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Real-time computer-generated integral imaging and 3D image calibration for augmented reality surgical navigation

机译:实时计算机生成的积分成像和3D图像校准,用于增强现实手术导航

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Autostereoscopic 3D image overlay for augmented reality (AR) based surgical navigation has been studied and reported many times. For the purpose of surgical overlay, the 3D image is expected to have the same geometric shape as the original organ, and can be transformed to a specified location for image overlay. However, how to generate a 3D image with high geometric fidelity and quantitative evaluation of 3D image's geometric accuracy have not been addressed. This paper proposes a graphics processing unit (GPU) based computer-generated integral imaging pipeline for real-time autostereoscopic 3D display, and an automatic closed-loop 3D image calibration paradigm for displaying undistorted 3D images. Based on the proposed methods, a novel AR device for 3D image surgical overlay is presented, which mainly consists of a 3D display, an AR window, a stereo camera for 3D measurement, and a workstation for information processing. The evaluation on the 3D image rendering performance with 2560 x 1600 elemental image resolution shows the rendering speeds of 50-60 frames per second (fps) for surface models, and 5-8 fps for large medical volumes. The evaluation of the undistorted 3D image after the calibration yields sub-millimeter geometric accuracy. A phantom experiment simulating oral and maxillofacial surgery was also performed to evaluate the proposed AR overlay device in terms of the image registration accuracy, 3D image overlay accuracy, and the visual effects of the overlay. The experimental results show satisfactory image registration and image overlay accuracy, and confirm the system usability. (C) 2014 Elsevier Ltd. All rights reserved.
机译:基于增强现实(AR)的手术导航的自动立体3D图像叠加已被研究和报道了很多次。出于手术覆盖的目的,预期3D图像具有与原始器官相同的几何形状,并且可以转换到指定位置进行图像覆盖。然而,尚未解决如何产生具有高几何保真度的3D图像以及对3D图像的几何精度进行定量评估的问题。本文提出了一种用于实时自动立体3D显示的基于图形处理单元(GPU)的计算机生成的积分成像管线,以及一种用于显示未失真3D图像的自动闭环3D图像校准范例。基于提出的方法,提出了一种新型的3D图像手术覆盖的AR设备,主要由3D显示器,AR窗口,用于3D测量的立体相机和用于信息处理的工作站组成。对具有2560 x 1600原始图像分辨率的3D图像渲染性能的评估显示,表面模型的渲染速度为每秒50-60帧(fps),大型医疗体积的渲染速度为5-8 fps。校准后对未失真的3D图像的评估得出亚毫米的几何精度。还进行了模拟口腔和颌面外科手术的体模实验,以从图像配准精度,3D图像覆盖精度和覆盖层的视觉效果方面评估拟议的AR覆盖设备。实验结果表明令人满意的图像配准和图像覆盖精度,并确认系统的可用性。 (C)2014 Elsevier Ltd.保留所有权利。

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