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Dynamic 3D haptic virtual fixtures for miniallu invasvive beating heart surgery

Dynamic 3D haptic virtual fixtures for miniallu invasvive beating heart surgery
用于微型侵入式心脏跳动手术的动态 3D 触觉虚拟固定装置
批准号:
331204-2006
负责人:
Ren, Jing
金额:
$2.91万
依托单位国家:
加拿大
项目类别:
University Faculty Award
财政年份:
2006
资助国家:
加拿大
项目状态:
已结题
起止时间:
2006-01-01 至 2007-12-31

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中文摘要
翻译
在加拿大和整个北美,心血管疾病是导致疾病相关死亡的最常见原因。传统手术通常是开放性手术,具有极大的侵入性。微创心脏跳动手术的最新进展为心血管疾病患者提供了一个令人兴奋和有希望的选择。这种方法避免了胸骨切开术和使用心肺机。因此,它为患者提供了实质性的好处,如减少创伤,缩短恢复时间和减少并发症。这也为加拿大医疗保健系统节省了大量的长期财政开支。然而,这给外科医生带来了很大的困难,如手眼协调能力差,机动性受限,缺乏触觉(力/触觉)反馈。这些挑战提出了手术安全性和精确性的关键问题。在未来,许多这些问题可以通过使用触觉虚拟装置来解决,这是计算机生成的信号,通过力/触觉反馈应用于外科医生。就像真实的固定装置一样,比如用尺子引导铅笔,虚拟的固定装置仍然允许外科医生拥有最终的控制权。同时,它扩展了他们的能力,提高了手术速度,并通过提供局部参考和限制手术工具的运动,潜在地减少了外科医生的精神压力。我们的研究旨在将虚拟固定装置更直接地应用于手术室(OR),并研究外科医生友好型和患者特定的虚拟固定装置。本研究的长期目标包括:1)建立智能手术计划系统;2)开发具有极高精度和安全性的手术程序;3)进行虚拟稳定心脏跳动手术。我们相信,该项目的成功完成将带来强大的工具,将大大提高微创手术和治疗的安全性和精度水平。这项工作也代表了对触觉增强患者特定虚拟现实手术环境的宝贵贡献。
英文摘要
Cardiovascular disease is the most frequent cause of illness-related death in both Canada and in North America as a whole. Conventional surgeries are usually open procedures that are extremely invasive. Recent progress with minimally invasive beating-heart surgery offers an exciting and promising option to patients with cardiovascular disease. This procedure avoids operation of a sternotomy and the use of a heart-lung machine. As a result, it provides the patients with substantial benefits such as reduced trauma, shorter recovery time and fewer complications. It also represents significant long-term fiscal savings for the Canadian healthcare system. However, it creates significant difficulties for the surgeon, such as poor hand-eye coordination, restricted maneuverability, and lack of haptic (force/tactile) feedback. These challenges raise critical issues in surgical safety and precision. In the future, many of these issues can be addressed through the use of haptic virtual fixtures, which are computer-generated signals applied to the surgeon through force/tactile feedback. As in the case of real fixtures, such as a ruler guiding a pencil, virtual fixtures still permit the surgeon to have ultimate control. At the same time, it extends their capability, enhances the speed of surgery, and potentially reduces the surgeon's mental stress by providing a local reference and restricting the motion of the surgical tool. Our research aims to apply virtual fixtures more directly to the operation room (OR) and investigate surgeon-friendly and patient-specific virtual fixtures. The long-term goals of this research include: 1) building intelligent surgical planning systems 2) developing procedures with ultimate precision and safety and 3) performing virtual stabilized beating-heart surgery. We believe that the successful completion of this project will result in powerful tools that will significantly improve the level of safety and precision in minimally invasive surgery and therapy. This work also represents a valuable contribution to the haptics-augmented patient-specific virtual reality surgery environment.
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