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Detection of the Glottal Closure Instants Using Empirical Mode Decomposition

机译:使用经验模态分解检测声门闭合瞬间

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This work explores the effectiveness of the Intrinsic Mode Functions (IMFs) of the speech signal, in estimating its Glottal Closure Instants (GCIs). The IMFs of the speech signal, which are its AM-FM or oscillatory components, are obtained from two similar nonlinear and non-stationary signal analysis techniques-Improved Complete Ensemble Empirical Mode Decomposition with Adaptive Noise (ICEEMDAN), and Modified Empirical Mode Decomposition (MEMD). Both these techniques are advanced variants of the original technique-Empirical Mode Decomposition (EMD). MEMD is much faster than ICEEMDAN, whereas the latter curtails mode-mixing (a drawback of EMD) more effectively. It is observed that the partial summation of a certain subset of the IMFs results in a signal whose minima are aligned with the GCIs. Based on this observation, two different methods are devised for estimating the GCIs from the IMFs of ICEEMDAN and MEMD. The two methods are captioned ICEEMDAN-based GCIs Estimation (IGE) and MEMD-based GCIs Estimation (MGE). The results reveal that IGE and MGE provide consistent and reliable estimates of the GCIs, compared to the state-of-the-art methods, across different scenarios-clean, noisy, and telephone channel conditions.
机译:这项工作探索语音信号的本征模式函数(IMF)的有效性,以估计其声门闭合瞬间(GCI)。语音信号的IMF是AM-FM或振荡分量,它是从两种类似的非线性和非平稳信号分析技术中获得的-具有自适应噪声的改进的完整集合经验模态分解(ICEEMDAN)和改进的经验模态分解( MEMD)。这两种技术都是原始技术-经验模式分解(EMD)的高级变体。 MEMD比ICEEMDAN快得多,而后者则更有效地减少了模式混合(EMD的缺点)。可以看出,IMF某些子集的部分求和会导致信号的最小值与GCI对齐。基于此观察结果,设计了两种不同的方法来根据ICEEMDAN和MEMD的IMF估算GCI。这两种方法分别是基于ICEEMDAN的字幕GCI估计(IGE)和基于MEMD的GCI估计(MGE)。结果表明,与最新方法相比,在干净,嘈杂和电话信道状况不同的情况下,与最新方法相比,IGE和MGE提供了一致且可靠的GCI估计。

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