走向基因优化的反应性谈判代理

Raymond Y. K. Lau, Maolin Tang, O. Wong
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引用次数: 29

摘要

现实世界谈判的特点是组合复杂的谈判空间、严格的最后期限、有限的代理理性、关于对手的非常有限的信息以及不稳定的谈判者偏好。经典的谈判模型无法解决这些问题。这项工作说明了我们的实际谈判代理,通过有效和高效的遗传算法来处理现实世界应用中出现的复杂、不完整和动态的谈判空间。初步实验表明,当存在时间压力时,遗传优化的自适应谈判代理的表现优于理论上最优的谈判模型。我们的研究工作为实际应用的响应性和适应性谈判代理的开发打开了大门。
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Towards genetically optimised responsive negotiation agents
Real-world negotiations are characterised by combinatorially complex negotiation spaces, tough deadlines, bounded agent rationality, very limited information about the opponents, and volatile negotiator preferences. Classical negotiation models fail to address most of these issues. This work illustrates our practical negotiation agents which are empowered by an effective and efficient genetic algorithm to deal with complex, incomplete, and dynamic negotiation spaces arising in real-world applications. Initial experiment demonstrates that our genetically optimised adaptive negotiation agents outperform a theoretically optimal negotiation model when time pressure exists. Our research work opens the door to the development of responsive and adaptive negotiation agents for real-world applications.
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CHQ: a multi-agent reinforcement learning scheme for partially observable Markov decision processes A fuzzy multi-agent bidding model An agent-based approach to distributed data and information fusion Economic model of TAC SCM game Towards genetically optimised responsive negotiation agents
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