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Simulation and analysis of adaptive agents: An integrative modeling approach

机译:自适应代理的仿真和分析:一种集成建模方法

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摘要

Agent-based simulation methods are a relatively new way to address complex systems. Usually, the idea is that the agents used are rather simple, and the complexity and adaptivity of such a system are modeled by the interaction between these agents. However, another way to exploit agent-based simulation methods is by use of agents that themselves also have certain forms of learning or adaptation. In order to simulate adaptive agents with abilities matching those of their real-world biological or societal counterparts, a natural approach is to incorporate certain adaptation mechanisms such as classical conditioning into agent models. Existing models for adaptation mechanisms are usually based on quantitative, numerical methods, and in particular, differential equations. Since agent-based simulation is usually based on qualitative, logical languages, these quantitative models are often not directly appropriate as an input in the context of agent-based simulation. To deal with this problem, this paper puts forward an integrative approach to simulate and analyze the dynamics of complex systems, in particular a conditioning process of an adaptive agent, integrating quantitative, numerical and qualitative, logical aspects within one expressive temporal specification language. To obtain a simulation model, an executable sublanguage of this language is used to specify the agent's adaptation mechanism in detail. For analysis and validation, in the proposed approach both properties characterising the externally observable adaptive behavior and properties characterizing the dynamics of internal intermediate states have been identified, formally specified and automatically checked on the generated simulation traces. As part of the latter, an approach to (formally) specify and check representational relations for intermediate, internal agent states is put forward. This enables veri. cation of whether the representational content of an intermediate state a modeller has in mind indeed is in accordance with the agent model's internal dynamics. For a biological agent with known neural mechanisms, such as Aplysia, the modeling approach incorporates high-level modeling of neural states occurring as intermediate states and relates them to their representational content specification. This provides the possibility to validate not only the resulting observable behavior of a simulation model against the observable behavior of the agent in the real world, but also the intermediate states of the agent in the model against the intermediate states of the agent in the world.
机译:基于代理的仿真方法是解决复杂系统的一种相对较新的方法。通常,这种想法是所使用的代理非常简单,并且通过这些代理之间的交互来对这种系统的复杂性和适应性进行建模。但是,开发基于代理的仿真方法的另一种方法是使用自身也具有某些学习或适应形式的代理。为了模拟具有与现实世界中的生物学或社会对应物相匹配的能力的自适应代理,自然的方法是将某些适应机制(例如经典条件)纳入代理模型。现有的适应机制模型通常基于定量,数值方法,尤其是微分方程。由于基于代理的模拟通常基于定性,逻辑语言,因此这些定量模型通常不直接适合作为基于代理的模拟上下文中的输入。为了解决这个问题,本文提出了一种综合方法来模拟和分析复杂系统的动力学,特别是自适应代理的条件处理过程,将定量,数值和定性,逻辑方面集成在一种表达性的时间规范语言中。为了获得仿真模型,该语言的可执行子语言用于详细指定代理的适应机制。为了进行分析和验证,在提出的方法中,已经确定了表征外部可观察到的自适应行为的特性和表征内部中间状态动态的特性,并在生成的模拟轨迹上对其进行了正式指定和自动检查。作为后者的一部分,提出了一种(正式)指定和检查中间内部代理状态的表示关系的方法。这启用了验证。建模者是否想到的中间状态的表示内容的确与代理模型的内部动力学有关。对于具有已知神经机制的生物因子(例如Aplysia),建模方法将对作为中间状态出现的神经状态进行高级建模,并将它们与它们的表示内容规范相关联。这提供了不仅可以针对现实世界中的代理的可观察行为来验证仿真模型的所得可观察行为,还可以针对世界中的代理的中间状态来验证模型中的代理的中间状态。

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