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Stereoscopic Augmented Reality for Single Camera Endoscope Using Optical Tracker: A Study on Phantom

机译:使用光学跟踪器的单个相机内窥镜的立体增强现实:幻影研究

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Introduction: Endoscopic surgery causes reduced injury to tissues which helps in rapid recovery and less painful post-operative period of patients. However, its narrow field of view and loss of depth perception in endoscope image make surgeon's task difficult. Moreover, in endoscopic surgery surgeons can only see the surface of the surgical anatomy. In this study these limitations have been addressed with the development of an augmented reality system with 3D visualization. Method: The system is comprising of infrared based optical tracker, 2D endoscope system, computer and a 3D monitor. The system was calibrated to bring all the components to a single reference frame of the optical tracker. A phantom and its 3D CT model were used, respectively, to form the real and virtual part of the augmented reality. The endoscope camera position was tracked in 3D using a tracker tool mounted on it. The camera in the virtual environment was updated with the new positions of the endoscope camera. The endoscope video frame and the virtual model rendered image were superimposed to form augmented reality view. The depth map of the virtual scene was further used to make an stereo pair of the augmented reality. Results: The AR system was examined with endoscope video of phantom. It could produce well aligned real and virtual component. The contour different of the two components was 5 to 10 mm. Conclusion: An AR system for endoscopic surgery was successfully implemented on a phantom. It needs to include motion and deformation model to be applied on real patients.
机译:介绍:内窥镜手术导致对组织的损伤降低,有助于快速恢复和患者后术后时期的快速恢复和更少的痛苦。然而,它狭窄的视野和内窥镜图像中的深度感知丧失使外科医生的任务变得困难。此外,在内窥镜手术外科医生只能看到手术解剖学的表面。在本研究中,通过开发具有3D可视化的增强现实系统的局限性地解决了这些限制。方法:该系统包括基于红外光学跟踪器,2D内窥镜系统,计算机和3D监视器。系统被校准以将所有组件带到光学跟踪器的单个参考框架。使用幻像及其3D CT模型,以形成增强现实的真实和虚拟部分。使用安装在其上的跟踪工具跟踪内窥镜相机位置。使用内窥镜摄像头的新位置更新虚拟环境中的相机。内窥镜视频帧和虚拟模型呈现图像被叠加以形成增强的现实视图。虚拟场景的深度图还用于制作立体声对增强现实。结果:使用幻影的内窥镜视频检查AR系统。它可以产生良好的真实和虚拟组件。两种组分的轮廓为5至10毫米。结论:在幻影上成功实施了内窥镜手术的AR系统。它需要包括要在真正的患者身上应用的运动和变形模型。

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