Expanding the Horizons of Wireless Sensing

IF 0.7 Q4 TELECOMMUNICATIONS GetMobile-Mobile Computing & Communications Review Pub Date : 2022-01-07 DOI:10.1145/3511285.3511296
Agrim Gupta, C. Girerd, Manideep Dunna, Qiming Zhang, Raghav Subbaraman, Tania. K. Morimoto, Dinesh Bharadia
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引用次数: 2

Abstract

All interactions of objects, humans, and machines with the physical world are via contact forces. For instance, objects placed on a table exert their gravitational forces, and the contact interactions via our hands/feet are guided by the sense of contact force felt by our skin. Thus, the ability to sense the contact forces can allow us to measure all these ubiquitous interactions, enabling a myriad of applications. Furthermore, force sensors are a critical requirement for safer surgeries, which require measuring complex contact forces experienced as a surgical instrument interacts with the surrounding tissues during the surgical procedure. However, with currently available discrete point-force sensors, which require a battery to sense the forces and communicate the readings wirelessly, these ubiquitous sensing and surgical sensing applications are not practical. This motivates the development of new force sensors that can sense, and communicate wirelessly without consuming significant power to enable a battery-free design. In this magazine article, we present WiForce, a low-power wireless force sensor utilizing a joint sensing-communication paradigm. That is, instead of having separate sensing and communication blocks, WiForce directly transduces the force measurements onto variations in wireless signals reflecting WiForce from the sensor. This novel trans-duction mechanism also allows WiForce to generalize easily to a length continuum, where we can detect as well as localize forces acting on the continuum. We fabricate and test our sensor prototype in different scenarios, including testing beneath a tissue phantom, and obtain sub-N sensing and sub-mm localizing accuracies (0.34 N and 0.6 mm, respectively).
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拓展无线传感的视野
物体、人类和机器与物理世界的所有相互作用都是通过接触力进行的。例如,放置在桌子上的物体会产生引力,而通过我们的手/脚进行的接触互动是由我们皮肤感受到的接触力引导的。因此,感知接触力的能力可以让我们测量所有这些无处不在的相互作用,从而实现无数的应用。此外,力传感器是更安全手术的关键要求,这需要测量手术过程中手术器械与周围组织相互作用时所经历的复杂接触力。然而,目前可用的离散点力传感器需要电池来感应力并无线传输读数,这些无处不在的传感和外科传感应用并不实用。这激发了新型力传感器的开发,这种传感器可以在不消耗大量电力的情况下进行无线感应和通信,从而实现无电池设计。在这篇杂志文章中,我们介绍了WiForce,一种利用联合传感通信范式的低功耗无线力传感器。也就是说,WiForce没有单独的传感和通信模块,而是直接将力测量转换为传感器反射WiForce的无线信号的变化。这种新颖的传导机制还允许WiForce很容易地推广到长度连续体,在那里我们可以检测和定位作用在连续体上的力。我们在不同的场景下制造和测试了我们的传感器原型,包括在组织模体下测试,并获得了亚N感测和亚mm定位精度(分别为0.34 N和0.6 mm)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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