Monocular vision-based motion capture system: A performance model

Mustafa A. Ghazi, David P. Miller
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引用次数: 1

Abstract

We propose a performance model for a monocular vision-based motion capture system. Such a system can use uniquely patterned augmented reality (AR) markers worn on the body. Two key factors in evaluating such a system are tracking accuracy and blurring effects. Past work involving AR markers has emphasized other factors such as detection rate or pixel error. In cases where accuracy has been studied, it has been done only for specific systems. In contrast, our model is more general and can accommodate different types of cameras and marker sizes. Our model can also simulate a marker worn on a moving limb. Preliminary experiments show that our model has the potential to accurately predict real-world performance.
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基于单目视觉的动作捕捉系统:一种性能模型
我们提出了一种基于单目视觉的运动捕捉系统的性能模型。这种系统可以使用佩戴在身体上的独特模式增强现实(AR)标记。评估这种系统的两个关键因素是跟踪精度和模糊效果。过去涉及AR标记的工作强调了其他因素,如检测率或像素误差。在研究准确性的情况下,只针对特定的系统进行了研究。相比之下,我们的模型更通用,可以适应不同类型的相机和标记尺寸。我们的模型还可以模拟佩戴在移动肢体上的标记。初步实验表明,我们的模型具有准确预测现实世界性能的潜力。
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