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QRS Detection Based on Improved Adaptive Threshold

机译:QRS检测基于改进的自适应阈值

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摘要

Cardiovascular disease is the first cause of death around the world. In accomplishing quick and accurate diagnosis, automatic electrocardiogram (ECG) analysis algorithm plays an important role, whose first step is QRS detection. The threshold algorithm of QRS complex detection is known for its high-speed computation and minimized memory storage. In this mobile era, threshold algorithm can be easily transported into portable, wearable, and wireless ECG systems. However, the detection rate of the threshold algorithm still calls for improvement. An improved adaptive threshold algorithm for QRS detection is reported in this paper. The main steps of this algorithm are preprocessing, peak finding, and adaptive threshold QRS detecting. The detection rate is 99.41%, the sensitivity (Se) is 99.72%, and the specificity (Sp) is 99.69% on the MIT-BIH Arrhythmia database. A comparison is also made with two other algorithms, to prove our superiority. The suspicious abnormal area is shown at the end of the algorithm and RR-Lorenz plot drawn for doctors and cardiologists to use as aid for diagnosis.
机译:心血管疾病是世界上第一个死亡的原因。在完成快速准确的诊断时,自动心电图(ECG)分析算法起着重要作用,其第一步是QRS检测。 QRS复杂检测的阈值算法已知为其高速计算和最小化的存储器存储器。在该移动时代,阈值算法可以容易地运输到便携式,可穿戴和无线ECG系统中。然而,阈值算法的检测率仍需要改进。本文报道了一种改进的QRS检测的自适应阈值算法。该算法的主要步骤是预处理,峰值发现和自适应阈值QRS检测。检出率为99.41%,灵敏度(SE)为99.72%,特异性(SP)在MIT-BIH心律失常数据库上为99.69%。还使用另外两个算法进行比较,以证明我们的优势。可疑异常区域在算法结束时显示,为医生和心脏病学家绘制的RR-Lorenz图,用作诊断的辅助。

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