人工智能
可穿戴计算机
深度学习
计算机科学
离散小波变换
触觉传感器
小波变换
计算机视觉
模式识别(心理学)
可穿戴技术
特征(语言学)
人工神经网络
材料科学
灵敏度(控制系统)
机器人
连续小波变换
传感器融合
电子皮肤
机器人学
数码产品
钥匙(锁)
压力传感器
人造皮肤
特征提取
触觉知觉
极限(数学)
感知
纹理(宇宙学)
RGB颜色模型
融合
支持向量机
小波
信号处理
主动感知
特征向量
作者
Hui Kong,Xingguang Chen,Guanghao Huang,Yunze Long,Lianqun Zhou
摘要
ABSTRACT Electronic skin, as a key technology for enabling robots and wearable devices to perceive the external environment and achieve intelligent interaction, faces the core challenge of developing multimodal and highly sensitive comprehensive tactile sensing. In this work, we propose a biomimetic, multimodal, and flexible electronic skin that provides high‐sensitivity discrimination and reliable detection of both pressure and temperature signals. Through the synergistic regulation of the conductive hydrogel and the strain‐sensitive layer, the sensor exhibits excellent performance, with a pressure sensitivity of 1063 kPa − 1 , a detection limit of 1.16 Pa, and a response time of under 30 ms; the temperature sensing range spans 0°C–80°C, offering a broad‐spectrum detection capability. Signals are processed using a discrete wavelet transform (DWT) for multiscale feature extraction, and high‐dimensional feature fusion and classification are achieved by combining support vector machines (SVM) with deep neural networks (DNN), demonstrating the feasibility and potential of the system for distinguishing samples with different surface texture characteristics, with an average recognition accuracy of 93%. The system integrates multimodal detection capabilities for pressure, temperature, and material recognition, demonstrating its broad application potential in robotic tactile perception, wearable health monitoring, and human‐machine interaction.
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