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An end-to-end framework for real-time automatic sleep stage classification

机译:实时自动睡眠阶段分类的端到端框架

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Sleep staging is a fundamental but time consuming process in any sleep laboratory. To greatly speed up sleep staging without compromising accuracy, we developed a novel framework for performing real-time automatic sleep stage classification. The client–server architecture adopted here provides an end-to-end solution for anonymizing and efficiently transporting polysomnography data from the client to the server and for receiving sleep stages in an interoperable fashion. The framework intelligently partitions the sleep staging task between the client and server in a way that multiple low-end clients can work with one server, and can be deployed both locally as well as over the cloud. The framework was tested on four datasets comprising ≈1700 polysomnography records (?≈12000 hr of recordings) collected from adolescents, young, and old adults, involving healthy persons as well as those with medical conditions. We used two independent validation datasets: one comprising patients from a sleep disorders clinic and the other incorporating patients with Parkinson’s disease. Using this system, an entire night’s sleep was staged with an accuracy on par with expert human scorers but much faster (?≈5 s compared with 30–60 min). To illustrate the utility of such real-time sleep staging, we used it to facilitate the automatic delivery of acoustic stimuli at targeted phase of slow-sleep oscillations to enhance slow-wave sleep.
机译:在任何睡眠实验室中,睡眠分期都是基本但耗时的过程。为了在不影响准确性的情况下极大地加快睡眠阶段,我们开发了一种新颖的框架来执行实时自动睡眠阶段分类。这里采用的客户端-服务器体系结构提供了一种端到端解决方案,用于匿名化和有效地将多导睡眠图数据从客户端传输到服务器,并以可互操作的方式接收睡眠阶段。该框架以多个低端客户端可以与一台服务器一起工作的方式智能地在客户端和服务器之间划分睡眠登台任务,并且可以在本地以及通过云进行部署。该框架在四个数据集上进行了测试,这些数据集包括从青少年,年轻人和老年人那里收集的≈1700项多导睡眠监测记录(约≈≈12000hr的记录),涉及健康人以及患有健康状况的人。我们使用了两个独立的验证数据集:一个包含睡眠障碍诊所的患者,另一个包含帕金森氏病的患者。使用该系统,可以进行整夜的睡眠,其准确性与人类专业记分员相当,但速度更快(?≈5s,而30-60分钟)。为了说明这种实时睡眠阶段的实用性,我们使用它来促进在慢睡眠振荡的目标阶段自动传递声刺激,以增强慢波睡眠。

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