Discriminating Tissue Stiffness with a Haptic Catheter: Feeling the Inside of the Beating Heart.

Samuel B Kesner, Robert D Howe
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引用次数: 27

Abstract

Catheter devices allow physicians to access the inside of the human body easily and painlessly through natural orifices and vessels. Although catheters allow for the delivery of fluids and drugs, the deployment of devices, and the acquisition of the measurements, they do not allow clinicians to assess the physical properties of tissue inside the body due to the tissue motion and transmission limitations of the catheter devices, including compliance, friction, and backlash. The goal of this research is to increase the tactile information available to physicians during catheter procedures by providing haptic feedback during palpation procedures. To accomplish this goal, we have developed the first motion compensated actuated catheter system that enables haptic perception of fast moving tissue structures. The actuated catheter is instrumented with a distal tip force sensor and a force feedback interface that allows users to adjust the position of the catheter while experiencing the forces on the catheter tip. The efficacy of this device and interface is evaluated through a psychophyisical study comparing how accurately users can differentiate various materials attached to a cardiac motion simulator using the haptic device and a conventional manual catheter. The results demonstrate that haptics improves a user's ability to differentiate material properties and decreases the total number of errors by 50% over the manual catheter system.

Abstract Image

用触觉导管辨别组织硬度:感受跳动的心脏内部。
导管装置允许医生通过自然的孔口和血管轻松无痛地进入人体内部。尽管导管允许液体和药物的输送、设备的部署和测量的获取,但由于导管设备的组织运动和传输限制,包括顺应性、摩擦和反弹,它们不允许临床医生评估体内组织的物理特性。本研究的目的是通过在触诊过程中提供触觉反馈来增加导管过程中医生可用的触觉信息。为了实现这一目标,我们开发了第一个运动补偿驱动导管系统,使快速运动组织结构的触觉感知成为可能。驱动的导管配有远端力传感器和力反馈接口,该接口允许用户在体验导管尖端上的力时调整导管的位置。通过一项心理物理研究来评估该设备和界面的有效性,比较用户使用触觉设备和传统手动导管区分附着在心脏运动模拟器上的各种材料的准确性。结果表明,与手动导尿管系统相比,触觉提高了用户区分材料特性的能力,并将总误差减少了50%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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