使用混合CNN模型分析阿尔茨海默病的认知、情绪和行为方面

R. Prabha, G. Senthil, P. Suganthi, Divya Boopathi, M. Razmah, A. Lazha
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引用次数: 0

摘要

阿尔茨海默病是一种与大脑有关的疾病,它是由脑细胞内和周围不必要的蛋白质生长引起的。这种疾病导致人类记忆丧失,使他们缓慢而重复地活动。患有这种疾病的病人不能正确地处理钱,他们经常重复这个问题,他们在计划中遇到挑战。在某种程度上,它使与环境的相互作用变得复杂。这是一种残酷的疾病,应该在初始状态下进行分析和治疗。因此,预测疾病是必不可少的。本文解释了机器学习算法如何帮助患者对阿尔茨海默病进行预测和分类。论文中使用的算法包括VGG-16, DENSENET-121, CNN。由于它是一个混合模型,在研究的最后,比较了算法的效率,并找到了一个高效的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of Cognitive Emotional and Behavioral Aspects of Alzheimer's Disease Using Hybrid CNN Model
Alzheimer's disease is a brain related disorder which occurs by the growth upon unnecessary growth of protein in and around the brain cells. This disease causes memory loss in the human that makes them do activities slowly and repeatedly. The patients who suffer the disease couldn't handle the money properly, they repeat the questions often and they suffer challenges in planning. To some extent it makes the interactions with the environment complicated. Being a cruel disease, this should be analyzed and treated in the initial state. Thus, predicting disease is essential. This paper explains how machine learning algorithms helps patients to get predicted and classified on Alzheimer's disease. The algorithms used in the papers includes VGG-16, DENSENET-121, CNN. As it is a hybrid model, the efficiencies of the algorithms are compared and found an efficient result at the end of the research.
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