Energy and Accuracy Characterization of a Burst-Mode Range Sensing Approach for Smart Contact Lenses

Sakthidasan Kalidasan, C. Ghosh, A. Deshpande, C. Mastrangelo, Ross Walker
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引用次数: 2

Abstract

In this paper, we present the characterization of a new range sensing approach for use in emerging smart contact lens applications. Smart contact lenses offer a promising approach to treating the most common form of vision loss by using a tunable lens to accommodate for focal errors. A range sensor is an integral component of the system because it estimates an object's distance from the user in order to determine the target focal length. We performed an empirical study with custom fabricated coils in a mock eyeball setup to understand the energy-accuracy trade-offs of a burst-mode sensing approach based on transmission and reception of square pulses between the coils. We wirelessly transmitted square pulses between the coils and estimated the range of an object by sensing the received voltages and inferring the angular relationship between the two contacts. We demonstrate a functioning range sensing approach that can be implemented with energy as low as 1.8 nJ per measurement with at least 95% accuracy.
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一种用于智能隐形眼镜的突发模式距离传感方法的能量和精度表征
在本文中,我们提出了一种新的距离传感方法的特性,用于新兴的智能隐形眼镜应用。智能隐形眼镜为治疗最常见的视力丧失提供了一种很有前途的方法,它使用可调节的镜片来适应焦点误差。距离传感器是系统的一个组成部分,因为它估计物体与用户的距离,以确定目标焦距。我们在模拟眼球装置中使用定制的线圈进行了一项实证研究,以了解基于线圈之间正方形脉冲的传输和接收的突发模式传感方法的能量精度权衡。我们在线圈之间无线传输方形脉冲,并通过感应接收电压和推断两个触点之间的角关系来估计物体的范围。我们展示了一种有效的距离传感方法,每次测量的能量低至1.8 nJ,精度至少为95%。
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