709dc529df
- Collapsed Args:/Returns:/Raises: blocks that only restated the signature (364 lines): tektronix_base 48% -> ~20% doc density, helios_laser and uc480_camera likewise. Only docstrings whose entire body was those sections were touched. - Preserved verbatim the comments that carry hardware knowledge the code can't express: uc480's USB split-transaction contention note (with its measured fps), the IS_ALLOW_STARTER_FW_UPLOAD segfault explanation, the QImage-copy rationale, and tektronix's NUMFRAMESACQuired warning. - README: project structure, quick start, and every usage example now describe code that exists (they referenced hardware/bbd202.py, CoherentHOPSLaser, get_curve_binary, and 'python -m scanengine.app', none of which do). Added a headless-scan example and a read-a-scan-file example, since reuse without the GUI is the point of the refactor. - SETUP: structure section defers to README instead of keeping a second stale copy; documents the vendored uEye SDK and the Genesis quarantine. - ruff is now clean repo-wide: fixed the remaining raise-from, unused loop variables, placeholder f-strings, and a non-strict zip; the widget-layout semicolon idiom is an explicit config ignore rather than 22 standing warnings. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
389 lines
9.9 KiB
Markdown
Executable File
389 lines
9.9 KiB
Markdown
Executable File
# scanengine-3 Setup Guide
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Complete installation and configuration guide for the SRAS scanning platform.
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## System Requirements
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### Software Requirements
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- Python 3.8 or higher (3.10+ recommended)
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- pip package manager
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- Git (for version control)
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### Operating Systems
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- Linux (primary development platform)
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- Windows 10/11
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- macOS (limited testing)
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### Hardware Requirements
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Optional - application runs in simulation mode without hardware:
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- USB ports for ThorLabs BBD202/203 and FTDI devices
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- Serial (RS-232) port or USB-to-serial adapter for Helios laser
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- Network connection for Tektronix oscilloscope (Ethernet/LXI)
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## Installation
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### 1. Create Virtual Environment
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Using a virtual environment is strongly recommended to isolate dependencies.
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```bash
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# Navigate to project directory
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cd scanengine-3
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# Create virtual environment
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python -m venv venv
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# Activate virtual environment
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# On Linux/macOS:
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source venv/bin/activate
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# On Windows:
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venv\Scripts\activate
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```
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### 2. Install Python Dependencies
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```bash
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# Install all required packages
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pip install -r requirements.txt
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# Or install individually:
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pip install PyQt6>=6.4.0
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pip install pyserial>=3.5
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pip install pyvisa>=1.13.0
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pip install pyvisa-py>=0.7.0
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pip install pyftdi>=0.54.0
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```
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### 3. Verify Installation
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```bash
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# Test Python imports
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python -c "import PyQt6; import serial; import pyvisa; print('Dependencies OK')"
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# List connected serial devices (optional)
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python -c "import serial.tools.list_ports; print(list(serial.tools.list_ports.comports()))"
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```
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## Hardware Setup
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### ThorLabs BBD202/BBD203 Motor Controller
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**Connection:**
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1. Connect BBD202/203 controller to PC via USB
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2. Power on the controller
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3. Note the serial number printed on the device (8 digits)
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**Linux-specific:**
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```bash
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# Add user to dialout group for serial access
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sudo usermod -a -G dialout $USER
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# Log out and back in for changes to take effect
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# Verify USB connection
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lsusb | grep -i thorlabs
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```
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**Windows-specific:**
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- Install ThorLabs APT software to get USB drivers
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- Verify device appears in Device Manager under "Ports (COM & LPT)"
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**First-time setup:**
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```bash
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# Run the stage test application
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python bbd202_test_app.py
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# Set the serial port, click Connect (it now fails loudly if no bay
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# responds), then Home to verify operation.
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```
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### Helios Laser System
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**Connection:**
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1. Connect Helios laser to RS-232 serial port
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2. Configure serial settings: 9600 baud, 8 data bits, no parity, 1 stop bit (8N1)
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3. Note the COM port name (e.g., COM3 on Windows, /dev/ttyUSB0 on Linux)
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**Linux-specific:**
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```bash
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# Identify serial port
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ls -l /dev/ttyUSB* /dev/ttyS*
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# Test connection (optional, if helios driver available)
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# python -c "from hardware.helios_driver import HeliosDriver; d = HeliosDriver('/dev/ttyUSB0'); print('Connected:', d.connect())"
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```
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### Coherent HOPS Laser
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**Connection:**
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1. Connect HOPS laser to PC via FTDI USB cable
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2. Laser communicates over I2C protocol through FTDI interface
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**Driver installation:**
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```bash
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# Linux: Install libftdi (if not already present)
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sudo apt install libftdi1-dev # Debian/Ubuntu
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sudo dnf install libftdi-devel # Fedora
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# Verify FTDI device
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python -c "from pyftdi.ftdi import Ftdi; Ftdi.show_devices()"
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```
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**First-time setup:**
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```bash
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# Test the Genesis laser connection
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python tools/genesis_laser_control.py
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```
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> Before changing any Genesis code, read
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> [docs/genesis_verification.md](docs/genesis_verification.md) — the two
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> implementations in the repo disagree on ADC scaling, LDD polarity, and
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> shutter behaviour, and only the bench can settle it.
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### Tektronix Oscilloscope
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**Connection:**
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1. Connect oscilloscope to network via Ethernet
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2. Configure oscilloscope IP address (static recommended)
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3. Enable LXI server on oscilloscope (Utility → I/O → Network → LXI)
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**Network configuration:**
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```bash
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# Verify connectivity
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ping <oscilloscope-ip>
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# Test connection
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python -c "from hardware.tektronix_base import TektronixOscilloscopeBase; scope = TektronixOscilloscopeBase(); scope.connect('<oscilloscope-ip>', 4000); print('Connected')"
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```
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## Running the Application
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### Main Application
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```bash
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# Run main application
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python -m scanengine.app
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```
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**On first launch:**
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1. Main window opens with scan launcher interface
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2. Configure system settings before starting scans
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3. Use "Options" to configure hardware connections
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### Genesis Laser Control Tools
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For standalone Genesis laser control:
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```bash
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# Full-featured Genesis laser control app
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python tools/genesis_laser_control.py
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# Alternative Genesis GUI
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python tools/genesis_laser_gui.py
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```
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Features:
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- Current and power control
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- Shutter and keyswitch control
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- Real-time monitoring
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- Interlock status
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- Temperature readings
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- Raw I2C packet interface
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## Configuration
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### Stage Settings
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Stage configuration is automatically saved to:
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```
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~/.nuescan/stage_settings.json (Linux/macOS)
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%USERPROFILE%\.nuescan\stage_settings.json (Windows)
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```
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Settings include:
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- Velocity profiles per axis
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- Acceleration profiles
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- Trigger output configuration
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- Last used serial number
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**Manual editing:**
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```json
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{
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"x_axis": {
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"velocity": 2.0,
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"acceleration": 5.0,
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"trigger": {
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"mode": 1,
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"polarity": 0,
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"start_pos_fwd": 0.0,
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"interval_fwd": 1.0
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}
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}
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}
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```
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### Application Settings
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Main window settings (geometry, last used values) are stored in Qt settings:
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```
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~/.config/SRAS/nueScan.conf (Linux)
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%APPDATA%\SRAS\nueScan.ini (Windows)
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```
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## Project Structure
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See the tree in [README.md](README.md#project-structure). In short: `core/`
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is the headless scan engine and file format (no PyQt6, no vendor SDKs),
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`hardware/` holds the Qt-free device drivers, `gui/` the shared PyQt6
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adapters and widgets, and the root `*.py` files are the runnable apps.
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## Vendored camera SDK (`lib/`)
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`lib/` is gitignored, so a fresh clone does not have it. The IDS uEye
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runtime (`libueye_api64.so.3.82`) must come from the IDS SDK installation
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matching the camera firmware on this rig.
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`lib/ueye_loader.{c,so}` is an `LD_PRELOAD` shim that dlopens
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`/usr/lib/libueye_api.so` before Python starts. Nothing in the repo
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references it and no launcher sets `LD_PRELOAD`, so whether it is still
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needed is an open question — see [KNOWN_ISSUES.md](KNOWN_ISSUES.md).
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## Troubleshooting
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### Common Issues
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**1. Import Errors**
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```
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ModuleNotFoundError: No module named 'PyQt6'
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```
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**Solution:** Ensure virtual environment is activated and dependencies are installed
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```bash
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source venv/bin/activate # or venv\Scripts\activate on Windows
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pip install -r requirements.txt
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```
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**2. Serial Port Access Denied (Linux)**
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```
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PermissionError: [Errno 13] Permission denied: '/dev/ttyUSB0'
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```
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**Solution:** Add user to dialout group
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```bash
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sudo usermod -a -G dialout $USER
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# Log out and back in
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```
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**3. BBD202/203 Not Detected**
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- Verify USB cable is connected and device is powered on
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- Check serial number is correct (8 digits, case-sensitive)
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- On Windows, verify ThorLabs APT drivers are installed
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- Try different USB port
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**4. Oscilloscope Connection Failed**
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- Verify network connectivity with `ping`
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- Ensure oscilloscope LXI server is enabled
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- Check firewall settings (port 4000 must be open)
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- Verify IP address is correct
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**5. PyQt6 UI Loading Errors**
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```
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uic.loadUi() failed to load .ui file
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```
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**Solution:** Ensure .ui files are in same directory as main script, or check file paths
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### Debug Mode
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Enable verbose logging:
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```python
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# Add to __main__.py before creating QApplication
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import logging
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logging.basicConfig(level=logging.DEBUG)
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```
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All hardware modules print status messages:
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- `DEBUG:` - Detailed operation information
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- `INFO:` - Normal operations
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- `WARNING:` - Potential issues
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- `ERROR:` - Operation failures
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## Development Workflow
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### UI Modifications
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1. Edit `.ui` files using Qt Designer:
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```bash
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designer nuescan_mainwindow.ui
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```
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2. UI files are loaded dynamically at runtime - no compilation needed
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3. Access UI elements in code:
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```python
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self.ui.buttonName.clicked.connect(self.handler_method)
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```
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### Adding New Hardware
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1. Create driver module in `hardware/` directory
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2. Implement required methods:
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- `connect()` / `disconnect()`
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- `is_connected()`
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- `get_status()`
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3. Add to main window or create dedicated dialog
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4. Update UI to include new hardware section
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### Testing Without Hardware
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All hardware drivers support operation without physical devices:
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- Stage: Simulated position and status
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- Lasers: Accept commands without hardware validation
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- Oscilloscope: Can be tested with scope simulator
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Run application normally - missing hardware will log warnings but won't prevent startup.
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## Performance Optimization
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### Fast Data Acquisition
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For high-speed scanning with oscilloscope:
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1. Use wired Ethernet (not Wi-Fi)
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2. Set oscilloscope to 1 Gb Ethernet if available
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3. Enable binary data transfer format
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4. Use fast-frame mode for multi-point scans
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### Stage Movement Optimization
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For optimal scan performance:
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1. Home all axes before starting scan
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2. Set appropriate velocity limits (2-5 mm/s typical)
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3. Configure trigger output for synchronized acquisition
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4. Use continuous motion scans when possible
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## Additional Resources
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- [ThorLabs APT Protocol Manual](docs/protocols/apt_communications_protocol.pdf)
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- [Helios Communication Protocol](docs/protocols/helios_comms_protocol.pdf)
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- [ThorLabs MLS Protocol](docs/protocols/thorlabs_mls_protocol.pdf)
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- [BBD202/203 Driver Documentation](docs/hardware/BBD203_DRIVER_README.md)
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- [BBD202/203 Connection Guide](docs/hardware/BBD203_CONNECTION_GUIDE.md)
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- [Helios Driver Documentation](docs/hardware/HELIOS_DRIVER_README.md)
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- [Genesis Laser Documentation](docs/hardware/GENESIS_LASER_README.md)
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- [Laser Control Implementation Guide](docs/hardware/laser_control_implementation_guide.md)
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## License
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Copyright (C) 2025 Thomas Ales
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Licensed under GNU General Public License v2.0
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## Support
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For issues or questions:
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1. Check troubleshooting section above
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2. Review hardware-specific documentation
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3. Examine console output for error messages
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4. Contact development team
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---
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scanengine-3 v0.1.0
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