Transparent Machine Education of Neural Networks for Swarm Shepherding Using Curriculum Design

January 04, 2019 ยท Declared Dead ยท ๐Ÿ› IEEE International Joint Conference on Neural Network

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Authors Alexander Gee, Hussein Abbass arXiv ID 1903.09297 Category cs.CY: Computers & Society Cross-listed cs.AI, cs.NE Citations 18 Venue IEEE International Joint Conference on Neural Network Last Checked 3 months ago
Abstract
Swarm control is a difficult problem due to the need to guide a large number of agents simultaneously. We cast the problem as a shepherding problem, similar to biological dogs guiding a group of sheep towards a goal. The shepherd needs to deal with complex and dynamic environments and make decisions in order to direct the swarm from one location to another. In this paper, we design a novel curriculum to teach an artificial intelligence empowered agent to shepherd in the presence of the large state space associated with the shepherding problem and in a transparent manner. The results show that a properly designed curriculum could indeed enhance the speed of learning and the complexity of learnt behaviours.
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