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Shoe-Integrated Force Sensor Design for Continuous Body Weight Monitoring

机译:鞋子集成式力传感器设计用于连续体重监测

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摘要

Traditional pedobarography methods use direct force sensor placement in the shoe insole to record pressure patterns. One problem with such methods is that they tap only a few points on the flat sole under the foot and, therefore, do not account for the total ground reaction force. As a result, body weight tends to be under-estimated. This disadvantage has made it more difficult for pedobarography to be used to monitor many diseases, especially when their symptoms include body weight changes. In this paper, the problem of pedobarographic body weight measurement is addressed using a novel ergonomic shoe-integrated sensor array architecture based on concentrating the applied force via three-layered structures that we call Sandwiched Sensor Force Consolidators (SSFC). A shoe prototype is designed with the proposed sensors and shown to accurately measure body weight with an achievable relative accuracy greater than 99%, in the presence of motion. The achieved relative accuracy is at least 4X better than the existing state of the art. The SSFC shoe prototype is built using readily available soccer shoes and piezoresistive FlexiForce sensors. To improve the wearability and comfort of the instrumented shoe, a semi-computational sensor design methodology is developed based on an equivalent-area concept that can accurately account for SSFC’s with arbitrary shapes. The search space of the optimal SSFC design is shown to be combinatorial, and a high-performance computing (HPC) framework based on OpenMP parallel programming is proposed to accelerate the design optimization process. An optimal sensor design speedup of up to 22X is shown to be achievable using the HPC implementation.
机译:传统的脚底气压计方法使用直接力传感器放置在鞋垫中来记录压力模式。这种方法的一个问题是,它们仅在脚下的平坦鞋底上敲击几个点,因此不考虑地面的总反作用力。结果,体重容易被低估。这一缺点使脚踏气压计更难以用于监测许多疾病,尤其是当其症状包括体重变化时。在本文中,使用基于人体工学的新型鞋子集成传感器阵列架构解决了气压计体重测量问题,该架构基于通过三层结构集中施加的力,我们将其称为夹心式传感器力固结器(SSFC)。鞋子原型设计了所建议的传感器,显示出在运动时可准确测量体重,且可达到的相对精度大于99%。达到的相对精度至少比现有技术水平高4倍。 SSFC鞋原型使用容易获得的足球鞋和压阻FlexiForce传感器构建。为了提高仪表鞋的耐磨性和舒适性,基于等效面积的概念开发了一种半计算传感器设计方法,该方法可以准确地解释任意形状的SSFC。最佳SSFC设计的搜索空间显示为可组合的,并提出了一种基于OpenMP并行编程的高性能计算(HPC)框架,以加快设计优化过程。使用HPC实现方案可以实现高达22倍的最佳传感器设计加速。

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