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Distributed Artificial Intelligence : Second International Conference, DAI 2020, Nanjing, China, October 24-27, 2020, Proceedings / edited by Matthew E. Taylor, Yang Yu, Edith Elkind, Yang Gao.

SpringerLink Books Computer Science (2011-2024) Available online

View online
Format:
Book
Contributor:
Taylor, Matthew E., Editor.
Yu, Yang, Editor.
Elkind, Edith., Editor.
Gao, Yang, Editor.
SpringerLink (Online service)
Series:
Computer Science (SpringerNature-11645)
Lecture notes in computer science. Lecture notes in artificial intelligence 2945-9141 ; 12547
Lecture Notes in Artificial Intelligence, 2945-9141 ; 12547
Language:
English
Subjects (All):
Artificial intelligence.
Computers, Special purpose.
Application software.
Computers.
Computer networks.
Computer science-Mathematics.
Mathematical statistics.
Artificial Intelligence.
Special Purpose and Application-Based Systems.
Computer and Information Systems Applications.
Computing Milieux.
Computer Communication Networks.
Probability and Statistics in Computer Science.
Local Subjects:
Artificial Intelligence.
Special Purpose and Application-Based Systems.
Computer and Information Systems Applications.
Computing Milieux.
Computer Communication Networks.
Probability and Statistics in Computer Science.
Physical Description:
1 online resource (IX, 141 pages) : 5 illustrations
Edition:
1st ed. 2020.
Contained In:
Springer Nature eBook
Place of Publication:
Cham : Springer International Publishing : Imprint: Springer, 2020.
System Details:
text file PDF
Summary:
This book constitutes the refereed proceedings of the Second International Conference on Distributed Artificial Intelligence, DAI 2020, held in Nanjing, China, in October 2020. The 9 full papers presented in this book were carefully reviewed and selected from 22 submissions. DAI aims at bringing together international researchers and practitioners in related areas including general AI, multiagent systems, distributed learning, computational game theory, et cetera, to provide a single, high-profile, internationally renowned forum for research in the theory and practice of distributed AI. Due to the Corona pandemic this event was held virtually.
Contents:
Parallel Algorithm for Nash Equilibrium in Multiplayer Stochastic Games with Application to Naval Strategic Planning
LAC-Nav: Collision-Free Multiagent Navigation Based on The Local ActionCells
MGHRL: Meta Goal-generation for Hierarchical Reinforcement Learning
D3PG: Decomposed Deep Deterministic Policy Gradient for Continuous Control
Lyapunov-Based Reinforcement Learning for Decentralized Multi-Agent Control
Hybrid Independent Learning in Cooperative Markov Games
Efficient Exploration By Novelty-Pursuit
Context-aware Multi-Agent Coordination with Loose Couplings and Repeated Interaction
Battery Management for Automated Warehouses via Deep Reinforcement Learning.
Other Format:
Printed edition:
ISBN:
978-3-030-64096-5
9783030640965
Access Restriction:
Restricted for use by site license.

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