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Joint Estimation of Formant Trajectories via Spectro-Temporal Smoothing and Bayesian Techniques

机译:通过光谱-时间平滑和贝叶斯技术联合估计共振峰轨迹

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We propose a method for the joint estimation of formant trajectories from spectrograms. Formants are enhanced in the spectrograms obtained from the application of a Gammatone filterbank via a smoothing along the frequency axis. In contrast to previously published approaches, the used tracking algorithm relies on the joint distribution of formants rather than using independent tracker instances. More precisely, Bayesian mixture filtering in conjunction with adaptive frequency range segmentation as well as Bayesian smoothing are used. The algorithm was evaluated on a publicly available database containing hand-labeled formant tracks. Experimental results show a significant performance improvement compared to a state of the art approach
机译:我们提出了一种根据频谱图联合估计共振峰轨迹的方法。通过沿频率轴进行平滑处理,共振峰在通过应用Gammatone滤波器组而获得的频谱图中得到了增强。与以前发布的方法相比,使用的跟踪算法依赖于共振峰的联合分布,而不是使用独立的跟踪器实例。更精确地,使用贝叶斯混合滤波与自适应频率范围分段以及贝叶斯平滑相结合。对该算法进行了评估,该数据库包含一个带有手工标记的共振峰轨道的公共数据库。实验结果表明,与最先进的方法相比,性能有了显着提高

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