Epidermal piezoresistive structure with deep learning-assisted data translation

Author:

So Changrok,Kim Jong Uk,Luan HaiwenORCID,Park Sang UkORCID,Kim Hyochan,Han Seungyong,Kim DoyoungORCID,Shin ChanghwanORCID,Kim Tae-ilORCID,Lee Wi Hyoung,Park Yoonseok,Heo Keun,Baac Hyoung WonORCID,Ko Jong HwanORCID,Won Sang MinORCID

Abstract

AbstractContinued research on the epidermal electronic sensor aims to develop sophisticated platforms that reproduce key multimodal responses in human skin, with the ability to sense various external stimuli, such as pressure, shear, torsion, and touch. The development of such applications utilizes algorithmic interpretations to analyze the complex stimulus shape, magnitude, and various moduli of the epidermis, requiring multiple complex equations for the attached sensor. In this experiment, we integrate silicon piezoresistors with a customized deep learning data process to facilitate in the precise evaluation and assessment of various stimuli without the need for such complexities. With the ability to surpass conventional vanilla deep regression models, the customized regression and classification model is capable of predicting the magnitude of the external force, epidermal hardness and object shape with an average mean absolute percentage error and accuracy of <15 and 96.9%, respectively. The technical ability of the deep learning-aided sensor and the consequent accurate data process provide important foundations for the future sensory electronic system.

Funder

National Research Foundation of Korea

Publisher

Springer Science and Business Media LLC

Subject

Electrical and Electronic Engineering,General Materials Science

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