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Acute stress response for self-optimizing mechatronic systems

机译:自我优化机电系统的急性应力响应

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摘要

Self-optimizing mechatronic systems react autonomously and flexibly to changing conditions. They are capable of learning and optimize their behavior throughout their life cycle. The paradigm of self-optimization is originally inspired by the behavior of biological systems. The key to the successful development of self-optimizing systems is a conceptual design process that precisely describes the desired system behavior. In the area of mechanical engineering, active principles based on physical effects such as friction or lever are widely used to concretize the construction structure and the behavior. The same approach can be found in the domain of software-engineering with software patterns such as the broker-pattern or the strategy pattern. However there is no appropriate design schema for the development of intelligent mechatronic systems covering the needs to fulfill the paradigm of self-optimization. This article proposes such a schema called Active Patterns for Self-Optimization. It is shown how a catalogue of active patterns can be derived from a set of four basic active patterns. This design approach is validated for a networked mechatronic system in a multiagent setting where the behavior is implemented according to a biologically inspired technique – the neuro-fuzzy learning method.
机译:自我优化的机电一体化系统可对变化的条件进行自主灵活的响应。他们有能力在整个生命周期中学习和优化行为。自我优化的范式最初是受到生物系统行为的启发。成功开发自优化系统的关键是精确描述所需系统行为的概念设计过程。在机械工程领域,基于物理效应(例如摩擦或杠杆)的主动原理被广泛用于具体化建筑结构和行为。在具有经纪人模式或策略模式等软件模式的软件工程领域中可以找到相同的方法。但是,没有适合满足自我优化范式需求的智能机电系统的开发设计方案。本文提出了一种称为“主动模式的自我优化”的架构。它显示了如何从一组四个基本活动模式中导出活动模式的目录。这种设计方法已在多智能体环境中的网络机电系统中得到验证,该行为是根据生物启发性技术(神经模糊学习方法)实现的。

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