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Multi-Agent Collaborative Reinforcement Learning

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Management number 233588900 Release Date 2026/06/27 List Price $69.40 Model Number 233588900
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Multi-agent systems are gaining popularity. In this thesis Multi-agent box pushing task is considered. This problem provides challenges in collaboration while keeping state-action space complexity to minimum. The task is to push a box from source to goal. This task is executed by multi-agents always adjacent to box. To efficiently solve problems in a multi-agent framework machine learning is required. In this thesis reinforcement learning is used to solve multi-agent box pushing task.Keywords: Reinforcement learning; Q-learning; Game Theory; Multi-Agent System.Best resource for beginners in the Reinforcement Learning field. Read more

ASIN B0C37XNRMX
XRay Not Enabled
Language English
File size 4.6 MB
Page Flip Enabled
Word Wise Enabled
Reading age 10 - 18 years
Print length 150 pages
Accessibility Learn more
Publication date April 20, 2023
Enhanced typesetting Enabled

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