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Prediction of Output Response Probability of Sound Environment System Using Simplified Model with Stochastic Regression and Fuzzy Inference

机译:基于随机回归和模糊推理的简化模型对声环境系统输出响应概率的预测

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摘要

The traditional standard stochastic system models, such as the autoregressive (AR), moving average (MA) and autoregressive moving average (ARMA) models, usually assume the Gaussian property for the fluctuation distribution, and the well-known least squares method is applied on the basis of only the linear correlation data. In the actual sound environment system, the stochastic process exhibits various non-Gaussian distributions, and there exist potentially various nonlinear correlations in addition to the linear correlation between input and output time series. Consequently, the system input and output relationship in the actual phenomenon cannot be represented by a simple model. In this study, a prediction method of output response probability for sound environment systems is derived by introducing a correction method based on the stochastic regression and fuzzy inference for simplified standard system models. The proposed method is applied to the actual data in a sound environment system, and the practical usefulness is verified.
机译:传统的标准随机系统模型,例如自回归(AR),移动平均(MA)和自回归移动平均(ARMA)模型,通常采用高斯性质​​进行波动分布,并采用众所周知的最小二乘法仅基于线性相关数据。在实际的声音环境系统中,随机过程表现出各种非高斯分布,除了输入和输出时间序列之间的线性相关性之外,还可能存在各种非线性相关性。因此,实际现象中的系统输入和输出关系不能用简单的模型表示。在这项研究中,通过引入基于随机回归和模糊推理的简化方法来简化标准系统模型,从而得出声音环境系统输出响应概率的预测方法。将该方法应用于声音环境系统中的实际数据,验证了其实用性。

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