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Measurement and Analysis of Social Networking Services : a Case Study of YouTube

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dc.date.accessioned 2013-05-29T18:09:49Z und
dc.date.accessioned 2017-10-24T12:24:36Z
dc.date.available 2013-05-29T18:09:49Z und
dc.date.available 2017-10-24T12:24:36Z
dc.date.issued 2013-05-29T18:09:49Z
dc.identifier.uri http://radr.hulib.helsinki.fi/handle/10138.1/2751 und
dc.identifier.uri http://hdl.handle.net/10138.1/2751
dc.title Measurement and Analysis of Social Networking Services : a Case Study of YouTube en
ethesis.department.URI http://data.hulib.helsinki.fi/id/225405e8-3362-4197-a7fd-6e7b79e52d14
ethesis.department Institutionen för datavetenskap sv
ethesis.department Department of Computer Science en
ethesis.department Tietojenkäsittelytieteen laitos fi
ethesis.faculty Matematisk-naturvetenskapliga fakulteten sv
ethesis.faculty Matemaattis-luonnontieteellinen tiedekunta fi
ethesis.faculty Faculty of Science en
ethesis.faculty.URI http://data.hulib.helsinki.fi/id/8d59209f-6614-4edd-9744-1ebdaf1d13ca
ethesis.university.URI http://data.hulib.helsinki.fi/id/50ae46d8-7ba9-4821-877c-c994c78b0d97
ethesis.university Helsingfors universitet sv
ethesis.university University of Helsinki en
ethesis.university Helsingin yliopisto fi
dct.creator Song, Xin
dct.issued 2013
dct.language.ISO639-2 eng
dct.abstract Social networking services (SNSs) bring a new dimension to social life that helps people to easily communicate with each other. As one of the representative products of SNSs, YouTube has gained in popularity since 2005. Today, YouTube is the most well-known video delivery service on the Internet. As a result, YouTube data analysis has become increasingly important for understanding the characteristics of online video sites, which is vital in developing efficient content distribution systems. In this thesis, we examine the characteristics of YouTube data. Our analysis is based on an empirical data gathered from the live YouTube service. In addition to the basic statistics, correlational statistics have been also conducted. The results of basic statistics show an overview of YouTube data and the correlational statistics display the relationship among users and videos. Furthermore, Friend-Commenter Ratio (FCR) and Shortest Responses Time (SRT) have been measured. To the best of our knowledge, this is the first time that these two new metrics are proposed and analyzed. en
dct.language en
ethesis.language.URI http://data.hulib.helsinki.fi/id/languages/eng
ethesis.language English en
ethesis.language englanti fi
ethesis.language engelska sv
ethesis.thesistype pro gradu-avhandlingar sv
ethesis.thesistype pro gradu -tutkielmat fi
ethesis.thesistype master's thesis en
ethesis.thesistype.URI http://data.hulib.helsinki.fi/id/thesistypes/mastersthesis
ethesis.degreeprogram Networking and Service en
dct.identifier.urn URN:NBN:fi-fe2017112251027
dc.type.dcmitype Text

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