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SYSTEMS AND METHODS FOR ATRIAL FIBRILLATION (AF) AND CARDIAC DISORDERS DETECTION FROM BIOLOGICAL SIGNALS

机译:心房颤动(AF)和心脏病的系统和方法检测生物信号

摘要

Continuous monitoring of subject's cardiac system using biological signal(s) (BS) during day-to-day activities is essential for managing personal cardiac health/disorders, etc. Conventional systems/methods lack in improvising overall classification results and configured for specific device/signal say ECG or PPG and so on. Present disclosure provides systems and methods for classifying BS obtained from users, wherein BS are preprocessed to obtain filtered signals (FS). Corresponding feature extraction module is utilized for feature set extraction based on features in FS. The feature set is reduced and segmented into test and training data. Biological signal classification model(s) are generated using training data and a BCM is applied on test data to classify biological signals (BS) as one of Atrial Fibrillation (AF), a non-AF, a cardiac arrythmia disorder, or ischemia. Accelerometer features of connected device associated with the users can be obtained to detect activities which in conjunction with the BCM's output improvises above classification.
机译:在日常活动期间使用生物信号(BS)的受试者心脏系统的连续监测对于管理个人心脏健康/障碍等至关重要。传统系统/方法缺乏在提高整体分类结果并为特定设备配置/信号说心电图或ppg等。本公开提供了用于对从用户获得的BS进行分类的系统和方法,其中BS被预处理以获得滤波信号(FS)。相应的特征提取模块用于基于FS中的特征进行特征集提取。将功能集减少并分段为测试和培训数据。使用训练数据生成生物信号分类模型,并将BCM应用于测试数据以将生物信号(BS)分类为心房颤动(AF),非AF,心脏术障碍或缺血之一。可以获得与用户相关联的连接设备的加速度计特征以检测与BCM的输出结合的活动即兴出现上述分类。

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