Reliability of EUCLIDIAN: An autonomous robotic system for image-guided prostate brachytherapy

被引:6
|
作者
Podder, Tarun K. [1 ]
Buzurovic, Ivan [1 ]
Huang, Ke [1 ]
Showalter, Timothy [1 ]
Dicker, Adam P. [1 ]
Yu, Yan [1 ]
机构
[1] Thomas Jefferson Univ, Dept Radiat Oncol, Kimmel Canc Ctr NCI Designated, Philadelphia, PA 19107 USA
关键词
brachytherapy robot; reliability of robot; medical robot; image-guided brachytherapy; prostate brachytherapy; prostate seed implant; GROWTH;
D O I
10.1118/1.3523097
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: Recently, several robotic systems have been developed to perform accurate and consistent image-guided brachytherapy. Before introducing a new device into clinical operations, it is important to assess the reliability and mean time before failure (MTBF) of the system. In this article, the authors present the preclinical evaluation and analysis of the reliability and MTBF of an autonomous robotic system, which is developed for prostate seed implantation. Methods: The authors have considered three steps that are important in reliability growth analysis. These steps are: Identification and isolation of failures, classification of failures, and trend analysis. For any one-of-a-kind product, the reliability enhancement is accomplished through test-fix-test. The authors have used failure mode and effect analysis for collection and analysis of reliability data by identifying and categorizing the failure modes. Failures were classified according to severity. Failures that occurred during the operation of this robotic system were considered as nonhomogenous Poisson process. The failure occurrence trend was analyzed using Laplace test. For analyzing and predicting reliability growth, commonly used and widely accepted models, Duane's model and the Army Material Systems Analysis Activity, i.e., Crow's model, were applied. The MTBF was used as an important measure for assessing the system's reliability. Results: During preclinical testing, 3196 seeds (in 53 test cases) were deposited autonomously by the robot and 14 critical failures were encountered. The majority of the failures occurred during the first few cases. The distribution of failures followed Duane's postulation as well as Crow's postulation of reliability growth. The Laplace test index was 3.82 (< 0), indicating a significant trend in failure data, and the failure intervals lengthened gradually. The continuous increase in the failure occurrence interval suggested a trend toward improved reliability. The MTBF was 592 seeds, which implied that several prostate seed implantation cases would be possible without encountering any critical failure. The shape parameter for the MTBF was 0.3859 (< 1), suggesting a positive reliability growth of this robotic system. At 95% confidence, the reliability for deposition of 65 seeds was more than 90%. Conclusions: Analyses of failure mode strongly indicated a gradual improvement of reliability of this autonomous robotic system. High MTBF implied that several prostate seed implant cases would be possible without encountering any critical failure. (C) 2011 American Association of Physicists in Medicine. [DOI: 10.1118/1.3523097]
引用
收藏
页码:96 / 106
页数:11
相关论文
共 50 条
  • [31] Design and testing of a robotic system for MR image-guided interventions
    Christoforou, Eftychios G.
    Tsekos, Nikolaos V.
    Oezcan, Alpay
    JOURNAL OF INTELLIGENT & ROBOTIC SYSTEMS, 2006, 47 (02) : 175 - 196
  • [32] Design and Testing of a Robotic System for mr Image-guided Interventions
    Eftychios G. Christoforou
    Nikolaos V. Tsekos
    Alpay Özcan
    Journal of Intelligent and Robotic Systems, 2006, 47 : 175 - 196
  • [33] Image-Guided and Robotic Cochlear Implantation
    Matsumoto, N.
    Oka, M.
    Hashizume, M.
    Komune, S.
    10TH EUROPEAN SYMPOSIUM ON PAEDIATRIC COCHLEAR IMPLANTATION, 2011, : 41 - 44
  • [34] Image-guided robotic radiosurgery - Comment
    Maciunas, RJ
    NEUROSURGERY, 1999, 44 (06) : 1307 - 1307
  • [35] Image-guided intravascular brachytherapy dose escalation
    Lussier, Luke
    Wallner, Kent
    Kearney, Kathleen E.
    Tiwana, Jasleen
    Kim, Edward Y.
    Parvathaneni, Upendra
    Lombardi, William L.
    Phillips, Mark
    Don, Creighton
    Kim, Minsun
    BRACHYTHERAPY, 2023, 22 (04) : 518 - 523
  • [36] Image-guided brachytherapy effective for cervical cancer
    Tanday, Sanjay
    LANCET ONCOLOGY, 2013, 14 (07): : E256 - E256
  • [37] IMAGE-Guided Brachytherapy for Primary Vaginal Cancers
    Foster, W.
    Froment, M. A.
    Lavallee, M. C.
    Vigneault, E.
    Aubin, S.
    Carignan, D.
    Pilote, L.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2019, 105 (01): : E358 - E358
  • [38] Robotic system for prostate brachytherapy
    Yu, Y.
    Podder, T. K.
    Zhang, Y. D.
    Ng, W. S.
    Misic, V.
    Sherman, J.
    Fuller, D.
    Rubens, D. J.
    Strang, J. G.
    Brasacchio, R. A.
    Messing, E. M.
    COMPUTER AIDED SURGERY, 2007, 12 (06) : 366 - 375
  • [39] Image-guided adaptive brachytherapy for cervix carcinoma
    Poetter, R.
    Fidarova, E.
    Kirisits, C.
    Dirnopoulos, J.
    CLINICAL ONCOLOGY, 2008, 20 (06) : 426 - 432
  • [40] Image-guided radiotherapy and -brachytherapy for cervical cancer
    Dutta, Suresh
    Nam Phong Nguyen
    Vock, Jacqueline
    Kerr, Christine
    Godinez, Juan
    Bose, Satya
    Jang, Siyoung
    Chi, Alexander
    Almeida, Fabio
    Woods, William
    Desai, Anand
    David, Rick
    Karlsson, Ulf Lennart
    Altdorfer, Gabor
    FRONTIERS IN ONCOLOGY, 2015, 5