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From Pacemaker to Wearable: Techniques for ECG Detection Systems

机译:从起搏器到可穿戴的:心电图检测系统的技术

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With the alarming rise in the deaths due to cardiovascular diseases (CVD), present medical research scenario places notable importance on techniques and methods to detect CVDs. As adduced by world health organization, technological proceeds in the field of cardiac function assessment have become the nucleus and heart of all leading research studies in CVDs in which electrocardiogram (ECG) analysis is the most functional and convenient tool used to test the range of heart-related irregularities. Most of the approaches present in the literature of ECG signal analysis consider noise removal, rhythm-based analysis, and heartbeat detection to improve the performance of a cardiac pacemaker. Advancements achieved in the field of ECG segments detection and beat classification have a limited evaluation and still require clinical approvals. In this paper, approaches on techniques to implement on-chip ECG detector for a cardiac pacemaker system are discussed. Moreover, different challenges regarding the ECG signal morphology analysis deriving from medical literature is extensively reviewed. It is found that robustness to noise, wavelet parameter choice, numerical efficiency, and detection performance are essential performance indicators required by a state-of-the-art ECG detector. Furthermore, many algorithms described in the existing literature are not verified using ECG data from the standard databases. Some ECG detection algorithms show very high detection performance with the total number of detected QRS complexes. However, the high detection performance of the algorithm is verified using only a few datasets. Finally, gaps in current advancements and testing are identified, and the primary challenge remains to be implementing bullseye test for morphology analysis evaluation.
机译:随着由于心血管疾病(CVD)导致的死亡中的令人震惊的上升,目前的医学研究方案在检测CVDS的技术和方法方面非常重要。由世界卫生组织引入,心功能评估领域的技术收益已成为CVDS中所有领先研究研究的核心和心脏,其中心电图(ECG)分析是用于测试心脏范围的最具功能和方便的工具 - 相关的违规行为。 ECG信号分析文献中的大多数方法考虑了噪声去除,基于节奏的分析和心跳检测,以提高心脏起搏器的性能。 ECG段检测和击败分类领域实现的进步具有有限的评估,并且仍然需要临床认证。本文讨论了用于为心脏起搏器系统实现片上ECG检测器的技术方法。此外,有关来自医学文献的ECG信号形态分析的不同挑战是广泛的审查。发现噪声,小波参数选择,数值效率和检测性能的稳健性是最先进的ECG检测器所需的基本性能指标。此外,使用来自标准数据库的ECG数据不验证现有文献中描述的许多算法。一些ECG检测算法显示出非常高的检测性能,具有检测到的QRS复合物的总数。但是,算法的高检测性能仅使用几个数据集来验证。最后,确定了当前进步和测试中的差距,初级挑战仍有待实现对形态学分析评估的靶熊猫试验。

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