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Finding disease similarity by combining ECG with heart auscultation sound

机译:通过将心电图与心脏听诊声音相结合来寻找疾病相似性

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Heart auscultation and ECG are two very important and commonly used diagnostic aids in cardiovascular disease diagnosis. Physicians routinely perform diagnosis from simple heart auscultation and visual examination of ECG waveform shapes. It is common knowledge to physicians that patients with the same disease have similar-looking ECG shapes and comparable heart sounds. A key idea explored in this paper is to automatically capture such shape similarity in the ECG and audio signals, which are combined to find disease similarity. Specifically, we present a general method of capturing the perceptual shape similarity of the ECG and audio waveforms by modeling the morphological variations in the signals representing the same disease across patients. Differences in shape corresponding to the same disease are modeled as a constrained non-rigid translation. Patients with similar diseases are retrieved by recovering the non-rigid alignment transform using a variant of dynamic time warping. Results are presented that demonstrate the method on audio shape-based discrimination of various cardiovascular diseases.
机译:心脏听诊和心电图是心血管疾病诊断中的两个非常重要且常用的诊断助剂。医生经常从简单的心脏听诊和视觉检查ECG波形形状进行诊断。对于具有相同疾病的患者具有相似的ECG形状和可比的心声,是对医生的常识。本文探索的一个关键思路是在ECG和音频信号中自动捕获这种形状相似性,它们组合以寻找疾病相似性。具体地,我们介绍了一种通过在患者对患者中表示同一疾病的信号中的形态变化来捕获ECG和音频波形的感知形状相似性的一般方法。与与相同疾病相对应的形状的差异被建模为受限制的非刚性翻译。通过使用动态时间翘曲的变体回收非刚性取向变换来检索具有类似疾病的患者。提出了结果,证明了基于音频形状的各种心血管疾病的辨别方法。

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