Feasibility of 2D antiscatter grid concept for flat panel detectors: preliminary investigation of primary transmission properties
Cem Altunbas, Yuncheng Zhong, Chris C. Shaw

TL;DR
This study investigates the primary transmission properties of a 2D antiscatter grid for flat panel detectors in CBCT, demonstrating potential for improved scatter rejection and image quality with optimized design parameters.
Contribution
The paper introduces a computational model to analyze the primary transmission of 2D ASGs, highlighting how septal thickness and grid geometry influence performance and image quality.
Findings
Higher primary transmission with 0.1 mm septal thickness
Potential SNR improvements in low to moderate scatter environments
Footprint effects cause nonuniform primary signal variations
Abstract
Suppressing the effects of scattered radiation in flat panel detector, FPD, based CBCT still remains to be a challenge. To address the scatter problem, we have been investigating the feasibility of a two dimensional antiscatter grid (2D ASG) concept for FPDs. Although a 2D ASG can potentially provide high scatter rejection capability, primary transmission characteristics of a 2D ASG and its implications in image quality plays a more critical role in implementation of the 2D ASG concept. Thus, in this work, a computational model was developed to investigate the primary transmission properties of the 2D ASG for various grid and FPD pixel geometries, and the improvement in signal to noise ratio,SNR, was calculated analytically to demonstrate the impact of 2D ASG's transmission characteristics on image quality. Computational model showed that average primary transmission fraction (Tp)…
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