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Extended support vector interval regression networks for interval input-output data

机译:间隔输入输出数据的扩展支持向量间隔回归网络

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摘要

In many applications, it is natural to use interval data because of uncertainty existence in the measurements, variability in defining terms (such as the temperature during a given day), description for extremely behavior (such as the maximum wind speed in a given area), etc. In order to handle such interval data, a novel approach, called the interval support vector interval regression networks (ISVIRNs), is proposed. The ISVIRNs is extended from our previous work, the support vector interval regression networks; SVIRNs. It is easy to find that SVIRNs can handle interval output data, but for input data, they must be crisp. In this study, the Hausdorff distance is employed as the distance measure of interval data and is incorporated into the kernel functions of SVIRNs to determine the initial structure of ISVIRNs. Because the proposed approach can provide a better initial structure for ISVIRNs, it can have a faster convergent speed. The experimental results with real data sets show the validity of the proposed ISVIRNs. (c) 2007 Elsevier Inc. All rights reserved.
机译:在许多应用中,自然会使用间隔数据,因为测量中存在不确定性,定义术语的可变性(例如给定一天中的温度),极端行为的描述(例如给定区域中的最大风速)为了处理这种间隔数据,提出了一种称为间隔支持向量间隔回归网络(ISVIRN)的新颖方法。 ISVIRN是我们先前工作的基础,即支持向量区间回归网络。 SVIRN。很容易发现SVIRN可以处理间隔输出数据,但是对于输入数据,它们必须是清晰的。在这项研究中,将Hausdorff距离用作间隔数据的距离度量,并将其并入SVIRN的内核函数中以确定ISVIRN的初始结构。因为所提出的方法可以为ISVIRN提供更好的初始结构,所以它可以具有更快的收敛速度。具有真实数据集的实验结果表明了所提出的ISVIRN的有效性。 (c)2007 Elsevier Inc.保留所有权利。

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