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首页> 外文期刊>Journal of Mechanical Engineering >Cloud Computing for Synergized Emotional Model Evolution in Multi-Agent Learning Systems
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Cloud Computing for Synergized Emotional Model Evolution in Multi-Agent Learning Systems

机译:多智能经纪学习系统中协同情绪模型演变的云计算

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摘要

Machine learning is a technology paramount to enhancing the adaptability of agent-based systems. Learning is a desirable aspect in synthetic characters, or 'believable' agents, as it offers a degree of realism to their interactions. However, the advantage of collaborative efforts in multi-agent learning systems can be overshadowed by concerns over system scalability and adaptive dynamics. The proposed Multi-Agent Learning through Distributed Artificial Consciousness (MALDAC) Architecture is proposed as a scalable approach to developing adaptable systems in complex, believable environments. To support MALDAC, a cognitive architecture is proposed which applies emotional models and artificial consciousness theory to cope with complex environments. Furthermore, the cloud computing paradigm is employed in the architecture's design to enhance system scalability. A virtual environment implementing MALDAC is shown to enhance scalability in multi-agent learning systems, particularly in stochastic and dynamic environments.
机译:机器学习是一种技术为提高基于代理的系统的适应性的技术。学习是合成人物的理想方面,或者“可信”代理商,因为它为他们的互动提供了一种现实程度。然而,可以通过对系统可扩展性和自适应动态的担忧来掩盖多代理学习系统中的协作努力的优势。通过分布式人工意识(MALDAC)架构提出了所提出的多代理学习,作为在复杂,可信环境中开发适应性系统的可扩展方法。为了支持Maldac,提出了一种认知架构,其适用于情绪模型和人工意识理论来应对复杂的环境。此外,云计算范例在架构的设计中采用,以提高系统可扩展性。示出了实现MALDAC的虚拟环境,以提高多代理学习系统中的可扩展性,特别是在随机和动态环境中。

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