Learning-oriented Question Recommendation - Kosorus Andreea Hilda - Böcker - Südwestdeutscher Verlag für Hochschulsch - 9783838134154 - 20 februari 2014
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Learning-oriented Question Recommendation


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The information overload in the past two decades has enabled question-answering (QA) systems to accumulate large amounts of textual fragments that reflect human knowledge. Therefore, such systems have become not just a source for information retrieval, but also a means towards a unique learning experience. Meanwhile, the success of recommender systems has motivated research on deploying recommendation techniques also in educational environments to facilitate access to a wide spectrum of information. However, the adopted methods were rather traditional, generally applicable to any recommendation need. Current conceptions about learning assume learners as active agents and not passive recipients or simple recorders of information. Therefore, the sequence in which knowledge is assimilated is of high importance. Recently developed recommendation techniques for search engine queries try to leverage the order in which users navigate through them. However, these are not suitable for QA systems. In this work we address the challenge of learning-oriented question recommendation by adopting variable length Markov chains and Bloom's learning taxonomy.

Media Böcker     Pocketbok   (Bok med mjukt omslag och limmad rygg)
Releasedatum 20 februari 2014
ISBN13 9783838134154
Utgivare Südwestdeutscher Verlag für Hochschulsch
Antal sidor 196
Mått 150 × 11 × 226 mm   ·   310 g
Språk Tyska  

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