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Automatic phonocardiogram signal analysis in infants based on wavelet transforms and artificial neural networks

机译:基于小波变换和人工神经网络的婴幼儿自动音乐记信号分析

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Discusses infant related aspects of a computer based phonocardiogram analysis system. The evaluation is achieved in several stages. The first step is the segmentation of the heart sound signal in single cardiac cycles. For further analysis artefact free periods are regarded, which are automatically selected by a new algorithm. In the following features for the automatic classification are calculated using a wavelet transform. Finally a diagnostic proposal is determined utilising the calculated features by two artificial neural networks, that were trained with reference databases. The first network serves for murmur detection and the second for classification of the particular disease. The murmur detection yields about 93% correct classified signals. All cases used in this investigation have been counterchecked and verified by echocardiography.
机译:讨论了基于计算机的音牙图分析系统的婴儿相关方面。评估在几个阶段实现。第一步是单心脏周期中心声信号的分割。为了进一步分析,所以将被认为是自动选择的自由算法。在以下特征中,使用小波变换计算自动分类。最后,利用两个人工神经网络利用计算的特征来确定诊断提议,该特征是由参考数据库接受训练的。第一网络用于杂音检测,第二个网络用于分类特定疾病。杂音检测产生约93%的正确分类信号。本研究中使用的所有案例已经通过超声心动图核对并验证。

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