作者
Muhammad Febrian Rachmadi, Maria del C Valdes-Hernandez, Maria Leonora Fatimah Agan, Carol Di Perri, Taku Komura, Alzheimer's Disease Neuroimaging Initiative
发表日期
2018/6/1
期刊
Computerized Medical Imaging and Graphics
卷号
66
页码范围
28-43
出版商
Pergamon
简介
We propose an adaptation of a convolutional neural network (CNN) scheme proposed for segmenting brain lesions with considerable mass-effect, to segment white matter hyperintensities (WMH) characteristic of brains with none or mild vascular pathology in routine clinical brain magnetic resonance images (MRI). This is a rather difficult segmentation problem because of the small area (i.e., volume) of the WMH and their similarity to non-pathological brain tissue. We investigate the effectiveness of the 2D CNN scheme by comparing its performance against those obtained from another deep learning approach: Deep Boltzmann Machine (DBM), two conventional machine learning approaches: Support Vector Machine (SVM) and Random Forest (RF), and a public toolbox: Lesion Segmentation Tool (LST), all reported to be useful for segmenting WMH in MRI. We also introduce a way to incorporate spatial information …
引用总数
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