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Cerebral Micro-Bleeding Detection Based on Densely Connected Neural Network.

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posted on 2019-06-28, 08:57 authored by Shuihua Wang, Chaosheng Tang, Junding Sun, Yudong Zhang
Cerebral micro-bleedings (CMBs) are small chronic brain hemorrhages that have many side effects. For example, CMBs can result in long-term disability, neurologic dysfunction, cognitive impairment and side effects from other medications and treatment. Therefore, it is important and essential to detect CMBs timely and in an early stage for prompt treatment. In this research, because of the limited labeled samples, it is hard to train a classifier to achieve high accuracy. Therefore, we proposed employing Densely connected neural network (DenseNet) as the basic algorithm for transfer learning to detect CMBs. To generate the subsamples for training and test, we used a sliding window to cover the whole original images from left to right and from top to bottom. Based on the central pixel of the subsamples, we could decide the target value. Considering the data imbalance, the cost matrix was also employed. Then, based on the new model, we tested the classification accuracy, and it achieved 97.71%, which provided better performance than the state of art methods.

Funding

This project was financially supported by Natural Science Foundation of Jiangsu Province (No. BK20180727).

History

Citation

Frontiers in Neuroscience, 2019, 13:422

Author affiliation

/Organisation/COLLEGE OF SCIENCE AND ENGINEERING/Department of Informatics

Version

  • VoR (Version of Record)

Published in

Frontiers in Neuroscience

Publisher

Frontiers Media

issn

1662-4548

Acceptance date

2019-04-12

Copyright date

2019

Available date

2019-06-28

Publisher version

https://www.frontiersin.org/articles/10.3389/fnins.2019.00422/full

Notes

The datasets for this manuscript are not publicly available because due to the privacy of the subjects. Requests to access the datasets should be directed to shuihuawang@ieee.org.

Language

en

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