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首页> 外文期刊>Journal of Signal Processing >Separation Algorithm for Biosignals as Preprocess in Detecting Circulatory Disease
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Separation Algorithm for Biosignals as Preprocess in Detecting Circulatory Disease

机译:对生物预处理分离算法在检测循环疾病

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摘要

A method of separating heart sounds, breathing sounds, and bloodstream sounds (intended signals) from the sounds in the human body (biosignals) using microphone sensors is described as a preprocess for detecting circulatory disease such as irregular heart beat (IHB), arterial sclerosis and sleep apnea syndrome (SAS), In this paper, breathing sounds are defined as bronchial sounds. To separate intended signals from biosignals, the independent component analysis (ICA) algorithm and time-frequency masking by the expectation-maximization (EM) algorithm have been used. However, the separation filter in ICA does not work well if the recording environment has considerable reverberation. In addition, time-frequency masking of the EM algorithm is a noise and local solution problem depending on the initial value. Thus, we propose a new algorithm to solve these problems. Experimental results show that our method performs better than ICA and time-frequency masking of the EM algorithm.
机译:一种分离方法心音、呼吸目的声音,和血液的声音(信号)从人体的声音(生物)使用麦克风传感器被描述为一个预处理等检测循环疾病不规则的心跳科学院水生生物研究所(IHB),动脉硬化和睡眠呼吸暂停综合征(SAS),在这篇文章中,呼吸的声音被定义为支气管的声音。从生物分离目标信号,独立分量分析(ICA)算法和时频掩蔽采用(EM)算法使用。如果录音环境不适合相当大的混响。时频掩蔽的EM算法是一个根据噪声和局部解问题初始值。来解决这些问题。表明,我们的方法比ICA和执行时频掩蔽的EM算法。

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