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Image-based retrieval in case-based reasoning systems for polyurethane manufacture

机译:聚氨酯制造中基于案例的推理系统中基于图像的检索

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摘要

The formulation of polyurethanes is a complex poorly understood problem and it has developed more as an art rather than a science. Although polyurethane formulations can be developed from first principles, this approach requires both a detailed knowledge of the underlying principles that govern the formulation process and also time, since a number of measurements of process conditions are usually required. The case-based reasoning (CBR) methodology can support polyurethane formulation tasks by providing a framework for collecting, structuring, and representing historical formulating knowledge. To date, most CBR retrieval algorithms employ a modified version of the nearest neighbour rule that uses a distance function as similarity measure, which in turn depends upon the attribute type. The application of moment-based retrieval used in image recognition for CBR retrieval is studied in this paper. Comparison with the classical retrieval algorithms that use standard distance measures showed that low-order geometric, central, and Legendre moments retrieve the same cases as the Euclidean distance does, whereas high-order geometric, central, and Legendre moments retrieved different cases. It is suggested that there is not a single distinguished approach to similarity in CBR, rather CBR systems should allow the integration of different approaches to similarity and the selection of different concepts. [PUBLICATION ABSTRACT]
机译:聚氨酯的配方是一个鲜为人知的复杂问题,它已发展成为一种艺术而非科学。尽管聚氨酯配方可以从第一性原理发展而来,但是这种方法既需要详细了解控制配方过程的基本原理,又需要时间,因为通常需要对工艺条件进行多次测量。基于案例的推理(CBR)方法可通过提供收集,构造和表示历史配方知识的框架来支持聚氨酯配方任务。迄今为止,大多数CBR检索算法都采用了最近邻规则的修改版本,该规则使用距离函数作为相似性度量,而后者又取决于属性类型。研究了基于矩的检索在图像识别中的CBR检索应用。与使用标准距离量度的经典检索算法的比较表明,低阶几何矩,中心矩和勒让德矩与欧几里得距离所检索的案例相同,而高阶几何矩,中心矩和勒让德矩则检索不同的情况。建议在CBR中没有单一的相似性区别方法,而CBR系统应该允许将不同的相似性方法集成在一起并选择不同的概念。 [出版物摘要]

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