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Monitoring infants by automatic video processing: A unified approach to motion analysis

机译:通过自动视频处理监测婴幼儿:运动分析的统一方法

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摘要

A unified approach to contact-less and low-cost video processing for automatic detection of neonatal diseases characterized by specific movement patterns is presented. This disease category includes neonatal clonic seizures and apneas. Both disorders are characterized by the presence or absence, respectively, of periodic movements of parts of the body e.g., the limbs in case of clonic seizures and the chest/abdomen in case of apneas. Therefore, one can analyze the data obtained from multiple video sensors placed around a patient, extracting relevant motion signals and estimating, using the Maximum Likelihood (ML) criterion, their possible periodicity. This approach is very versatile and allows to investigate various scenarios, including: a single Red, Green and Blue (RGB) camera, an RGB-depth sensor or a network of a few RGB cameras. Data fusion principles are considered to aggregate the signals from multiple sensors. In the case of apneas, since breathing movements are subtle, the video can be pre-processed by a recently proposed algorithm which is able to emphasize small movements. The performance of the proposed contact-less detection algorithms is assessed, considering real video recordings of newborns, in terms of sensitivity, specificity, and Receiver Operating Characteristic (ROC) curves, with respect to medical gold standard devices. The obtained results show that a video processing-based system can effectively detect the considered specific diseases, with increasing performance for increasing number of sensors.
机译:提出了一种统一的接触和低成本视频处理,用于自动检测特定运动模式的新生儿疾病的自动检测。这种疾病类别包括新生儿克隆癫痫发作和呼吸暂停。两种疾病的特征在于,分别存在或不存在,分别是体内部位的周期性运动,例如,在呼吸暂停的情况下,克隆癫痫发作和胸腔/腹部的肢体。因此,可以分析从放置在患者周围的多个视频传感器获得的数据,利用最大似然(ML)标准来提取相关运动信号并估计它们可能的周期性。这种方法非常通用,允许调查各种场景,包括:单个红色,绿色和蓝色(RGB)相机,RGB深度传感器或少数RGB摄像机的网络。数据融合原理被认为是从多个传感器聚合信号。在呼吸暂停的情况下,由于呼吸运动是微妙的,可以通过最近提出的算法预先处理视频,该算法能够强调小运动。考虑到新生儿的真实视频录制,在敏感度,特异性和接收器操作特征(ROC)曲线方面,评估所提出的接触检测算法的性能,关于医用金标准装置。所获得的结果表明,基于视频处理的系统可以有效地检测所考虑的特定疾病,随着越来越多的传感器的性能而增加。

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