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Titlebook: Discovery Science; 21st International C Larisa Soldatova,Joaquin Vanschoren,Michelangelo C Conference proceedings 2018 Springer Nature Swit

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书目名称Discovery Science
副标题21st International C
编辑Larisa Soldatova,Joaquin Vanschoren,Michelangelo C
视频video
丛书名称Lecture Notes in Computer Science
图书封面Titlebook: Discovery Science; 21st International C Larisa Soldatova,Joaquin Vanschoren,Michelangelo C Conference proceedings 2018 Springer Nature Swit
描述.This book constitutes the proceedings of the 21st International Conference on Discovery Science, DS 2018, held in Limassol, Cyprus, in October 2018, co-located with the International Symposium on Methodologies for Intelligent Systems, ISMIS 2018...The 30 full papers presented together with 5 abstracts of invited talks in this volume were carefully reviewed and selected from 71 submissions. The scope of the conference includes the development and analysis of methods for discovering scientific knowledge, coming from machine learning, data mining, intelligent data analysis, big data analysis as well as their application in various scientific domains. The papers are organized in the following topical sections: Classification; meta-learning; reinforcement learning; streams and time series; subgroup and subgraph discovery; text mining; and applications..
出版日期Conference proceedings 2018
关键词artificial intelligence; classification; data mining; data stream; graph algorithms; information retrieva
版次1
doihttps://doi.org/10.1007/978-3-030-01771-2
isbn_softcover978-3-030-01770-5
isbn_ebook978-3-030-01771-2Series ISSN 0302-9743 Series E-ISSN 1611-3349
issn_series 0302-9743
copyrightSpringer Nature Switzerland AG 2018
The information of publication is updating

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CF4CF-META: Hybrid Collaborative Filtering Algorithm Selection Frameworkis paper starts with the hypothesis that the integration of both approaches in a unified algorithm selection framework can improve the predictive performance. Hence, this work introduces CF4CF-META, an hybrid framework which leverages both data and algorithm ratings within a modified Label Ranking m
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Selection of Relevant and Non-Redundant Multivariate Ordinal Patterns for Time Series Classificationture .traction (.), simultaneously extracts and scores the relevance and redundancy of ordinal patterns without training a classifier. As a filter-based approach, . aims to select a set of relevant patterns with complementary information. Hence, using our scoring function based on the principles of
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0302-9743 arning; reinforcement learning; streams and time series; subgroup and subgraph discovery; text mining; and applications..978-3-030-01770-5978-3-030-01771-2Series ISSN 0302-9743 Series E-ISSN 1611-3349
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https://doi.org/10.1007/978-1-4612-5517-8 closest majority samples to remove LS-SVM’s bias due to data imbalance. Two variations of BBMO are studied: BBMO1 for the linearly separable case which uses the Lagrange multipliers to extract boundary samples from both classes, and the generalized BBMO2 for the non-linear case which uses the kerne
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