FSS 日

IF 3.6 Q2 COMPUTER SCIENCE, INFORMATION SYSTEMS
Liqiong Chang, Xiaofeng Yang, Ruyue Liu, Guodong Xie, Fuwei Wang, Ju Wang
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引用次数: 0

摘要

在许多新兴应用领域,如垃圾分类和危险材料检测中,材料传感至关重要。虽然现有的基于射频(RF)信号的系统取得了巨大成功,但在射频信号无法穿透目标或目标内外材料不同的情况下,它们的识别精度有限。本文介绍了一种基于频率选择性表面(FSS)标签的高精度材料识别系统,即 FSS-Tag,它同时利用了穿透信号和耦合效应。具体来说,我们设计了一个 FSS 标签并将其贴在目标上,然后利用标签的频率响应进行材料感应,因为不同的目标材料具有不同的频率响应。我们系统的主要优势在于,当射频信号穿过带有 FSS 标签的目标时,穿透信号更多地响应内部材料,而耦合效应(目标与标签之间)更多地反映外部材料;因此,我们可以实现更高的传感精度。目前的挑战在于如何找到最佳的标签设计参数,从而明确区分不同目标材料的频率响应。我们通过建立标签参数优化模型来解决这一难题。实际实验表明,FSS-Tag 对八种常见材料的识别准确率超过 91%,与基于穿透信号的最新方法 TagScan 和基于耦合效应的最新方法 Tagtag 相比,准确率分别提高了 38% 和 8%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FSS-Tag
Material sensing is crucial in many emerging applications, such as waste classification and hazardous material detection. Although existing Radio Frequency (RF) signal based systems achieved great success, they have limited identification accuracy when either RF signals can not penetrate through a target or a target has different outer and inner materials. This paper introduces a Frequency Selective Surface (FSS) tag based high accuracy material identification system, namely FSS-Tag, which utilises both the penetrating signals and the coupling effect. Specifically, we design and attach a FSS tag to a target, and use frequency responses of the tag for material sensing, since different target materials have different frequency responses. The key advantage of our system is that, when RF signals pass through a target with the FSS tag, the penetrating signal responds more to the inner material, and the coupling effect (between the target and the tag) reflects more about the outer material; thus, one can achieve a higher sensing accuracy. The challenge lies in how to find optimal tag design parameters so that the frequency response of different target materials can be clearly distinguished. We address this challenge by establishing a tag parameter optimization model. Real-world experiments show that FSS-Tag achieves more than 91% accuracy on identifying eight common materials, and improves the accuracy by up to 38% and 8% compared with the state of the art (SOTA) penetrating signal based method TagScan and the SOTA coupling effect based method Tagtag.
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来源期刊
Proceedings of the ACM on Interactive, Mobile, Wearable and Ubiquitous Technologies
Proceedings of the ACM on Interactive, Mobile, Wearable and Ubiquitous Technologies Computer Science-Computer Networks and Communications
CiteScore
9.10
自引率
0.00%
发文量
154
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