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Effect of filter selection on classification of extrasystole heart sounds via mobile devices

机译:筛选器选择对通过移动设备进行的心脏收缩前心音分类的影响

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Sound of the heart is the basic biomedical information utilized for diagnosis by medical doctors in heart diseases. These sounds show differences according to different pathological characteristics. Extra systole sounds, which mean extra heartbeat, can be perceived as throbbing by people. Occurrence of these sounds in certain age groups may be the indication of tachycardia. In this study, effect of Butterworth, Chebyshev and Elliptic filters on classification results for noise removal in extra systole specific sounds in heart sound database is analyzed. The filters chosen and other methods are paid attention to be faster because the application developed for this aim will be used on mobile devices. Db5 type wavelet transformation method has been used to gain less as feature set. Support vector machine has been used to classify. According to the results gained, the fastest filter for noise removal in extra systole specific heart sounds is Butterworth and the filter that gives the best classification results is Elliptic filter.
机译:心音是医生用于心脏病诊断的基本生物医学信息。这些声音根据不同的病理特征显示出差异。额外的心脏收缩声音,意味着额外的心跳,可以被人们视为th动。在某些年龄段出现这些声音可能是心动过速的征兆。在这项研究中,分析了Butterworth,Chebyshev和Elliptic滤波器对分类结果的影响,该分类结果用于去除心音数据库中额外的收缩期特定声音中的噪声。要注意选择的过滤器和其他方法要更快,因为为此目的而开发的应用程序将在移动设备上使用。 db5型小波变换方法已被​​用来获得较少的特征集。支持向量机已被用于分类。根据获得的结果,用于消除特定于心脏搏动的特定心音的最快的过滤器是Butterworth,而给出最佳分类结果的过滤器是Elliptic过滤器。

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