A Fast Structural Optimization Technique for IDS Modeling

M. Murakami, N. Honda
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引用次数: 9

Abstract

The ink drop spread (IDS) method is a modeling technique that is proposed as a new paradigm of soft computing. In this method, the structure of models is determined by the partitioning of the input domain. In order to obtain a high-accuracy model, it is necessary to determine the optimal number of partitions, i.e., structural optimization must be performed. This paper proposes a structural optimization technique for IDS modeling. The IDS model comprises multiple processing units, each of which is a modeling engine that develops a feature of the target system in the form of an easily comprehensible image on a two-dimensional plane. The proposed technique performs structural optimization with a small number of searches by analyzing the image information generated in the processing units instead of evaluating the model error using validation data.
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IDS建模的快速结构优化技术
墨滴扩散(IDS)方法是作为软计算新范式提出的一种建模技术。该方法通过对输入域的划分来确定模型的结构。为了获得高精度的模型,需要确定最优分区数,即必须进行结构优化。本文提出了一种用于IDS建模的结构优化技术。IDS模型由多个处理单元组成,每个处理单元都是一个建模引擎,以二维平面上易于理解的图像的形式开发目标系统的特征。该技术通过分析处理单元中生成的图像信息,而不是使用验证数据评估模型误差,以少量搜索进行结构优化。
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