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用于触觉传感系统的计算智能技术。

Computational intelligence techniques for tactile sensing systems.

作者信息

Gastaldo Paolo, Pinna Luigi, Seminara Lucia, Valle Maurizio, Zunino Rodolfo

机构信息

Department of Electric, Electronic, Telecommunication Engineering and Naval Architecture, DITEN, University of Genoa, Via Opera Pia 11a, 16145 Genova, Italy.

出版信息

Sensors (Basel). 2014 Jun 19;14(6):10952-76. doi: 10.3390/s140610952.

Abstract

Tactile sensing helps robots interact with humans and objects effectively in real environments. Piezoelectric polymer sensors provide the functional building blocks of the robotic electronic skin, mainly thanks to their flexibility and suitability for detecting dynamic contact events and for recognizing the touch modality. The paper focuses on the ability of tactile sensing systems to support the challenging recognition of certain qualities/modalities of touch. The research applies novel computational intelligence techniques and a tensor-based approach for the classification of touch modalities; its main results consist in providing a procedure to enhance system generalization ability and architecture for multi-class recognition applications. An experimental campaign involving 70 participants using three different modalities in touching the upper surface of the sensor array was conducted, and confirmed the validity of the approach.

摘要

触觉传感有助于机器人在真实环境中与人类和物体进行有效交互。压电聚合物传感器为机器人电子皮肤提供了功能构建模块,这主要得益于其灵活性以及适用于检测动态接触事件和识别触摸模式。本文重点关注触觉传感系统支持对特定触摸质量/模式进行具有挑战性识别的能力。该研究应用了新颖的计算智能技术和基于张量的方法来对触摸模式进行分类;其主要成果在于提供了一种增强系统泛化能力的程序以及用于多类识别应用的架构。开展了一项实验活动,70名参与者使用三种不同模式触摸传感器阵列的上表面,证实了该方法的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/14b8/4118344/8b71452a3433/sensors-14-10952f1.jpg

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