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Titlebook: Discovery Science; 14th International C Tapio Elomaa,Jaakko Hollmén,Heikki Mannila Conference proceedings 2011 Springer-Verlag GmbH Berlin

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發(fā)表于 2025-3-21 16:16:22 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書(shū)目名稱Discovery Science
副標(biāo)題14th International C
編輯Tapio Elomaa,Jaakko Hollmén,Heikki Mannila
視頻videohttp://file.papertrans.cn/282/281063/281063.mp4
概述Up-to-date results.Fast track conference proceedings.State-of-the-art report
叢書(shū)名稱Lecture Notes in Computer Science
圖書(shū)封面Titlebook: Discovery Science; 14th International C Tapio Elomaa,Jaakko Hollmén,Heikki Mannila Conference proceedings 2011 Springer-Verlag GmbH Berlin
描述This book constitutes the refereed proceedings of the 14th International Conference on Discovery Science, DS 2011, held in Espoo, Finland, in October 2011 - co-located with ALT 2011, the 22nd International Conference on Algorithmic Learning Theory. The 24 revised full papers presented together with 5 invited lectures were carefully revised and selected from 56 submissions. The papers cover a wide range including the development and analysis of methods for automatic scientific knowledge discovery, machine learning, intelligent data analysis, theory of learning, as well as their application to knowledge discovery.
出版日期Conference proceedings 2011
關(guān)鍵詞autonomous exploration; data mining; kernel methods; social network analysis; user interface; algorithm a
版次1
doihttps://doi.org/10.1007/978-3-642-24477-3
isbn_softcover978-3-642-24476-6
isbn_ebook978-3-642-24477-3Series ISSN 0302-9743 Series E-ISSN 1611-3349
issn_series 0302-9743
copyrightSpringer-Verlag GmbH Berlin Heidelberg 2011
The information of publication is updating

書(shū)目名稱Discovery Science影響因子(影響力)




書(shū)目名稱Discovery Science影響因子(影響力)學(xué)科排名




書(shū)目名稱Discovery Science網(wǎng)絡(luò)公開(kāi)度




書(shū)目名稱Discovery Science網(wǎng)絡(luò)公開(kāi)度學(xué)科排名




書(shū)目名稱Discovery Science被引頻次




書(shū)目名稱Discovery Science被引頻次學(xué)科排名




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https://doi.org/10.1007/978-94-017-3175-1tion. The use of prototype semantic data mining systems SEGS and g-SEGS is demonstrated in a simple semantic data mining scenario and in two real-life functional genomics scenarios of mining biological ontologies with the support of experimental microarray data.
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Using Ontologies in Semantic Data Mining with SEGS and g-SEGS,tion. The use of prototype semantic data mining systems SEGS and g-SEGS is demonstrated in a simple semantic data mining scenario and in two real-life functional genomics scenarios of mining biological ontologies with the support of experimental microarray data.
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Application of Semantic Kernels to Literature-Based Gene Function Annotation, solution to deal with class imbalance. From experiments on the TREC Genomics Track data, our approach achieves better ..-score than two state-of-the-art approaches based on string-matching and cross-species information.
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Multiple Hypothesis Testing in Pattern Discovery,ives (Type I error). Our contribution in this paper is to extend the multiple hypothesis framework to be used in a generic data mining setting. We provide a method that provably controls the family-wise error rate (FWER, the probability of at least one false positive). We show the power of our solution on real data.
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