An Efficient Estimation Method for Reducing the Axial Intensity Drop in Circular Cone-Beam CT
Reconstruction algorithms for circular cone-beam (CB) scans have been extensively studied in the literature. Since insufficient data are measured, an exact reconstruction is impossible for such a geometry. If the reconstruction algorithm assumes zeros for the missing data, such as the standard FDK a...
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Series: | International Journal of Biomedical Imaging |
Online Access: | http://dx.doi.org/10.1155/2008/242841 |
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doaj-72c487d687504078af8c4e59e03513212020-11-24T20:47:04ZengHindawi LimitedInternational Journal of Biomedical Imaging1687-41881687-41962008-01-01200810.1155/2008/242841242841An Efficient Estimation Method for Reducing the Axial Intensity Drop in Circular Cone-Beam CTLei Zhu0Jared Starman1Rebecca Fahrig2Department of Radiology, Stanford University, Stanford, CA 94305, USADepartment of Radiology, Stanford University, Stanford, CA 94305, USADepartment of Radiology, Stanford University, Stanford, CA 94305, USAReconstruction algorithms for circular cone-beam (CB) scans have been extensively studied in the literature. Since insufficient data are measured, an exact reconstruction is impossible for such a geometry. If the reconstruction algorithm assumes zeros for the missing data, such as the standard FDK algorithm, a major type of resulting CB artifacts is the intensity drop along the axial direction. Many algorithms have been proposed to improve image quality when faced with this problem of data missing; however, development of an effective and computationally efficient algorithm remains a major challenge. In this work, we propose a novel method for estimating the unmeasured data and reducing the intensity drop artifacts. Each CB projection is analyzed in the Radon space via Grangeat's first derivative. Assuming the CB projection is taken from a parallel beam geometry, we extract those data that reside in the unmeasured region of the Radon space. These data are then used as in a parallel beam geometry to calculate a correction term, which is added together with Hu’s correction term to the FDK result to form a final reconstruction. More approximations are then made on the calculation of the additional term, and the final formula is implemented very efficiently. The algorithm performance is evaluated using computer simulations on analytical phantoms. The reconstruction comparison with results using other existing algorithms shows that the proposed algorithm achieves a superior performance on the reduction of axial intensity drop artifacts with a high computation efficiency.http://dx.doi.org/10.1155/2008/242841 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lei Zhu Jared Starman Rebecca Fahrig |
spellingShingle |
Lei Zhu Jared Starman Rebecca Fahrig An Efficient Estimation Method for Reducing the Axial Intensity Drop in Circular Cone-Beam CT International Journal of Biomedical Imaging |
author_facet |
Lei Zhu Jared Starman Rebecca Fahrig |
author_sort |
Lei Zhu |
title |
An Efficient Estimation Method for Reducing the Axial Intensity Drop in Circular Cone-Beam CT |
title_short |
An Efficient Estimation Method for Reducing the Axial Intensity Drop in Circular Cone-Beam CT |
title_full |
An Efficient Estimation Method for Reducing the Axial Intensity Drop in Circular Cone-Beam CT |
title_fullStr |
An Efficient Estimation Method for Reducing the Axial Intensity Drop in Circular Cone-Beam CT |
title_full_unstemmed |
An Efficient Estimation Method for Reducing the Axial Intensity Drop in Circular Cone-Beam CT |
title_sort |
efficient estimation method for reducing the axial intensity drop in circular cone-beam ct |
publisher |
Hindawi Limited |
series |
International Journal of Biomedical Imaging |
issn |
1687-4188 1687-4196 |
publishDate |
2008-01-01 |
description |
Reconstruction algorithms for circular cone-beam (CB) scans have been extensively studied in the literature. Since insufficient data are measured, an exact reconstruction is impossible for such a geometry. If the reconstruction algorithm assumes zeros for the missing data, such as the standard FDK algorithm, a major type of resulting CB artifacts is the intensity drop along the axial direction. Many algorithms have been proposed to improve image quality when faced with this problem of data missing; however, development of an effective and computationally efficient algorithm remains a major challenge. In this work, we propose a novel method for estimating the unmeasured data and reducing the intensity drop artifacts. Each CB projection is analyzed in the Radon space via Grangeat's first derivative. Assuming the CB projection is taken from a parallel beam geometry, we extract those data that reside in the unmeasured region of the Radon space. These data are then used as in a parallel beam geometry to calculate a correction term, which is added together with Hu’s correction term to the FDK result to form a final reconstruction. More approximations are then made on the calculation of the additional term, and the final formula is implemented very efficiently. The algorithm performance is evaluated using computer simulations on analytical phantoms. The reconstruction comparison with results using other existing algorithms shows that the proposed algorithm achieves a superior performance on the reduction of axial intensity drop artifacts with a high computation efficiency. |
url |
http://dx.doi.org/10.1155/2008/242841 |
work_keys_str_mv |
AT leizhu anefficientestimationmethodforreducingtheaxialintensitydropincircularconebeamct AT jaredstarman anefficientestimationmethodforreducingtheaxialintensitydropincircularconebeamct AT rebeccafahrig anefficientestimationmethodforreducingtheaxialintensitydropincircularconebeamct AT leizhu efficientestimationmethodforreducingtheaxialintensitydropincircularconebeamct AT jaredstarman efficientestimationmethodforreducingtheaxialintensitydropincircularconebeamct AT rebeccafahrig efficientestimationmethodforreducingtheaxialintensitydropincircularconebeamct |
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1716811266414084096 |