From patient-informed to patient-specific organ dose estimation in clinical computed tomography

被引:7
作者
Fu, Wanyi [1 ,2 ]
Segars, William P. [1 ,3 ,4 ]
Abadi, Ehsan [1 ,2 ]
Sharma, Shobhit [1 ,5 ]
Kapadia, Anuj J. [1 ,6 ]
Samei, Ehsan [1 ,2 ,3 ,4 ,5 ,6 ]
机构
[1] Duke Univ, Carl E Ravin Adv Imaging Labs, Durham, NC 27708 USA
[2] Duke Univ, Dept Elect & Comp Engn, Durham, NC 27708 USA
[3] Duke Univ, Dept Biomed Engn, Durham, NC 27706 USA
[4] Duke Univ, Dept Radiol, Durham, NC 27710 USA
[5] Duke Univ, Dept Phys, Durham, NC 27706 USA
[6] Duke Univ, Med Phys Grad Program, Durham, NC 27708 USA
来源
MEDICAL IMAGING 2018: PHYSICS OF MEDICAL IMAGING | 2018年 / 10573卷
基金
美国国家卫生研究院;
关键词
organ dose; Monte Carlo; computational phantom; patient-specific; convolutional neural networks; CT; PHANTOMS; ADULT;
D O I
10.1117/12.2294954
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Many hospitals keep a record of dose after each patient's CT scan to monitor and manage radiation risks. To facilitate risk management, it is essential to use the most relevant metric, which is the patient-specific organ dose. The purpose of this study was to develop and validate a patient-specific and automated organ dose estimation framework. This framework includes both patient and radiation exposure modeling. From patient CT images, major organs were automatically segmented using Convolutional Neural Networks (CNNs). Smaller organs and structures that were not otherwise segmented were automatically filled in by deforming a matched XCAT phantom from an existing library of models. The organ doses were then estimated using a validated Monte Carlo (PENELOPE) simulation. The segmentation and deformation components of the framework were validated independently. The segmentation methods were trained and validated using 50-patient CT datasets that were manually delineated. The deformation methods were validated using a leave-one-out technique across 50 existing XCAT phantoms that were deformed to create a patient-specific XCAT for each of 50 targets. Both components were evaluated in terms of dice similarity coefficients (DSC) and organ dose. For dose comparisons, a clinical chest-abdomen-pelvis protocol was simulated under fixed tube current (mA). The organ doses were estimated by a validated Monte Carlo package and compared between automated and manual segmentation and between patient-specific XCAT phantoms and their corresponding XCAT targets. Organ dose for phantoms from automated vs. manual segmentation showed a (similar to)2% difference, and organ dose for phantoms deformed by the study vs. their targets showed a variation of (similar to)5% for most organs. These results demonstrate the great potential to assess organ doses in a highly patient-specific manner.
引用
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页数:6
相关论文
共 13 条
[1]  
[Anonymous], MED PHYS
[2]  
[Anonymous], ISCHEMIC STROKE LESI
[3]   Symmetric diffeomorphic image registration with cross-correlation: Evaluating automated labeling of elderly and neurodegenerative brain [J].
Avants, B. B. ;
Epstein, C. L. ;
Grossman, M. ;
Gee, J. C. .
MEDICAL IMAGE ANALYSIS, 2008, 12 (01) :26-41
[4]   Extension of RPI-adult male and female computational phantoms to obese patients and a Monte Carlo study of the effect on CT imaging dose [J].
Ding, Aiping ;
Mille, Matthew M. ;
Liu, Tianyu ;
Caracappa, Peter F. ;
Xu, X. George .
PHYSICS IN MEDICINE AND BIOLOGY, 2012, 57 (09) :2441-2459
[5]   Hybrid Patient-Dependent Phantoms Covering Statistical Distributions of Body Morphometry in the US Adult and Pediatric Population [J].
Johnson, Perry B. ;
Whalen, Scott R. ;
Wayson, Michael ;
Juneja, Badal ;
Lee, Choonsik ;
Bolch, Wesley E. .
PROCEEDINGS OF THE IEEE, 2009, 97 (12) :2060-2075
[6]   Efficient multi-scale 3D CNN with fully connected CRF for accurate brain lesion segmentation [J].
Kamnitsas, Konstantinos ;
Ledig, Christian ;
Newcombe, Virginia F. J. ;
Sirnpson, Joanna P. ;
Kane, Andrew D. ;
Menon, David K. ;
Rueckert, Daniel ;
Glocker, Ben .
MEDICAL IMAGE ANALYSIS, 2017, 36 :61-78
[7]   Patient-specific radiation dose and cancer risk estimation in CT: Part II. Application to patients [J].
Li, Xiang ;
Samei, Ehsan ;
Segars, W. Paul ;
Sturgeon, Gregory M. ;
Colsher, James G. ;
Toncheva, Greta ;
Yoshizumi, Terry T. ;
Frush, Donald P. .
MEDICAL PHYSICS, 2011, 38 (01) :408-419
[8]   Appearance and Incomplete Label Matching for Diffeomorphic Template Based Hippocampus Segmentation [J].
Pluta, John ;
Avants, Brian B. ;
Glynn, Simon ;
Awate, Sttyash ;
Gee, James C. ;
Detre, John A. .
HIPPOCAMPUS, 2009, 19 (06) :565-571
[9]   Tissue segmentation of computed tomography images using a Random Forest algorithm: a feasibility study [J].
Polan, Daniel F. ;
Brady, Samuel L. ;
Kaufman, Robert A. .
PHYSICS IN MEDICINE AND BIOLOGY, 2016, 61 (17) :6553-6569
[10]   Accuracy of patient-specific organ dose estimates obtained using an automated image segmentation algorithm [J].
Schmidt, Taly Gilat ;
Wang, Adam S. ;
Coradi, Thomas ;
Haas, Benjamin ;
Star-Lack, Josh .
JOURNAL OF MEDICAL IMAGING, 2016, 3 (04)