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Structured Memetic Automation for Online Human-Like Social Behavior Learning

机译:用于在线人类社交行为学习的结构化模因自动化

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Meme automaton is an adaptive entity that autonomously acquires an increasing level of capability and intelligence through embedded memes evolving independently or via social interactions. This paper begins a study on memetic multiagent system (MeMAS) toward human-like social agents with memetic automaton. We introduce a potentially rich meme-inspired design and operational model, with Darwin’s theory of natural selection and Dawkins’ notion of a meme as the principal driving forces behind interactions among agents, whereby memes form the fundamental building blocks of the agents’ mind universe. To improve the efficiency and scalability of MeMAS, we propose memetic agents with structured memes in this paper. Particularly, we focus on meme selection design where the commonly used elitist strategy is further improved by assimilating the notion of like-attracts-like in the human learning. We conduct experimental study on multiple problem domains and show the performance of the proposed MeMAS on human-like social behavior.
机译:模因自动机是一个自适应实体,它通过独立演化的模因或通过社交互动自主地获得不断提高的能力和智力。本文针对具有模因自动机的类人社会代理人进行了模因多主体系统(MeMAS)的研究。我们介绍了一种可能具有丰富的模因启发性的设计和运营模型,其中达尔文的自然选择理论和道金斯的模因概念是代理之间相互作用的主要驱动力,模因构成了代理思想世界的基本构建块。为了提高MeMAS的效率和可扩展性,我们提出了具有结构化模因的模因代理。特别是,我们专注于模因选择设计,其中通过吸收人类学习中类似吸引的概念进一步改善了常用的精英策略。我们对多个问题领域进行了实验研究,并证明了拟议的MeMAS在类似人的社会行为上的表现。

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