Cooperative Agent Systems: Artificial Agents Play the Ultimatum Game

被引:0
|
作者
Fang Zhong
Steven O. Kimbrough
D.J. Wu
机构
[1] LeBow College of Business,The Wharton School
[2] Drexel University,undefined
[3] University of Pennsylvania,undefined
[4] LeBow College of Business,undefined
[5] Drexel University,undefined
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关键词
artificial agents; cooperative agent systems; reinforcement learning; ultimatum game;
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学科分类号
摘要
We explore computational approaches for artificial agents to play the ultimatum game. We compare our agents' behavior with that predicted by classical game theory, as well as behavior found in experimental (or behavioral) economics investigations. In particular, we study the following questions: How do artificial agents perform in playing the ultimatum game against fixed rules, dynamic rules, and rotating rules? How do coevolving artificial agents perform? Will learning software agents do better? What is the value of intelligence? What will happen when smart learning agents play against dumb (no-learning) agents? What will be the impact of agent memory size on performance? This exploratory study provides experimental results pertaining to these questions.
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页码:433 / 447
页数:14
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