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Titlebook: Autonomous Agents and Multiagent Systems; AAMAS 2017 Workshops Gita Sukthankar,Juan A. Rodriguez-Aguilar Conference proceedings 2017 Spring

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发表于 2025-3-21 17:01:38 | 显示全部楼层 |阅读模式
期刊全称Autonomous Agents and Multiagent Systems
期刊简称AAMAS 2017 Workshops
影响因子2023Gita Sukthankar,Juan A. Rodriguez-Aguilar
视频video
发行地址Includes supplementary material:
学科分类Lecture Notes in Computer Science
图书封面Titlebook: Autonomous Agents and Multiagent Systems; AAMAS 2017 Workshops Gita Sukthankar,Juan A. Rodriguez-Aguilar Conference proceedings 2017 Spring
影响因子.This book features a selection of best papers from 13 workshops held at the International Conference on Autonomous Agents and Multiagent Systems, AAMAS 2017, held in Sao Paulo, Brazil, in May 2017. .The 17 full papers presented in this volume were carefully reviewed and selected for inclusion in this volume. They cover specific topics, both theoretical and applied, in the general area of autonomous agents and multiagent systems. .
Pindex Conference proceedings 2017
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书目名称Autonomous Agents and Multiagent Systems影响因子(影响力)




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书目名称Autonomous Agents and Multiagent Systems被引频次学科排名




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书目名称Autonomous Agents and Multiagent Systems年度引用学科排名




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https://doi.org/10.1007/978-3-540-75822-8sidering the availability and value of the opponent’s private information. The experimental results show that OMIA can adapt to different types of information, helping the agent reach agreements with the opponent and achieve higher utility values comparing to those which lack the information adaptat
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Granular Dynamic Theory and Its Applicationssm for learning translations between observations made by trustor and witness agents with subjective interpretations of traits. We show through simulations that such translation is necessary for reliable reputation assessments in dynamic environments with partial and subjective observability.
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Vibrating Ore-drawing Technology,and such peer-teaching practice has shown to have great benefit in various domains such as interdisciplinary research collaboration and collaborative health care. However, the amount of time and effort the team members can spend on peer-teaching is often limited. In this paper, we focus on finding t
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https://doi.org/10.1007/978-3-319-18711-2es. This paper presents new metrics for assessing ad hoc teamwork performance, specifically attempting to isolate an agent’s coordination and teamwork from its skill level, during drop-in player challenges. Additionally, the paper considers how to account for only a relatively small number of pick-u
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Cliff K. K. Lun,Stuart B. Savageresent an algorithm, ., that finds influential nodes given a finite number of network observations. We show that . finds sets of nodes with similar reach and influence to the set of high-degree nodes and we then compare the performance of . to degree placement for convention emergence in several rea
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https://doi.org/10.1007/3-540-44506-4s the agent to quickly select the appropriate policy against the opponent. Our results show fast detection of the opponent from its behavior, obtaining higher average rewards than the state-of-the-art baseline Pepper in repeated stochastic games.
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https://doi.org/10.1007/978-3-030-22978-8 the performances of the proposed agent minds, by computing the time needed to trigger different type of alerts, when the number of recorded events (e.g. values of physiological parameters) increases. The results show that the customized jREC mind performs much better when an high number of events n
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