High-Fidelity Modeling of Shift-Variant Focal-Spot Blur for High-Resolution CT
Steven Tilley II, Wojciech Zbijewski, J. Webster Stayman

TL;DR
This paper presents a high-fidelity model of shift-variant focal spot blur in high-resolution CT, demonstrating that accurate blur modeling combined with MBIR significantly improves image quality across the entire field of view.
Contribution
It introduces a detailed shift-variant blur model for extremities CT and shows how incorporating this into MBIR enhances image quality compared to simpler models.
Findings
Shift-variant blur causes location-dependent image quality.
Changing X-ray tube orientation affects spatial blur dependence.
MBIR with accurate shift-variant blur modeling yields the best image quality.
Abstract
Dedicated application-specific CT systems are popular solutions to high-resolution clinical needs. Some applications, such as mammography and extremities imaging, require spatial resolution beyond current capabilities. Thorough understanding of system properties may help tailor system design, acquisition protocols, and reconstruction algorithms to improve image quality. Using a high-fidelity measurement model, we analyze the effects of shift-variant focal spot blur due to depth-dependence and anode angulation on image quality throughout the three-dimensional field of view of a simulated extremities scanner. A model of the shift-variant blur associated with this device is then incorporated into a Model-Based Iterative Reconstruction (MBIR) algorithm, which is then compared to FDK and MBIR with simpler blur models at select locations throughout the field of view. We show that…
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Taxonomy
TopicsMedical Imaging Techniques and Applications · Advanced X-ray and CT Imaging · Radiation Dose and Imaging
