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Wave height statistical characteristic analysis
Authors:LIU Guilin  CHEN Baiyu  WANG Liping  ZHANG Shuaifang  ZHANG Kuangyuan  LEI Xi
Institution:College of Engineering;College of Engineering;College of Mathematical Science;Department of Mechanical Engineering;Department of Economics
Abstract:When exploring the temporal and spatial change law of ocean environment, the most common method used is using smaller-scale observed data to derive the change law for a larger-scale system. For instance, using 30-year observation data to derive 100-year return period design wave height. Therefore,the study of inherent self-similarity in ocean hydrological elements becomes increasingly important to the study of multi-year return period design wave height derivation. In this paper, we introduced multifractal to analyze the statistical characteristics of wave height series data observed from oceanic hydrological station.An improvement is made to address the existing problems of the multifractal detrended fluctuation analysis(MF-DFA) method, where trend function showed a discontinuity between intervals. The improved MFDFA method is based on signal mode decomposition, replacing piecewise polynomial fitting used in the original method. We applied the proposed method to the wave height data collected at Chaolian Island,Shandong, China, from 1963 to 1989 and was able to conclude the wave height sequence presented weak multi-fractality. This result provided strong support to the past research on the derivation of multi-year return period design wave height with observed data. Moreover, the new method proposed in this paper also provides a new perspective to explore the intrinsic characteristic of data.
Keywords:wave height  partition function  multifractal spectrum  multifractal detrended fluctuation analysis(MF-DFA)  signal mode decomposition
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