A Study on Mammographic Image Modelling and Classification Using Multiple Databases

Wenda He, Erika R. E. Denton, Reyer Zwiggelaar

Allbwn ymchwil: Pennod mewn Llyfr/Adroddiad/Trafodion CynhadleddTrafodion Cynhadledd (Nid-Cyfnodolyn fathau)

5 Dyfyniadau (Scopus)

Crynodeb

Within computer aided mammography, there are many image analysis methods have been developed for mammographic image classification. Some of these were developed and validated using well known publicly available databases, and others may have chosen to use independent/private databases for their investigations. Often, despite the promising results described in the literature, it is not unusual to see when adapting an established method with the recommended configurations for a different database, the obtained results are not in line with expectation. This paper presents results of a study with respect to the implications of mammographic image classification using different classifiers trained with variations, such as differences in parameter settings, classifiers, using single databases, combined and across databases. The results indicated that it is unlikely to have an universal parameter settings and classifiers, which can be used to achieve the best classification without tuning. Additional databases used at the training stages do not necessarily lead to more accurate density classifications; whilst classifiers trained with images obtained using one type of image acquisition are not ideal for classifying images obtained using different image acquisition. The related issues of optimal parameter configuration, classifier selection, and utilising single or multiple databases at the training stage are discussed.
Iaith wreiddiolSaesneg
TeitlBreast Imaging - 12th International Workshop, IWDM 2014, Proceedings
Is-deitl12th International Workshop, IWDM 2014, Gifu City, Japan, June 29 - July 2, 2014, Proceedings
GolygyddionHiroshi Fujita, Takeshi Hara, Chisako Muramatsu
CyhoeddwrSpringer Nature
Tudalennau696-701
Nifer y tudalennau6
ISBN (Electronig)978-3-319-07887-8
ISBN (Argraffiad)978-3-319-07886-1
Dynodwyr Gwrthrych Digidol (DOIs)
StatwsCyhoeddwyd - 06 Meh 2014

Cyfres gyhoeddiadau

EnwLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Cyfrol8539 LNCS
ISSN (Argraffiad)0302-9743
ISSN (Electronig)1611-3349

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