations |
| Reading data out of apps with no export: accessibility text, tab text, OCR | ghost_see mode=text, ghost_tab_text | agents, reporting scripts |
| Making "did it work" a machine check: element exists, value equals, wait for idle or text | ghost_assert, ghost_wait | QA agents, CI |
| Isolated desktops: overnight GUI work and parallel agents that never touch the human's screen | ghost_window op=launch, the focus policy, ghost_desktop_* | autonomous runs |
| Reproducible multi-step flows with retries and conditions, no model in the loop | intents via ghost run, POST /run, ghost_execute_intent | scheduled jobs |
| The clipboard as a bridge into apps that resist typing | ghost_clipboard | all of the above |
Every row runs under the same guarantees: the action returns verified, the
default policy never takes your foreground, and Ctrl+Alt+G stops every Ghost
process at once.
Ghost is the layer between a model and the desktop. The model reasons; Ghost sees the screen the way the operating system does, acts on real controls without touching your foreground, and reports whether the action took. It gives programmatic control over any desktop application - native Win32, Electron, WPF, UWP, GTK, Qt, or otherwise - to an agent, a script, or a program.
On Windows it uses UI Automation for element discovery, SendInput for keyboard/mouse injection, and DXGI/GDI for screen capture. On Linux it uses AT-SPI2 over D-Bus for discovery and actions, XTEST (X11) or the RemoteDesktop portal / uinput (Wayland) for input, and X11 GetImage or the Screenshot portal for capture. The Linux engine is pure Rust - no -devel packages to install.
Ship it three ways:
ghost-mcp server - the primary surface: a Model Context Protocol server for
Claude Code, Claude Desktop, Codex, Cursor, and any MCP client (54 tools on Windows)ghost CLI - one-shot commands, great for scripts and CI (ghost click --name "Submit")ghost-http server - local REST API, call it from Python, Node, curl, anything (curl http://127.0.0.1:7878/list-windows)The MCP surface is 20 desktop verbs, 19 ghost_browser_* / ghost_tab_* tools for
driving individual browser tabs in the background (Chrome, Comet, Edge, Brave), and
15 Windows-only tools: the focus policy plus ghost_desktop_* for explicit control of
isolated Windows desktops the user never sees. Under the default policy you rarely
need the latter: ghost_window op=launch already starts the app on the hidden
desktop auto, and ghost_see / ghost_act / ghost_key / ghost_scroll reach it
with window=<title> exactly as they reach a window on your own desktop
(target.surface in the response tells you which). UIA, window messages and capture
work fully there. Real SendInput does not, because Windows refuses it off the
input desktop, and typing is proven by reading the control's value back, so a target
that drops posted characters returns an error rather than a false success. The
desktop verbs and the browser tools build on Linux as well; the focus policy and
hidden desktops are Windows-only.
No Claude required. No browser required. No CDP. It drives apps through the OS's own automation and input APIs, so it works with native apps that have no API and no automation hooks of their own - the same reliability whether or not an app was built to be automated.
| Platform | Status | Engine |
|---|---|---|
| Windows | ✅ full and verified | ghost-core - Win32 UI Automation, SendInput, posted window messages, DXGI/GDI capture |
| Linux, X11 | ✅ functional - verified by live CI tests against a real GTK app | ghost-linux - AT-SPI2 over D-Bus, XTEST input, X11 GetImage capture |
| Linux, Wayland | ⚠️ implemented, NOT verified - no test has run it on hardware | same AT-SPI2 discovery and actions; input and capture go through the RemoteDesktop / Screenshot portals or uinput instead |
| macOS | 🚧 scaffold | Accessibility + CGEvent + ScreenCaptureKit - to be built on a Mac |
Wayland deserves the separate row rather than a footnote: it is the default
session on current Ubuntu and Fedora, so it is what most Linux users would
actually run, and it is the part with no test behind it. The discovery and
action layer is shared with X11 and is covered, and it is the layer that
matters most here - AT-SPI2 asks the application to do the thing, so there is
no pointer to move and no window to raise. What is unverified is the fallback
underneath: portal input, portal capture, uinput. If you run Wayland, treat
ghost doctor as the first thing to run and expect to file bugs. Reports are
welcome and are the fastest way that row changes.
ghost-session and ghost-mcp are shared: the locator tiers, grounding cascade,
act-then-verify loop and the 20 core MCP verbs are written once and run on both
platforms. Only the engine underneath changes, behind a one-line cfg alias. The
browser and tab tools are engine-independent and build for both; the focus policy
and isolated desktops are Windows-only and are reported as such rather than faked.
The wedge survives the port. On Windows, driving an app without stealing focus is built on posted window messages. Linux has a cleaner analogue in AT-SPI2 actions: the application performs the operation through its own toolkit, so there is no pointer to move and no window to raise. That layer is the same code under X11 and Wayland; synthetic input is only the fallback beneath it, and the fallback is the part Wayland has not been tested on.
This is tested, not asserted: CI stands up a real desktop (Xvfb + D-Bus + at-spi-bus-launcher), drives a real GTK application, and requires that text written through AT-SPI reads back from the app and that invoking a button actually dismisses the dialog. Wayland portal input and capture are implemented but not yet verified on hardware.
Linux setup, verification checklist and honest limitations:
docs/linux-fedora.md. Capability matrix across all
three: docs/cross-platform.md.
Ghost is a general-purpose automation tool. Use it on systems you own or are authorized to automate, and in line with the terms of the software you drive.
One-click - MCP Bundle (free). Every release ships ghost-windows-x64.mcpb and
ghost-linux-x86_64.mcpb on the Releases page.
Open one in a client that supports MCP Bundles (Claude Desktop: Settings -> Extensions ->
Install from file) and Ghost is registered, no PATH or config editing, and no API key. Ghost is also listed in
the MCP registry as io.github.NORTHTEKDevs/ghost,
so registry-aware clients can install it from there. The bundle holds the ghost-mcp server
only; the CLI and HTTP server are in the archives below.
Prebuilt binaries (free). Every release ships signed-by-checksum archives for both platforms on the Releases page:
Windows: download ghost-windows-x64.zip from the same page. Verify the
checksum, unzip, and add the folder to your PATH. Then run ghost doctor.
Check where a download came from. Every release artifact carries a signed build provenance attestation, so you can prove a file came out of this repository's release workflow and nowhere else, at a named commit:
The binaries are not code-signed yet, so Windows SmartScreen will warn you on first run (click More info
→ Run anyway). That warning is about publisher identity, which needs a paid certificate tied to a verified legal
entity; the attestation above is the stronger statement about origin and costs nothing, but Windows does not read it.
The pipeline signs the moment a certificate is configured, from any CA - see
docs/code-signing.md, and
docs/signing-policy.md for what gets signed, by
whom, and what leaves your machine (nothing, unless you configure a vision key). If an antivirus engine quarantines a release, verify the
checksum and see docs/antivirus.md for what the binaries do to stay recognisable and how
to report a false positive. The kit buys convenience, not capability - everything Ghost can do is in the free source
below, and building it yourself takes one command.
Option C - Build from source (free, MIT). Ghost is open source. Compile it yourself:
Requirements: Windows 10 build 19041+, or Linux with at-spi2-core (and Rust
stable only if building from source).
On Linux:
No -devel packages are needed - the Linux engine is pure Rust. Full setup and
troubleshooting: docs/linux-fedora.md.
Check your machine first:
Reports PASS/WARN/FAIL and exits 1 if anything is FAIL. Run it before opening an issue - it usually names the problem outright.
This is the path Ghost is built for. Nothing to configure and no API key.
Claude Desktop: download ghost-windows-x64.mcpb (or the Linux bundle) from the
latest release and open it:
Settings -> Extensions -> Install from file.
Claude Code:
Any other MCP client (Codex, Cursor, a custom harness): register the binary as a stdio server.
Ghost is also listed in the MCP registry
as io.github.NORTHTEKDevs/ghost for clients that install from there.
The repo's Dockerfile builds a headless image (docker build -t ghost-mcp .) that
answers initialize and tools/list with no display; registries and CI use it to
introspect the server. A container has no windows to drive, so it is not an install
path for real use.
How an agent uses it. The loop is look, act, confirm:
ghost_see window="Invoice Editor" - every element in the window with its name,
role, enabled state, and on-screen centre. Text mode extracts the readable text
instead, roughly ten times cheaper in tokens than an image.ghost_act window="Invoice Editor" name="Save" action="click" - Ghost drives the
control in the background and returns verified: true only when the screen or
the control's value shows the action took.ghost_screenshot window="Invoice Editor" - pixels, for the moments a layout,
a chart, or a canvas needs the model's own eyes.The model reads step 1 and step 3 and chooses; Ghost never has to guess what a picture means, and no vision key is involved.
Beyond the loop: ghost_shell runs commands and persistent PowerShell sessions,
ghost_window launches, lists, focuses, restores and closes windows (on a hidden
desktop by default), ghost_assert and ghost_wait turn "did it work" into a
check, and the ghost_tab_* tools drive the browser you are already signed into.
Most real sessions spend more calls there than on looking.
54 tools on Windows (legacy names stay dispatchable): 20 desktop verbs covering
see/snapshot/find/act/keys/scroll/drag/clipboard/screenshot/windows/shell/waits/query/run,
19 ghost_browser_* / ghost_tab_* tools, and 15 Windows-only tools for the focus
policy and isolated desktops. Building from source instead of downloading:
cargo build -p ghost-mcp --release.
Every tool runs on its own task, so a slow call does not block a fast one, and a
second Ghost process can run alongside the first. Once it is mounted, run
ghost verify to audit that on your own machine.
Speed. Ghost's own time is small: about 75 ms for a text read, 200 ms for
a verified click, 1 ms to list windows. What makes an agent session slow is
what happens around the calls, and three habits remove most of it. Name the
window once and omit window= afterwards: the anchor follows that window by
handle, and a title it used to have still resolves instantly with
title_drift in the response. Wait for a condition, not a duration:
ghost_wait for=element, for=value, and for=navigate (sets the address
bar in the background and returns when the title changes, about 0.4 to 1.4 s
where a fixed sleep costs 6) return the moment the thing happened. Batch with
ghost_run so one model turn does several steps. scripts/speed-probe.mjs
measures all of this against any ghost-mcp binary.
ghost_shell)Ghost drives GUIs and the command line. ghost_shell runs terminal commands and
persistent PowerShell sessions - builds, git, CLIs, file edits on hosts without file
tools, or launching apps. op=run is a one-shot (powershell/pwsh/cmd); op=open
starts a persistent PowerShell whose variables and cwd survive across op=send calls.
Output is merged stdout+stderr, tail-capped for the agent's context window; a timed-out
command keeps running and is drained with op=read; ghost_stop kills a runaway.
op=run with the default powershell is served from a pre-spawned spare process, so
a command costs about 85 ms instead of the 230-450 ms a fresh PowerShell start takes
(the spare is single-use and replaced immediately; GHOST_SHELL_WARM=off disables it).
Spawn a fresh Claude Code session from the agent:
ghost_shell op=run cmd='Start-Process wt -ArgumentList "pwsh","-NoExit","-Command","claude"',
then drive the new terminal window with ghost_see / ghost_act / ghost_key.
Security: shell access is powerful. Set GHOST_SHELL=off in the server's env to
disable the verb entirely - every op then returns a clear refusal, leaving the GUI
automation verbs fully usable.
Everything outputs JSON for easy piping into jq or scripts.
Start the server:
Then from any language:
Endpoints: /health, /tools, /click, /click-at, /type, /press, /hotkey, /screenshot, /launch, /list-windows, /focus-window, /window-state, /describe, /clipboard (GET/POST), /run.
Desktop automation driven from an MCP client has a hostile focus environment: between tool calls, the client's own terminal usually retakes OS focus. Ghost is built for that:
ghost_act is atomic - find → act → verify via screen delta. One call, no
cross-call race. Under the default background policy it drives the control in
place and never raises the window; raise the policy and it additionally brings the
target's window to the foreground first (AttachThreadInput, confirmed).verified (did the screen actually change),
focus_confirmed (was the right window foreground), and a warning when either is off -
never a blind ok:true. Check verified before re-issuing an action.dies_with_server on the launch response). At startup the server also sweeps
browsers abandoned by earlier servers and reports them in
ghost_stats.orphan_sweep.ghost_see, ghost_find, ghost_act, ghost_key,
ghost_click_at, ghost_scroll, ghost_wait, ghost_assert and ghost_screenshot
(unless full=true) all take window
(a title substring, resolved across your desktop and Ghost's hidden desktops: exact
title beats prefix beats substring, a window that is not minimised wins ties). The
match becomes the session anchor: later calls without window target it, never
the window the human happens to be using. ghost_window op=focus anchors without
raising under the background policy; op=anchor sets, clears or reports it; every
response carries target {hwnd, title, surface, source}. A title that matches
nothing lists the open windows and returns code -32007.--remote-debugging-port (Comet, Chrome, Edge, Brave), the same anchored verbs
route through the DevTools protocol instead of UI Automation: DOM names and
aria-labels rather than a sparse tree, selectors that survive re-renders, trusted
input events into that renderer, full modifier combos, and focus emulation so pages
that check document.hasFocus() still accept typing. Nothing about it can reach your
foreground. The response carries route: {browser, port, tab} and coords: viewport;
a browser without a port keeps the UI Automation path unchanged. GHOST_CDP_ROUTE=off
turns it off. Start Comet or Chrome once with --remote-debugging-port=9333 to get it.ghost_see
to learn what the app calls the thing.index selects the nth match when several elements share a
name/role (multiple "Close Tab" buttons); responses carry a matches count.ghost_stats reports
the tally, so the headline claim is proven continuously, not once.ghost_see mode=text extracts a window/page's readable text
straight from the accessibility tree: faster and ~10x cheaper in tokens than images.ms, and escalated: true flags when a
find had to pay a network VLM round trip (local tiers: cache → UIA → OCR are all on-device).ghost_window list (with state)
and op=focus auto-restores them. A window that something hid outright (not visible,
not minimized) shows up with op=list include_hidden=true as state: "hidden", and
op=state state=restore brings it back without activating it. op=state also
reaches windows on Ghost's own hidden desktops, so an app started with op=launch
can be closed by name.ghost_stop preempts the in-flight call the moment it arrives
(dedicated stdin reader), and Ctrl+Alt+G remains the OS-level kill switch.Agent harnesses (OpenClaw, Hermes/cua-driver, and any MCP client) mount a computer-use tool to let an LLM operate the desktop. Ghost is that tool - and it acts without stealing your focus or moving your cursor, so an agent drives an app while you keep working in another window.
Since 0.19 this is the default and it is enforced. The process-wide focus policy
starts at background, and every primitive that could only work by taking the real
cursor or foreground window is gated behind it. There is no silent fallback: a call
with no background path returns an error naming the action and the route that
needs no policy change (launch the app on the hidden desktop, or the browser over
CDP).
Since 0.22 the policy is also locked there. A default is only a promise if the
agent cannot flip it, and until 0.22 any agent could call ghost_set_focus_policy foreground the moment a background action was refused, which is exactly when a
human notices Ghost moving the mouse. Now that call is refused too, with an error
that says so. The key is the operator's, not the agent's: set
GHOST_FOCUS_LOCK=off in the MCP server's environment (the host config you
write) to allow prefer_background and foreground again, and optionally
GHOST_FOCUS_POLICY to start there. ghost_focus_policy reports the policy and
whether it is locked; the server logs both at start.
Ghost has two settings that decide how much of your computer an agent gets. Installing the bundle shows both as checkboxes; running the binary directly, they are environment variables. The server prints where it stands on both at start-up, so the host's log always answers the question.
| Setting | Default | What "on" means |
|---|---|---|
Keep Ghost off your mouse and keyboard (GHOST_FOCUS_LOCK) | on | The agent can never raise the focus policy, so it drives windows in the background and cannot take your cursor. Turn it off only if you want an agent to use your real input. |
Allow shell commands (GHOST_SHELL) | on | ghost_shell runs programs with your account's rights, which is how an agent runs builds, git and scripts - and it is why most agents use Ghost. It is full access to the machine. Turn it off and every shell call refuses; windows, screen reading and input still work. |
The shell is on by default deliberately. It is the capability, not a bonus, and a tool that quietly ships without the thing people install it for is worse than one that tells you plainly what it can do. If that is more than you want to hand over, the checkbox is right there and the refusal is explicit.
A locked policy still leaves one thing outside Ghost's control: an application
can activate its OWN window, and Chromium does exactly that when an agent types
into a page or clicks a button through the accessibility API. Nothing outside
the browser can stop that call. So since 0.23 Ghost undoes it. The interference
audit doubles as a sentinel: it is told the moment any window takes the
foreground (a Windows event, about a millisecond) and hands it straight back
unless you chose that window yourself - by clicking it or alt-tabbing to it,
which it can tell apart from typing because it watches for REAL input, not
synthesized input. ghost_session_state reports how often that happened
(foreground_handed_back).
How well it works, measured with an independent observer while a person typed
into another window for the whole run (scripts/background-desktop-probe.mjs,
scripts/interference-watch.ps1):
| before 0.23 | now | |
|---|---|---|
| keystrokes delivered to the wrong window | 48 | 1 in six runs of ~493 |
| how soon a stolen foreground is noticed | never | ~1 ms |
Since 0.23.2 the foreground is watched by event rather than by polling, so the hand-back starts about a millisecond after the window takes it. Six clean runs with a person typing throughout gave 0, 0, 0, 1, 0 and 0 keystrokes into the window Ghost was driving. It is not a guarantee - undoing an activation can never be one - and for a guarantee let Ghost start the app, so the activation never happens at all.
For zero activation rather than a brief one, let Ghost start the app: anything it launches lives on a hidden desktop with its own input queue and cannot take your foreground at all, and a browser it launches is driven over CDP.
ghost_window op=launch, ghost_run launch
steps and ghost_browser_launch mode=windowed start on a hidden desktop with its
own input queue, and the window is anchored so the next ghost_see shows it. An
independent observer sampling the foreground at 100 ms across a full
launch-drive-close run reported zero changes.BM_CLICK / WM_LBUTTONDOWN·UP (click), WM_SETTEXT (type) and
WM_MOUSEWHEEL (scroll). These do not activate the window.Invoke for
a click, ValuePattern for typing. Chromium answers some of these by activating
its own window when Windows lets it (right after you used that browser): measured
on Edge, a SetValue on a web input or the address bar, an Invoke on a page
button and a posted click all pulled the window forward within ~90 ms. Since
0.21.10 that is undone on the spot: Ghost watches the foreground around every
user-desktop verb, and when the target or any window of its process takes it,
hands it back to the window you had, in 30 to 50 ms, and reports
focus_preserved: false with a focus_guard record saying so. Posted single
keys reach the page's focused element and do not activate anything.ghost_shell now creates its shells with
an invisible console; children inherit it and no window ever appears. Measured:
nine foreground changes in seven seconds before, zero after, output unchanged.type is confirmed by reading the control's
value back; click by a PrintWindow before/after delta that renders a window
that isn't visible. Every response carries verified, focus_preserved,
cursor_preserved - Ghost never claims a background action it can't confirm.window=<title> calls; target.surface: "hidden" is the only
difference. Chromium and Electron windows there are driven by posted messages
rather than UIA actions (Chromium services Invoke/SetValue on a non-composited
desktop only after a ~2 s internal wait; a posted click lands in ~100 ms), and pixel
verification is skipped for them because a software render there costs seconds -
confirm through ghost_tab_eval or ghost_see. Real SendInput still does not
work on a hidden desktop (Windows refuses it off the input desktop), so an app that
answers only real hardware input needs the foreground policy on your own desktop.surface: "user" with a
warning rather than claiming the app is hidden.Supports click, type, double_click, right_click, hover and scrolling, plus
ghost_key for single keys (Enter/Tab/F-keys/char via WM_KEYDOWN/WM_CHAR). The
background: true flag is accepted for compatibility; it is the default behaviour.
The clipboard and edit combos work in the background too - Ctrl+C, Ctrl+X, Ctrl+V,
Ctrl+Z and Ctrl+A are sent as the semantic messages an app actually implements
(WM_COPY, WM_CUT, WM_PASTE, WM_UNDO, EM_SETSEL) rather than as a posted
modifier that apps reading GetKeyState would ignore. Combos outside that set are
rejected rather than silently dropped, because posting cannot set the modifier state
those apps read; use the foreground policy for them.
Ghost is eyes and hands, not a brain. When a model drives it over MCP, that model
does the looking: ghost_see gives it the window as structured elements with
coordinates, ghost_see mode=text gives it the readable text, and
ghost_screenshot gives it pixels when the structure is not enough. Claude, GPT,
Gemini, and the strong open-weight vision models all read those directly. There is
no key to set and nothing to configure, and Ghost never has to interpret an image
on the model's behalf.
The optional built-in vision tier exists for callers that have no model of their
own - the CLI, the HTTP API, an intent file - and for the convenience of a
description target (ghost_find description="the blue Submit button") when you would
rather have Ghost resolve it than read the tree yourself. It works with any
tool-capable vision model behind an OpenAI-compatible endpoint (OpenAI, Gemini, Groq,
NVIDIA, or a local vLLM / Ollama / LM Studio server) or Anthropic. Point
GHOST_VISION_BASE_URL and GHOST_VISION_MODEL at the endpoint and set
GHOST_VISION_API_KEY (a keyless local server needs only the base URL). Without it,
description targets return a clear error naming the alternative; every other tool is
unaffected.
Press Ctrl+Alt+G at any time to immediately halt every acting call. Read-only
queries (ghost_see, ghost_snapshot, ghost_window list) keep answering, so you
can still inspect what happened while everything is stopped.
Local\ghost-emergency-stop-event), so one press halts every Ghost process in
your logon session, not just the one that happened to register the hotkey.
ghost_reset resumes service, again for all of them.From the CLI: ghost click --name "Save" or ghost click --role button.
Write reproducible multi-step flows as JSON. The FSM executor supports retries, timeouts, and JSONLogic conditions for abort_if / retry_if.
Run with ghost run flow.json, POST /run, or ghost_execute_intent over MCP.
Supporting crates: ghost-cache (UIA snapshot + delta), ghost-intent (FSM +
JSONLogic executor), ghost-ground (the locator tier cascade), ghost-platform
(the capability matrix reported per OS).
This section describes the optional tier above; an agent driving Ghost over MCP
gets the same information from ghost_see and does not need it.
When you locate an element by natural-language description (ghost_find description="the blue submit button", or when a name/text lookup misses and
escalates to the VLM), Ghost does not ask the model to guess pixel
coordinates - models are unreliable at that (in testing, a plain "give me the
coordinates of the equals button" landed ~250px off the target). Instead it uses
Set-of-Marks: it overlays numbered badges on the window's detected elements,
sends that marked screenshot plus each badge's accessible-name label, and asks
the model which number matches. The number maps back to that element's exact
rect, so the result is a real on-element coordinate, not a regression guess.
In a live check on Calculator, four descriptions ("the equals button", "the plus button", "the number seven key", "the multiply button") each landed exactly on the correct button - versus ~250px off with coordinate regression.
Honest scope: when detected elements carry accessible names (most apps), the labels do much of the disambiguation; for unlabeled icons the model leans on the badge's visual position/appearance.
Canvas / no-accessibility-tree apps. When the UIA tree is sparse (custom-drawn
UIs, remote-desktop surfaces, game canvases), Ghost augments the Set-of-Marks
candidates with a built-in CPU classical-CV detector (ghost_ground::cv_detect):
edge density → connected components → size/aspect filter, no GPU and no model
download. It gives the VLM real boxes to pick from where the accessibility tree
has nothing. It is coarser than a trained detector - an optional OmniParser ONNX
tier (--features yolo + GHOST_YOLO_MODEL) plugs into the same Set-of-Marks
path when a GPU model is available. The CV-marks → VLM-pick end-to-end needs a
configured vision key.
bench/ holds a reproducible end-to-end benchmark: it drives the real
ghost-mcp binary through 14 Windows desktop tasks and scores each by
re-observing the actual result (does the Calculator display really read 42?
is the typed value really present?), never by trusting a tool call's return.
Latest run (see bench/results/latest.md):
14/14 tasks passed (100%), median ~2.7 s per task (full wall-clock incl. app launch) - perception, click/keyboard action+verify, waits, window management (list/minimize/restore), text extraction, disambiguation, flow chaining, clipboard round-trip, structured errors, element screenshots, and value assertions.
And it proves it can fail: --self-test runs deliberately-wrong negative
controls (assert the display reads 99 when it reads 42, etc.) and passes only if
the harness scores every one as FAIL - so the green run above is a real signal,
not a rubber stamp.
Reproduce on any Windows 10/11 machine:
bench/soak.py drives many act-then-verify cycles and gates on the signals unit
tests can't see: how often verified comes back null/false, focus-loss rate,
error rate, whether each action's real effect happened (the display is
re-observed, never trusted from the return), and latency percentiles.
Latest (160 acts): PASS - verify-null 0.0, focus-loss 0.0, effect-mismatch 0 (100% correct), p50 85ms / p95 117ms. See
bench/results/soak.md.
We deliberately publish only Ghost's own measured numbers - never invented
columns for other tools. bench/README.md gives an honest protocol for
comparing against Playwright-MCP / Computer Use / UI-TARS, and explains why a
naive same-suite comparison isn't apples-to-apples (Playwright is browser-only;
vision agents need an API + VM).
| Operation | Measured |
|---|---|
| Region capture, GDI, any size | ~16.5 ms |
| Region capture, DXGI, 1600x900 | ~70-83 ms |
| BGRA→RGBA convert, 400x300 region | ~206 µs |
| JSONLogic eq/var | 32.2 ns |
| Intent compile (3op) | 1.49 µs |
End-to-end capture measurement (release, crates/ghost-core/tests/capture_latency_probe.rs)
corrected the v0.10.0 assumption: the DXGI acquire dominates and hits a cliff on
large windows, so region captures (act-verify, screenshots, Set-of-Marks) route
through flat ~16.5ms GDI BitBlt in v0.11.0; full-screen still uses DXGI. Run the
convert microbench: cargo bench -p ghost-core --bench convert. Older baselines:
docs/benches/v030-baseline.md.
at-spi2-core and a desktop session (X11 or Wayland);
xdg-desktop-portal-gnome additionally for Wayland input and captureghost_browser_* / ghost_tab_* tools only; the desktop verbs need noneMIT - Copyright 2026 Northtek