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基于生物启发的软传感器阵列的机器学习辅助识别

Machine-Learning-Assisted Recognition on Bioinspired Soft Sensor Arrays.

作者信息

Luo Yang, Xiao Xiao, Chen Jun, Li Qian, Fu Hongyan

机构信息

Tsinghua Shenzhen International Graduate School and Tsinghua-Berkeley Shenzhen Institute, Tsinghua University, Shenzhen 518055, China.

Department of Bioengineering, University of California, Los Angeles, Los Angeles, California 90095, United States.

出版信息

ACS Nano. 2022 Apr 26;16(4):6734-6743. doi: 10.1021/acsnano.2c01548. Epub 2022 Mar 24.

Abstract

Soft interfaces with self-sensing capabilities play an essential role in environment awareness and reaction. The growing overlap between materials and sensory systems has created a myriad of challenges for sensor integration, including the design of a multimodal sensory, simplified system design capable of high spatiotemporal sensing resolution and efficient processing methods. Here we report a bioinspired soft sensor array (BOSSA) that integrates pressure and material sensing capabilities based on the triboelectric effect. Cascaded row + column electrodes embedded in low-modulus porous silicone rubber allow rich information to be captured from the environment and further analyzed by data-driven algorithms (multilayer perceptrons) to extract higher level features. BOSSA demonstrates the ability to identify 10 users (98.9%) and identify the placement or extraction of 10 objects (98.6%). Moreover, its scalable fabrication facilitates large-area sensor arrays with high spatiotemporal resolution and multimodal sensing abilities yet with a less complex system architecture. These features may be promising in the development of immersive sensing networks for intelligent monitoring and stimuli response in smart home/industry applications.

摘要

具有自感知能力的柔性接口在环境感知和响应中起着至关重要的作用。材料与传感系统之间日益增加的重叠为传感器集成带来了诸多挑战,包括多模态传感设计、能够实现高时空传感分辨率的简化系统设计以及高效的处理方法。在此,我们报告一种受生物启发的柔性传感器阵列(BOSSA),它基于摩擦电效应集成了压力和材料传感能力。嵌入低模量多孔硅橡胶中的级联行 + 列电极能够从环境中捕获丰富信息,并通过数据驱动算法(多层感知器)进一步分析以提取更高层次的特征。BOSSA展示了识别10名用户的能力(98.9%)以及识别10个物体放置或取出的能力(98.6%)。此外,其可扩展制造方式有助于实现具有高时空分辨率和多模态传感能力且系统架构不太复杂的大面积传感器阵列。这些特性在开发用于智能家居/工业应用中智能监测和刺激响应的沉浸式传感网络方面可能具有广阔前景。

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