DocumentCode :
2712364
Title :
Impact of multiple clusters on neural classification of ROIs in digital mammograms
Author :
Verma, Brijesh
Author_Institution :
CQ Univ., Rockhampton, QLD, Australia
fYear :
2009
fDate :
14-19 June 2009
Firstpage :
3220
Lastpage :
3223
Abstract :
This paper evaluates the impact of multiple clusters on neural classification of regions of interest (ROIs) in digital mammograms. The training and test sets for neural networks usually contain inputs extracted from ROIs and relevant class such as benign and malignant. However, the patterns such as regions of interest in digital mammograms do not have just one cluster per class instead they have many clusters within benign and malignant classes. Therefore, neural network training may benefit in terms of accuracy and efficiency by creating and analyzing a number of clusters within a class. A novel multiple clusters based neural classification approach is presented. In this approach, input data is clustered into a number of clusters per class and a neural classifier is trained with clustered data which contain multiple clusters per class. The experiments on a benchmark database of digital mammograms are conducted. The results show that the multiple clusters per class have significant impact on neural classification and overall they achieve better accuracy than single cluster per class based classification of ROIs in digital mammograms.
Keywords :
biology computing; mammography; neural nets; digital mammograms; multiple clusters; neural classification; neural classifier; neural network training; Australia; Breast cancer; Cancer detection; Clustering algorithms; Databases; Mammography; Neural networks; Sections; State estimation; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks, 2009. IJCNN 2009. International Joint Conference on
Conference_Location :
Atlanta, GA
ISSN :
1098-7576
Print_ISBN :
978-1-4244-3548-7
Electronic_ISBN :
1098-7576
Type :
conf
DOI :
10.1109/IJCNN.2009.5178942
Filename :
5178942
Link To Document :
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