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      Two Dimensional Antiscatter Grid: A novel scatter rejection device for Cone-Beam Computed Tomography

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      , , ,
      Medical physics
      CBCT, anti-scatter, grid, two dimensional

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          Abstract

          Purpose

          Scattered radiation remains to be a major cause of image quality degradation in Flat Panel Detector (FPD) based Cone-beam computed tomography (CBCT). We have been investigating a novel two dimensional antiscatter grid (2D–ASG) concept to reduce scatter intensity, and hence improve CBCT image quality. We present the first CBCT imaging experiments performed with the 2D–ASG prototype, and demonstrate its efficacy in improving CBCT image quality.

          Methods

          A 2D–ASG prototype with septa focused to x-ray source was additively manufactured from tungsten and mounted on a Varian TrueBeam CBCT system. CBCT projections of phantoms were acquired with an offset detector geometry using TrueBeam’s “developer” mode. To minimize the effect of gantry flex, projections were gain corrected on an angle specific bases. CBCT images were reconstructed using a filtered backprojection algorithm and image quality improvement was quantified by measuring contrast-to-noise ratio (CNR) and CT number accuracy in images acquired with no antiscatter grid (NO–ASG), conventional one dimensional antiscatter grid (1D–ASG), and the 2D–ASG prototype.

          Results

          A significant improvement in contrast resolution was achieved using our 2D–ASG prototype compared to results of 1D–ASG and NO–ASG acquisitions. Compared to NO–ASG and 1D–ASG experiments, the CNR of material inserts improved by as much as 86% and 54% respectively. Using 2D–ASG, CT number underestimation in water equivalent material section of the phantom was reduced by up to 325 HU when compared to NO–ASG and up to 179 HU when compared to 1D–ASG.

          Conclusion

          We successfully performed the first CBCT imaging experiments with a 2D–ASG prototype. 2D–ASG provided significantly higher CT number accuracy, higher CNR, and diminished scatter induced image artifacts in qualitative evaluations. We strongly believe that utilization of a 2D–ASG may potentially lead to better soft tissue visualization in CBCT and may enable novel clinical applications that require high CT number accuracy.

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          Author and article information

          Contributors
          Journal
          0425746
          5648
          Med Phys
          Med Phys
          Medical physics
          0094-2405
          2473-4209
          18 December 2017
          08 January 2018
          February 2018
          01 February 2019
          : 45
          : 2
          : 529-534
          Affiliations
          Department of Radiation Oncology, University of Colorado School of Medicine, 1665 Aurora Court, Suite 1032, Mail stop F-706 Aurora, CO 80045
          Article
          PMC5807157 PMC5807157 5807157 nihpa926658
          10.1002/mp.12724
          5807157
          29235120
          a7b7511e-e399-4e95-a22a-01f92aba7cfb
          History
          Categories
          Article

          CBCT,two dimensional,grid,anti-scatter
          CBCT, two dimensional, grid, anti-scatter

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