Analysing Web Traffic A Case Study on Artificial and Genuine Advertisement-Related Behaviour /

Bibliographic Details
Main Authors: Jastrzębska, Agnieszka (Author), Owsiński, Jan W. (Author), Opara, Karol (Author), Gajewski, Marek (Author), Hryniewicz, Olgierd (Author), Kozakiewicz, Mariusz (Author), Zadrożny, Sławomir (Author), Zwierzchowski, Tomasz (Author)
Corporate Author: SpringerLink (Online service)
Summary:XX, 156 p. 95 illus., 90 illus. in color.
text
Language:English
Published: Cham : Springer Nature Switzerland : Imprint: Springer, 2023.
Edition:1st ed. 2023.
Series:Studies in Big Data, 127
Subjects:
Online Access:https://doi.org/10.1007/978-3-031-32503-8
Format: Electronic Book

MARC

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245 1 0 |a Analysing Web Traffic  |h [electronic resource] :  |b A Case Study on Artificial and Genuine Advertisement-Related Behaviour /  |c by Agnieszka Jastrzębska, Jan W. Owsiński, Karol Opara, Marek Gajewski, Olgierd Hryniewicz, Mariusz Kozakiewicz, Sławomir Zadrożny, Tomasz Zwierzchowski. 
250 |a 1st ed. 2023. 
264 1 |a Cham :  |b Springer Nature Switzerland :  |b Imprint: Springer,  |c 2023. 
300 |a XX, 156 p. 95 illus., 90 illus. in color.  |b online resource. 
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490 1 |a Studies in Big Data,  |x 2197-6511 ;  |v 127 
505 0 |a The problem and its key characteristics -- The pragmatics of the data acquisition and assessment -- The proper representation: patterns, variables and their analysis -- Clustering analysis -- Building the classifiers -- The hybrid cluster-and-classify approach -- A summary view of the problem and its solution. 
520 |a This book presents ample, richly illustrated account on results and experience from a project, dealing with the analysis of data concerning behavior patterns on the Web. The advertising on the Web is dealt with, and the ultimate issue is to assess the share of the artificial, automated activity (ads fraud), as opposed to the genuine human activity. After a comprehensive introductory part, a full-fledged report is provided from a wide range of analytic and design efforts, oriented at: the representation of the Web behavior patterns, formation and selection of telling variables, structuring of the populations of behavior patterns, including the use of clustering, classification of these patterns, and devising most effective and efficient techniques to separate the artificial from the genuine traffic. A series of important and useful conclusions is drawn, concerning both the nature of the observed phenomenon, and hence the characteristics of the respective datasets, and theappropriateness of the methodological approaches tried out and devised. Some of these observations and conclusions, both related to data and to methods employed, provide a new insight and are sometimes surprising. The book provides also a rich bibliography on the main problem approached and on the various methodologies tried out. 
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650 0 |a Computational intelligence. 
650 0 |a Big data. 
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700 1 |a Owsiński, Jan W.  |e author.  |4 aut  |4 http://id.loc.gov/vocabulary/relators/aut 
700 1 |a Opara, Karol.  |e author.  |4 aut  |4 http://id.loc.gov/vocabulary/relators/aut 
700 1 |a Gajewski, Marek.  |e author.  |4 aut  |4 http://id.loc.gov/vocabulary/relators/aut 
700 1 |a Hryniewicz, Olgierd.  |e author.  |4 aut  |4 http://id.loc.gov/vocabulary/relators/aut 
700 1 |a Kozakiewicz, Mariusz.  |e author.  |4 aut  |4 http://id.loc.gov/vocabulary/relators/aut 
700 1 |a Zadrożny, Sławomir.  |e author.  |4 aut  |4 http://id.loc.gov/vocabulary/relators/aut 
700 1 |a Zwierzchowski, Tomasz.  |e author.  |4 aut  |4 http://id.loc.gov/vocabulary/relators/aut 
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