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Measuring and correcting wobble in large-scale transmission radiography
Thomas W Rogers1,2, James Ollier3, Edward J Morton4
1Department of Computer Science, University College London, London, UK.
Journal of X-Ray Science and Technology
|November 2, 2016
Summary
Mechanical instability in large radiography scanners causes image wobble and reduced precision. This study introduces a novel wobble correction method using Beam Position Detectors (BPDs), significantly improving image quality and threat detection capabilities.
Area of Science:
- Medical Imaging
- X-ray Technology
- Image Processing
Background:
- Large-scale transmission radiography scanners image vehicles and cargo for threat detection.
- Mechanical instability in these systems causes detector wobble, reducing image precision.
- Accurate image precision is crucial for reliable threat detection.
Purpose of the Study:
- To measure and correct for mechanical wobble in large-scale radiography systems.
- To mitigate the loss of image precision caused by detector array instability.
- To enhance the accuracy of threat detection in scanned cargo.
Main Methods:
- Utilized Beam Position Detectors (BPDs) to measure X-ray beam profiles for wobble estimation.
- Developed a model for image formation with a wobbling detector array.
- Implemented a Random Regression Forest for instantaneous wobble estimation and subsequent image correction.
- Calibrated sensor sensitivities and relative offsets for improved accuracy.
Main Results:
- Successfully corrected for 87% of image errors attributed to wobble.
- Observed significant visible improvements in image quality for challenging scenes.
- Demonstrated enhanced precision in wobble-affected images.
Conclusions:
- The developed wobble correction method significantly improves image precision.
- Enhanced image quality aids in better threat detection and material identification.
- This technique is vital for maintaining high-performance security scanning systems.
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