基于多点听诊系统的心音分类

S. Hussain, Salleh, I. Kamarulafizam, A. M. Noor, Arief A. Harris, H. Oemar, Khalid Yusoff
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引用次数: 12

摘要

心脏疾病可以通过听诊器录下的心音来诊断。然而,基于听诊的人的解释和诊断有些主观,并因医生的技能和听力能力而异。研究的重点是开发和评估在特定听诊点检测心音的各种成分的方法。然而,本文的主要兴趣是寻找最佳听诊点,这涉及将听诊器放置在不同的位置,即主动脉瓣和肺动脉瓣,它们提供更好的第二心音分量(S2)质量,二尖瓣和三尖瓣可以更清楚地听到第一心音分量(Sl)。通过Mel-Frequency倒频谱系数(MFCC)特性、隐马尔可夫模型(HMM)状态数变化和高斯混合数变化的对比实验,考察了这些因素对听诊点4个位置分类性能的影响。进一步的工作还进行了时间-频率分布,已知它提供了有关信号的频谱内容如何随时间演变的信息。从许多时频方法中选择了扩展修正b分布,因为它能够以最有效的方式表示噪声和交叉项消除方面的信号。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Classification of heart sound based on multipoint auscultation system
Heart disorder can be diagnosed by listening to the heart sound that is recorded using stethoscope on the human chest. However, human interpretation and diagnosis based on auscultation is somewhat subjective and vary depending on the skill and hearing ability of the physician. Studies have been focusing on the development and evaluation of methods in detecting the various components of the heart sound at a specific auscultation point. The principle interest of this paper is, however focused towards finding the optimal auscultation point which involves placing the stethoscope at different position namely at the aortic valve and pulmonary valve which provide better quality of the second heart sound component (S2) and mitral valve and tricuspid valve where the first heart sound component (Sl) can be heard more clearly. Comparative experiments using to Mel-Frequency Cepstrum Coefficient (MFCC) property, variation of the number of Hidden markov Model (HMM) states and variation of the number of gaussian mixtures were conducted to measure the offects of these factors to the classification performance at the four locations of auscultation point. Further works was also carried out with time-frequency distribution which is known to provide information about how the spectral content of the signal evolves with time. The Extended Modified B-distribution was chosen from a number of time-frequency methods due to its ability to represent the signal in the most efficient way in term of noise and cross term elimination.
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