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The Benefits of Surprise in Dynamic Environments: From Theory to Practice

机译:动态环境中惊喜的好处:从理论到实践

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摘要

Artificial agents engaged in real world applications require accurate resource allocation strategies. For instance, open systems may require artificial agents with the capability to filter out all information which are irrelevant with respect to the actual intentions and goals. In this work we develop a model of surprise-driven belief update. We formally define a strategy for epistemic reasoning of a BDI-inspired agent, where surprise is the causal precursor of a belief update process. According to this strategy, an agent should update his beliefs only with inputs which are surprising and relevant with respect to his current intentions. We also compare in practice the performances of agents using a surprise-driven strategy of belief update and agents using traditional reasoning processes.
机译:从事实际应用的人工代理需要精确的资源分配策略。例如,开放系统可能需要人工代理,这些代理具有过滤掉与实际意图和目标无关的所有信息的能力。在这项工作中,我们建立了一个惊喜驱动的信念更新模型。我们正式定义了BDI启发式主体的认知推理策略,其中惊奇是信念更新过程的因果先兆。根据此策略,代理仅应使用令人惊讶且与其当前意图相关的输入来更新其信念。在实践中,我们还比较了使用惊喜驱动的信念更新策略的代理人和使用传统推理过程的代理人的绩效。

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