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Determination of the Starting Point in Time Series for Trend Detection Based on Overlapping Trend Cover

Determination of the Starting Point in Time Series for Trend Detection Based on Overlapping Trend

By: Gao Xuedong and  Gu Kan  
Open Access
|Jan 2017

Abstract

The traditional time series studies consider the time series as a whole while carrying on the trend detection; therefore not enough attention is paid to the stage characteristic. On the other hand, the piecewise linear fitting type methods for trend detection are lacking consideration of the possibility that the same node belongs to multiple trends. The above two methods are affected by the start position of the sequence. In this paper, the concept of overlapping trend is proposed, and the definition of milestone nodes is given on its base; these way not only the recognition of overlapping trend is realized, but also the negative influence of the starting point of sequence is effectively reduced. The experimental results show that the computational accuracy is not affected by the improved algorithm and the time cost is greatly reduced when dealing with the processing tasks on dynamic growing data sequence.

DOI: https://doi.org/10.1515/cait-2016-0080 | Journal eISSN: 1314-4081 | Journal ISSN: 1311-9702
Language: English
Page range: 98 - 110
Published on: Jan 25, 2017
Published by: Bulgarian Academy of Sciences, Institute of Information and Communication Technologies
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2017 Gao Xuedong, Gu Kan, published by Bulgarian Academy of Sciences, Institute of Information and Communication Technologies
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.