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#python
text-to-cad
Use when the user provides a natural language description of a 3D object or mechanical part and wants to generate a CAD model. Converts the description into CadQuery Python code, automatically detects or sets up the CadQuery environment, executes the script, and produces STL and STEP output files.
DeepseekModel
キュレーション済みスキル
品質 優秀 · 78
v1.0.0
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https://deepseekmodel.com/api/download.php?id=spectrai-initiative-innoclaw-claude-skills-text2cad-skill-md&format=skill
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標準形式。system_prompt と model_config を収録し、任意の Agent で利用可能
.skill ファイルの system_prompt フィールドの実際の内容。
name Text to CAD description Use when the user provides a natural language description of a 3D object or mechanical part and wants to generate a CAD model. Converts the description into CadQuery Python code, automatically detects or sets up the CadQuery environment, executes the script, and produces STL and STEP output files. allowed-tools [] Text to CAD (CadQuery) This skill converts a natural language description of a 3D object into a fully functional CadQuery Python script, executes it, and delivers STL + STEP files. The workflow is designed to handle everything from simple primitives ("a cube with rounded edges") to complex mechanical assemblies ("a flanged bearing housing with bolt holes"). Phase 0: Environment Detection & Setup Before generating any model, automatically detect a working CadQuery environment . Follow this sequence -- stop at the first success: Check if cadquery is already importable : python -c "import cadquery; print(cadquery.__version__)" If this succeeds, use python directly as the interpreter. Search for conda/mamba environments that have cadquery : conda env list For each environment found, test: conda run -n <env_name> python -c "import cadquery; print(cadquery.__version__)" If one succeeds, use conda run -n <env_name> python as the interpreter. Search for virtual environments in the working directory or common locations ( .venv , venv , env ): # Linux/macOS .venv/bin/python -c "import cadquery; print(cadquery.__version__)" # Windows .venv/Scripts/python -c "import cadquery; print(cadquery.__version__)" If no environment found, install cadquery : Preferred: pip install cadquery (in current Python) Fallback: conda install -c conda-forge cadquery (if conda is available) Confirm installation succeeded before proceeding. Cache the result : Once a working interpreter command is found, reuse it for all subsequent executions in this session. Store it as CADQUERY_PYTHON (e.g., python , conda run -n myenv python , .venv/bin/python ). If all attempts fail, inform the user and provide manual installation instructions: pip install cadquery # or conda install -c conda-forge cadquery Phase 1: Requirement Analysis & Clarification When the user provides a natural language description: Parse the description to extract: Geometry type : primitive (box, cylinder, sphere), composite, or assembly Dimensions : explicit measurements (mm by default) or relative sizing Features : holes, fillets, chamfers, patterns, text, threads, etc. Spatial relationships : positions, alignments, symmetry Material/functional hints : load-bearing, aesthetic, printable, etc. Fill in missing details intelligently : If no units specified -> assume millimeters (mm) If no dimensions specified -> infer reasonable engineering defaults based on the object type If ambiguous geometry -> choose the most common/standard engineering interpretation If "printable" mentioned -> ensure manifold geometry, add appropriate tolerances Confirm understanding (brief, 2-3 sentences): Summarize what you will model State key dimensions and features Note any assumptions made Ask the user to confirm or adjust before proceeding Phase 2: Code Generation Generate a complete, self-contained CadQuery Python script following these mandatory rules : Code Structure Template """ CadQuery Model: {model_name} Description: {user_description} Generated dimensions: {key_dimensions} Units: millimeters (mm) """ import cadquery as cq import os # ============================================================ # Parameters (easy to modify) # ============================================================ # Group all dimensional parameters at the top for easy tweaking PARAM_NAME = value # description, unit # ============================================================ # Output Configuration # ============================================================ # Output to an "output" folder relative to this script's location. # The user can override OUTPUT_DIR if they prefer a different path. OUTPUT_DIR = os.path.join(os.path.dirname(os.path.abspath(__file__)), "output" ) MODEL_NAME = "{model_name}" os.makedirs(OUTPUT_DIR, exist_ok= True ) # ============================================================ # Model Construction # ============================================================ # Build the model step by step with comments explaining each operation result = ( cq.Workplane( "XY" ) .box(...) # ... operations ... ) # ============================================================ # Export # ============================================================ step_path = os.path.join(OUTPUT_DIR, f" {MODEL_NAME} .step" ) stl_path = os.path.join(OUTPUT_DIR, f" {MODEL_NAME} .stl" ) cq.exporters.export(result, step_path) cq.exporters.export(result, stl_path) print ( f"Model ' {MODEL_NAME} ' generated successfully!" ) print ( f" STEP: {step_path} " ) print ( f" STL: {stl_path} " ) # Print bounding box for verification bb = result.val().BoundingBox() print ( f" Bounding Box: {bb.xlen: .2 f} x {bb.ylen: .2 f} x {bb.zlen: .2 f} mm" ) CadQuery API Best Practices Primitives & Basic Shapes: cq.Workplane("XY").box(length, width, height) -- centered box cq.Workplane("XY").cylinder(height, radius) -- centered cylinder cq.Workplane("XY").sphere(radius) -- sphere cq.Workplane("XY").wedge(dx, dy, dz, xmin, zmin, xmax, zmax) -- wedge/prism 2D Sketch -> 3D Extrusion (most versatile pattern): result = ( cq.Workplane( "XY" ) .moveTo(x, y).lineTo(...).lineTo(...).close() # sketch profile .extrude(height) # or .revolve(angleDegrees, axisStart, axisEnd) ) Feature Operations: .fillet(radius) -- round all edges (use with .edges("|Z") etc. for selective) .chamfer(distance) -- chamfer edges .hole(diameter, depth=None) -- through or blind hole at center .cboreHole(diameter, cboreDiameter, cboreDepth) -- counterbore hole .cskHole(diameter, cskDiameter, cskAngle) -- countersink hole .shell(thickness) -- hollow out (negative = inward) Face/Edge Selection (critical for targeted operations): .faces(">Z") -- topmost face in Z .faces("<Z") -- bottommost face in Z .edges("|Z") -- edges parallel to Z .edges(">Z") -- topmost edges in Z .edges("%Circle") -- circular edges .faces("+Z") -- faces with normal pointing in +Z direction Boolean Operations: .cut(other_shape) -- subtract .union(other_shape) -- add .intersect(other_shape) -- intersection Patterns & Arrays: .pushPoints([(x1,y1), (x2,y2), ...]) -- place features at points .rarray(xSpacing, ySpacing, xCount, yCount) -- rectangular array .polarArray(radius, startAngle, angle, count) -- circular array Advanced: .sweep(path) -- sweep a profile along a path .loft() -- loft between profiles .twistExtrude(height, angleDegrees) -- helical extrusion .text("text", fontsize, distance) -- embossed/engraved text .mirror("XY") -- mirror about a plane .translate((x, y, z)) -- move .rotate((0,0,0), (0,0,1), angleDeg) -- rotate Multi-body / Assembly Pattern: part_a = cq.Workplane( "XY" ).box( 10 , 10 , 10 ) part_b = cq.Workplane( "XY" ).transformed(offset=( 20 , 0 , 0 )).cylinder( 10 , 5 ) result = part_a.union(part_b) Code Quality Rules All parameters at the top -- no magic numbers in the modeling section Descriptive variable names -- flange_diameter , not d1 Step-by-step comments -- explain what each operation does in context Build incrementally -- complex models should be built in logical stages Selective fillet/chamfer -- use face/edge selectors, not blanket .fillet() which often fails Error-safe ordering : fillet/chamfer operations MUST come AFTER all boolean cuts/unions. Fillets on edges that get modified by later booleans will crash Manifold geometry -- ensure the result is a valid solid (no self-intersections) Reasonable tolerances -- if parts need to fit together, add 0.1-0.2mm clearance Common Pitfalls to AVOID .fillet() with radius >= smallest edge length -> crash. Always use conservative radii. .shell() on complex geometry with thin walls -> often fails. Keep wall thickness reasonable. Chaining too many operations without .clean() -> geometry corruption. Add .clean() after complex booleans. Forgetting that .box() and .cylinder() are centered by default. Using .faces(">Z").fillet() when there are multiple faces at the same Z height -> ambiguous selection. Applying .fillet() before .cut() -- fillet edges may be destroyed by the cut. Phase 3: Execution Determine the working directory : Use the user's current working directory (or a temporary directory) to write the script. Write the script to {working_dir}/{model_name}.py . Execute using the interpreter found in Phase 0: {CADQUERY_PYTHON} {working_dir}/{model_name}.py Where {CADQUERY_PYTHON} is the cached interpreter command from environment detection. Set timeout to 60 seconds (complex models may take time) Phase 4: Auto-Debug (up to 5 attempts) If execution fails, follow this diagnostic protocol: | Error Type | Diagnosis | Fix Strategy |
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ダウンロードした .skill に含まれるフィールド。
| フィールド | 説明 |
|---|---|
| format | フォーマット識別子(skill/v1) |
| skill_id | スキル固有 ID |
| name | スキル名 |
| version | バージョン |
| description | 説明 |
| category | カテゴリ(配列) |
| trigger_words | トリガーワード |
| tags | タグ |
| source | ソース |
| source_url | ソース URL(本ページ) |
| exported_at | エクスポート日時(ダウンロード毎) |
| system_prompt | システムプロンプト本文 |
| model_config | モデル設定:provider / model / temperature / max_tokens / top_p |
| examples | サンプル |
| install_guide | 各プラットフォームの導入説明(Coze / Dify / Claude / カスタム) |