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Static and dynamic signal processing methods for practical use based on some extension of Gaussian probability in stochastic evaluation of room EM and acoustic environment

机译:基于高斯概率的某种扩展的静态和动态信号处理方法在房间EM和声学环境的随机评估中的应用

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References(15) In this paper, we have proposed contrastively static and dynamic type two practical and methodological approaches in order to overcome the complexity of actual electromagnetic (abbr. EM) and sound environments. One is an extended regression analysis of static type intended for employing a standard Gaussian distribution for evaluating mutual relationships between sound and light leaked from a video display terminal (abbr. VDT) in a room, and the other is an establishment of Kalman’s filtering algorithm of dynamic type with help of an equivalence transformation toward the standard Gaussian distribution for estimating a sound absorption coefficient in a reverberation room. The effectiveness of the proposed methods has been also experimentally confirmed by some applications to an actual stochastic evaluation of room lighting and acoustics.
机译:参考文献(15)在本文中,我们提出了两种对比的静态和动态类型的实用和方法论方法,以克服实际电磁(简称EM)和声音环境的复杂性。一种是静态类型的扩展回归分析,旨在使用标准的高斯分布来评估从房间中的视频显示终端(缩写为VDT)泄漏的声音和光之间的相互关系,另一种是建立卡尔曼滤波算法动态类型,借助等效向标准高斯分布的等效变换来估计混响室内的吸声系数。所提出的方法的有效性也已通过对室内照明和声学的实际随机评估的一些应用实验证实。

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