Impact of time-of-flight on indirect 3D and direct 4D parametric image reconstruction in the presence of inconsistent dynamic PET data

被引:6
|
作者
Kotasidis, F. A. [1 ,2 ]
Mehranian, A. [1 ]
Zaidi, H. [1 ,3 ,4 ]
机构
[1] Univ Hosp Geneva, Div Nucl Med & Mol Imaging, CH-1211 Geneva, Switzerland
[2] Univ Manchester, Wolfson Mol Imaging Ctr, MAHSC, Manchester M20 3LJ, Lancs, England
[3] Univ Geneva, Geneva Neurosci Ctr, CH-1205 Geneva, Switzerland
[4] Univ Groningen, Univ Med Ctr Groningen, Dept Nucl Med & Mol Imaging, NL-9700 RB Groningen, Netherlands
来源
PHYSICS IN MEDICINE AND BIOLOGY | 2016年 / 61卷 / 09期
基金
瑞士国家科学基金会;
关键词
PET; time-of-flight; direct 4D reconstruction; parametric imaging; POSITRON-EMISSION-TOMOGRAPHY; MOTION CORRECTION; TOF PET; ATTENUATION CORRECTION; INPUT FUNCTIONS; RESOLUTION; BODY; COMPENSATION; REDUCTION; ALGORITHM;
D O I
10.1088/0031-9155/61/9/3443
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Kinetic parameter estimation in dynamic PET suffers from reduced accuracy and precision when parametric maps are estimated using kinetic modelling following image reconstruction of the dynamic data. Direct approaches to parameter estimation attempt to directly estimate the kinetic parameters from the measured dynamic data within a unified framework. Such image reconstruction methods have been shown to generate parametric maps of improved precision and accuracy in dynamic PET. However, due to the interleaving between the tomographic and kinetic modelling steps, any tomographic or kinetic modelling errors in certain regions or frames, tend to spatially or temporally propagate. This results in biased kinetic parameters and thus limits the benefits of such direct methods. Kinetic modelling errors originate from the inability to construct a common single kinetic model for the entire field-of-view, and such errors in erroneously modelled regions could spatially propagate. Adaptive models have been used within 4D image reconstruction to mitigate the problem, though they are complex and difficult to optimize. Tomographic errors in dynamic imaging on the other hand, can originate from involuntary patient motion between dynamic frames, as well as from emission/transmission mismatch. Motion correction schemes can be used, however, if residual errors exist or motion correction is not included in the study protocol, errors in the affected dynamic frames could potentially propagate either temporally, to other frames during the kinetic modelling step or spatially, during the tomographic step. In this work, we demonstrate a new strategy to minimize such error propagation in direct 4D image reconstruction, focusing on the tomographic step rather than the kinetic modelling step, by incorporating time-of-flight (TOF) within a direct 4D reconstruction framework. Using ever improving TOF resolutions (580 ps, 440 ps, 300 ps and 160 ps), we demonstrate that direct 4D TOF image reconstruction can substantially prevent kinetic parameter error propagation either from erroneous kinetic modelling, inter-frame motion or emission/transmission mismatch. Furthermore, we demonstrate the benefits of TOF in parameter estimation when conventional post-reconstruction (3D) methods are used and compare the potential improvements to direct 4D methods. Further improvements could possibly be achieved in the future by combining TOF direct 4D image reconstruction with adaptive kinetic models and interframe motion correction schemes.
引用
收藏
页码:3443 / 3471
页数:29
相关论文
共 50 条
  • [31] Time-of-Flight camera based 3D point cloud reconstruction of a car
    Hoegg, Thomas
    Lefloch, Damien
    Kolb, Andreas
    COMPUTERS IN INDUSTRY, 2013, 64 (09) : 1099 - 1114
  • [32] Time-of-Flight Camera Calibration for Improved 3D Reconstruction of Indoor Scenes
    Xie, Meng
    Cooperstock, Jeremy R.
    2014 SEVENTH INTERNATIONAL SYMPOSIUM ON COMPUTATIONAL INTELLIGENCE AND DESIGN (ISCID 2014), VOL 2, 2014,
  • [33] Validation of 4D CT Image Reconstruction Using a 3D Lung Phantom
    Zheng, Y.
    Girbino, M.
    Oshinsky, R.
    Vroege, L.
    Jesseph, F.
    Lee, S.
    Yuan, J.
    Machtay, M.
    Sohn, J.
    MEDICAL PHYSICS, 2017, 44 (06)
  • [34] 4D Reconstruction of the Past : the image retrieval and 3D model construction pipeline
    Hadjiprocopis, Andreas
    Ioannides, Marinos
    Wenzel, Konrad
    Rothermel, Mathias
    Johnsons, Paul S.
    Fritsch, Dieter
    Doulamis, Anastasios
    Protopapadakis, Eftychios
    Kyriakaki, Georgia
    Makantasis, Kostas
    Weinlinger, Guenther
    Klein, Michael
    Fellner, Dieter
    Stork, Andre
    Santos, Pedro
    SECOND INTERNATIONAL CONFERENCE ON REMOTE SENSING AND GEOINFORMATION OF THE ENVIRONMENT (RSCY2014), 2014, 9229
  • [35] Gaussian-Flow: 4D Reconstruction with Dynamic 3D Gaussian Particle
    Lin, Youtian
    Dai, Zuozhuo
    Zhu, Siyu
    Yao, Yao
    2024 IEEE/CVF CONFERENCE ON COMPUTER VISION AND PATTERN RECOGNITION (CVPR), 2024, : 21136 - 21145
  • [36] Synthesizing 4D Magnetic Resonance Angiography From 3D Time-of-Flight Using Deep Learning: A Feasibility Study
    Wada, Akihiko
    Akatsu, Toshiya
    Ikenouchi, Yutaka
    Suzuki, Michimasa
    Akashi, Toshiaki
    Hagiwara, Akifumi
    Nishizawa, Mitsuo
    Sano, Katsuhiro
    Kamagata, Koji
    Aoki, Shigeki
    CUREUS JOURNAL OF MEDICAL SCIENCE, 2024, 16 (05)
  • [37] Figures of Merit for Indirect Time-of-Flight 3D Cameras: Definition and Experimental Evaluation
    Perenzoni, Matteo
    Stoppa, David
    REMOTE SENSING, 2011, 3 (11): : 2461 - 2472
  • [38] Indirect time-of-flight pixel study: 3D Monte Carlo simulation approach
    Lopes, Bruno H.
    Fonteneau, Pascal
    Rideau, Denis
    Helleboid, Remi
    Mugny, Gabriel
    Goncalves, Boris R.
    Vignetti, Matteo M.
    Nayak, Goutham
    Bawedin, Maryline
    Kaminski, Anne
    PHYSICS AND SIMULATION OF OPTOELECTRONIC DEVICES XXXII, 2024, 12880
  • [39] From 2D PET to 3D PET: Issues of Data Representation and Image Reconstruction
    Gundlich, Brigitte
    Musmann, Patrick
    Weber, Simone
    Nix, Oliver
    Semmler, Wolfhard
    ZEITSCHRIFT FUR MEDIZINISCHE PHYSIK, 2006, 16 (01): : 31 - 46
  • [40] Optimal gating compared to 3D and 4D PET reconstruction for characterization of lung tumours
    Wouter van Elmpt
    James Hamill
    Judson Jones
    Dirk De Ruysscher
    Philippe Lambin
    Michel Öllers
    European Journal of Nuclear Medicine and Molecular Imaging, 2011, 38 : 843 - 855