Large-area Magnetic Skin for Multi-point and Multi-scale Tactile Sensing with Super-resolution

Author:

Zhao Peng1,Hu Hao1,Zhang Chengqian1,Lai Xinyi1ORCID,Dai Huangzhe1,Pan Chengfeng1,Sun Haonan1,Tang Daofan1,Hu Zhezai1,Fu Jianzhong1,Li Tiefeng1

Affiliation:

1. Zhejiang University

Abstract

Abstract The advancements in tactile sensor technology have found wide-ranging applications in robotic fields, resulting in remarkable achievements in object manipulation and overall human-machine interactions. However, the widespread availability of high-resolution tactile skins remains limited, due to the challenges of incorporating large-sized, robust sensing units and increased wiring complexity. One approach to achieve high-resolution and robust tactile skins is to integrate a limited number of sensor units (taxels) into a flexible surface material and leverage signal processing techniques to achieve super-resolution sensing. Here, we present a magnetic skin consisting of multi-direction magnetized flexible films and a contactless Hall sensor array. The key features of the proposed sensor include the specific magnetization arrangement, K-Nearest Neighbors (KNN) clustering algorithm and convolutional neural network (CNN) model for signal processing. Using only an array of 4*4 taxels, our magnetic skin is capable of achieving super-resolution perception over an area of 44100 mm2, with an average localization error of 1.2 mm. By employing neural network algorithms to decouple the multi-dimensional signals, the skin can achieve multi-point and multi-scale perception. We also demonstrate the promising potentials of the proposed sensor in intelligent control, by simultaneously controlling two vehicles with trajectory mapping on the magnetic skin.

Publisher

Research Square Platform LLC

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