Automated Semantic Analysis of Schematic Data: Learning-based Techniques for Scalable and Automated Semantic Understanding of Template Generated Schematic Web Content - Saikat Mukherjee - 書籍 - VDM Verlag - 9783639026740 - 2008年5月29日
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Automated Semantic Analysis of Schematic Data: Learning-based Techniques for Scalable and Automated Semantic Understanding of Template Generated Schematic Web Content

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発送予定日 年9月3日 - 年9月21日
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Content in numerous data sourcesare not directly amenable to machine processing. This book describes techniques for automated semantic analysis ofschematic content which are characterized by being populated from backend databases. Starting with a seed set of hand-labeled instances of semanticconcepts in a set of HTML documents, a technique is devised thatbootstraps an annotation process for automatic identification ofconcept instances present in other documents. The technique exploitsthe observation that semantically related items in schematic HTMLdocuments exhibit consistency in presentation style and spatiallocality to learn statistical concept models, using light-weightsemantic features. This model directs the annotation of diverse Web documents possessing similar content semantics. The power of these techniques is demonstrated through applications developed for real-life problems that includeaudio-based assistive browsing for non-visual Web access, focused browsing on handhelds with semantic bookmarks, text data cleaning, and accurate identification of remote homologs of biological protein sequences.

メディア 書籍     Paperback Book   (ソフトカバーで背表紙を接着した本)
リリース済み 2008年5月29日
ISBN13 9783639026740
出版社 VDM Verlag
ページ数 110
寸法 150 × 220 × 10 mm   ·   154 g
言語 英語  

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