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Stereoscopic augmented reality for laparoscopic surgery

机译:腹腔镜手术立体增强现实

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Background: Conventional laparoscopes provide a flat representation of the three-dimensional (3D) operating field and are incapable of visualizing internal structures located beneath visible organ surfaces. Computed tomography (CT) and magnetic resonance (MR) images are difficult to fuse in real time with laparoscopic views due to the deformable nature of soft-tissue organs. Utilizing emerging camera technology, we have developed a real-time stereoscopic augmented-reality (AR) system for laparoscopic surgery by merging live laparoscopic ultrasound (LUS) with stereoscopic video. The system creates two new visual cues: (1) perception of true depth with improved understanding of 3D spatial relationships among anatomical structures, and (2) visualization of critical internal structures along with a more comprehensive visualization of the operating field. Methods: The stereoscopic AR system has been designed for near-term clinical translation with seamless integration into the existing surgical workflow. It is composed of a stereoscopic vision system, a LUS system, and an optical tracker. Specialized software processes streams of imaging data from the tracked devices and registers those in real time. The resulting two ultrasound-augmented video streams (one for the left and one for the right eye) give a live stereoscopic AR view of the operating field. The team conducted a series of stereoscopic AR interrogations of the liver, gallbladder, biliary tree, and kidneys in two swine. Results: The preclinical studies demonstrated the feasibility of the stereoscopic AR system during in vivo procedures. Major internal structures could be easily identified. The system exhibited unobservable latency with acceptable image-to-video registration accuracy. Conclusions: We presented the first in vivo use of a complete system with stereoscopic AR visualization capability. This new capability introduces new visual cues and enhances visualization of the surgical anatomy. The system shows promise to improve the precision and expand the capacity of minimally invasive laparoscopic surgeries.
机译:背景技术:传统的腹腔镜提供了三维(3D)操作区域的平面表示,并且无法可视化位于可见器官表面下方的内部结构。由于软组织器官的可变形性,计算机断层扫描(CT)和磁共振(MR)图像很难与腹腔镜视图实时融合。利用新兴的摄像头技术,我们通过将实时腹腔镜超声(LUS)与立体视频相结合,开发了用于腹腔镜手术的实时立体增强现实(AR)系统。该系统创建了两个新的视觉提示:(1)通过更好地了解解剖结构之间的3D空间关系来感知真实深度,以及(2)关键内部结构的可视化以及对操作区域的更全面的可视化。方法:立体AR系统设计用于近期临床翻译,并无缝集成到现有的手术流程中。它由立体视觉系统,LUS系统和光学跟踪器组成。专用软件处理来自被跟踪设备的成像数据流,并实时进行记录。产生的两个超声增强视频流(一个用于左眼,一个用于右眼)提供了操作场的实时立体AR视图。该团队对两只猪的肝脏,胆囊,胆道树和肾脏进行了一系列立体AR询问。结果:临床前研究证明了立体AR系统在体内手术过程中的可行性。主要内部结构很容易识别。该系统表现出无法观察到的延迟,并且具有可接受的图像到视频配准精度。结论:我们介绍了具有立体AR可视化功能的完整系统的首次体内使用。这项新功能引入了新的视觉提示,并增强了手术解剖结构的可视性。该系统显示出有望提高精度并扩大微创腹腔镜手术的能力。

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