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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >Multiple Instance Dictionary Learning for Beat-to-Beat Heart Rate Monitoring From Ballistocardiograms
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Multiple Instance Dictionary Learning for Beat-to-Beat Heart Rate Monitoring From Ballistocardiograms

机译:多实例字典学习可从心动描记图监测心跳频率

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摘要

A multiple instance dictionary learning approach, dictionary learning using functions of multiple instances (DL-FUMI), is used to perform beat-to-beat heart rate estimation and to characterize heartbeat signatures from ballistocardiogram (BCG) signals collected with a hydraulic bed sensor. DL-FUMI estimates a “heartbeat concept” that represents an individual's personal ballistocardiogram heartbeat pattern. DL-FUMI formulates heartbeat detection and heartbeat characterization as a multiple instance learning problem to address the uncertainty inherent in aligning BCG signals with ground truth during training. Experimental results show that the estimated heartbeat concept obtained by DL-FUMI is an effective heartbeat prototype and achieves superior performance over comparison algorithms.
机译:多实例字典学习方法,即使用多实例功能的字典学习(DL-FUMI),用于执行心跳对心律的估计,并根据由液压床传感器收集的心动描记图(BCG)信号来表征心跳信号。 DL-FUMI估计一个“心跳概念”,代表一个人的个人心动描记图心跳模式。 DL-FUMI将心跳检测和心跳表征公式化为多实例学习问题,以解决训练期间将BCG信号与地面真实性对齐时固有的不确定性。实验结果表明,通过DL-FUMI获得的估计心跳概念是一种有效的心跳原型,并且比比较算法具有更高的性能。

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