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Evaluation of the fractal dimension as a pattern recognition feature using neural networks
Resource type
Authors/contributors
- Daponte, John S (Author)
- Parikh, Jo Ann (Author)
- Decker, James (Author)
- Vitale, Joseph N (Author)
Title
Evaluation of the fractal dimension as a pattern recognition feature using neural networks
Abstract
In the past fractal dimension has often been computed using a stochastic approach based on a random walk process, which has been found to be very time consuming. More recently, mathematical morphology has been used to compute the fractal dimension in a more timely fashion. This paper describes how the fractal dimension computed using mathematical morphology can be used in the texture analysis of ultrasonic imagery. The discriminatory ability of the fractal dimension as a pattern recognition feature is evaluated and compared to more traditional parameters. This analysis includes comparisons with statistical features in which each parameter is treated as an independent variable and in which interactions between those variables are evaluated. Pattern recognition techniques include Stepwise Discriminant Analysis, Linear Discriminant Analysis, and Nearest Neighbor Analyisis in addition to Backpropagation Neural Network Classifiers. Our results identify the fractal dimension as one of the most important parameters for distinguishing between normal and abnormal livers. In this study, consisting of 186 images, a significant statistical difference was found for both the mean and standard deviation of the fractal dimension between the normal and abnormal groups using parametric and nonparametric statistical techniques. © 1993 SPIE. All rights reserved.
Proceedings Title
Proceedings of SPIE
Publisher
SPIE
Date
1993
Volume
1965
Pages
221-231
ISBN
0277786X (ISSN)
Citation Key
pop00088
Language
English
Extra
0 citations (Crossref) [2023-10-31]
Citation Key Alias: lens.org/113-246-779-261-025
tex.type: [object Object]
Citation
Daponte, J. S., Parikh, J. A., Decker, J., & Vitale, J. N. (1993). Evaluation of the fractal dimension as a pattern recognition feature using neural networks. Proceedings of SPIE, 1965, 221–231. https://doi.org/10.1117/12.152517
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