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        <identifier>oai:dcpapers.dublincore.org:952137572</identifier>
        <datestamp>2017-11-27</datestamp>
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      <dc:title>Automatic Creation of Mappings between Classification Systems  for Bibliographic Data</dc:title>
      <dc:creator>Pfeffer, Magnus</dc:creator>
      <dc:subject>library catalog</dc:subject>
      <dc:subject>classification systems</dc:subject>
      <dc:subject>instance-based ontology mapping</dc:subject>
      <dc:description>Classification systems are an important means to provide
                    topic based access to large collections. They are utilized by a number of
                    approaches for faceted browsing, graphical search support and lately also for
                    collection visualisation and analysis. Most of these approaches have been
                    developed with a specific classification system in mind and often exploit some
                    of the inherent characteristics of the system. Collections that are indexed
                    using local or special classification systems cannot benefit from the vast
                    majority of innovative applications developed for the more commonly used
                    classification systems. One way to alleviate this problem is the use of mappings
                    between classification systems. Traditionally, these mappings have been created
                    in a manual and time consuming process involving subject specialists.In this
                    paper, we discuss another approach to automatically create mappings between
                    classification systems. The approach consists of three steps: First,
                    bibliographic data from diverse sources that contain items classified by the
                    required classification systems is aggregated in a single database. Next, a
                    clustering algorithm is used to group individual issues and editions of the same
                    work. The basic idea is that for classification purposes, there is no
                    significant difference across editions and indexing information can thus be
                    consolidated within the clusters. Finally, the clusters containing information
                    from both required systems are added up to create a cooccurrence table. This
                    information can be used to describe correlations between individual classes of
                    the two classification systems and forms the basis of a full mapping between the
                    two systems. First results from an application of this approach to data from
                    German union catalogues and comparing the derived mappings to manually created
                    ones are quite promising and show the potential of this idea.</dc:description>
      <dc:publisher>Dublin Core Metadata Initiative</dc:publisher>
      <dc:date>2017-11-27</dc:date>
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      <dc:identifier>https://doi.org/10.23106/dcmi.952137572</dc:identifier>
      <dc:identifier>https://dcpapers.dublincore.org/article/952137572</dc:identifier>
      <dc:source>Dublin Core Metadata Initiative Conference Proceedings</dc:source>
      <dc:language>en</dc:language>
      <dc:relation>https://www.wikidata.org/wiki/Q58368796</dc:relation>
      <dc:rights>https://creativecommons.org/licenses/by/4.0/</dc:rights>
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