Citation
Abstract
Machine Learning (ML) has been a remarkable success in the last few years, which Reinforcement Learning (RL) has seen rapid growth with new techniques that have revolutionized the area. Sequential -Decision Making tasks are a main topic in ML, these are tasks based on deciding, the sequence of actions from experience carry out in an environment that is uncertain to achieve goals In this paper, we discuss topics such as Deep Learning (DL) and Multi-agent Systems (MAS) that are used in RL as Deep Reinforcement Learning (DRL) and Multi - Agent Deep Reinforcement Learning (MADRL). In fact, overall goal in this paper is a comprehensive explanation of the various Deep Reinforcement Learning (DRL) algorithms, and its combination with Multi-Agent methods. To achieve this goal, in section 2, we have reviewed the articles that are the founders of these methods and have also used various methods in the field of MADRL. In the third section, we look at the RL and important algorithms that exist in this area. In the fourth section, we study DRL and explain the reasons for which different algorithms have been developed in this regard. In the fifth section, we will look at the MADRL and address some of the challenges and work that has been done in this area..At the end of this section we mentioned some important papers in the table with their methods, which is used. The sixth section provides an explanation of the research currently being done by the authors, as well as interesting topics for researchers to use in future research. Given that we have tried to explain the concepts in a simple and straightforward way in this paper, we hope that the materials mentioned are suitable for novice researchers in this field.
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Additional Metadata
Item Type: | Article |
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Divisions: | Faculty of Computer Science and Information Technology |
Publisher: | Little Lion Scientific |
Keywords: | Machine learning; Reinforcement learning; Deep learning; Deep reinforcement learning; Multi-Agent Systems; Multi-Agent Deep Reinforcement Learning |
Depositing User: | Ms. Nur Faseha Mohd Kadim |
Date Deposited: | 26 Jul 2023 02:56 |
Last Modified: | 26 Jul 2023 02:56 |
URI: | http://psasir.upm.edu.my/id/eprint/100877 |
Statistic Details: | View Download Statistic |
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