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Error Reduction in 3D Gaze Point Estimation for Advanced Medical Annotations

机译:用于高级医学注释的3D凝视点估计中的错误减少

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The advanced surgical navigation and computer-based anatomical education systems require the detection of gaze point of a user to detect the intention of the user. When much information is presented using AR annotation, a user may not obtain the information efficiently. The displaying of selected annotations increases the visibility of the annotations by reducing the amount of information. However, when viewing a large area, the depth error of the gaze point estimation becomes much larger than the horizontal and vertical errors. In this study, a method that estimates the gaze point by calibrating the depth with the distance of the Purkinje images was proposed. The result of the experiments showed a significant decrease in estimation error and suggested the possibility of improving visibility with the proposed estimation method in comparison to the traditional one.
机译:先进的手术导航和基于计算机的解剖学教育系统要求检测用户的凝视点以检测用户的意图。当使用AR注释呈现大量信息时,用户可能无法有效地获取信息。所选注释的显示通过减少信息量来增加注释的可见性。然而,当观看大区域时,凝视点估计的深度误差变得比水平误差和垂直误差大得多。在这项研究中,提出了一种通过用Purkinje图像的距离校准深度来估计凝视点的方法。实验结果表明,与传统方法相比,该估计方法显着降低了估计误差,并提出了使用所提出的估计方法改善可见度的可能性。

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