基于推荐体系结构的系统仿真结果

Tom Gedeon, L. Coward, Bai-ling Zhang
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引用次数: 12

摘要

功能复杂的电子系统被组织成交换明确信息的功能组件。交换明确信息的需求导致了实现并行处理的困难,以及实现任何基于经验的启发式更改功能的能力的极端困难。推荐体系结构允许在功能组件之间交换不明确的信息,因此提供了一种减少这些困难的方法。具有推荐架构的系统使用设备印迹机制,启发式地将其输入组织成一系列细节级别上的模糊信息重复条件组合。这些条件的存在与否包含了足够的信息,供单独的子系统用来确定适当的行为。对一个简单的推荐系统的仿真表明,不同类型的输入序列可以启发式地组织成一组功能可用的重复条件。即使没有精确重复的输入条件,组织也是成功的。不使用关于系统操作结果的信息的学习有效性度量可以用来调整体系结构参数,以组织更广泛的输入类型。这些结果证明了用推荐体系结构开发功能复杂系统的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Results of simulations of a system with the recommendation architecture
Functionally complex electronic systems are organized into functional components exchanging unambiguous information. The requirement to exchange unambiguous information results in difficulties in implementing parallel processing and extreme difficulty in implementing any capability to heuristically change functionality based on experience. The recommendation architecture allows the exchange of ambiguous information between functional components and therefore offers a way to reduce these difficulties. A system with the recommendation architecture uses a device imprinting mechanism to heuristically organize its inputs into a portfolio of ambiguous information repetition conditions on a range of levels of detail. The presence or absence of these conditions contains enough information to be used by a separate subsystem to determine appropriate behavior. Simulations of a simple system with the recommendation architecture demonstrate that sequences of inputs of wide range of different types can be heuristically organized into a functionally usable set of repetition conditions. Organization is successful even though there are no exact repetitions of input conditions. Learning effectiveness measures which make no use of information on the consequences of system actions can be used to adjust architectural parameters to organize even wider ranges of input types. These results demonstrate the feasibility of developing functionally complex systems with the recommendation architecture.
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