Efficient Deep Neural Network For Intelligent Robot System Focusing On Visual Signal Processing


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Efficient deep neural network for intelligent robot system: Focusing on visual signal processing


Efficient deep neural network for intelligent robot system: Focusing on visual signal processing

Author: Xiao Bai

language: en

Publisher: Frontiers Media SA

Release Date: 2023-05-04


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Advanced planning, control, and signal processing methods and applications in robotic systems volume II


Advanced planning, control, and signal processing methods and applications in robotic systems volume II

Author: Zhan Li

language: en

Publisher: Frontiers Media SA

Release Date: 2023-05-25


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Dynamic Neural Networks for Robot Systems: Data-Driven and Model-Based Applications


Dynamic Neural Networks for Robot Systems: Data-Driven and Model-Based Applications

Author: Long Jin

language: en

Publisher: Frontiers Media SA

Release Date: 2024-07-24


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Neural network control has been a research hotspot in academic fields due to the strong ability of computation. One of its wildly applied fields is robotics. In recent years, plenty of researchers have devised different types of dynamic neural network (DNN) to address complex control issues in robotics fields in reality. Redundant manipulators are no doubt indispensable devices in industrial production. There are various works on the redundancy resolution of redundant manipulators in performing a given task with the manipulator model information known. However, it becomes knotty for researchers to precisely control redundant manipulators with unknown model to complete a cyclic-motion generation CMG task, to some extent. It is worthwhile to investigate the data-driven scheme and the corresponding novel dynamic neural network (DNN), which exploits learning and control simultaneously. Therefore, it is of great significance to further research the special control features and solve challenging issues to improve control performance from several perspectives, such as accuracy, robustness, and solving speed.