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Can I read The effect of sample size on the extended self-organizing map network—A market segmentation application on EtoBox?

The effect of sample size on the extended self-organizing map network—A market segmentation application by Melody Y. Kiang; Michael Y. Hu; Dorothy M. Fisher is a Mathematics article available to read on EtoBox.

What is The effect of sample size on the extended self-organizing map network—A market segmentation application about?

Kohonen's self-organizing map (SOM) network maps input data to a lower dimensional output map. The extended SOM network further groups the nodes on the output map into a user specified number of clusters. Kiang, Hu and Fisher used the extended SOM network for market segmentation and showed that the extended SOM provides better results than the statistical approach that reduces the dimensionality of the problem via factor analysis and then forms segments with cluster analysis. In this study, we examined the effect of sample size on the extended SOM compared to that on the factor/cluster approach. Two sampling schemes, one with random sampling and the other one with proportionate sampling were used. Comparisons were made using the correct classification rates between the two approaches at various sample sizes. Unlike statistical models, neural networks are not dependent on statistical assumptions. Thus, the results for neural network models are stable across sample sizes but sensitive to initial weights and model specifications.

Who reads The effect of sample size on the extended self-organizing map network—A market segmentation application?

It is typically read by researchers, students, and practitioners in Mathematics.

Author
Melody Y. Kiang; Michael Y. Hu; Dorothy M. Fisher
Publisher
Elsevier Science; Elsevier ; Elsevier BV (ISSN 0167-9473)
Published
2007
Language
EN
Field
Mathematics (Physical Sciences)

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