Learning from Linked Open Data Usage: Patterns & Metrics

نویسندگان

  • Knud Möller
  • Michael Hausenblas
  • Richard Cyganiak
  • Siegfried Handschuh
  • Gunnar AAstrand Grimnes
چکیده

Although the cloud of Linked Open Data has been growing continuously for several years, little is known about the particular features of linked data usage. Motivating why it is important to understand the usage of Linked Data, we describe typical linked data usage scenarios and contrast the so derived requirement with conventional server access analysis. Then, we report on usage patterns found through an indepth analysis of access logs of four popular LOD datasets. Eventually, based on the usage patterns we found in the analysis, we propose metrics for assessing Linked Data usage from the human and the machine perspective, taking into account different agent types and resource representations.

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تاریخ انتشار 2010