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心脏声音信号分析智能系统综述。

A review of intelligent systems for heart sound signal analysis.

作者信息

Nabih-Ali Mohammed, El-Dahshan El-Sayed A, Yahia Ashraf S

机构信息

a Egyptian E-Learning University (EELU) , El-Giza , Egypt.

b Department of Physics, Faculty of Sciences , Ain Shams University , Cairo , Egypt.

出版信息

J Med Eng Technol. 2017 Oct;41(7):553-563. doi: 10.1080/03091902.2017.1382584. Epub 2017 Oct 9.

Abstract

Intelligent computer-aided diagnosis (CAD) systems can enhance the diagnostic capabilities of physicians and reduce the time required for accurate diagnosis. CAD systems could provide physicians with a suggestion about the diagnostic of heart diseases. The objective of this paper is to review the recent published preprocessing, feature extraction and classification techniques and their state of the art of phonocardiogram (PCG) signal analysis. Published literature reviewed in this paper shows the potential of machine learning techniques as a design tool in PCG CAD systems and reveals that the CAD systems for PCG signal analysis are still an open problem. Related studies are compared to their datasets, feature extraction techniques and the classifiers they used. Current achievements and limitations in developing CAD systems for PCG signal analysis using machine learning techniques are presented and discussed. In the light of this review, a number of future research directions for PCG signal analysis are provided.

摘要

智能计算机辅助诊断(CAD)系统可以增强医生的诊断能力,并减少准确诊断所需的时间。CAD系统可以为医生提供有关心脏病诊断的建议。本文的目的是回顾最近发表的预处理、特征提取和分类技术及其在心音图(PCG)信号分析方面的最新进展。本文所回顾的已发表文献展示了机器学习技术作为PCG CAD系统设计工具的潜力,并表明用于PCG信号分析的CAD系统仍然是一个开放问题。将相关研究与其数据集、特征提取技术和所使用的分类器进行了比较。介绍并讨论了使用机器学习技术开发PCG信号分析CAD系统的当前成果和局限性。鉴于此综述,提供了一些PCG信号分析的未来研究方向。

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