Investigating the Effect of Various Augmentations on the Input Data Fed to a Convolutional Neural Network for the Task of Mammographic Mass Classification

Azam Hamidinekoo, Zobia Suhail, Talha Qaiser, Reyer Zwiggelaar

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

15 Dyfyniadau (Scopus)

Crynodeb

Along with the recent improvement in medical image analysis, exploring deep learning based approaches in the context of mammography image processing has become more realistic. In this paper, we concatenate on both conventional machine learning and deep learning approaches to classify mass abnormalities in mammographic images. Using a deep convolutional neural network (CNN) architecture, the effect of performing various augmentation approaches on the raw pre-detected masses fed to the network is investigated. We propose an extended augmentation method, specific filter bank responses and also a texton-based approach to generate characteristic filtered features for various types of mass textures and eventually use the resulting image data as input for training the CNN. Evaluating our proposed techniques on the DDSM dataset, we show that mammographic mass classification can be tackled effectively by employing an extended augmentation scheme. We obtained 87% accuracy which is comparable to the currently reported results for this task.
Iaith wreiddiolSaesneg
TeitlMedical Image Understanding and Analysis - 21st Annual Conference, MIUA 2017, Proceedings
Is-deitl21st Annual Conference, MIUA 2017, Edinburgh, UK, July 11–13, 2017, Proceedings
GolygyddionVictor Gonzalez-Castro, Maria Valdes Hernandez
CyhoeddwrSpringer Nature
Tudalennau398-409
Nifer y tudalennau12
ISBN (Electronig)978-3-319-60964-5
ISBN (Argraffiad)978-3-319-60963-8
Dynodwyr Gwrthrych Digidol (DOIs)
StatwsCyhoeddwyd - 22 Meh 2017

Cyfres gyhoeddiadau

EnwCommunications in Computer and Information Science
CyhoeddwrSpringer Nature
Cyfrol723
ISSN (Argraffiad)1865-0929
ISSN (Electronig)1865-0937

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