This commit implements the first phase of the MCP server as outlined in PROJECT_SUMMARY.md Option A: Model Discovery. New Features: - Complete .sim file parser (XML-based) - Expression extraction from .sim and .prt files - Solution, FEM, materials, loads, constraints extraction - Structured JSON output for LLM consumption - Markdown formatting for human-readable output Implementation Details: - mcp_server/tools/model_discovery.py: Core parser and discovery logic - SimFileParser class: Handles XML parsing of .sim files - discover_fea_model(): Main MCP tool function - format_discovery_result_for_llm(): Markdown formatter - mcp_server/tools/__init__.py: Updated to export new functions - mcp_server/tools/README.md: Complete documentation for MCP tools Testing & Examples: - examples/test_bracket.sim: Sample .sim file for testing - tests/mcp_server/tools/test_model_discovery.py: Comprehensive unit tests - Manual testing verified: Successfully extracts 4 expressions, solution info, mesh data, materials, loads, and constraints Validation: - Command-line tool works: python mcp_server/tools/model_discovery.py examples/test_bracket.sim - Output includes both Markdown and JSON formats - Error handling for missing files and invalid formats Next Steps (Phase 2): - Port optimization engine from P04 Atomizer - Implement build_optimization_config tool - Create pluggable result extractor system References: - PROJECT_SUMMARY.md: Option A (lines 339-350) - mcp_server/prompts/system_prompt.md: Model Discovery workflow
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5.3 KiB
Markdown
222 lines
5.3 KiB
Markdown
# MCP Tools Documentation
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This directory contains the MCP (Model Context Protocol) tools that enable LLM-driven optimization configuration for Atomizer.
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## Available Tools
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### 1. Model Discovery (`model_discovery.py`) ✅ IMPLEMENTED
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**Purpose**: Parse Siemens NX .sim files to extract FEA model information.
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**Function**: `discover_fea_model(sim_file_path: str) -> Dict[str, Any]`
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**What it extracts**:
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- **Solutions**: Analysis types (static, thermal, modal, etc.)
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- **Expressions**: Parametric variables that can be optimized
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- **FEM Info**: Mesh, materials, loads, constraints
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- **Linked Files**: Associated .prt files and result files
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**Usage Example**:
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```python
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from mcp_server.tools import discover_fea_model, format_discovery_result_for_llm
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# Discover model
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result = discover_fea_model("C:/Projects/Bracket/analysis.sim")
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# Format for LLM
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if result['status'] == 'success':
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markdown_output = format_discovery_result_for_llm(result)
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print(markdown_output)
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# Access structured data
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for expr in result['expressions']:
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print(f"{expr['name']}: {expr['value']} {expr['units']}")
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```
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**Command Line Usage**:
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```bash
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python mcp_server/tools/model_discovery.py examples/test_bracket.sim
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```
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**Output Format**:
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- **JSON**: Complete structured data for programmatic use
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- **Markdown**: Human-readable format for LLM consumption
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**Supported .sim File Versions**:
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- NX 2412 (tested)
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- Should work with NX 12.0+ (XML-based .sim files)
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**Limitations**:
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- Expression values are best-effort extracted from .sim XML
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- For accurate values, the associated .prt file is parsed (binary parsing)
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- Binary .prt parsing is heuristic-based and may miss some expressions
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---
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### 2. Build Optimization Config (PLANNED)
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**Purpose**: Generate `optimization_config.json` from natural language requirements.
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**Function**: `build_optimization_config(requirements: str, model_info: Dict) -> Dict[str, Any]`
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**Planned Features**:
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- Parse LLM instructions ("minimize stress while reducing mass")
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- Select appropriate result extractors
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- Suggest reasonable parameter bounds
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- Generate complete config for optimization engine
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---
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### 3. Start Optimization (PLANNED)
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**Purpose**: Launch optimization run with given configuration.
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**Function**: `start_optimization(config_path: str, resume: bool = False) -> Dict[str, Any]`
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---
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### 4. Query Optimization Status (PLANNED)
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**Purpose**: Get current status of running optimization.
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**Function**: `query_optimization_status(session_id: str) -> Dict[str, Any]`
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---
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### 5. Extract Results (PLANNED)
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**Purpose**: Parse FEA result files (OP2, F06, XDB) for optimization metrics.
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**Function**: `extract_results(result_files: List[str], extractors: List[str]) -> Dict[str, Any]`
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---
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### 6. Run NX Journal (PLANNED)
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**Purpose**: Execute NXOpen scripts via file-based communication.
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**Function**: `run_nx_journal(journal_script: str, parameters: Dict) -> Dict[str, Any]`
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---
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## Testing
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### Unit Tests
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```bash
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# Install pytest (if not already installed)
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pip install pytest
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# Run all MCP tool tests
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pytest tests/mcp_server/tools/ -v
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# Run specific test
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pytest tests/mcp_server/tools/test_model_discovery.py -v
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```
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### Example Files
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Example .sim files for testing are located in `examples/`:
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- `test_bracket.sim`: Simple structural analysis with 4 expressions
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---
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## Development Guidelines
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### Adding a New Tool
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1. **Create module**: `mcp_server/tools/your_tool.py`
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2. **Implement function**:
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```python
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def your_tool_name(param: str) -> Dict[str, Any]:
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"""
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Brief description.
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Args:
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param: Description
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Returns:
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Structured result dictionary
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"""
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try:
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# Implementation
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return {
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'status': 'success',
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'data': result
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}
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except Exception as e:
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return {
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'status': 'error',
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'error_type': 'error_category',
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'message': str(e),
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'suggestion': 'How to fix'
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}
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```
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3. **Add to `__init__.py`**:
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```python
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from .your_tool import your_tool_name
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__all__ = [
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# ... existing tools
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"your_tool_name",
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]
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```
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4. **Create tests**: `tests/mcp_server/tools/test_your_tool.py`
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5. **Update documentation**: Add section to this README
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---
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## Error Handling
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All MCP tools follow a consistent error handling pattern:
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**Success Response**:
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```json
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{
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"status": "success",
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"data": { ... }
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}
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```
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**Error Response**:
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```json
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{
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"status": "error",
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"error_type": "file_not_found | invalid_file | unexpected_error",
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"message": "Detailed error message",
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"suggestion": "Actionable suggestion for user"
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}
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```
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---
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## Integration with MCP Server
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These tools are designed to be called by the MCP server and consumed by LLMs. The workflow is:
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1. **LLM Request**: "Analyze my FEA model at C:/Projects/model.sim"
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2. **MCP Server**: Calls `discover_fea_model()`
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3. **Tool Returns**: Structured JSON result
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4. **MCP Server**: Formats with `format_discovery_result_for_llm()`
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5. **LLM Response**: Uses formatted data to answer user
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---
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## Future Enhancements
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- [ ] Support for binary .sim file formats (older NX versions)
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- [ ] Direct NXOpen integration for accurate expression extraction
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- [ ] Support for additional analysis types (thermal, modal, etc.)
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- [ ] Caching of parsed results for performance
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- [ ] Validation of .sim file integrity
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- [ ] Extraction of solver convergence settings
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---
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**Last Updated**: 2025-11-15
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**Status**: Phase 1 (Model Discovery) ✅ COMPLETE
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