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  1. Calibration for Parameter Estimation of Signals with Complex Noise via Nonstationarity Measure.Zhiming Zhou, Zhengyun Zhou & Liang Wu - 2021 - Complexity 2021:1-12.
    The signals in numerous complex systems of engineering can be regarded as nonlinear parameter trend with noise which is identically distributed random signals or deterministic stationary chaotic signals. The commonly used methods for parameter estimation of nonlinear trend in signals are mainly based on least squares. It can cause inaccurate estimation results when the noise is complex. This paper proposes a calibration method for this issue in the case of single parameter via nonstationarity measure from the perspective of the stationarity (...)
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  • Two Identification Methods for a Nonlinear Membership Function.Yuejiang Ji & Lixin Lv - 2021 - Complexity 2021:1-7.
    This paper proposes two parameter identification methods for a nonlinear membership function. An equation converted method is introduced to turn the nonlinear function into a concise model. Then a stochastic gradient algorithm and a gradient-based iterative algorithm are provided to estimate the unknown parameters of the nonlinear function. The numerical example shows that the proposed algorithms are effective.
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