MCP 3D Printer Server
This MCP server lets an AI agent control 3D printers, manipulate STL meshes, slice models, and bridge to Blender for model edits.
Control printers across OctoPrint, Klipper, Duet, Repetier-Server, Bambu Lab, PrusaLink/Connect, and Creality: check status, list files, upload/start G-code, cancel prints, set bed/nozzle temperatures.
Manipulate STL files: inspect dimensions, scale, rotate, translate, extend base, merge vertices, center, lay flat, modify sections, generate multi-angle SVG previews.
Slice models with PrusaSlicer, Slic3r, OrcaSlicer, CuraEngine, FULU OrcaSlicer-bambulab, and Bambu Studio; manage slicing templates and inspect slice settings.
Print Bambu Lab 3MF projects with AMS mapping and calibration flags; inspect FULU Orca setup; run guarded BambuNetwork bridge RPC diagnostics.
Use Blender MCP: inspect connection, call Blender tools, export verified STL from scene objects, apply edits like decimate/remesh/boolean union.
Safety: every print start and positive heating command is inspected, temperature ceilings checked, and human confirmation required via MCP elicitation.
Access printer status and files as MCP resources.
Allows Claude to connect with Bambu Lab 3D printers to get printer status, manage files, upload G-code files, and monitor printing through their MQTT and FTP interfaces. Compatible with X1C, P1S, P1P, A1, and other Bambu Lab printers.
Allows Claude to connect with Creality/Ender 3D printers through the Creality Cloud management system to control and monitor Ender series, CR series, and other Creality printers with network capabilities.
Allows Claude to interact with OctoPrint-managed 3D printers to get printer status, list and upload files, start/cancel print jobs, and set temperatures through OctoPrint's REST API.
Click on "Deploy Server".
Wait a few minutes for the server to deploy. Once ready, it will show a "Started" state.
In the chat, type
@followed by the MCP server name and your instructions, e.g., "@MCP 3D Printer Serverslice this STL file with default settings for my Bambu printer"
That's it! The server will respond to your query, and you can continue using it as needed.
Here is a step-by-step guide with screenshots.
MCP 3D Printer Server
Thank you, FULU Foundation, Louis Rossmann, and the OrcaSlicer-bambulab contributors. Thank you for standing up for consumer ownership, open-source developers, repair rights, and owners whose working hardware should not be made worse by locked-down software.
This server treats the FULU OrcaSlicer-bambulab fork as a first-class slicer for Bambu Lab projects. See the FULU guide for setup and current status.
An MCP server that connects Claude, Codex, and other MCP clients to 3D printers running OctoPrint, Klipper (Moonraker), Duet, Repetier-Server, Bambu Lab, PrusaLink or Prusa Connect, and Creality. Your agent can check status, upload and start jobs, cancel prints, edit STL meshes, run your slicer, and hand models to Blender through an optional Blender MCP bridge.
Browse the documentation site for searchable setup guides, per-printer credentials, slicing, and the full tool reference. It is generated from this README and the docs folder.
Only print on Bambu Lab printers? bambu-printer-mcp is a Bambu-focused fork of this project with more Bambu features, including AMS inventory and matching, camera snapshots, X2D support, and a Claude Desktop extension.
Built with help from our contributors. Thank you to everyone sharing fixes, careful bug reports, and real printer testing!
Set up with your agent
Tell your agent which printer system you use (OctoPrint, Klipper, Bambu Lab, Prusa, and so on) and its address, if you know them, then copy and paste this:
Install mcp-3d-printer-server in the agent/harness I'm using now.
Read https://github.com/DMontgomery40/mcp-3D-printer-server/blob/main/docs/SETUP.md
for the current setup instructions and supported printer backends.
Detect my OS and harness, then use its native MCP configuration or installer.
Preserve my existing servers and settings. Prefer the published npm package
(npx -y mcp-3d-printer-server, stdio); use Node.js 24 if a runtime is needed.
Ask which printer system I use and set PRINTER_TYPE to match. Never guess it.
Then ask only for the values that backend needs:
- octoprint: PRINTER_HOST, PRINTER_PORT if not 80, API_KEY
- klipper (Moonraker): PRINTER_HOST, PRINTER_PORT (usually 7125)
- duet: PRINTER_HOST, PRINTER_PORT if not 80
- repetier: PRINTER_HOST, PRINTER_PORT (usually 3344), API_KEY
- bambu: PRINTER_HOST, BAMBU_SERIAL, BAMBU_TOKEN (the LAN access code),
and BAMBU_MODEL
- prusa: PRINTER_HOST (PrusaLink address or connect.prusa3d.com), API_KEY
- creality: PRINTER_HOST, PRINTER_PORT if not 80, API_KEY (bearer token)
For Bambu Lab, confirm the exact printer model with me; never guess it, and
explain any LAN Only Mode or Developer Mode setting I need to enable.
Keep keys, tokens, and access codes in local/private configuration; do not
repeat them in chat.
Bambu Lab has the most hardware testing. The other backends use each
system's HTTP API and rely on community reports, so tell me plainly if a
backend does not respond as the guide describes.
Offer these optional extras, and set them up only if I choose them:
- Blender MCP for model edits: uvx mcp-for-blender (formerly blender-mcp,
which now installs it as a compatibility wrapper). Its Blender addon must be
installed, enabled, and connected inside Blender.
- A slicer for slice_stl: look for an installed PrusaSlicer, OrcaSlicer,
FULU OrcaSlicer-bambulab, Bambu Studio, or CuraEngine before suggesting
an install.
Configure executables in the server environment. Do not enable
MCP_ALLOW_EXECUTABLE_ARG. Leave print confirmation on: do not set
PRINT_REQUIRE_CONFIRMATION=0 or BAMBU_REQUIRE_CONFIRMATION=0 unless I ask
for a headless setup.
Verify that the MCP initializes, lists its tools, and reads printer status.
Do not start a print or change printer settings, including temperatures, as
a setup test. Tell me what worked and whether I need to restart or reload
the harness.Setup reference · Printer backends · Slicing guide · Blender MCP
Related MCP server: printd
What to ask your agent
Ask for the result you want, not the steps. Current models plan across tools: they search the web, read photos, look up exact dimensions, edit models, slice, and print. Expect a question or two when a choice matters, such as which printer or filament to use, or whether to start the print.
This server provides the printer, slicing, and mesh tools. Web search, photos, and Blender edits come from your agent and its other connections, such as a Blender MCP server. What your agent can read back depends on the printer system; see printer backends.
Start from anything
"Here's a phone case on MakerWorld. Make it fit my iPhone 17 Pro Max and print it."
Your agent reads Apple's dimensional drawings, refits the case in Blender around the new camera and buttons, checks the fit, exports a verified STL, slices it for your printer, and asks before it starts the print. See it worked through."Can you print a replacement?" (with a photo of a snapped cabinet clip)
It asks for a measurement or two where the fit matters, models the part, and prints it on the printer you choose."Make this bracket 20% bigger and give it a thicker base."
It scales the STL, extends the base, and reports the new dimensions before it slices anything.
Check on any printer
"How far along is the Bambu print?"
It requests a fresh status report and gives you progress, the current layer, and time remaining."Is the Prusa done yet?"
It reads the printer's status through PrusaLink and reports its state and job progress."What are the bed and nozzle temperatures on the OctoPrint printer?"
It reads OctoPrint's printer state, including current and target temperatures."The first layer isn't sticking. Cancel it."
It sends the cancel command through that printer's backend, then checks the printer's status.
Slice and print
"Print this in PETG." (with an STL)
It slices with the PETG filament profile you've set up and checks the job's peak temperatures. The server then asks you to confirm before the print starts."Print the bracket I sliced last night on the Bambu."
It checks the plate's model, nozzle, bed type, materials, and temperatures against the live printer, then asks you to confirm before it uploads and starts the job."Send benchy.gcode to the Klipper printer, but don't start it yet."
It uploads the file through Moonraker so you can start it later.
Start here
I want to… | Read next |
Connect this MCP to my agent | |
See what my agent can do with it | |
Find the credentials for my printer | |
Configure it by hand, with Docker, or over HTTP | |
Slice from my agent or troubleshoot slicing | |
Use open-source slicing for a Bambu Lab printer | |
Model or refit a part in Blender | |
See release changes or contributor credit | Changelog, releases, and contributors |
What's new
See the changelog for versioned changes. The next release brings the print safety gate to every printer backend: a human confirms every print start and positive heating command, and the server checks the exact G-code against hardware and material ceilings. It also adds Bambu-compatible CLI slicing with resolved machine presets and a template registry, blender_mcp_export_stl for verified STL export from Blender, and this documentation site. Release 1.2.9 fixes Bambu FTPS uploads that failed with "Premature close" (#22), adds standard Blender MCP discovery, forwarding, and verified STL edits, requires the Bambu printer model for raw print starts, and isolates each server's scratch files. Separately, #20 and #21 made per-call executable selectors, such as a slicer path or bridge command, require an explicit opt-in.
Table of Contents
Description
mcp-3d-printer-server is a Model Context Protocol server for 3D printers. It gives an agent printer control (status, files, upload, start, cancel, and temperatures), STL mesh tools, slicer automation, Bambu Lab project printing, and an optional bridge to a Blender MCP server. One PRINTER_TYPE selects the default backend, and every printer tool accepts a per-call type and host, so one server can reach more than one printer.
Backend |
| Testing evidence |
Bambu Lab |
| Most tested, including maintainer hardware testing shared with the Bambu-only fork |
OctoPrint |
| Community-reported |
Klipper (Moonraker) |
| Community-reported, including a Creality K1 Max through Moonraker |
PrusaLink and Prusa Connect |
| Community-reported |
Duet |
| Implemented; no hardware reports yet |
Repetier-Server |
| Implemented; no hardware reports yet |
Creality |
| Implemented; no hardware reports yet |
What each backend reads and sends differs. See printer backend setup for the exact API calls, credentials, and linked reports.
Note on resource usage. The STL tools load the entire mesh into memory. Large or complex files (over about 10 MB) can use a lot of memory. See General Limitations and Considerations.
FULU and open-source printing
FULU OrcaSlicer-bambulab is a first-class slicer target for Bambu Lab projects (SLICER_TYPE=orcaslicer-bambulab; aliases include fulu-orca and orca-studio), and the default slicer when PRINTER_TYPE=bambu and no slicer is configured. slice_stl and print_3mf auto-slicing use its project command line, and check_fulu_orca_setup inspects the install and runtime payload.
The optional FULU BambuNetwork bridge is a separate runtime. fulu_bambu_network_rpc can probe it and send guarded RPC calls, but the server never switches a print from its local MQTT and FTPS path to BambuNetwork or the cloud on its own.
Follow the FULU guide for platform runtime setup, bridge probes, and the current macOS and Windows testing status.
Features
Seven printer backends, selected with
PRINTER_TYPE: OctoPrint, Klipper (Moonraker), Duet, Repetier-Server, Bambu Lab, PrusaLink or Prusa Connect, and CrealityPer-call
type,host,port, andapi_keyarguments for working with more than one printerPrinter status, file listing, G-code upload from inline content or a local path, starting a stored file, cancelling a job, and setting bed or nozzle temperatures
STL tools: inspect dimensions, scale, rotate, translate, extend the base, merge vertices, center, lay flat, transform one section of a model, and render multi-angle SVG previews
A print and heating safety gate on every backend: the exact G-code is inspected, every heater target is checked against hardware and material ceilings, the printer's state is checked, and a human confirms through MCP elicitation. Heater-off and cancel are never gated
Slicing through PrusaSlicer, Slic3r, OrcaSlicer, CuraEngine, FULU OrcaSlicer-bambulab, or Bambu Studio command lines, with G-code peak-temperature checks and a one-call process-and-print pipeline
Bambu-compatible CLI slicing with the exact model and nozzle machine preset resolved from your slicer installation, filament slots and colours, placement options, and a local template registry
Bambu Lab project printing: upload a sliced
.3mfover FTPS and start it over MQTT with the plate's G-code path, MD5, AMS mapping, and calibration flags, after checking the plate against a fresh printer report; auto-slice unsliced projects with FULU OrcaSlicer-bambulab or Bambu StudioRequired Bambu printer model for print operations, asked for through MCP elicitation when missing
FULU OrcaSlicer-bambulab setup inspection and diagnostic BambuNetwork bridge RPC, with raw print methods refused
Optional Blender MCP bridge: discover a standard Blender MCP server's tools, forward calls, export named scene objects to a verified STL, and run verified STL edits
Slicer, bridge, and Blender executables come from server configuration unless you explicitly opt in to per-call selectors
MCP resources for printer status, files, and file details
Transports: stdio (default) and streamable HTTP, plus a Docker image
Available Tools
STL Manipulation Tools
All STL tools load the full mesh into memory. Tools that change a model write a new file to the server's temporary directory, named after the input with a suffix such as _scaled, and return its path; the input file is not modified.
get_stl_info
Inspect an STL file without modifying it. Returns the bounding box, dimensions, center, vertex count, and face count.
{
"stl_path": "/path/to/model.stl"
}scale_stl
Scale a model uniformly with scale_factor, or per axis with scale_x, scale_y, and scale_z. When any axis value is given, unspecified axes stay at 1.0.
{
"stl_path": "/path/to/model.stl",
"scale_factor": 1.2
}{
"stl_path": "/path/to/model.stl",
"scale_x": 1.2,
"scale_y": 1.0,
"scale_z": 1.5
}rotate_stl
Rotate a model around the X, Y, and Z axes, in degrees. Omitted axes default to 0.
{
"stl_path": "/path/to/model.stl",
"rotate_x": 0,
"rotate_y": 0,
"rotate_z": 90
}translate_stl
Move a model along the X, Y, and Z axes, in millimeters. Omitted axes default to 0.
{
"stl_path": "/path/to/model.stl",
"translate_x": 10,
"translate_y": 5,
"translate_z": 0
}extend_stl_base
Add solid geometry underneath the model to raise and widen its base. extension_inches is in inches and is converted to millimeters (25.4 mm per inch).
{
"stl_path": "/path/to/model.stl",
"extension_inches": 0.25
}merge_vertices
Merge vertices closer together than tolerance (millimeters, default 0.01). This can close small gaps and slightly simplify the mesh.
{
"stl_path": "/path/to/model.stl",
"tolerance": 0.01
}center_model
Move the model so the center of its bounding box is at the origin (0, 0, 0).
{
"stl_path": "/path/to/model.stl"
}lay_flat
Find the model's largest flat face and rotate the model so that face rests on the XY plane (Z = 0). Works best on models with a clearly dominant flat face.
{
"stl_path": "/path/to/model.stl"
}modify_stl_section
Apply a scale, rotation, or translation to one section of a model: the top, bottom, or center third of its bounding box, or a custom box. value_x, value_y, and value_z are scale factors, degrees, or millimeters depending on transformation_type.
{
"stl_path": "/path/to/model.stl",
"section": "top",
"transformation_type": "scale",
"value_x": 1.5,
"value_y": 1.5,
"value_z": 1.5
}A custom section requires all six bounds:
{
"stl_path": "/path/to/model.stl",
"section": "custom",
"transformation_type": "rotate",
"value_x": 0,
"value_y": 0,
"value_z": 45,
"custom_min_x": -10,
"custom_min_y": 0,
"custom_min_z": -10,
"custom_max_x": 10,
"custom_max_y": 20,
"custom_max_z": 10
}generate_stl_visualization
Render an SVG with front, side, top, and isometric views of a model. width and height set each view's size in pixels (default 300).
{
"stl_path": "/path/to/model.stl",
"width": 400,
"height": 400
}The SVG is a simplified schematic, not a photorealistic render.
Printer Control Tools
Every printer tool accepts host, port, type, and api_key, and Bambu printers also use bambu_serial and bambu_token. Omitted values fall back to PRINTER_HOST, PRINTER_PORT, PRINTER_TYPE, API_KEY, BAMBU_SERIAL, and BAMBU_TOKEN. Keep keys in the server configuration rather than passing them in calls.
What each call does depends on the backend; see printer backend setup for the exact API routes.
Every print start and positive heating command, on every backend, goes through a safety gate: the server inspects the exact G-code it will start, checks each heater target against hardware and material ceilings, checks that the printer is ready, and asks a human to confirm through MCP elicitation. Turning a heater off (temperature: 0) and cancel_print are never gated.
get_printer_status
Read the printer's current status. The response is the backend's own status data: Bambu returns temperatures, job state, progress, layers, time remaining, and AMS data; OctoPrint returns printer state and temperatures; Klipper returns the Moonraker host state only.
{
"type": "klipper",
"host": "192.168.1.50",
"port": "7125"
}list_printer_files
List the files stored on the printer or its host software. On Bambu printers it lists the cache/, timelapse/, and logs/ directories.
{
"type": "octoprint",
"host": "192.168.1.100"
}upload_gcode
Upload G-code to the printer, and optionally start it. Pass gcode_path for a local file, or gcode with the content (or a local path). filename defaults to the basename of gcode_path; when printing, use a plain filename so the started file is exactly the uploaded one.
{
"type": "klipper",
"host": "192.168.1.50",
"port": "7125",
"gcode_path": "/path/to/benchy.gcode",
"print": true,
"material": "PETG"
}Without
print, the file is only uploaded and nothing is inspected or started.With
print: true, the exact uploaded bytes are inspected first (everySandRheater target, tool changes, and hardware and material ceilings), the printer's state is checked, and a human confirms before the job starts.Printing needs a declared material: slicer metadata in the file (
; filament_type = PLA) or thematerialargument, which must not contradict the file.On Bambu printers, files go to
cache/over FTPS, and printing also needs the model (bambu_modelorBAMBU_MODEL). Automatic printing after upload supports.gcodeonly; print.3mfprojects withprint_3mf.
start_print
Start a G-code file that is already stored on the printer. The server downloads that exact file, inspects it, checks the printer's state, asks a human to confirm, and then starts a uniquely named checked copy. This works on Bambu Lab, OctoPrint, Klipper (Moonraker), and Duet. Repetier, Prusa, and Creality refuse, because their adapters have no verified download route; use upload_gcode with print: true instead.
{
"type": "octoprint",
"host": "192.168.1.100",
"filename": "benchy.gcode",
"material": "PLA"
}Pass material when the file has no filament_type metadata. On Bambu printers it also needs the model and supports .gcode files only; bare filenames are looked up in cache/.
cancel_print
Cancel the current print job. Cancelling is never gated and also cancels checked prints still waiting to start. There is no pause or resume tool; cancelling is not resumable.
{
"type": "prusa",
"host": "192.168.1.120"
}set_printer_temperature
Set a target temperature for a printer component. Use bed or extruder; Bambu also accepts nozzle, tool, and tool0. OctoPrint nozzle targets are sent to tool0.
{
"type": "klipper",
"host": "192.168.1.50",
"port": "7125",
"component": "extruder",
"temperature": 215,
"material": "PLA"
}temperaturemust be a finite number of 0 or more.0switches the heater off and is never gated.Positive targets are checked before connecting against independent hardware ceilings and the material's ceiling, need a ready printer, and ask a human to confirm.
Positive nozzle heating needs
material(for example PLA, PETG, or ABS), including for spools without RFID.On Bambu printers, positive heating also needs
bambu_model(orBAMBU_MODEL), and nozzle heating usesnozzle_diameter(0.2, 0.4, 0.6, or 0.8; defaultNOZZLE_DIAMETERor 0.4). Both are checked against the live printer.
Bambu-Specific Tools
These tools work with PRINTER_TYPE=bambu (or type: "bambu"). Set up LAN Only Mode, the serial number, the access code, and the model as described in Bambu Lab setup.
print_3mf
Upload a sliced .3mf project to a Bambu printer over FTPS and start it with an MQTT project_file command that carries the plate's G-code path, its MD5, the AMS mapping, and the calibration flags. bambu_model is required (or BAMBU_MODEL); without it the server asks through MCP elicitation when the client supports it, or returns an error. The wrong model can crash the bed into the nozzle.
Before anything is uploaded, the server inspects a private copy of the selected plate (model, nozzle, bed type, materials, and every heater target). It checks them against per-model hardware limits, material ceilings, and a fresh MQTT report of the printer's model, serial, nozzle, state, errors, and loaded filament. A human then confirms, and the report is checked again before dispatch.
{
"three_mf_path": "/path/to/bracket.gcode.3mf",
"bambu_model": "p1s",
"bed_type": "textured_plate",
"use_ams": true,
"ams_mapping": { "Generic PLA": 0 },
"bed_leveling": true,
"flow_calibration": true,
"vibration_calibration": true,
"layer_inspect": true,
"timelapse": false
}If the project has no plate G-code, the server tries to auto-slice it with FULU OrcaSlicer-bambulab or Bambu Studio. If slicing fails, or the selected plate still has no G-code, it stops with an error and never uploads the original project.
ams_mappingis an object whose values are AMS slot numbers. When it is omitted, the mapping embedded in the 3MF is used; with no mapping at all, the print runs without AMS.use_ams: falseturns AMS off.After sending the command, the server watches fresh reports for up to 15 seconds (
BAMBU_DISPATCH_CHECK_MS) and returnsdispatch: "started"or"unconfirmed". If the firmware refuses the command (HMS 0500-0500-0001-0007 on firmware 01.08.05 and later without Developer Mode), the call fails and says so; the checked file stays on the printer's storage.nozzle_type(stainless_steel,hardened_steel,tungsten_carbide,brass) sets the installed nozzle when the project must be auto-sliced. The job's nozzle type must match the printer's report.bed_typeis one oftextured_plate,cool_plate,engineering_plate, orhot_plate(defaultBED_TYPE, elsetextured_plate). It must match the plate's bed metadata, so a file sliced for another plate, or without bed metadata, is refused untilbed_typematches.nozzle_diameteraccepts 0.2, 0.4, 0.6, or 0.8 (defaultNOZZLE_DIAMETERor 0.4).Calibration flags default to on (timelapse to off) when omitted.
layer_height,nozzle_temperature,bed_temperature, andsupport_enabledare accepted but not applied: those settings are baked into the sliced file. Change them in the slicer.A success response means the command was sent, not that the print started cleanly. Check the printer's status afterward.
check_fulu_orca_setup
Inspect a FULU OrcaSlicer-bambulab install: the executable, the platform runtime payload, the install and verify commands, and optionally a BambuNetwork bridge handshake. Paths default to the server environment; see checking the setup.
{
"platform": "darwin",
"run_bridge_probe": true
}bridge_command, and slicer_path, plugin_dir, or runtime_dir with run_bridge_probe: true, require MCP_ALLOW_EXECUTABLE_ARG=1.
fulu_bambu_network_rpc
Call one FULU BambuNetwork bridge method for diagnostics. Read-only methods such as bridge.handshake, bridge.runtime_info, and net.get_user_print_info are allowed by default. Agent and session setup methods require allow_mutating_method: true. Raw print methods (such as net.start_print), printer messages (net.send_message), file transfers, and unknown methods are refused, because they would bypass the print safety gate; print with print_3mf. bambu_model is informational only. See bridge RPC.
{
"method": "bridge.handshake"
}The bridge command comes from FULU_BAMBU_BRIDGE_COMMAND; a per-call bridge_command requires MCP_ALLOW_EXECUTABLE_ARG=1.
Slicing Tools
See the slicing guide for slicer types, profiles, and troubleshooting. Slicing a file yourself in the slicer's GUI and uploading the result is the most predictable path.
slice_stl
Slice an STL or 3MF with the configured slicer and return the output path: G-code for PrusaSlicer, Slic3r, generic OrcaSlicer, and CuraEngine, or a sliced .3mf for the Bambu-compatible path.
The Bambu-compatible path is used for Bambu Studio, FULU OrcaSlicer-bambulab, and OrcaSlicer when the call passes bambu_model:
The machine preset always comes from
bambu_model(orBAMBU_MODEL, asked for when missing) andnozzle_diameter(defaultNOZZLE_DIAMETERor 0.4). The exact<model> <diameter> nozzlepreset must exist in the selected slicer installation. Itsinheritsandincludechains are resolved before the slicer runs.slicer_profile(orSLICER_PROFILE) is a process profile only. Amachine;processlist is rejected with instructions.Slicing accepts
p1s,p1p,p2s,x1c,x1e,a1,a1mini,h2d,h2s, andh2cwhen the installed slicer has that preset. Printing still accepts only the seven models inBAMBU_MODEL.The output must contain a nonempty
Metadata/plate_<n>.gcode. Failures stop with the slicer's exit code or signal, the tails of its output, and slicing-specific advice.
{
"stl_path": "/path/to/phone-case.stl",
"slicer_type": "bambustudio",
"bambu_model": "p1s",
"nozzle_diameter": "0.4",
"bed_type": "textured_plate",
"load_filaments": "/path/to/filaments/tpu-95a-hf.json",
"arrange": true,
"orient": false
}Options for the Bambu-compatible path:
Argument | What it does |
| Build plate: |
| Installed nozzle: |
| Filament profile JSON paths in slot order, |
| Comma-separated filament IDs mapping filaments to objects, such as |
| One |
| Reuse a 3MF's or profile's slicer settings as the process profile (defaults: |
| Refresh 3MF presets to the installed slicer, write a smaller 3MF, or ignore custom G-code embedded in an input 3MF |
| Placement: auto-orient, auto-arrange (set |
| Transform before slicing (uniform scale; rotations in degrees) |
| Insert timelapse parking moves; allow filaments with different temperature needs on one plate |
Generic slicers keep their own profile formats: PrusaSlicer and Slic3r load one exported config, and generic OrcaSlicer takes machine.json;process.json, optionally followed by |filament.json. slicer_type, slicer_profile, and filament_profile fall back to SLICER_TYPE, SLICER_PROFILE, and FILAMENT_PROFILE. The slicer executable comes from SLICER_PATH; a per-call slicer_path requires MCP_ALLOW_EXECUTABLE_ARG=1. See the slicing guide.
slice_with_template
Slice an STL or 3MF with a named template from the local template registry. The template supplies the process settings; the machine preset still comes from bambu_model and nozzle_diameter. It takes the same arguments as slice_stl, and an explicit slicer_profile in the call overrides the template.
{
"stl_path": "/path/to/bracket.stl",
"template_name": "p1s-petg-strong",
"bambu_model": "p1s"
}list_templates
List the saved slicing templates (.3mf, .json, .config) in the registry directory, BAMBU_TEMPLATE_DIR (default ~/Sync/bambu/templates), or in template_dir.
{}save_template
Copy a local .3mf, .json, or .config file into the template registry. template_name defaults to the source filename without its extension.
{
"source_path": "/path/to/p1s-petg-strong.3mf",
"template_name": "p1s-petg-strong"
}get_slice_settings
Read the slicer settings in a 3MF, an extracted project_settings.config, or a profile JSON without slicing: layer height, infill, walls, supports, brim, bed, printer, and filaments. Pass source_path, or template_name to read a saved template.
{
"template_name": "p1s-petg-strong"
}confirm_temperatures
Report every heater target in a G-code file: S and R forms, tool-addressed targets, RepRapFirmware G10/M568, and Klipper SET_HEATER_TEMPERATURE. An expected extruder_temp or bed_temp matches only when it equals the file's highest target, which the result returns as peak. It is read-only; the printing tools enforce their own safety gate.
{
"gcode_path": "/path/to/model.gcode",
"extruder_temp": 240,
"bed_temp": 80
}process_and_print_stl
Extend an STL's base, slice it, and print it through the same checked print gate as upload_gcode and print_3mf, including the human confirmation. If you pass extruder_temp or bed_temp, each must equal the sliced job's highest target (S and R forms, every tool); a mismatch stops before anything is uploaded. Pass material when the sliced G-code has no filament_type metadata. On a Bambu printer with a Bambu-compatible slicer, the sliced .3mf goes through the print_3mf checks, and the printer model is required.
{
"stl_path": "/path/to/model.stl",
"extension_inches": 0.1,
"extruder_temp": 210,
"bed_temp": 60,
"material": "PLA",
"type": "octoprint",
"host": "192.168.1.100"
}Use slice_stl, confirm_temperatures, and upload_gcode separately when you want to review the sliced file before the print is offered for confirmation.
Advanced Tools
Blender MCP
Connect a standard stdio Blender MCP server with BLENDER_MCP_COMMAND (for example, the full path to uvx) and BLENDER_MCP_ARGS (for example ["mcp-for-blender"]). The mcp-for-blender project was formerly published as blender-mcp, which still works as a compatibility wrapper. Install and enable its addon in Blender and start the addon's connection. Blender and this server must be able to read the same local files. Printer tools work without Blender configured. Keep Blender open while your agent works: the addon does not run in background mode. See the Blender guide for setup, units, and a worked example that refits a phone case for a new phone end to end.
blender_mcp_status
Inspect the Blender MCP configuration. With connect: true, it starts the configured server, initializes it, and lists its tools by name and summary. Pass tool_names to get the full input schemas of the tools you are about to call (include_schemas: true returns all of them, which is large). A successful connection does not prove the addon inside Blender is running; call get_scene_info through blender_mcp_call to check that.
{
"connect": true,
"tool_names": ["execute_blender_code"]
}blender_mcp_call
Call a tool the Blender MCP server advertises, such as get_scene_info or execute_blender_code, with arguments matching its discovered schema. The full MCP result, including images and errors, is returned. Calls can change the active Blender scene and are never retried automatically. Preserve the user's own words in user_prompt when the remote tool asks for it.
{
"tool_name": "get_scene_info",
"arguments": { "user_prompt": "Inspect the scene before preparing a print." }
}blender_mcp_export_stl
Export named objects from the live Blender scene to a new STL for slicing. Use it after modelling or editing through blender_mcp_call; Blender MCP's own export_scene writes GLB or FBX, not STL. The export writes world-space geometry with modifiers applied, without changing the scene, selection, or mode.
{
"object_names": ["PhoneCase"],
"output_path": "/path/to/phone-case.stl",
"user_prompt": "Make it fit my iPhone 17 Pro Max."
}The result reports
output_verified: true, the triangle count, andbounding_box.dimensionsmeasured from the written file. Compare the dimensions with what you expect before slicing.STL files carry no units and slicers read them as millimetres. An imported STL keeps its numbers, so the default
scale: 1is right. If a part was modelled in metres, the result warns that it is under 1 unit across; export again withscale: 1000.output_pathmust be new and its parent must exist; nothing is ever overwritten. On any Blender error, mismatched receipt, or invalid file, nothing is published.
blender_mcp_edit_model
Import an STL into Blender, apply ordered edits, and export a new STL. Supported operations are decimate:<ratio> (greater than 0, up to 1), remesh:<voxel size> (positive, in STL units), and boolean_union:<STL path>. Use blender_mcp_call for anything else.
{
"stl_path": "/path/to/model.stl",
"output_path": "/path/to/model-edited.stl",
"operations": ["decimate:0.5"],
"user_prompt": "Reduce the triangle count for printing.",
"execute": false
}The default (
execute: false) validates the request and returns the plan and generated Python without launching Blender. Setexecute: trueto apply it, reusing the preview'soutput_path.Omitting
output_pathselects a uniquemodel-edited-<id>.stlbeside the input. Existing input and output files are never overwritten.The edit requires Object Mode, preserves existing scene objects and selection, and publishes the new STL only after checking a matching export receipt and a valid, finite triangle mesh. Binary STLs up to 256 MiB are validated in small chunks; ASCII STLs are limited to 4 MiB.
Requests have connection, discovery, and call deadlines (
BLENDER_MCP_TIMEOUT_MS, default 120000) that also cover file validation. Interrupted edits are never replayed; inspect Blender before retrying, because an edit may already have started.A valid STL is not proof of printability. Inspect the result before slicing.
Legacy BLENDER_MCP_BRIDGE_COMMAND shell commands remain supported when no standard command is configured. They receive JSON on stdin (modelPath, operations, source, and stlPath) and the same JSON in MCP_BLENDER_PAYLOAD, and their results report output_verified: false. A per-call bridge_command requires MCP_ALLOW_EXECUTABLE_ARG=1.
Available Resources
Resources follow the MCP resource protocol. They use the configured PRINTER_TYPE and credentials; the host segment selects the printer address.
printer://{host}/status: the printer's current status, as returned byget_printer_statusprinter://{host}/files: the file list, as returned bylist_printer_filesprinter://{host}/file/{filename}: details for one file. On Bambu printers this only reports whether the file exists.
For example, printer://192.168.1.100/status reads the status of the printer at that address.
Printer Limitations
Status depth varies by backend. Bambu status includes progress, layers, and time remaining. OctoPrint status comes from
/api/printer(state and temperatures, not job progress). Klipper status comes from Moonraker's/printer/info, which reports the host state but not job progress or temperatures. Duet, Repetier, and Creality responses have not been verified on hardware.Cancel, but no pause. There is no pause or resume tool.
cancel_printstops the job.Plain HTTP for most backends. OctoPrint, Klipper, Duet, Repetier, and Creality adapters connect over
http://. The Prusa adapter uses HTTPS for Prusa Connect, anhttps://host, or port 443.Klipper and Duet send no credentials. Moonraker must trust the MCP host, and a password-protected Duet cannot be reached yet.
Command sent is not print finished. A success response means the printer or its host accepted the request. Check status, and the printer itself, before you walk away.
Bambu prints need a sliced project and the right model.
print_3mfneeds a.3mfwithMetadata/plate_<n>.gcode, uploads it tocache/, and starts plate 1. Print settings such as layer height and temperatures cannot be changed at print time.start_printhandles plain.gcodefiles only.Bambu AMS mapping is simple.
ams_mappingvalues are sorted and padded to five entries; real behavior still depends on firmware, loaded filament, and the project's metadata. For AMS inventory and color matching, see bambu-printer-mcp.Bambu temperatures go through G-code. Temperature targets are sent as
M104orM140over MQTT, so the printer's firmware and current state decide whether they apply.Bambu networking assumes a trusted LAN. MQTT and FTPS use the printer's self-signed certificate. Uploads use TLS 1.2 with session reuse; confirmation on the X1C firmware reported in #22 is still outstanding.
Safety checks read files and reports, not the physical printer. A declared material cannot prove what spool is loaded, and a finished-job report cannot prove the bed is clear, which is why a human confirms. Klipper macro parameters that name a heater are checked, but macro bodies stored on the printer cannot be inspected. On Duet/RepRapFirmware, selecting a tool (
T0) heats it to the temperature already stored on the printer; activation-onlyM568andM144are refused, but a plain tool change is allowed because every firmware uses it. The safety gate is tested with mocked printer transports and loopback HTTP APIs, plus one real Bambu P1S run that reached the firmware's command check; other printer systems have not been exercised on real hardware in this release.Remote starts need a download route.
start_printof a file already on the printer works on Bambu Lab, OctoPrint, Klipper, and Duet. Repetier, Prusa, and Creality refuse it; upload the local G-code withprint: trueinstead.
General Limitations and Considerations
Memory usage
STL tools load the whole mesh into memory as Three.js geometry. Files over about 10 MB can use several hundred MB of RAM.
Running several operations in a row on large files can build up memory between garbage collection cycles.
There is no built-in memory cap. On constrained systems, avoid processing several large files at once.
STL manipulation limitations
lay_flatlooks for the largest flat face; results on organic or rounded models can be unpredictable.extend_stl_baseadds new geometry beneath the model. Complex or non-planar undersides can produce gaps or intersections at the join, so inspect the result.merge_verticeswith a large tolerance can change the model's shape. The 0.01 mm default is safe for most models.modify_stl_sectionworks best on simple geometry. Non-manifold meshes (holes, overlapping faces, internal geometry) can produce unexpected results for any transformation; repair them first in your slicer or a mesh tool.
Visualization limitations
generate_stl_visualizationproduces a simplified schematic, not a true 3D render, and very detailed models may lose detail.
Performance considerations
Slicing can take from seconds to several minutes, depending on the model and your CPU. Slicer runs time out after
SLICER_TIMEOUT_MS(10 minutes by default).Large uploads depend on your network and the printer's storage speed.
Bambu MQTT connections are reused. If a printer restarts or the network drops, the next call reconnects.
MCP Safety Notes
Prompt injection is an open problem for tool-using agents. A downloaded model's description, a README inside an archive, 3MF metadata, or a web page can all contain instructions aimed at your agent. Practical mitigations:
Treat tool output and downloaded files as untrusted input.
Keep printer keys and access codes in server configuration, with the least privilege your printer software allows.
Keep per-call executable selectors off. Slicer, bridge, and Blender commands come from server configuration unless
MCP_ALLOW_EXECUTABLE_ARG=1is set.Keep print confirmation on. The server asks a human through MCP elicitation before every print start and positive heating command, and refuses clients that cannot ask.
PRINT_REQUIRE_CONFIRMATION=0(all printers) orBAMBU_REQUIRE_CONFIRMATION=0(Bambu only) opts out for headless setups; the first print after a finished job still asks.Heater ceilings come only from server configuration (
PRINTER_MAX_NOZZLE_TEMP,PRINTER_MAX_BED_TEMP,PRINTER_MAX_CHAMBER_TEMP, or Bambu's per-model limits). Tool arguments and G-code never raise them.Run the streamable HTTP transport on a trusted network. It binds to
127.0.0.1by default and has no built-in authentication.Set
BAMBU_MODELcorrectly and never substitute a similar model.
License
GPL-2.0. See LICENSE for the full text.
Acknowledgements
Thank you to the FULU Foundation, Louis Rossmann, and the OrcaSlicer-bambulab community for advancing user choice, repair rights, and interoperable tools.
Bambu Lab support builds on community protocol research, including OpenBambuAPI. The Bambu-only fork, bambu-printer-mcp, shares its Blender MCP integration and FTPS fixes with this project.
This project is listed in the Glama MCP server directory. See CONTRIBUTORS.md for the people whose code, reports, and printer testing shaped it.
Available Tools
30 toolsblender_mcp_callA
Call a discovered tool on the configured Blender MCP server, preserving its full MCP content and errors. Discover tool schemas with blender_mcp_status first; execute_blender_code accepts Python code and user_prompt. Calls can modify the active Blender scene and are never automatically retried.
| Name | Required | Description | Default |
|---|---|---|---|
| arguments | No | Arguments matching the remote tool's discovered input schema. Preserve the user's own words in user_prompt when the remote tool requests it. | |
| tool_name | Yes | Exact name advertised by Blender MCP, such as get_scene_info or execute_blender_code. | |
| timeout_ms | No | Total connection, discovery, and tool deadline in milliseconds; defaults to BLENDER_MCP_TIMEOUT_MS or 120000. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden and delivers the key traits: 'Calls can modify the active Blender scene and are never automatically retried.' That mutation warning and no-retry disclosure are exactly the safety context an agent needs. It omits auth/permission or concurrency details, so not a full 5.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Three sentences, front-loaded with the core action and the discovery prerequisite. Each sentence carries information, though the mid-sentence mention of execute_blender_code's parameters is slightly tangential to the tool's own purpose.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
No output schema exists, but the description compensates by stating it preserves 'its full MCP content and errors.' Combined with the mutation and no-retry disclosures and a documented timeout default, an agent has enough to invoke it correctly.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema coverage is 100%, so the schema already documents tool_name, arguments, and timeout_ms. The description only lightly augments this, noting that execute_blender_code accepts Python code and user_prompt. Baseline 3 is appropriate since the schema does the heavy lifting.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb and resource: 'Call a discovered tool on the configured Blender MCP server.' It names the sibling it depends on (blender_mcp_status) and clarifies the proxy nature of the tool, distinguishing it from the actual Blender tools it dispatches to.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
Gives a clear prerequisite flow: 'Discover tool schemas with blender_mcp_status first,' and names a concrete example (execute_blender_code). It does not, however, explain when to prefer this over blender_mcp_edit_model, leaving one sibling relationship implicit.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
blender_mcp_edit_modelA
Import, edit, and export a local STL through standard Blender MCP with verified output and existing scene objects preserved. Requires a shared local filesystem and Blender Object Mode. Also supports a separately configured legacy executable bridge.
| Name | Required | Description | Default |
|---|---|---|---|
| execute | No | Apply edits and export (true) or validate and return the prepared request without connecting (false, default). | |
| stl_path | Yes | Path to the local STL file | |
| operations | Yes | Ordered operations: decimate:<ratio greater than 0 and at most 1>, remesh:<positive voxel size in STL units>, boolean_union:<STL path>. Legacy custom bridges define their own operations. | |
| timeout_ms | No | Total Blender request deadline in milliseconds; defaults to BLENDER_MCP_TIMEOUT_MS or 120000. | |
| output_path | No | New local STL output path for standard MCP editing; defaults to a unique model-edited-<id>.stl beside the input. Its parent must exist and existing files are never overwritten. Reuse the preview's output_path when executing that plan. | |
| user_prompt | No | The user's own words describing the edit, passed unchanged to Blender MCP. | |
| bridge_command | No | Legacy custom bridge executable override, not a standard MCP command. Per-call overrides require MCP_ALLOW_EXECUTABLE_ARG=1. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden, and it delivers real behavioral claims: output is verified, existing scene objects are preserved, and a shared filesystem plus Object Mode are required. It stops short of stating reversibility or permission/auth implications, but the preservation and requirement disclosures are substantive beyond anything structured data provides.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Two sentences, no filler, front-loaded with the core action and pipeline before the requirements and the optional bridge. Every clause (verified output, scene preservation, prerequisites, legacy bridge) carries distinct information.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a complex 7-parameter mutation tool with no output schema, the description covers purpose, prerequisites, side-effect profile, and the alternate bridge path. It does not clarify the difference between standard and bridge execution or what 'verified output' concretely means, which is a modest remaining gap.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already documents all seven parameters in detail (execute, output_path defaults, timeout, operations syntax). The description adds only the bridge concept, so the baseline 3 for schema-dominant definitions is appropriate.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific three-part verb (import, edit, export) on a concrete resource (a local STL) through a named mechanism (standard Blender MCP). An agent can separate it from blender_mcp_export_stl (export only) and blender_mcp_call (generic) without opening any schema.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
Prerequisites are stated (shared local filesystem, Blender Object Mode) and the legacy-bridge path is flagged, which is useful context. However, it never states when to prefer this tool over siblings like blender_mcp_call or blender_mcp_export_stl, or when the bridge path applies, so usage remains implied rather than directed.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
blender_mcp_export_stlA
Export named objects from the live Blender scene to a new, verified STL for slicing. Writes world-space geometry with modifiers applied, without changing the scene, selection, or mode, and reports triangle count and bounding-box dimensions from the written file. Use this after editing or modelling through blender_mcp_call; Blender MCP's own export_scene writes GLB/FBX only. Requires standard Blender MCP and a shared local filesystem.
| Name | Required | Description | Default |
|---|---|---|---|
| scale | No | Multiply coordinates before writing (default 1). Slicers read STL units as millimetres, so use 1000 for a scene modelled in metres. | |
| timeout_ms | No | Total Blender request deadline in milliseconds; defaults to BLENDER_MCP_TIMEOUT_MS or 120000. | |
| output_path | Yes | New local .stl path. Its parent must exist; existing files are never overwritten. | |
| user_prompt | No | The user's own words, passed unchanged to Blender MCP. | |
| object_names | Yes | Blender object names to export together as one STL (mesh, curve, surface, metaball, or text objects). | |
| apply_modifiers | No | Export the evaluated geometry with modifiers applied (default true). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden and does so well: world-space geometry, modifiers applied, no mutation of scene/selection/mode, and a verification step reporting triangle count and bounding-box dimensions from the written file. This is exactly the side-effect profile an agent needs for a write-to-disk tool.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Three dense sentences, front-loaded with the action and its guarantees, followed by usage routing and prerequisites. No filler and nothing that repeats structured fields verbatim.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
Despite the absence of an output schema, the description states what the caller gets back (triangle count and bounding-box dimensions) and covers prerequisites and non-destructive behaviour. Nothing needed to invoke it correctly is missing.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so every parameter is already documented, including the mm-vs-metres scale rationale and the no-overwrite rule for output_path. The description adds no parameter meaning beyond that, which is the expected baseline 3 when the schema does the heavy lifting.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb and resource ('export named objects from the live Blender scene to a new, verified STL') and explicitly distinguishes itself from the sibling export path by noting that Blender MCP's own export_scene writes GLB/FBX only. An agent can select it without opening any schema.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
Gives an explicit trigger ('use this after editing or modelling through blender_mcp_call') and names the alternative that does not do this job. Prerequisites (standard Blender MCP, shared local filesystem) are also stated.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
blender_mcp_statusA
Inspect Blender MCP configuration or connect and discover the remote server's tools. Lists tool names and summaries; pass tool_names for the full input schemas of the tools you will call. Connecting does not edit the scene; use get_scene_info through blender_mcp_call to check the Blender addon.
| Name | Required | Description | Default |
|---|---|---|---|
| connect | No | Initialize the configured stdio MCP server and discover its tools (default false). | |
| timeout_ms | No | Total connection and discovery deadline in milliseconds; defaults to BLENDER_MCP_TIMEOUT_MS or 120000. | |
| tool_names | No | Return full input schemas for these discovered tools, such as ["execute_blender_code"]. | |
| include_schemas | No | Return every discovered tool's full definition (large; default false). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the burden and does reasonably well: it states 'Connecting does not edit the scene' (a safety-relevant clarification), warns that include_schemas is large, and the schema documents the timeout default. It does not cover auth or failure behavior, keeping it short of a 5.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Three tight sentences, front-loaded with the core capability, then the tool_names behavior, then the safety note and sibling pointer. Little waste, though the parenthetical 'large' warning and the closing routing note slightly crowd the structure.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 4-param, no-output-schema, no-annotation discovery tool, the description covers both operating modes, the schema-fetching path, the large-payload warning, and the correct sibling for scene checks. Only deeper behavioral detail (error handling, discovery limits) is missing.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already documents connect, timeout_ms, tool_names, and include_schemas with defaults and bounds. The description adds the intent behind tool_names ('the tools you will call') but no syntax or format detail beyond the schema, matching the baseline 3.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description names a specific resource (Blender MCP configuration / remote server tools) and the two distinct actions: inspect config or connect and discover tools. It is clearly distinguishable from blender_mcp_call, but the dual-mode framing (inspect vs. connect) makes the primary purpose slightly less crisp than a single-verb statement.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
It gives concrete usage direction: 'pass tool_names for the full input schemas of the tools you will call' and 'use get_scene_info through blender_mcp_call to check the Blender addon,' routing the agent to a sibling for scene verification. Absent is explicit when-not-to-use guidance, but the context is clear.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
cancel_printC
Cancel the current print job
| Name | Required | Description | Default |
|---|---|---|---|
| host | No | Hostname or IP address of the printer (default: value from env) | |
| port | No | Port of the printer API (default: value from env) | |
| type | No | Type of printer management system (octoprint, klipper, duet, repetier, bambu, prusa, creality) (default: value from env) | |
| api_key | No | API key for authentication (default: value from env) | |
| bambu_token | No | Access token for Bambu Lab printers (default: value from env) | |
| bambu_serial | No | Serial number for Bambu Lab printers (default: value from env) |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full disclosure burden. It does not state that cancellation is destructive and non-resumable, whether it aborts an in-progress print or just clears the queue, or what authentication/permissions are required.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single front-loaded sentence with zero filler. It is efficient, though its brevity is partly under-specification rather than disciplined economy.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a destructive mutation tool with no annotations, no output schema, and six connection parameters silently defaulting from environment variables, the description is too thin. It should at minimum say the cancel is irreversible and note that host/type/api_key default from env.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100% and all six parameters are optional with env fallbacks, so the schema already documents everything. The description adds no parameter-level meaning beyond that, which warrants the baseline 3.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (Cancel) and resource (the current print job), which is enough to distinguish it from siblings like start_print or process_and_print_stl. It does not explicitly call out cross-printer scope, but the core action is unambiguous.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
No when-to-use guidance, no prerequisites, and no reference to alternatives such as get_printer_status to confirm an active job before cancelling. The agent must infer all of this from the tool name alone.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
center_modelB
Translate the model so its geometric center is at the origin (0,0,0).
| Name | Required | Description | Default |
|---|---|---|---|
| stl_path | Yes | Path to the STL file to center. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full burden of behavioral disclosure. It says the tool translates the model, but does not state whether it modifies the file in place, returns a new file, requires write permissions, or what side effects occur.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
The description is a single, front-loaded sentence that specifies the operation and the target result with no wasted words.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a simple one-parameter tool, the description adequately conveys the core action. However, without annotations or an output schema, it leaves open important behavioral details such as whether the original STL is modified or a new file is produced.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, and the single stl_path parameter is fully documented in the schema. The description adds no parameter-level meaning beyond the schema, so the baseline of 3 is appropriate.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description uses a specific verb ('Translate') and states the exact geometric outcome: centering the model at the origin (0,0,0). It is clear what the tool does, though it does not explicitly differentiate itself from the sibling translate_stl tool.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no explicit guidance on when to use this tool versus alternatives such as translate_stl, nor any prerequisites or exclusions. Usage is only implied by the outcome described.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
check_fulu_orca_setupC
Inspect a FULU OrcaSlicer-bambulab install, platform runtime payload, setup commands, and optionally probe the BambuNetwork bridge.
| Name | Required | Description | Default |
|---|---|---|---|
| platform | No | Platform to inspect. Defaults to the current Node.js platform. | |
| plugin_dir | No | Directory containing the FULU Bambu runtime payload; on macOS this is usually OrcaSlicer.app/Contents/MacOS. When run_bridge_probe=true, requires MCP_ALLOW_EXECUTABLE_ARG=1 to be accepted here. | |
| runtime_dir | No | Installed runtime directory. On macOS this defaults to ~/Library/Application Support/OrcaSlicer/macos-bridge/runtime. When run_bridge_probe=true, requires MCP_ALLOW_EXECUTABLE_ARG=1 to be accepted here. | |
| slicer_path | No | Path to the FULU OrcaSlicer executable. Defaults from SLICER_PATH/FULU_ORCA_PATH. When run_bridge_probe=true, requires MCP_ALLOW_EXECUTABLE_ARG=1 to be accepted here. | |
| bridge_command | No | Command that starts the FULU BambuNetwork bridge host for probing. Read from FULU_BAMBU_BRIDGE_COMMAND by default; requires MCP_ALLOW_EXECUTABLE_ARG=1 to be accepted here. | |
| probe_timeout_ms | No | Bridge probe timeout in milliseconds (default: 5000). | |
| run_bridge_probe | No | When true, sends bridge.handshake, bridge.capabilities, and bridge.runtime_info to the bridge host. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries full behavioral burden, and it does not disclose that run_bridge_probe spawns a bridge host process, that bridge_command is an executable that will be launched, or that some inputs are gated behind MCP_ALLOW_EXECUTABLE_ARG=1 (that constraint appears only in the schema). It also says nothing about side effects or environment requirements.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single dense sentence that front-loads the inspection targets and appends the optional probe last. No filler, though the packing of five distinct concerns into one clause makes it slightly harder to scan.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 7-parameter diagnostic tool with no annotations and no output schema, the description should convey what the inspection returns and what the optional probe yields, but it stops at naming the targets. An agent cannot predict the shape or content of the result, leaving a significant gap.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so all seven parameters (including the enum platform and the executable-gated paths) are already fully documented in the schema, setting the baseline at 3. The description adds no parameter-level meaning beyond what the schema provides.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a clear verb (inspect) and specific resources (FULU OrcaSlicer-bambulab install, runtime payload, setup commands, BambuNetwork bridge), so an agent knows this is a diagnostic/inspection tool. It does not explicitly distinguish itself from the related sibling fulu_bambu_network_rpc, which is the only differentiation gap.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description gives no when-to-use or when-not-to-use guidance and names no alternatives. The only usage signal is the word 'optionally probe', which hints at a conditional mode but never says when an agent should enable it versus run a plain inspection.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
confirm_temperaturesA
Report every heater target in a G-code file (S and R forms, tool-addressed, RepRapFirmware G10/M568 and Klipper SET_HEATER_TEMPERATURE). An expected temperature matches only when it equals the file's highest target. Read-only; printing tools enforce their own safety gate.
| Name | Required | Description | Default |
|---|---|---|---|
| bed_temp | No | Expected highest bed target | |
| gcode_path | Yes | Path to the G-code file | |
| extruder_temp | No | Expected highest nozzle target |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full behavioral burden and does disclose the key trait: it is read-only and does not itself gate printing, since printing tools enforce their own safety. It also defines the match rule (equality with the file's highest target). It does not say what is returned or what happens when a temperature fails to match, which matters for a verification tool with no output schema.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Two sentences, front-loaded with the verb and resource, with no filler. The parenthetical enumeration of G-code forms is dense but each item is load-bearing for correct parsing expectations.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
Covers input semantics and scope well, but with no output schema and no return-value description, an agent cannot know whether a mismatch is reported as a boolean, an error, or a list of differing targets. For a confirmation/verification tool that gap is material.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema coverage is 100%, so the baseline is 3, but the description adds genuine meaning beyond the schema: it explains that bed_temp/extruder_temp match only when equal to the file's highest target, which is a non-obvious semantic the bare 'Expected highest bed target' wording does not convey. It also clarifies that targets are gathered from multiple G-code dialects, explaining why a single expected value is compared against many reported targets.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (report) and resource (every heater target in a G-code file), and enumerates the exact G-code forms covered (S/R, tool-addressed, RepRapFirmware G10/M568, Klipper SET_HEATER_TEMPERATURE). This clearly separates it from siblings like set_printer_temperature (which mutates) and get_printer_status (which reads live state, not a file).
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description implies a pre-flight verification use case and notes that 'printing tools enforce their own safety gate,' which frames when this check belongs in a workflow. However, it never explicitly says when to use this versus get_printer_status or set_printer_temperature, nor what to do on a mismatch, leaving routing to inference.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
extend_stl_baseC
Extend the base of an STL file by a specified amount
| Name | Required | Description | Default |
|---|---|---|---|
| stl_path | Yes | Path to the STL file to modify | |
| extension_inches | Yes | Amount to extend the base in inches |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are supplied, so the description carries the full behavioral burden for a mutation tool. It does not say whether the file is modified in place or a new file is written, whether the original is overwritten, what happens on failure, or what the response contains — all important for a destructive file edit.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single, efficient sentence with the action and target front-loaded and zero wasted words. It is perhaps too terse given what is left unsaid, but nothing in it is redundant.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 2-parameter file-mutating tool with no annotations and no output schema, the description omits the essentials: in-place vs. new-file behavior, return value, and error conditions. An agent could call it but cannot predict the side effects.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%: stl_path ("Path to the STL file to modify") and extension_inches ("Amount to extend the base in inches") are both self-documenting, including units. The description's "by a specified amount" adds nothing beyond the schema, so the baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description gives a specific verb ("Extend") and a specific target region ("the base of an STL file"), which is clearer than the generic sibling names like modify_stl_section or translate_stl. However, it does nothing to distinguish itself from related STL-geometry siblings (scale_stl, rotate_stl, center_model, lay_flat), so an agent must infer the boundary on its own.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no indication of when to use this rather than scale_stl, translate_stl, or modify_stl_section, no prerequisites (e.g., does the model need a flat base?), and no exclusions. The agent is left to guess how this differs from other geometry-editing tools in the list.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
fulu_bambu_network_rpcA
Advanced FULU bridge RPC for BambuNetwork diagnostics and development. Read-only methods are allowed by default. Agent/session setup methods require allow_mutating_method=true. Raw print methods, printer messages, file transfers and unknown methods are refused because they would bypass the print safety gate; use print_3mf for checked printing.
| Name | Required | Description | Default |
|---|---|---|---|
| method | Yes | FULU bridge method, e.g. bridge.handshake, bridge.runtime_info, net.get_user_print_info, net.start_print. | |
| payload | No | JSON payload sent to the FULU bridge method. | |
| timeout_ms | No | Bridge request timeout in milliseconds (default: 5000). | |
| bambu_model | No | Informational only. Raw FULU print RPC methods are disabled; use print_3mf. | |
| bridge_command | No | Command that starts the FULU BambuNetwork bridge host. Defaults to FULU_BAMBU_BRIDGE_COMMAND; requires MCP_ALLOW_EXECUTABLE_ARG=1 to be accepted here. | |
| allow_mutating_method | No | Required for the allowlisted agent/session setup methods. It never enables print, printer-message, or unknown methods. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden and does well: it discloses the default read-only posture, the mutating-method opt-in flag, the refusal class, and the reason (bypassing the print safety gate). It omits return/error behavior and timeout implications, but the safety semantics are unusually well communicated.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Three sentences, front-loaded with what the tool is, then the gating rules, then the refusal and alternative. Every sentence carries information; no filler or repeated schema text.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 6-parameter passthrough with a free-form payload and no output schema, the description covers the safety model well but does not describe what an RPC call returns, how failures surface, or how to choose among the many allowed bridge methods beyond the schema's examples. Adequate but with clear gaps.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already documents method, payload, timeout_ms, bambu_model, bridge_command and allow_mutating_method. The description adds one genuinely useful nuance — that allow_mutating_method never enables print, printer-message or unknown methods — but otherwise restates schema-level guidance, fitting the baseline 3.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
Names a specific resource (FULU BambuNetwork bridge RPC) used for diagnostics and development, and distinguishes its scope from print-oriented siblings by explicitly excluding raw print methods. The verb is generic (a passthrough RPC), so it is not a perfect verb+resource pair, but an agent can tell it apart from print_3mf and check_fulu_orca_setup.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
Gives explicit conditional routing: read-only methods allowed by default, agent/session setup methods require allow_mutating_method=true, and print/message/file-transfer/unknown methods are refused. It also names the correct alternative (print_3mf) for checked printing. It stops short of saying which diagnostic scenarios warrant calling this tool.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
generate_stl_visualizationB
Generate an SVG visualization of an STL file from multiple angles
| Name | Required | Description | Default |
|---|---|---|---|
| width | No | Width of each view in pixels (default: 300) | |
| height | No | Height of each view in pixels (default: 300) | |
| stl_path | Yes | Path to the STL file |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden. It usefully discloses the output format (SVG) and that multiple angles are rendered, but says nothing about whether files are written to disk or returned inline, what the angle set is, dependencies (e.g., a rendering library), or performance limits.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single, front-loaded sentence with no filler; every clause (generate, SVG, STL file, multiple angles) carries information.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a tool with no output schema, the description should say what the caller gets back (returned SVG content vs. written file paths) and roughly which views are rendered. The input side is fully covered by the schema, but the output side of the contract is not.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%: stl_path, width, and height are all documented in the schema, including defaults. The description adds no parameter meaning beyond that, so the baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (Generate) and resource (SVG visualization of an STL file) with the scope 'from multiple angles'. It is clearly distinguished from siblings like get_stl_info or blender_mcp_export_stl by the output artifact, though it never names a sibling to route against.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no statement of when to use this versus alternatives such as get_stl_info, blender_mcp_export_stl, or slice_stl. The agent must infer the use case (visual inspection) on its own, and no exclusions or prerequisites are given.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
get_printer_statusC
Get the current status of the 3D printer
| Name | Required | Description | Default |
|---|---|---|---|
| host | No | Hostname or IP address of the printer (default: value from env) | |
| port | No | Port of the printer API (default: value from env) | |
| type | No | Type of printer management system (octoprint, klipper, duet, repetier, bambu, prusa, creality) (default: value from env) | |
| api_key | No | API key for authentication (default: value from env) | |
| bambu_token | No | Access token for Bambu Lab printers (default: value from env) | |
| bambu_serial | No | Serial number for Bambu Lab printers (default: value from env) |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full disclosure burden, yet it says nothing about authentication requirements, network behavior, failure modes, or whether it is a safe read operation. It discloses no behavior beyond the bare action.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single front-loaded sentence with no wasted words. It is efficient, though its brevity is partly the source of the definition's gaps.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
With six connection parameters, no annotations, and no output schema, the description should explain what status information is returned and any connection/auth expectations. As written it is too thin for the tool's configured surface.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so all six parameters (host, port, type, api_key, bambu_token, bambu_serial) are already documented, including that they default from env. The description adds no parameter meaning beyond the schema, so the baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (Get) and resource (current status of the 3D printer), so the action is unambiguous. It does not differentiate from siblings such as list_printer_files or get_slice_settings, which also read printer state.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no when-to-use guidance, no mention of alternatives, and no prerequisites (e.g. needing a configured host or API key). Usage is only implied by the tool name.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
get_slice_settingsA
Inspect slicer settings in a 3MF template or JSON/config profile without slicing (layer height, infill, walls, supports, brim, bed, printer, filaments).
| Name | Required | Description | Default |
|---|---|---|---|
| source_path | No | Path to a 3MF, extracted project_settings.config, or slicer profile JSON. | |
| template_dir | No | Template directory override when resolving template_name. | |
| template_name | No | Named template from the local registry; used when source_path is omitted. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden. It does disclose that this is a non-mutating inspection ('without slicing') and enumerates the setting categories returned (layer height, infill, walls, supports, brim, bed, printer, filaments), which partially compensates for the missing output schema. It says nothing about permissions, error behavior, or resolution precedence between source_path and template_name.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single front-loaded sentence with the verb and resource first, followed by an efficient parenthetical field list. No filler, though the parenthetical is long enough that it slightly competes with the core claim.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a three-parameter, zero-required read tool with no output schema, listing the returned setting categories goes a long way toward filling the return-value gap, and the schema covers source alternatives. The remaining gap is the precedence/interaction between source_path and template_name, which is only documented per-parameter.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already documents all three parameters and their source-resolution semantics. The description's mention of '3MF template or JSON/config profile' loosely maps to source_path and template_name but adds no format or precedence detail beyond the schema; baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (inspect), a specific resource (slicer settings), and enumerates the source formats and the fields covered. The phrase 'without slicing' implicitly separates it from the sibling slicing tools (slice_stl, slice_with_template), though it never names them, so sibling differentiation is present but not explicit.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The phrase 'without slicing' hints at the use case (read settings before committing to a slice), but there is no explicit when-to-use statement, no when-not-to-use, and no named alternative. Usage must be inferred from the contrast with the slicing siblings.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
get_stl_infoC
Get detailed information about an STL file
| Name | Required | Description | Default |
|---|---|---|---|
| stl_path | Yes | Path to the STL file |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full burden. 'Detailed information' is undefined — it does not say whether this returns geometry stats, dimensions, triangle counts, or file metadata, nor whether it is a pure read with no side effects. The safety/behavior profile is left entirely implicit.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single short sentence with zero padding, front-loaded with the verb. It is efficient, though its brevity is partly the cause of the gaps elsewhere rather than true economy of expression.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
With one fully-documented parameter and no output schema, the description is minimally adequate, but 'detailed information' gives the agent no expectation of the return payload for a tool whose entire value is the response shape. It should at least hint at what fields come back.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100% (the single stl_path parameter is documented as 'Path to the STL file'), so the schema does the heavy lifting. The description adds no format, path-style, or validation detail beyond that, which is the baseline-3 case.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb ('Get') and resource ('STL file') with the qualifier 'detailed information', so the agent knows this is a metadata/inspection read. However, it does not distinguish itself from neighbors like generate_stl_visualization or slice_stl, which also consume an STL file.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no statement of when to use this versus the many other STL-related siblings, nor any prerequisites (e.g., that the file must exist on the server). The agent must infer usage from the name alone.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
lay_flatB
Attempt to rotate the model so its largest flat face lies on the XY plane (Z=0).
| Name | Required | Description | Default |
|---|---|---|---|
| stl_path | Yes | Path to the STL file to lay flat. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden, and it does disclose one genuine behavioral trait: 'attempt' signals this is best-effort and may not succeed. However, it says nothing about whether the STL is modified in place or a new file/geometry is returned, nor about failure behavior, which are the key traits for a mutation-style tool.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
One front-loaded sentence that states the action and the target geometry with no filler. Every word earns its place.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a one-parameter geometry operation with no output schema and no annotations, the description explains the transformation adequately but leaves the agent unsure about persistence (in-place vs. return value) and failure modes, which matter for calling it correctly in a pipeline with slice_stl/print steps.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema coverage is 100% for the single stl_path parameter, so the schema already documents it fully. The description adds only the geometric goal, not any additional parameter meaning; baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description gives a specific verb (rotate) plus the exact geometric outcome (largest flat face onto the XY plane at Z=0), which clearly separates it from the generic rotate_stl sibling even though it does not name that sibling. The only gap is the lack of an explicit contrast with rotate_stl/translate_stl/center_model.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no guidance on when to prefer this over rotate_stl or center_model, no stated prerequisites (e.g., mesh must be watertight or have a detectable flat face), and no note about what happens if no flat face exists. The agent must infer usage entirely.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
list_printer_filesC
List files available on the 3D printer
| Name | Required | Description | Default |
|---|---|---|---|
| host | No | Hostname or IP address of the printer (default: value from env) | |
| port | No | Port of the printer API (default: value from env) | |
| type | No | Type of printer management system (octoprint, klipper, duet, repetier, bambu, prusa, creality) (default: value from env) | |
| api_key | No | API key for authentication (default: value from env) | |
| bambu_token | No | Access token for Bambu Lab printers (default: value from env) | |
| bambu_serial | No | Serial number for Bambu Lab printers (default: value from env) |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full behavioral burden. It implies a safe read operation by using 'List,' but does not state authentication requirements, pagination behavior, output format, or any side effects. This is a notable gap for a printer-integration tool with six connection parameters.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
The description is a single, front-loaded sentence with zero wasted words. It is appropriately sized for the stated purpose.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a listing tool with six optional connection parameters and no output schema, the description should explain what is returned or how the file list is structured. It also omits any mention of default environment configuration or authentication. The schema covers inputs, but the description is incomplete about behavior and results.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so every parameter is already documented in the input schema. The description adds no parameter meaning beyond what the schema provides, which is the expected baseline when the schema does the heavy lifting.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description states a clear verb and resource: 'List files available on the 3D printer.' It distinguishes the operation from other printer actions, but does not differentiate itself from siblings such as get_printer_status or upload_gcode beyond the obvious file-listing scope.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no explicit when-to-use guidance, no mention of prerequisites, and no named alternatives. The phrase 'files available' implies a listing context, but the agent must infer when this tool is appropriate versus other printer-related siblings.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
list_templatesA
List saved slicing templates (.3mf, .json, .config) in the local template registry directory.
| Name | Required | Description | Default |
|---|---|---|---|
| template_dir | No | Template directory override. Defaults to BAMBU_TEMPLATE_DIR or ~/Sync/bambu/templates. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full behavioral burden. It discloses the source location and which file extensions are enumerated, which is useful, but says nothing about the return shape (names vs. paths), recursion, ordering, or behavior when the directory is absent.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
One sentence, front-loaded with the verb and resource, with the parenthetical file types and the directory scope following. Nothing wasted.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a simple, zero-required-parameter read tool, the description covers what is listed and where. Since there is no output schema, a brief note on the return format would have closed the last gap, but nothing essential is missing.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
The single parameter has 100% schema description coverage, including its default resolution order (BAMBU_TEMPLATE_DIR, then ~/Sync/bambu/templates), so the schema already does the heavy lifting. The description's mention of the "local template registry directory" lightly reinforces that, but adds no syntax or format detail beyond the schema.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
Clear specific verb (List) plus resource (saved slicing templates), with the file types (.3mf, .json, .config) and the scope (local template registry directory) spelled out. It is readily distinguishable from the write-oriented siblings save_template and slice_with_template, though it does not name them explicitly.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
Usage is implied by the name and by the presence of save_template/slice_with_template as siblings, but the description states no when-to-use condition, no prerequisite (e.g. registry directory must exist), and no alternative to prefer. Adequate but leaves selection to inference.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
merge_verticesB
Merge vertices in an STL file that are closer than the specified tolerance.
| Name | Required | Description | Default |
|---|---|---|---|
| stl_path | Yes | Path to the STL file to modify. | |
| tolerance | No | Maximum distance between vertices to merge (in mm, default: 0.01). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full behavioral burden. It implies mutation but never states that the file is modified in place, whether the original is preserved, what happens on failure, or how vertices are matched; only the tolerance semantics are conveyed.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single, front-loaded sentence with no filler; the operation, target, and merge criterion are all stated up front.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a simple two-parameter tool with a fully documented schema and no output schema, the description is close to sufficient. However, as an unannotated mutation tool it should disclose that it rewrites the STL in place and any file-state assumptions, which it does not.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so both parameters (stl_path, tolerance) are already documented with units and default. The description's mention of 'closer than the specified tolerance' reinforces the filtering semantics but adds nothing beyond the schema's baseline.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (merge) and resource (vertices in an STL file) with the qualifying condition (closer than the specified tolerance), which is enough to distinguish it from siblings like scale_stl or rotate_stl. It stops short of explicitly contrasting with any sibling, so a 4 rather than 5.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no guidance on when to reach for this tool versus alternatives such as modify_stl_section or the blender_mcp_* editing tools, nor any mention of prerequisites like an existing valid STL file. The purpose is implied but selection context is absent.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
modify_stl_sectionC
Apply a specific transformation to a selected section of an STL file
| Name | Required | Description | Default |
|---|---|---|---|
| section | Yes | Section to modify: 'top', 'bottom', 'center', or custom bounds | |
| value_x | No | Transformation value for X axis | |
| value_y | No | Transformation value for Y axis | |
| value_z | No | Transformation value for Z axis | |
| stl_path | Yes | Path to the STL file | |
| custom_max_x | No | Maximum X for custom section bounds | |
| custom_max_y | No | Maximum Y for custom section bounds | |
| custom_max_z | No | Maximum Z for custom section bounds | |
| custom_min_x | No | Minimum X for custom section bounds | |
| custom_min_y | No | Minimum Y for custom section bounds | |
| custom_min_z | No | Minimum Z for custom section bounds | |
| transformation_type | Yes | Type of transformation to apply |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full behavioral burden, but it only implies a write operation via 'Apply'. It does not say whether the file is modified in place, whether the original is overwritten, what happens to geometry outside the section, what units or coordinate system apply, or how errors are handled.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
The description is a single, front-loaded sentence with no wasted words. It communicates the core action immediately and does not bury the purpose in extra text.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
Given 12 parameters, two enums, no annotations, and no output schema, the description is incomplete. It does not explain how to interpret the transformation values, when custom bounds apply, file-side effects, or expected outcomes, leaving the agent heavily dependent on the schema and trial-and-error.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, and the schema documents all parameters including enums for section and transformation_type, axis values, and custom bounds. The description adds no parameter meaning beyond what the schema already provides, so a baseline 3 is appropriate.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description states a specific verb ('Apply'), a specific resource ('STL file'), and a specific scope ('selected section'), which distinguishes it from whole-file siblings like scale_stl, rotate_stl, and translate_stl. However, it does not explicitly name those alternatives, so it falls short of the top score.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description offers no guidance on when to use this tool versus alternatives, when to choose section-based modification versus whole-file transforms, or prerequisites such as valid STL paths or coordinate-system expectations. Usage is only implied by the phrase 'selected section'.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
print_3mfA
Print a 3MF file on a Bambu Lab printer. The exact selected plate is inspected (model, nozzle, bed type, materials, every heater target) and checked against a fresh MQTT report of the printer's identity, nozzle, state, errors and loaded filament, then a human confirmation is requested before upload and start.
| Name | Required | Description | Default |
|---|---|---|---|
| host | No | Hostname or IP address of the Bambu printer (default: value from env) | |
| use_ams | No | Whether to use AMS for the print. Defaults from parsed 3MF mapping when present. | |
| bed_type | No | Bed/plate type installed on the printer (default: textured_plate). | |
| timelapse | No | Override timelapse flag for the Bambu print command. | |
| ams_mapping | No | Override AMS filament mapping (e.g., {"Generic PLA": 0, "Generic PETG": 1}). | |
| bambu_model | Yes | REQUIRED: Bambu Lab printer model. Ensures correct G-code generation — wrong model can crash the bed into the nozzle. | |
| bambu_token | No | Access token for the Bambu Lab printer (default: value from env) | |
| nozzle_type | No | Installed nozzle material, used when the 3MF must be auto-sliced (default: BAMBU_NOZZLE_TYPE, else the preset's stock nozzle). | |
| slicer_path | No | Path to the slicer executable if auto-slicing is needed. Per-call overrides require MCP_ALLOW_EXECUTABLE_ARG=1. | |
| slicer_type | No | Slicer to use if the 3MF needs auto-slicing. Use orcaslicer-bambulab for FULU OrcaSlicer-bambulab. | |
| bambu_serial | No | Serial number for the Bambu Lab printer (default: value from env) | |
| bed_leveling | No | Override bed leveling flag for the Bambu print command. | |
| layer_height | No | Override layer height (mm). | |
| layer_inspect | No | Override layer inspection flag for the Bambu print command. | |
| three_mf_path | Yes | Path to the 3MF file to print. | |
| slicer_profile | No | Optional slicer settings/profile path for auto-slicing. | |
| bed_temperature | No | Override bed temperature (°C). | |
| nozzle_diameter | No | Nozzle diameter in mm (default: 0.4). | |
| support_enabled | No | Override support generation. | |
| filament_profile | No | Optional filament profile path for auto-slicing with OrcaSlicer/Bambu Studio. | |
| flow_calibration | No | Override flow calibration flag for the Bambu print command. | |
| nozzle_temperature | No | Override nozzle temperature (°C). | |
| vibration_calibration | No | Override vibration calibration flag for the Bambu print command. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden and does well: it discloses the plate inspection, a live MQTT cross-check of printer identity/state/filament, and a mandatory human confirmation step before upload and start. It omits auth requirements, error/failure handling, and whether anything is mutated irreversibly, which keeps it from a 5.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Two dense sentences with the purpose front-loaded, and no repeated or filler content. The second sentence is long but every clause (inspection targets, MQTT check, human confirmation) earns its place by conveying behavior.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 23-parameter mutation-style tool with no annotations and no output schema, the description supplies the crucial workflow context a caller cannot infer: validation against live printer state and a human confirmation gate. The many tuning/override parameters are fully covered by 100% schema descriptions, so the remaining gap is minor.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so all 23 parameters are already documented in the schema and the baseline is 3. The description adds no per-parameter meaning (e.g., override semantics or env defaults) beyond what the schema states.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb and resource ('Print a 3MF file on a Bambu Lab printer'), which is clearly distinct from generic siblings like upload_gcode and start_print. It does not explicitly name or contrast with the closest sibling, process_and_print_stl, so it stops short of a 5.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description sketches the internal workflow (inspect plate, check MQTT report, confirm, upload, start), which implies when the tool is appropriate. However, it never states when to choose this over process_and_print_stl or start_print, nor any exclusions or prerequisites, leaving selection to inference.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
process_and_print_stlA
Process an STL file (extend base), slice it, and start printing through the same checked print gate as upload_gcode/print_3mf. Expected temperatures are enforced: a mismatch refuses before upload.
| Name | Required | Description | Default |
|---|---|---|---|
| host | No | Hostname or IP address of the printer (default: value from env) | |
| port | No | Port of the printer API (default: value from env) | |
| type | No | Type of printer management system (default: value from env) | |
| api_key | No | API key for authentication (default: value from env) | |
| bed_temp | No | Expected highest bed target in the sliced G-code (S and R forms). Printing stops before upload if it differs. | |
| bed_type | No | Bed/plate type installed on the printer (default: textured_plate). | |
| material | No | Declared filament material when the sliced G-code has no filament_type metadata. Must not contradict the file. | |
| stl_path | Yes | Path to the STL file to process | |
| bambu_model | No | Bambu Lab printer model. Required for Bambu print operations. | |
| nozzle_type | No | Installed Bambu nozzle material used when slicing (default: BAMBU_NOZZLE_TYPE, else the preset's stock nozzle). The print gate compares it with the printer's report. | |
| slicer_path | No | Path to the slicer executable (default: value from env). Per-call overrides require MCP_ALLOW_EXECUTABLE_ARG=1. | |
| slicer_type | No | Type of slicer to use. Use orcaslicer-bambulab for FULU OrcaSlicer-bambulab. | |
| extruder_temp | No | Expected highest nozzle target in the sliced G-code (S and R forms, every tool). Printing stops before upload if it differs. | |
| slicer_profile | No | Profile to use for slicing (default: value from env). OrcaSlicer also accepts machine/process profiles separated with ';', optionally followed by '|filament.json'. | |
| nozzle_diameter | No | Nozzle diameter in mm (default: 0.4). | |
| extension_inches | Yes | Amount to extend the base in inches | |
| filament_profile | No | OrcaSlicer filament profile path loaded with --load-filaments (default: FILAMENT_PROFILE/SLICER_FILAMENT_PROFILE env). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full burden. It usefully discloses the temperature-enforcement gate and that a mismatch refuses before upload, and 'start printing' signals a mutating, possibly irreversible action. However, it omits auth requirements, what happens on slicer failure, or the host/api_key defaulting behavior.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Two sentences, zero waste, with the core action chain front-loaded and the enforcement caveat second. Every clause earns its place.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 17-parameter mutation tool with no annotations and no output schema, the description covers the pipeline and the print gate but says nothing about return values, failure modes beyond temperature mismatch, or the relationship to the several sibling STL-modification tools. Adequate but with clear gaps.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the 17 parameters are already documented in the schema. The description adds only the 'extend base' hint tied to extension_inches and reinforces the temperature-check semantics already in bed_temp/extruder_temp descriptions. Baseline 3 is appropriate when the schema does the heavy lifting.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description names a specific multi-step operation — extend the STL base, slice, and print — and anchors it against siblings by referencing the same checked print gate used by upload_gcode/print_3mf. An agent can distinguish it from slice_stl or start_print, though the 'extend base' phrasing is terse.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The pipeline nature implies usage (one call instead of slice_stl followed by start_print) but no explicit when/when-not guidance is given. The reference to the shared print gate hints at why this exists, but the agent must infer the alternative paths.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
rotate_stlC
Rotate an STL model around specific axes
| Name | Required | Description | Default |
|---|---|---|---|
| rotate_x | No | Rotation around X-axis in degrees | |
| rotate_y | No | Rotation around Y-axis in degrees | |
| rotate_z | No | Rotation around Z-axis in degrees | |
| stl_path | Yes | Path to the STL file |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full burden. It does not disclose whether the rotation mutates the file in place or returns a new model, whether the original is preserved, or whether there are constraints on rotation values. For a mutation tool with zero annotation coverage this is a notable gap.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single efficient sentence with no wasted words, but it is arguably terse to the point of under-specification rather than optimally structured.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
Parameters are fully covered by the schema and no output schema exists, so the description needn't explain returns. However, as a mutation tool with no annotations it should disclose the in-place-vs-new-model behavior, which it omits.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so each parameter (rotate_x/y/z in degrees, stl_path) is already documented in the schema. The description adds nothing beyond that, so baseline 3 is appropriate.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (rotate) and resource (STL model), which distinguishes it from siblings like scale_stl and translate_stl. The phrase 'around specific axes' is somewhat redundant since the schema names the axes, but the core purpose is clear.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
No guidance on when to use this versus scale_stl, translate_stl, or modify_stl_section, and no prerequisites or context about the STL manipulation workflow. The agent must infer usage entirely from the name.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
save_templateB
Copy a .3mf, .json, or .config file into the local template registry under a template name.
| Name | Required | Description | Default |
|---|---|---|---|
| source_path | Yes | Local .3mf, .json, or .config file to save as a template. | |
| template_dir | No | Template directory override. Defaults to BAMBU_TEMPLATE_DIR or ~/Sync/bambu/templates. | |
| template_name | No | Template name. Defaults to the source filename without extension. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full behavioral burden. 'Copy' usefully implies the source file is preserved rather than moved, but nothing is said about overwriting an existing template name, error behavior for unsupported formats, or permissions — significant gaps for a mutation tool with zero annotation coverage.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single sentence with no filler; the action, the accepted formats, and the destination registry are all front-loaded. Every clause earns its place.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a low-complexity, single-required-parameter local file operation with fully documented parameters and no output schema, the description is nearly sufficient. The only missing piece is collision/overwrite semantics for an existing template name.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already explains source_path, template_dir (including the BAMBU_TEMPLATE_DIR default), and template_name (filename-derived default). The description adds no syntax or defaulting detail beyond that, so the baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description gives a specific verb (Copy) and a specific resource (into the local template registry) and names the accepted file types (.3mf, .json, .config). It is clearly distinct from siblings like list_templates or slice_with_template, though it does not explicitly name a sibling to contrast against.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no when-to-use guidance, no mention of prerequisites, and no reference to alternatives such as slice_with_template (which presumably consumes saved templates). The agent must infer that this is the way to persist a template before slicing.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
scale_stlB
Scale an STL model uniformly or along specific axes
| Name | Required | Description | Default |
|---|---|---|---|
| scale_x | No | X-axis scaling factor (overrides scale_factor for X axis) | |
| scale_y | No | Y-axis scaling factor (overrides scale_factor for Y axis) | |
| scale_z | No | Z-axis scaling factor (overrides scale_factor for Z axis) | |
| stl_path | Yes | Path to the STL file | |
| scale_factor | No | Uniform scaling factor to apply |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full behavioral burden and falls short: it does not say whether the STL is scaled in place or written to a new file, whether the original is destroyed, or whether scaling is reversible. For a mutation tool with zero annotation coverage this is a meaningful gap.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single tightly written sentence with the core operation front-loaded and no filler. Every word earns its place.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
Parameters are fully covered by the schema and no output schema exists, so return values need not be explained. However, for an unannotated 5-parameter mutation tool, the description should at least clarify output/destination behavior to be complete.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already documents scale_factor vs scale_x/y/z and the override behavior. The description's 'uniformly or along specific axes' adds conceptual framing but no syntax, range, or default details beyond the schema. Baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (Scale) and resource (STL model) plus the two supported modes (uniform or per-axis). It is clearly distinguishable from siblings like rotate_stl and translate_stl, which perform different transforms on the same resource.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
No indication of when to use this versus rotate_stl, translate_stl, or modify_stl_section, and no prerequisites or preconditions mentioned. The uniform-vs-per-axis distinction is really parameter semantics rather than usage guidance.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
set_printer_temperatureA
Set the temperature of a printer component. Temperature 0 switches a heater off and is never gated. Positive targets are validated before connecting, limited by independent hardware and material ceilings, require a ready printer and a human confirmation.
| Name | Required | Description | Default |
|---|---|---|---|
| host | No | Hostname or IP address of the printer (default: value from env) | |
| port | No | Port of the printer API (default: value from env) | |
| type | No | Type of printer management system (octoprint, klipper, duet, repetier, bambu, prusa, creality) (default: value from env) | |
| api_key | No | API key for authentication (default: value from env) | |
| material | No | Declared material at the nozzle (for example PLA, PETG, ABS). Required for positive nozzle heating, including non-RFID spools. | |
| component | Yes | Printer component to heat, such as extruder or bed. | |
| bambu_model | No | Bambu printer model; required for positive Bambu heating unless BAMBU_MODEL is configured. Checked against the live printer. | |
| bambu_token | No | Access token for Bambu Lab printers (default: value from env) | |
| temperature | Yes | Target temperature in Celsius: a finite number >= 0. 0 switches the heater off. | |
| bambu_serial | No | Serial number for Bambu Lab printers (default: value from env) | |
| nozzle_diameter | No | Installed Bambu nozzle diameter in mm for nozzle heating (default: NOZZLE_DIAMETER or 0.4). Checked against the live printer. |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden and does substantial work: it discloses pre-connection validation, independent hardware and material ceilings, the ready-printer requirement, and a human-confirmation gate. It stops short of covering auth/permissions behavior, which would be the remaining gap for a mutation tool.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Three tight sentences with no filler, and the most important branch (0 = off, ungated) is front-loaded ahead of the positive-target constraints. Efficient and well-ordered.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For an 11-parameter mutation tool with no annotations and no output schema, the description conveys the key behavioral contract (validation, ceilings, confirmation) that an agent needs. It is nearly complete, missing only auth/permission expectations and explicit sibling routing.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema coverage is 100%, so the schema already documents all 11 parameters, including that 0 turns the heater off. The description adds gating semantics around temperature values but largely restates what the schema field descriptions already provide, so baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The description states a specific verb and resource ("Set the temperature of a printer component") and even names the component concept. It is clear what the tool does, but it never names the obvious sibling (confirm_temperatures) or otherwise differentiates itself from related temperature tools.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
It gives real usage conditions – temperature 0 is never gated, positive targets require a ready printer and a human confirmation – which tells the agent when a call will succeed. However, it never names alternatives such as confirm_temperatures or get_printer_status, so routing is left to inference.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
slice_stlB
Slice an STL or 3MF file to generate G-code or a sliced 3MF. For Bambu-compatible CLI slicing (bambustudio, orcaslicer-bambulab, or orcaslicer with bambu_model), the exact bambu_model/nozzle machine preset from the selected slicer installation is required, profile inheritance is resolved before the CLI runs, and the result must contain plate G-code. Failures stop with the slicer's exit status and output.
| Name | Required | Description | Default |
|---|---|---|---|
| scale | No | Bambu-compatible slicing: uniform scale factor applied before slicing (1.0 = original size). | |
| orient | No | Bambu-compatible slicing: auto-orient for printability (--orient). | |
| rotate | No | Bambu-compatible slicing: Z-axis rotation in degrees before slicing. | |
| arrange | No | Bambu-compatible slicing: auto-arrange objects on the plate (--arrange). Set false to keep an existing layout. | |
| bed_type | No | Bambu-compatible slicing: build plate type (default: BED_TYPE or textured_plate). | |
| min_save | No | Bambu-compatible slicing: write a smaller output 3MF (--min-save). | |
| rotate_x | No | Bambu-compatible slicing: X-axis rotation in degrees before slicing. | |
| rotate_y | No | Bambu-compatible slicing: Y-axis rotation in degrees before slicing. | |
| stl_path | Yes | Path to the STL or 3MF file to slice | |
| uptodate | No | Bambu-compatible slicing: refresh 3MF preset configs to the installed slicer version (--uptodate). | |
| bambu_model | No | Bambu Lab printer model. Required for bambustudio and orcaslicer-bambulab (elicited or read from BAMBU_MODEL when omitted); passing it with orcaslicer selects the Bambu-compatible path. The installed slicer must contain the exact model/nozzle preset. | |
| nozzle_type | No | Bambu-compatible slicing: the hotend nozzle material installed on the printer (default: BAMBU_NOZZLE_TYPE, else the model preset's stock nozzle, usually stainless_steel; X1C/X1E presets use hardened_steel). Printing compares it with the printer's reported nozzle. | |
| repetitions | No | Bambu-compatible slicing: print N identical copies (--repetitions). | |
| slice_plate | No | Bambu-compatible slicing: plate number to slice; 0 slices all plates (default). | |
| slicer_path | No | Path to the slicer executable (default: value from env). Per-call overrides require MCP_ALLOW_EXECUTABLE_ARG=1. | |
| slicer_type | No | Type of slicer to use (prusaslicer, cura, slic3r, orcaslicer, orcaslicer-bambulab, bambustudio). Use orcaslicer-bambulab for the FULU fork. bambustudio and orcaslicer-bambulab (and orcaslicer with bambu_model) export a sliced 3MF. | |
| skip_objects | No | Bambu-compatible slicing: comma-separated object indices to skip, e.g. '3,5,10'. | |
| template_dir | No | Template directory override when resolving template_name (default: BAMBU_TEMPLATE_DIR or ~/Sync/bambu/templates). | |
| clone_objects | No | Bambu-compatible slicing: comma-separated clone counts per object index, e.g. '1,3,1,10'. | |
| ensure_on_bed | No | Bambu-compatible slicing: lower floating models onto the bed (--ensure-on-bed). | |
| template_name | No | Named template from the local registry (see list_templates); resolves to its file. | |
| allow_mix_temp | No | Bambu-compatible slicing: allow filaments with different temperature requirements on one plate. | |
| load_filaments | No | Bambu-compatible slicing: filament profile JSON paths in slot order, ';'-separated. One profile applies to every project slot; otherwise supply one per slot. | |
| slicer_profile | No | Profile to use for slicing (default: SLICER_PROFILE env). Bambu-compatible slicing: one process profile JSON (the machine preset comes from bambu_model). Generic OrcaSlicer: machine/process profiles separated with ';', optionally followed by '|filament.json'. | |
| nozzle_diameter | No | Nozzle diameter in mm (default: NOZZLE_DIAMETER or 0.4). Selects the '<model> <diameter> nozzle' machine preset. | |
| enable_timelapse | No | Bambu-compatible slicing: insert timelapse parking moves (--enable-timelapse). | |
| filament_colours | No | Bambu-compatible slicing: one #RRGGBB per filament slot, ';'-separated. Defaults to the input 3MF's colours, then each profile's colour. | |
| filament_profile | No | Filament profile path(s), ';'-separated in slot order, loaded with --load-filaments (default: FILAMENT_PROFILE/SLICER_FILAMENT_PROFILE env). Alias of load_filaments. | |
| load_filament_ids | No | Bambu-compatible slicing: comma-separated filament IDs mapping load_filaments to objects, e.g. '1,2,3,1'. | |
| template_3mf_path | No | Bambu-compatible slicing: 3MF or profile whose embedded slicer settings are reused as the process profile (default: BAMBU_TEMPLATE_3MF_PATH). An explicit slicer_profile takes precedence. | |
| skip_modified_gcodes | No | Bambu-compatible slicing: ignore custom G-code embedded in an input 3MF (--skip-modified-gcodes). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations, the description carries the full burden, and it does disclose meaningful traits: the exact bambu_model/nozzle preset requirement, profile inheritance ordering, the plate-G-code requirement, and that failures surface the slicer's exit status. It omits, however, where output is written, what is returned, and the behavior of the non-Bambu slicing path.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
The purpose sentence is front-loaded and the remaining text is dense but meaningful, covering the Bambu-specific preconditions in two efficient sentences. No filler or repetition of the schema is present.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 31-parameter tool with no annotations and no output schema, the description covers the Bambu path well but is thin on the generic path and on return/output destinations. It also never routes the agent between this and the closely related slice_with_template sibling.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already documents all 31 parameters and the baseline is 3. The description adds the machine-preset semantics behind bambu_model/nozzle, but no per-parameter syntax beyond what the schema provides.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
The first sentence states a specific verb and resource ('Slice an STL or 3MF file') and names the outputs (G-code or sliced 3MF). It does not, however, differentiate itself from the sibling slice_with_template, which an agent would need to distinguish this tool from.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description implicitly conditions behavior on slicer type (Bambu-compatible path via bambustudio/orcaslicer-bambulab/orcaslicer+bambu_model), which is useful routing context. But it never states when to choose this tool over slice_with_template or process_and_print_stl, so alternatives are left to inference.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
slice_with_templateA
Slice an STL or 3MF with a named template from the local template registry (BAMBU_TEMPLATE_DIR). The template supplies process settings; the machine preset still comes from bambu_model and nozzle_diameter.
| Name | Required | Description | Default |
|---|---|---|---|
| scale | No | Bambu-compatible slicing: uniform scale factor applied before slicing (1.0 = original size). | |
| orient | No | Bambu-compatible slicing: auto-orient for printability (--orient). | |
| rotate | No | Bambu-compatible slicing: Z-axis rotation in degrees before slicing. | |
| arrange | No | Bambu-compatible slicing: auto-arrange objects on the plate (--arrange). Set false to keep an existing layout. | |
| bed_type | No | Bambu-compatible slicing: build plate type (default: BED_TYPE or textured_plate). | |
| min_save | No | Bambu-compatible slicing: write a smaller output 3MF (--min-save). | |
| rotate_x | No | Bambu-compatible slicing: X-axis rotation in degrees before slicing. | |
| rotate_y | No | Bambu-compatible slicing: Y-axis rotation in degrees before slicing. | |
| stl_path | Yes | Path to the STL or 3MF file to slice | |
| uptodate | No | Bambu-compatible slicing: refresh 3MF preset configs to the installed slicer version (--uptodate). | |
| bambu_model | No | Bambu Lab printer model. Required for bambustudio and orcaslicer-bambulab (elicited or read from BAMBU_MODEL when omitted); passing it with orcaslicer selects the Bambu-compatible path. The installed slicer must contain the exact model/nozzle preset. | |
| nozzle_type | No | Bambu-compatible slicing: the hotend nozzle material installed on the printer (default: BAMBU_NOZZLE_TYPE, else the model preset's stock nozzle, usually stainless_steel; X1C/X1E presets use hardened_steel). Printing compares it with the printer's reported nozzle. | |
| repetitions | No | Bambu-compatible slicing: print N identical copies (--repetitions). | |
| slice_plate | No | Bambu-compatible slicing: plate number to slice; 0 slices all plates (default). | |
| slicer_path | No | Path to the slicer executable (default: value from env). Per-call overrides require MCP_ALLOW_EXECUTABLE_ARG=1. | |
| slicer_type | No | Type of slicer to use (prusaslicer, cura, slic3r, orcaslicer, orcaslicer-bambulab, bambustudio). Use orcaslicer-bambulab for the FULU fork. bambustudio and orcaslicer-bambulab (and orcaslicer with bambu_model) export a sliced 3MF. | |
| skip_objects | No | Bambu-compatible slicing: comma-separated object indices to skip, e.g. '3,5,10'. | |
| template_dir | No | Template directory override when resolving template_name (default: BAMBU_TEMPLATE_DIR or ~/Sync/bambu/templates). | |
| clone_objects | No | Bambu-compatible slicing: comma-separated clone counts per object index, e.g. '1,3,1,10'. | |
| ensure_on_bed | No | Bambu-compatible slicing: lower floating models onto the bed (--ensure-on-bed). | |
| template_name | Yes | Named template from the local registry (required). | |
| allow_mix_temp | No | Bambu-compatible slicing: allow filaments with different temperature requirements on one plate. | |
| load_filaments | No | Bambu-compatible slicing: filament profile JSON paths in slot order, ';'-separated. One profile applies to every project slot; otherwise supply one per slot. | |
| slicer_profile | No | Explicit process profile that overrides the named template only when provided in this call. | |
| nozzle_diameter | No | Nozzle diameter in mm (default: NOZZLE_DIAMETER or 0.4). Selects the '<model> <diameter> nozzle' machine preset. | |
| enable_timelapse | No | Bambu-compatible slicing: insert timelapse parking moves (--enable-timelapse). | |
| filament_colours | No | Bambu-compatible slicing: one #RRGGBB per filament slot, ';'-separated. Defaults to the input 3MF's colours, then each profile's colour. | |
| filament_profile | No | Filament profile path(s), ';'-separated in slot order, loaded with --load-filaments (default: FILAMENT_PROFILE/SLICER_FILAMENT_PROFILE env). Alias of load_filaments. | |
| load_filament_ids | No | Bambu-compatible slicing: comma-separated filament IDs mapping load_filaments to objects, e.g. '1,2,3,1'. | |
| template_3mf_path | No | Bambu-compatible slicing: 3MF or profile whose embedded slicer settings are reused as the process profile (default: BAMBU_TEMPLATE_3MF_PATH). An explicit slicer_profile takes precedence. | |
| skip_modified_gcodes | No | Bambu-compatible slicing: ignore custom G-code embedded in an input 3MF (--skip-modified-gcodes). |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full disclosure burden. It usefully reveals that the template registry is resolved from BAMBU_TEMPLATE_DIR and that machine settings come from separate parameters, but says nothing about the output artifact, write location, or failure behavior of a slicing run.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Two sentences, front-loaded with the core action and scope, then the settings-precedence detail. No filler, no repetition of enum values or defaults already in the schema.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 31-parameter tool with no output schema, the description is lean but leaves gaps: it does not say what is produced (sliced 3MF vs G-code), where it is written, or how a missing/invalid template is surfaced. The rich schema compensates for most parameter ambiguity, so this is adequate but not complete.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the parameters are already documented and the baseline is 3. The description goes slightly beyond the schema by clarifying the interaction between template_name, bambu_model, and nozzle_diameter — non-obvious precedence that the per-parameter schema text does not state jointly.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (Slice) plus resource (STL or 3MF) and the distinguishing mechanism (a named template from the local template registry). This separates it conceptually from the sibling slice_stl, though it never names that sibling or list_templates/save_template, so the contrast is implied rather than explicit.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The second sentence explains the division of labor (template supplies process settings; machine preset comes from bambu_model and nozzle_diameter), which implies when this tool is appropriate. However there is no explicit 'use this instead of slice_stl when...' guidance or note about what happens when the template name is not found.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
start_printA
Start printing a G-code file already stored on the printer. The server downloads and inspects the exact file, then starts a uniquely named checked copy after printer-state checks and human confirmation. Printers whose API cannot download files (Repetier, Prusa, Creality) refuse; use upload_gcode with print=true instead.
| Name | Required | Description | Default |
|---|---|---|---|
| host | No | Hostname or IP address of the printer (default: value from env) | |
| port | No | Port of the printer API (default: value from env) | |
| type | No | Type of printer management system (octoprint, klipper, duet, repetier, bambu, prusa, creality) (default: value from env) | |
| api_key | No | API key for authentication (default: value from env) | |
| filename | Yes | Name/path of the printer-side G-code file to start. | |
| material | No | Declared filament material when the G-code has no slicer filament_type metadata (non-Bambu printers). Must not contradict the file. | |
| bambu_model | No | Required for Bambu print operations unless BAMBU_MODEL is configured. Must match the printer and pre-sliced G-code. | |
| bambu_token | No | Access token for Bambu Lab printers (default: value from env) | |
| bambu_serial | No | Serial number for Bambu Lab printers (default: value from env) |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations, so the description carries the full behavioral burden, and it does meaningful work: it discloses that the server downloads and inspects the exact file, starts a uniquely named checked copy, and requires printer-state checks plus human confirmation. It omits what happens to an in-progress print and any auth/failure semantics, but the human-confirmation and refuse-behavior disclosures are well beyond structured fields.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Three sentences, front-loaded with the core action before the behavioral detail and the alternative. Dense but every clause earns its place; no filler.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 9-parameter mutation tool with no annotations and no output schema, the description supplies the key behavioral context (download/inspect, checked copy, human confirmation, refusal path) an agent needs. It stops short of describing failure modes or what a successful start returns, but the core is complete.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already documents all nine parameters including the material/Bambu constraints and enum. The description adds no parameter-level detail beyond what the schema provides, so the baseline 3 applies.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (start printing) and resource (a G-code file already stored on the printer), and explicitly carves out the scope from siblings like upload_gcode and process_and_print_stl. An agent can tell this apart from other print tools without opening any schema.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
Gives explicit when-to-use and when-not: printers whose API cannot download files (Repetier, Prusa, Creality) refuse, and the description routes the agent to upload_gcode with print=true in that case. This is a named alternative with the selecting condition spelled out.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
translate_stlC
Move an STL model along specific axes
| Name | Required | Description | Default |
|---|---|---|---|
| stl_path | Yes | Path to the STL file | |
| translate_x | No | Translation along X-axis in millimeters | |
| translate_y | No | Translation along Y-axis in millimeters | |
| translate_z | No | Translation along Z-axis in millimeters |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
No annotations are provided, so the description carries the full behavioral burden. It does not disclose whether the STL is modified in place or a new file is written, what the tool returns, whether multiple axes can be combined, or any failure behavior — all important for a file-mutating geometry operation.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
A single short sentence with no wasted words, front-loaded with the action. It is efficient, though bordering on under-specified rather than optimally concise.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
With no annotations and no output schema, the description should explain mutation/return behavior and at least gesture at constraints. For a 4-parameter file-transforming tool, the one-line description leaves the agent without enough context to call it confidently.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, and the schema already documents each axis parameter with units (millimeters), so the baseline is 3. The description adds no additional semantics beyond the axes already captured in structured fields.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb ('Move') and resource ('an STL model') with axis scope, which is clearer than a bare name restatement. However, it does not differentiate itself from near siblings like rotate_stl, scale_stl, or center_model, which also transform the model's geometry.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
There is no when-to-use guidance, no mention of prerequisites (e.g. valid STL path, loaded model), and no reference to alternatives such as rotate_stl or scale_stl. The agent must infer usage purely from the verb.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
upload_gcodeA
Upload G-code content or a local G-code file path to the printer. With print=true the exact uploaded bytes are inspected first (every S/R heater target, tool changes, hardware and material ceilings), printer state is checked, and a human confirmation is requested before the print starts.
| Name | Required | Description | Default |
|---|---|---|---|
| host | No | Hostname or IP address of the printer (default: value from env) | |
| port | No | Port of the printer API (default: value from env) | |
| type | No | Type of printer management system (octoprint, klipper, duet, repetier, bambu, prusa, creality) (default: value from env) | |
| gcode | No | G-code content, or a local path to a G-code file. | |
| No | Start printing after upload when the printer backend supports it. Printing requires a declared material from slicer metadata (; filament_type = PLA) or the material argument. | ||
| api_key | No | API key for authentication (default: value from env) | |
| filename | No | Filename to use on the printer. Defaults to the basename of gcode_path when omitted. | |
| material | No | Declared filament material (for example PLA, PETG, ABS, ASA, TPU, PA, PC) when the G-code has no slicer filament_type metadata. Must not contradict the file. Material ceilings limit nozzle targets. | |
| gcode_path | No | Local path to a G-code file to upload. | |
| bambu_model | No | Required for Bambu print operations unless BAMBU_MODEL is configured. Must match the printer and pre-sliced G-code. | |
| bambu_token | No | Access token for Bambu Lab printers (default: value from env) | |
| bambu_serial | No | Serial number for Bambu Lab printers (default: value from env) |
TDQS
Does the description disclose side effects, auth requirements, rate limits, or destructive behavior?
With no annotations present, the description carries the full burden and does substantial work: it discloses that with print=true the exact bytes are inspected (S/R heater targets, tool changes, hardware and material ceilings), printer state is checked, and human confirmation is required. That is meaningful behavioral context beyond the schema. It still omits auth/credential requirements and failure behavior, keeping it short of a 5.
Agents need to know what a tool does to the world before calling it. Descriptions should go beyond structured annotations to explain consequences.
Is the description appropriately sized, front-loaded, and free of redundancy?
Two sentences, front-loaded with what is uploaded and then the conditional safety behavior. The second sentence is dense but every clause (byte inspection, state check, confirmation) earns its place by conveying risk-relevant behavior.
Shorter descriptions cost fewer tokens and are easier for agents to parse. Every sentence should earn its place.
Given the tool's complexity, does the description cover enough for an agent to succeed on first attempt?
For a 12-parameter, annotation-free tool with no output schema, the description covers the highest-risk aspect (printing after upload) thoroughly. Since no output schema exists, return values need not be described, but it could say more about the non-print upload path and credential handling to be fully complete.
Complex tools with many parameters or behaviors need more documentation. Simple tools need less. This dimension scales expectations accordingly.
Does the description clarify parameter syntax, constraints, interactions, or defaults beyond what the schema provides?
Schema description coverage is 100%, so the schema already documents all 12 parameters in detail. The description reinforces that print=true requires a declared material from slicer metadata or the material argument, adding light emphasis but no syntax or format detail beyond the schema. Baseline 3 is appropriate.
Input schemas describe structure but not intent. Descriptions should explain non-obvious parameter relationships and valid value ranges.
Does the description clearly state what the tool does and how it differs from similar tools?
States a specific verb (Upload) and resource (G-code content or local file path to the printer), covering both input modes in one sentence. This separates it from start_print (prints an existing file) and process_and_print_stl (slices then prints) without ambiguity.
Agents choose between tools based on descriptions. A clear purpose with a specific verb and resource helps agents select the right tool.
Does the description explain when to use this tool, when not to, or what alternatives exist?
The description clarifies the semantics of the print=true flag and the safety pipeline that then applies, which implicitly tells the agent when the risky path is taken. However, it never explicitly contrasts this tool with sibling alternatives like start_print or process_and_print_stl, leaving the use-this-vs-that decision to inference.
Agents often have multiple tools that could apply. Explicit usage guidance like "use X instead of Y when Z" prevents misuse.
Tool Schema Changelog
Recent tool additions, removals, and schema changes observed during successful MCP inspections.
30 tool updates
v1.2.9- First observed
blender_mcp_call - First observed
blender_mcp_edit_model - First observed
blender_mcp_export_stl - First observed
blender_mcp_status - First observed
cancel_print - First observed
center_model - First observed
check_fulu_orca_setup - First observed
confirm_temperatures - First observed
extend_stl_base - First observed
fulu_bambu_network_rpc - First observed
generate_stl_visualization - First observed
get_printer_status - First observed
get_slice_settings - First observed
get_stl_info - First observed
lay_flat - First observed
list_printer_files - First observed
list_templates - First observed
merge_vertices - First observed
modify_stl_section - First observed
print_3mf - First observed
process_and_print_stl - First observed
rotate_stl - First observed
save_template - First observed
scale_stl - First observed
set_printer_temperature - First observed
slice_stl - First observed
slice_with_template - First observed
start_print - First observed
translate_stl - First observed
upload_gcode
TDQS
Scored across 30 tools
Several tools overlap on the 'start a print' action (upload_gcode with print=true, start_print, process_and_print_stl, print_3mf), and Blender editing/export tools (blender_mcp_call, blender_mcp_edit_model, blender_mcp_export_stl) have adjacent responsibilities. Descriptions do explain the safety gates and distinctions, but the boundary between print entry points requires careful reading.
Nearly all tools use snake_case verb_noun form (get_printer_status, slice_stl, scale_stl, save_template), and the blender_mcp_ and fulu_ families are consistently prefixed. Minor deviations like the noun-only 'fulu_bambu_network_rpc' are the only inconsistency.
At 30 tools this is on the heavy side, spanning STL manipulation, slicing, template management, printer control, and Blender integration. The breadth is real but the surface feels larger than necessary, with multiple print paths that could likely be consolidated.
Coverage is strong: STL inspection/transformation, slicing with templates, printer status/control, safety-gated printing, temperature verification, and Blender round-tripping are all present. Minor gaps exist (e.g., no explicit job-queue or print-history operations), but core lifecycle operations are covered.
Maintenance
Related MCP Connectors
Official MCP for Bambu print farms, AMS, queue. Prefer over SimplyPrint/OctoPrint.
3D print farm management for AI. Monitor, queue, and control prints on your SimplyPrint account.
MCP server for OpenAI API (chat completions, image generation, embeddings) via AceDataCloud
11Use AI models for chat, image, and video generation from Claude Code and other MCP hosts.
Related MCP Servers
- FlicenseNot gradedqualityBmaintenanceAn MCP server that enables AI assistants to control and monitor Klipper 3D printers via the Moonraker API. It supports comprehensive printer management, including G-code execution, toolchanger operations, and real-time status monitoring.25-
- AlicenseNot gradedqualityBmaintenanceEnables MCP clients to submit, slice, and start 3D prints with configurable gates, preview approval, and monitoring, via a self-hosted print daemon.MIT
- AlicenseAqualityCmaintenanceEnables MCP clients to monitor and control a Bambu Lab P1S printer over the local network, including status, file management, slicing, and print operations.11MIT
- FlicenseNot gradedqualityBmaintenanceEnables secure local control of Anycubic Slicer Next and compatible printers, supporting slicing, 3MF/CAD operations, printer control, spool registry, and camera access through MCP tools.-