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Victor Lavrenko - Generative Theory of Relevance - 9783540893639 - V9783540893639
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Generative Theory of Relevance

€ 128.09
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Description for Generative Theory of Relevance Hardback. This book presents a new way to look at topical relevance in information retrieval and offers a new method for modeling exchangeable sequences of discrete random variables which does not make any assumptions about the data and can also handle rare events. Series: The Information Retrieval Series. Num Pages: 217 pages, 31 black & white illustrations, 18 black & white tables, biography. BIC Classification: UMB; UND; UYA. Category: (P) Professional & Vocational. Dimension: 234 x 156 x 14. Weight in Grams: 498.

A modern information retrieval system must have the capability to find, organize and present very different manifestations of information – such as text, pictures, videos or database records – any of which may be of relevance to the user. However, the concept of relevance, while seemingly intuitive, is actually hard to define, and it's even harder to model in a formal way.

Lavrenko does not attempt to bring forth a new definition of relevance, nor provide arguments as to why any particular definition might be theoretically superior or more complete. Instead, he takes a widely accepted, albeit somewhat conservative definition, ... Read more

Thus his book is of major interest to researchers and graduate students in information retrieval who specialize in relevance modeling, ranking algorithms, and language modeling.

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Product Details

Format
Hardback
Publication date
2008
Publisher
Springer-Verlag Berlin and Heidelberg GmbH & Co. KG Germany
Number of pages
217
Condition
New
Series
The Information Retrieval Series
Number of Pages
197
Place of Publication
Berlin, Germany
ISBN
9783540893639
SKU
V9783540893639
Shipping Time
Usually ships in 15 to 20 working days
Ref
99-15

About Victor Lavrenko
Victor Lavrenko is a lecturer at the School of Informatics at the University of Edinburgh, Scotland, UK. He received his Ph.D. in Computer Science from the University of Massachusetts Amherst in 2004. His dissertation focused on a generative framework for modeling relevance in Information Retrieval. In 2005 he joined the Center for Intelligent Information Retrieval at UMass as a post-doctoral ... Read more

Reviews for Generative Theory of Relevance
From the reviews: "Lavrenko introduces a new model of relevance for information retrieval (IR). He introduces a new way of looking at topical relevance with a new way of modeling topical content. … The book is divided into six chapters. … The index is adequate … . The lists of figures and tables in the tables of contents are ... Read more

Goodreads reviews for Generative Theory of Relevance


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