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CNN Models Performance Analysis on MRI images of OASIS dataset for distinction between Healthy and Alzheimer's patient | |
Khagi, Bijen; Lee, Bumshik; Pyun, Jae-Young; Kwon, Goo-Rak | |
通讯作者 | Khagi, Bijen |
会议名称 | 18th Annual International Conference on Electronics, Information, and Communication (ICEIC) |
会议日期 | JAN 22-25, 2019 |
会议地点 | Auckland, NEW ZEALAND |
英文摘要 | Here in this paper we present the performance result of pretrained model trained on natural Image and its result in medical image classification. Besides, scratch trained model is also trained from available medical MRI images, in order to have a comparative analysis. We have performed shallow tuning and fine tuning of pretrained model (Alexnet, Googlenet, and Resnet50) in a bunch of layers in order to find the impact of each section of layers in classification result. We have used 28 Normal controls (NC) and 28 Alzheimer's disease (AD) patients for classification, selecting 30 important slices from each patient. Once all the slices are collected, each model was trained, validated and tested in ratio of 6:2:2 on random selection basis. The resulting testing results are reported and analyzed. So, that the final CNN model was built with minimal number of layers for optimal performance. |
英文关键词 | Medical MRI images CNN Alexnet Googlenet Resnet50 CAD |
来源出版物 | 2019 INTERNATIONAL CONFERENCE ON ELECTRONICS, INFORMATION, AND COMMUNICATION (ICEIC) |
ISSN | 2377-8431 |
出版年 | 2019 |
页码 | 121-124 |
EISBN | 978-8-9950-0444-9 |
出版者 | IEEE |
类型 | Proceedings Paper |
语种 | 英语 |
国家 | South Korea |
收录类别 | CPCI-S |
WOS记录号 | WOS:000470015800031 |
WOS关键词 | CONVOLUTIONAL NEURAL-NETWORKS |
WOS类目 | Computer Science, Information Systems ; Telecommunications |
WOS研究方向 | Computer Science ; Telecommunications |
资源类型 | 会议论文 |
条目标识符 | http://119.78.100.177/qdio/handle/2XILL650/308162 |
作者单位 | Chosun Univ, Dept Informat & Commun Engn, Gwangju 501759, South Korea |
推荐引用方式 GB/T 7714 | Khagi, Bijen,Lee, Bumshik,Pyun, Jae-Young,et al. CNN Models Performance Analysis on MRI images of OASIS dataset for distinction between Healthy and Alzheimer's patient[C]:IEEE,2019:121-124. |
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