摘要
目标:如今正确的认知功能障碍检测已经成为科学界的一个挑战。阿尔茨海默病(AD)是痴呆最常见的原因,流行程度很高,正在迅速地增加到流行水平。在不远的将来,这个事实可能会产生巨大的社会和经济影响。在这种情况下,早期准确的AD诊断有助于减少其对患者,亲属和社会的影响。近几十年来,不仅在经典评估技术方面取得了有益的进展,而且在新颖的非侵入性筛查方法方面也取得了有益的进展。 方法:在这些方法中,自动分析AD患者首先受损的技能中的一种 - 是一种自然而有用的低成本诊断工具。 结果:本文提出了一种基于自动语音分析的非线性多任务方法。分析了三种不同语言复杂度水平的任务,得到了鼓励进行更深层次评估的可喜成果。通过使用经典的多层感知器(MLP)和借助于卷积神经网络(CNN)(MLP的生物启发变体)的深度学习对具有经典线性特征,感知特征,郎世宁分形维数和多等级置换的任务进行自动分类熵。 结论:最后,通过非参数Mann-Whitney U检验选择最相关的特征。
关键词: 阿尔茨海默病,创新工具,言语处理,深度学习,自发言语,情感分析, 多tasks_
Current Alzheimer Research
Title:Advances on Automatic Speech Analysis for Early Detection of Alzheimer Disease: A Non-linear Multi-task Approach
Volume: 15 Issue: 2
关键词: 阿尔茨海默病,创新工具,言语处理,深度学习,自发言语,情感分析, 多tasks_
摘要: Objective: Nowadays proper detection of cognitive impairment has become a challenge for the scientific community. Alzheimer's Disease (AD), the most common cause of dementia, has a high prevalence that is increasing at a fast pace towards epidemic level. In the not-so-distant future this fact could have a dramatic social and economic impact. In this scenario, an early and accurate diagnosis of AD could help to decrease its effects on patients, relatives and society. Over the last decades there have been useful advances not only in classic assessment techniques, but also in novel non-invasive screening methodologies.
Methods: Among these methods, automatic analysis of speech -one of the first damaged skills in AD patients- is a natural and useful low cost tool for diagnosis.
Results: In this paper a non-linear multi-task approach based on automatic speech analysis is presented. Three tasks with different language complexity levels are analyzed, and promising results that encourage a deeper assessment are obtained. Automatic classification was carried out by using classic Multilayer Perceptron (MLP) and Deep Learning by means of Convolutional Neural Networks (CNN) (biologically- inspired variants of MLPs) over the tasks with classic linear features, perceptual features, Castiglioni fractal dimension and Multiscale Permutation Entropy.
Conclusion: Finally, the most relevant features are selected by means of the non-parametric Mann- Whitney U-test.
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Cite this article as:
Advances on Automatic Speech Analysis for Early Detection of Alzheimer Disease: A Non-linear Multi-task Approach, Current Alzheimer Research 2018; 15 (2) . https://dx.doi.org/10.2174/1567205014666171120143800
DOI https://dx.doi.org/10.2174/1567205014666171120143800 |
Print ISSN 1567-2050 |
Publisher Name Bentham Science Publisher |
Online ISSN 1875-5828 |
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