基于ANFIS的软计算技术在睡眠障碍早期检测中的应用

V. Garg, R. Bansal
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引用次数: 7

摘要

睡眠是一种伟大的自然发生的状态,在这种状态下,一切都被暂时遗忘,变得清新,为接下来的日常锻炼做好准备。如果睡眠不好,任何人都可能在这些运动中落后。但是,有时观察到睡眠受到一些被称为睡眠障碍的尴尬行为的干扰。提出了各种智能技术/方法来诊断、检测和分类睡眠障碍、睡眠纺锤波和其他睡眠相关事件。本文利用自适应神经模糊推理系统(ANFIS)提出了一种基于生理-心理症状的系统。主要关注的是早期发现四种睡眠障碍,即睡眠呼吸暂停、失眠、睡眠异常和打鼾。所有这些障碍的预先检测是至关重要的,因为它可以帮助一个人保护自己免受这些睡眠障碍可能产生的进一步影响。为了实现该系统,数据集从不同的医生收集,包括96名患者的记录。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Soft computing technique based on ANFIS for the early detection of sleep disorders
Sleep is a great natural occurring state in which everything is forgotten for a while, become fresh and ready for next coming daily routine exercises. Any person can lag in these exercises, if their sleep is not well taken. But, sometime it is observed that the sleep gets disturbed due to some awkward behaviors known as sleep disorders. The various intelligent techniques/methods are proposed for the diagnosis, detection and classification of sleep disorders, sleep spindles and other sleep related events. In this paper, a system is proposed based on physio-psycho symptoms by using an adaptive neuro-fuzzy inference system (ANFIS). The major concern is taken towards the early detection of only four sleep disorders that are Sleep Apnea, Insomnia, Parasomnia and Snoring. The prior detection of all these disorders are having a prime importance, as it can help a person to safe itself from the further effects that can arise from these sleep disorders. To implement the system, the data set is collected from various physicians comprising the record of 96 patients.
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