Literature DB >> 30040073

A novel depth-of-interaction rebinning strategy for ultrahigh resolution PET.

Kyungsang Kim1, Joyita Dutta, Andrew Groll, Georges El Fakhri, Ling-Jian Meng, Quanzheng Li.   

Abstract

Small animal positron emission tomography (PET) imaging often requires high resolution (∼few hundred microns) to enable accurate quantitation in small structures such as animal brains. Recently, we have developed a prototype ultrahigh resolution depth-of-interaction (DOI) PET system that uses CdZnTe detectors with a detector pixel size of 350 μm and eight DOI layers with a 250 μm depth resolution. Due to the large number of line-of-response (LOR) combinations of DOIs, the system matrix for reconstruction is 64 times larger than that without DOI. While a high resolution virtual ring geometry can be employed to simplify the system matrix and create a sinogram, the LORs in such a sinogram tend to be sparse and irregular, leading to potential degradation of the reconstructed image quality. In this paper, we propose a novel high resolution sinogram rebinning method in which a uniform sub-sampling DOI strategy is employed. However, even with the high resolution rebinning strategy, the reconstructed image tends to be very noisy due to insufficient photon counts in many high resolution sinogram pixels. To reduce noise effects, we developed a penalized maximum likelihood reconstruction framework with the Poisson log-likelihood and a non-convex total variation penalty. Here, an ordered subsets separable quadratic surrogate and alternating direction method of multipliers are utilized to solve the optimization. To evaluate the performance of the proposed sub-sampling method and the penalized maximum likelihood reconstruction technique, we perform simulations and preliminary point source experiments. By comparing the reconstructed images and profiles based on sinograms without DOI, with rebinned DOI and with sub-sampled DOI, we demonstrate that the proposed method with sub-sampled DOIs can significantly improve the image quality with lower dose and yield a high resolution of  <300 μm.

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Year:  2018        PMID: 30040073      PMCID: PMC6375090          DOI: 10.1088/1361-6560/aad58c

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  16 in total

Review 1.  From PET detectors to PET scanners.

Authors:  John L Humm; Anatoly Rosenfeld; Alberto Del Guerra
Journal:  Eur J Nucl Med Mol Imaging       Date:  2003-10-02       Impact factor: 9.236

2.  High-resolution 3D Bayesian image reconstruction using the microPET small-animal scanner.

Authors:  J Qi; R M Leahy; S R Cherry; A Chatziioannou; T H Farquhar
Journal:  Phys Med Biol       Date:  1998-04       Impact factor: 3.609

3.  Sparse-view spectral CT reconstruction using spectral patch-based low-rank penalty.

Authors:  Kyungsang Kim; Jong Chul Ye; William Worstell; Jinsong Ouyang; Yothin Rakvongthai; Georges El Fakhri; Quanzheng Li
Journal:  IEEE Trans Med Imaging       Date:  2014-12-18       Impact factor: 10.048

4.  Dynamic PET reconstruction using temporal patch-based low rank penalty for ROI-based brain kinetic analysis.

Authors:  Kyungsang Kim; Young Don Son; Yoram Bresler; Zang Hee Cho; Jong Beom Ra; Jong Chul Ye
Journal:  Phys Med Biol       Date:  2015-03-07       Impact factor: 3.609

5.  A Prototype High-Resolution Small-Animal PET Scanner Dedicated to Mouse Brain Imaging.

Authors:  Yongfeng Yang; Julien Bec; Jian Zhou; Mengxi Zhang; Martin S Judenhofer; Xiaowei Bai; Kun Di; Yibao Wu; Mercedes Rodriguez; Purushottam Dokhale; Kanai S Shah; Richard Farrell; Jinyi Qi; Simon R Cherry
Journal:  J Nucl Med       Date:  2016-03-24       Impact factor: 10.057

6.  Application and evaluation of a measured spatially variant system model for PET image reconstruction.

Authors:  Adam M Alessio; Charles W Stearns; Shan Tong; Steven G Ross; Steve Kohlmyer; Alex Ganin; Paul E Kinahan
Journal:  IEEE Trans Med Imaging       Date:  2010-03       Impact factor: 10.048

7.  Study of a high-resolution, 3D positioning cadmium zinc telluride detector for PET.

Authors:  Y Gu; J L Matteson; R T Skelton; A C Deal; E A Stephan; F Duttweiler; T M Gasaway; C S Levin
Journal:  Phys Med Biol       Date:  2011-02-18       Impact factor: 3.609

8.  Performance evaluation of a high-sensitivity large-aperture small-animal PET scanner: ClairvivoPET.

Authors:  Tetsuro Mizuta; Keishi Kitamura; Hiroshi Iwata; Yoshiyuki Yamagishi; Atsushi Ohtani; Kazumi Tanaka; Yoshihiro Inoue
Journal:  Ann Nucl Med       Date:  2008-07-04       Impact factor: 2.668

9.  Iterative image reconstruction for positron emission tomography based on a detector response function estimated from point source measurements.

Authors:  Michel S Tohme; Jinyi Qi
Journal:  Phys Med Biol       Date:  2009-05-28       Impact factor: 3.609

10.  Toward VIP-PIX: A Low Noise Readout ASIC for Pixelated CdTe Gamma-Ray Detectors for Use in the Next Generation of PET Scanners.

Authors:  Jose-Gabriel Macias-Montero; Maher Sarraj; Mokhtar Chmeissani; Carles Puigdengoles; Gianluca De Lorenzo; Ricardo Martínez
Journal:  IEEE Trans Nucl Sci       Date:  2013-08       Impact factor: 1.679

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  2 in total

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Authors:  Anna V Elleman; J Du Bois
Journal:  Chembiochem       Date:  2022-03-21       Impact factor: 3.461

2.  1700 nm optical coherence microscopy enables minimally invasive, label-free, in vivo optical biopsy deep in the mouse brain.

Authors:  Jun Zhu; Hercules Rezende Freitas; Izumi Maezawa; Lee-Way Jin; Vivek J Srinivasan
Journal:  Light Sci Appl       Date:  2021-07-14       Impact factor: 17.782

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