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Latency and Distortion compensation in AugmentedEnvironments using Electromagnetic trackers

机译:延迟和失真补偿使用电磁跟踪仪的环境

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摘要

Augmented reality (AR) systems are often used to superimpose virtual objects or information on a scene to improve situational awareness. Delays in the display system or inaccurate registration of objects destroy the sense of immersion a user experiences when using AR systems. AC electromagnetic trackers are ideally for these applications when combined with head orientation prediction to compensate for display system delays. Unfortunately, these trackers do not perform well in environments that contain conductive or ferrous materials due to magnetic field distortion without expensive calibration techniques. In our work we focus on both the prediction and distortion compensation aspects of this application, developing a “small footprint” predictive filter for display lag compensation and a simplified calibration system for AC magnetic trackers. In the first phase of our study we presented a novel method of tracking angular head velocity from quaternion orientation using an Extended Kalman Filter in both single model (DQEKF) and multiple model (MMDQ) implementations. In the second phase of our work we have developed a new method of mapping the magnetic field generated by the tracker without high precision measurement equipment. This method uses simple fixtures with multiple sensors in a rigid geometry to collect magnetic field data in the tracking volume. We have developed a new algorithm to process the collected data and generate a map of the magnetic field distortion that can be used to compensation distorted measurement data.
机译:增强现实(AR)系统通常用于在场景上叠加虚拟对象或信息,以提高态势感知能力。显示系统的延迟或对象的不正确注册会破坏用户在使用AR系统时的沉浸感。交流电磁跟踪器与磁头方向预测相结合以补偿显示系统的延迟时,非常适合这些应用。不幸的是,如果没有昂贵的校准技术,由于磁场畸变,这些跟踪器在包含导电或含铁材料的环境中无法正常工作。在我们的工作中,我们专注于此应用的预测和失真补偿方面,开发了用于显示滞后补偿的“小尺寸”预测滤波器和用于AC磁跟踪器的简化校准系统。在我们的研究的第一阶段,我们提出了一种在单模型(DQEKF)和多模型(MMDQ)实现中使用扩展卡尔曼滤波器从四元数取向跟踪角头速度的新颖方法。在我们工作的第二阶段,我们开发了一种无需使用高精度测量设备即可绘制由跟踪器产生的磁场的新方法的方法。这种方法使用具有多个固定传感器的简单夹具,这些传感器呈刚性几何形状,以收集跟踪体积中的磁场数据。我们已经开发了一种新算法来处理收集的数据并生成磁场失真图,该图可用于补偿失真的测量数据。

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    Himberg Henry;

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  • 年度 2010
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