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Performance improvement via bagging in probabilistic prediction of chaotic time series using similarity of attractors and LOOCV predictable horizon
http://hdl.handle.net/10228/00006305
http://hdl.handle.net/10228/00006305f47f46a7-99d5-47d2-b259-f90d610369c8
名前 / ファイル | ライセンス | アクション |
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10.1007_s00521-017-3149-7.pdf (841.3 kB)
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Item type | 学術雑誌論文 = Journal Article(1) | |||||||||||
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公開日 | 2017-08-24 | |||||||||||
資源タイプ | ||||||||||||
資源タイプ識別子 | http://purl.org/coar/resource_type/c_6501 | |||||||||||
資源タイプ | journal article | |||||||||||
タイトル | ||||||||||||
タイトル | Performance improvement via bagging in probabilistic prediction of chaotic time series using similarity of attractors and LOOCV predictable horizon | |||||||||||
言語 | ||||||||||||
言語 | eng | |||||||||||
著者 |
黒木, 秀一
× 黒木, 秀一× Toidani, Mitsuki× Shigematsu, Ryosuke× 松尾, 一矢
WEKO
15851
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抄録 | ||||||||||||
内容記述タイプ | Abstract | |||||||||||
内容記述 | Recently, we have presented a method of probabilistic prediction of chaotic time series. The method employs learning machines involving strong learners capable of making predictions with desirably long predictable horizons, where, however, usual ensemble mean for making representative prediction is not effective when there are predictions with shorter predictable horizons. Thus, the method selects a representative prediction from the predictions generated by a number of learning machines involving strong learners as follows: first, it obtains plausible predictions holding large similarity of attractors with the training time series and then selects the representative prediction with the largest predictable horizon estimated via LOOCV (leave-one-out cross-validation). The method is also capable of providing average and/or safe estimation of predictable horizon of the representative prediction. We have used CAN2s (competitive associative nets) for learning piecewise linear approximation of nonlinear function as strong learners in our previous study, and this paper employs bagging (bootstrap aggregating) to improve the performance, which enables us to analyze the validity and the effectiveness of the method. | |||||||||||
書誌情報 |
Neural Computing and Applications 巻 29, p. 341-349, 発行日 2017-07-15 |
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出版社 | ||||||||||||
出版者 | Springer London | |||||||||||
DOI | ||||||||||||
関連タイプ | isIdenticalTo | |||||||||||
識別子タイプ | DOI | |||||||||||
関連識別子 | https://doi.org/10.1007/s00521-017-3149-7 | |||||||||||
NCID | ||||||||||||
収録物識別子タイプ | NCID | |||||||||||
収録物識別子 | AA11006092 | |||||||||||
ISSN | ||||||||||||
収録物識別子タイプ | ISSN | |||||||||||
収録物識別子 | 0941-0643 | |||||||||||
ISSN | ||||||||||||
収録物識別子タイプ | ISSN | |||||||||||
収録物識別子 | 1433-3058 | |||||||||||
著作権関連情報 | ||||||||||||
権利情報 | Copyright (c) The Author(s) 2017. This article is an open access publication. Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/) | |||||||||||
キーワード | ||||||||||||
主題Scheme | Other | |||||||||||
主題 | Probabilistic prediction of chaotic time series | |||||||||||
キーワード | ||||||||||||
主題Scheme | Other | |||||||||||
主題 | Long-term unpredictability | |||||||||||
キーワード | ||||||||||||
主題Scheme | Other | |||||||||||
主題 | Attractors of chaotic time series | |||||||||||
キーワード | ||||||||||||
主題Scheme | Other | |||||||||||
主題 | Leave-one-out cross-validation | |||||||||||
キーワード | ||||||||||||
主題Scheme | Other | |||||||||||
主題 | Estimation of predictable horizon | |||||||||||
出版タイプ | ||||||||||||
出版タイプ | VoR | |||||||||||
出版タイプResource | http://purl.org/coar/version/c_970fb48d4fbd8a85 | |||||||||||
査読の有無 | ||||||||||||
値 | yes | |||||||||||
研究者情報 | ||||||||||||
https://hyokadb02.jimu.kyutech.ac.jp/html/12_ja.html | ||||||||||||
論文ID(連携) | ||||||||||||
10307743 | ||||||||||||
連携ID | ||||||||||||
6274 | ||||||||||||
資料タイプ | ||||||||||||
内容記述タイプ | Other | |||||||||||
内容記述 | Journal Article | |||||||||||
著者所属 | ||||||||||||
Department of Control Engineering, Kyushu Institute of Technology | ||||||||||||
著者所属 | ||||||||||||
Department of Control Engineering, Kyushu Institute of Technology | ||||||||||||
著者所属 | ||||||||||||
Department of Control Engineering, Kyushu Institute of Technology | ||||||||||||
著者所属 | ||||||||||||
Department of Control Engineering, Kyushu Institute of Technology |