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Learning to Adapt for Case-Based Design

机译:学习适应基于案例的设计

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Design is a complex open-ended task and it is unreasonable to expect a case-base to contain representatives of all possible designs. Therefore, adaptation is a desirable capability for case-based design systems, but acquiring adaptation knowledge can involve significant effort. In this paper adaptation knowledge is induced separately for different criteria associated with the retrieved solution, using knowledge sources implicit in the case-base. This provides a committee of learners and their combined advice is better able to satisfy design constraints and compatibility requirements compared to a single learner. The main emphasis of the paper is to evaluate the impact of specific-to-general and general-to-specific learning on adaptation knowledge acquired by committee members. For this purpose we conduct experiments on a real tablet formulation problem which is tackled as a decomposable design task. Evaluation results suggest that adaptation achieves significant gains compared to a retrieve-only CBR system, but shows that both learning biases can be beneficial for different decomposed sub-tasks.
机译:设计是一个复杂的开放式任务,期望案例基础包含所有可能设计的代表是不合理的。因此,适应是基于案例的设计系统的理想能力,但获取适应知识可能涉及重大努力。在本文中,适应知识分别引起与检索到的解决方案相关的不同标准,在壳体基础中隐含的知识源。这提供了一个学习者委员会,与单个学习者相比,他们的综合建议更能够满足设计限制和兼容性要求。本文的主要重点是评估特定一般和一般对委员会成员收购的适应知识的影响。为此目的,我们对实际平板电脑配方问题进行实验,这是一种可分解​​的设计任务。评估结果表明,与仅检索的CBR系统相比,适应性实现了显着的增益,但表明,学习偏差都可能有利于不同分解的子任务。

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