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VISUALIZING AND EVALUATING HIGH-DIMENSIONAL MAPPINGS OF SETS OF HIGH PERFORMANCE DESIGNS

机译:可视化和评估高性能设计集的高维映射

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Design space exploration can reveal the underlying structure of design problems. In a set-based approach, for example, exploration can map sets of designs or regions of the design space that meet specific performance requirements. For some problems, promising designs may cluster in multiple regions of the input design space, and the boundaries of those clusters may be irregularly shaped and difficult to predict. Visualizing the promising regions can clarify the design space structure, but design spaces are typically high-dimensional, making it difficult to visualize the space in three dimensions. To convey the structure of such high-dimensional design regions, a two-stage approach is proposed to (1) identify and (2) visualize each distinct cluster or region of interest in the input design space. This paper focuses on the visualization stage of the approach. Rather than select a singular technique to map high-dimensional design spaces to low-dimensional, visualizable spaces, a selection procedure is investigated. Metrics are available for comparing different visualizations, but the current metrics either overestimate the quality or favor selection of certain visualizations. Therefore, this work introduces and validates a more objective metric, termed preservation, to compare the quality of alternative visualization strategies. Furthermore, a new visualization technique previously unexplored in the design automation community, t-Distributed Neighbor Embedding, is introduced and compared to other visualization strategies. Finally, the new metric and visualization technique are integrated into a two-stage visualization strategy to identify and visualize clusters of high-performance designs for a high-dimensional negative stiffness metamaterials design problem.
机译:设计空间探索可以揭示设计问题的潜在结构。例如,在基于集合的方法中,探索可以映射满足特定性能要求的设计集或设计空间区域。对于某些问题,有前途的设计可能会聚集在输入设计空间的多个区域中,并且这些聚集的边界可能形状不规则且难以预测。可视化有希望的区域可以阐明设计空间的结构,但是设计空间通常是高维的,因此很难在三个维度上可视化空间。为了传达这种高维设计区域的结构,提出了一种两阶段方法来(1)识别和(2)可视化输入设计空间中每个不同的感兴趣的群集或区域。本文重点介绍了该方法的可视化阶段。而不是选择一种将高维设计空间映射到低维,可视化空间的奇异技术,而是研究了一种选择过程。指标可用于比较不同的可视化,但是当前指标要么高估了质量,要么选择某些可视化。因此,这项工作引入并验证了一个更为客观的指标,称为保存,以比较替代可视化策略的质量。此外,引入了以前在设计自动化社区中尚未开发的新可视化技术,即t-Distributed Neighbor Embedding,并将其与其他可视化策略进行了比较。最后,将新的度量和可视化技术集成到两阶段的可视化策略中,以识别和可视化高性能设计群,以解决高维负刚度超材料设计问题。

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