Tissue Property Estimation and Graphical Display for Teleoperated Robot-Assisted Surgery

被引:0
|
作者
Yamamoto, Tomonori [1 ]
Vagvolgyi, Balazs [1 ]
Balaji, Kamini [1 ]
Whitcomb, Louis L. [1 ]
Okamura, Allison M. [1 ]
机构
[1] Johns Hopkins Univ, Lab Computat Sensing & Robot, Baltimore, MD 21218 USA
关键词
ADAPTIVE-CONTROL; HAPTIC FEEDBACK; IMPEDANCE; BEHAVIOR; SYSTEM; FORCE;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Manual palpation of tissue and organs during a surgical procedure provides clinicians with valuable information for diagnosis and surgical planning. In present-day robot-assisted minimally invasive surgery systems, lack of perceptible haptic feedback makes it challenging to detect a tumor in an organ or a calcified artery in heart tissue. This study presents an automated tissue property estimation method and a real-time graphical overlay that allow an operator to discriminate hard and soft tissues. We first evaluate experimentally the properties of an artificial tissue and compare seven possible mathematical tissue models. Self-validation as well as cross-validation confirm that the Hunt-Crossley model best describes the experimentally observed phantom tissue properties and is suitable for our purpose. Second, we present the development of a system in which the phantom tissue is palpated using a teleoperated surgical robot, and the stiffness of the Hunt-Crossly model is estimated in real time by recursive least squares. A real-time visual overlay representing tissue stiffness is created using a hue-saturation-luminance representation on a semi-transparent disc at the tissue surface. Hue depicts the stiffness at a palpated point and saturation is calculated based on distance from the point. A simple interpolation technique creates a continuous stiffness color map. In an experiment, the graphical overlay successfully shows the location of an artificial calcified artery hidden in phantom tissue.
引用
收藏
页码:3117 / 3123
页数:7
相关论文
共 50 条
  • [21] Robot-assisted Thyroid Surgery
    Dralle, H.
    CHIRURG, 2013, 84 (03): : 231 - 231
  • [22] Robot-Assisted Surgery in Gynecology
    Bankar, Gayatri R.
    Keoliya, Ajay
    CUREUS JOURNAL OF MEDICAL SCIENCE, 2022, 14 (09)
  • [23] Robot-assisted pancreatic surgery
    Coratti, A.
    Annecchiarico, M.
    BRITISH JOURNAL OF SURGERY, 2014, 101 (06) : 593 - 594
  • [24] Robot-assisted Mediastinal Surgery
    Rueckert, Jens-Carsten
    Huang, Luyu
    ZENTRALBLATT FUR CHIRURGIE, 2023, 148 : S17 - S25
  • [25] Robot-Assisted Plastic Surgery
    Hassanein, Aladdin H.
    Mailey, Brian A.
    Dobke, Marek K.
    CLINICS IN PLASTIC SURGERY, 2012, 39 (04) : 419 - +
  • [26] Robot-assisted surgery in urology
    Chung, Doo Yong
    Lee, Joo Yong
    JOURNAL OF THE KOREAN MEDICAL ASSOCIATION, 2024, 67 (03): : 204 - 210
  • [27] Implementation of Robot-Assisted Surgery
    Egberts, J. -H.
    Beham, A.
    Ghadimi, M.
    ZENTRALBLATT FUR CHIRURGIE, 2016, 141 (02): : 143 - 144
  • [28] Robot-assisted pediatric surgery
    Woo, R
    Le, D
    Krummel, TM
    Albanese, C
    AMERICAN JOURNAL OF SURGERY, 2004, 188 (4A): : 27S - 37S
  • [29] Robot-assisted surgery in gynaecology
    Hewitt, Matt
    O'Carroll, Michelle
    O'Reilly, Barry
    OBSTETRICIAN & GYNAECOLOGIST, 2011, 13 (03): : 183 - 188
  • [30] Robot-assisted vitreoretinal surgery
    Maier, Mathias
    Nasseri, M. Ali
    Zapp, Daniel
    Eder, Martin
    Kobuch, Karin
    Lohmann, Chris
    Knoll, Alois
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2013, 54 (15)