ID | 114750 |
タイトル別表記 | Fast Iterative Reconstruction in MVCT
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著者 |
Ozaki, Sho
The University of Tokyo
Chao, Edward
Accuray Incorporated.
Maurer, Calvin
Accuray Incorporated.
Nawa, Kanabu
The University of Tokyo
Ohta, Takeshi
The University of Tokyo
Nakamoto, Takahiro
The University of Tokyo
Nozawa, Yuki
The University of Tokyo
Magome, Taiki
Komazawa University
Nakano, Masahiro
Japanese Foundation for Cancer Research
Nakagawa, Keiichi
The University of Tokyo
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キーワード | Statistical iterative reconstruction
Fast reconstruction algorithm
Maximum a posteriori estimation
Megavoltage CT
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資料タイプ |
学術雑誌論文
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抄録 | Statistical iterative reconstruction is expected to improve the image quality of computed tomography (CT). However, one of the challenges of iterative reconstruction is its large computational cost. The purpose of this review is to summarize a fast iterative reconstruction algorithm by optimizing reconstruction parameters. Megavolt projection data was acquired from a TomoTherapy system and reconstructed using in-house statistical iterative reconstruction algorithm. Total variation was used as the regularization term and the weight of the regularization term was determined by evaluating signal-to-noise ratio (SNR), contrast-to-noise ratio (CNR), and visual assessment of spatial resolution using Gammex and Cheese phantoms. Gradient decent with an adaptive convergence parameter, ordered subset expectation maximization (OSEM), and CPU/GPU parallelization were applied in order to accelerate the present reconstruction algorithm. The SNR and CNR of the iterative reconstruction were several times better than that of filtered back projection (FBP). The GPU parallelization code combined with the OSEM algorithm reconstructed an image several hundred times faster than a CPU calculation. With 500 iterations, which provided good convergence, our method produced a 512 × 512 pixel image within a few seconds. The image quality of the present algorithm was much better than that of FBP for patient data.
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掲載誌名 |
The Journal of Medical Investigation
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ISSN | 13496867
13431420
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cat書誌ID | AA12022913
AA11166929
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出版者 | Tokushima University Faculty of Medicine
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巻 | 67
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号 | 1-2
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開始ページ | 30
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終了ページ | 39
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並び順 | 30
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発行日 | 2020-02
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EDB ID | |
出版社版DOI | |
出版社版URL | |
フルテキストファイル | |
言語 |
eng
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著者版フラグ |
出版社版
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部局 |
医学系
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