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A weakly-supervised detection of entity central documents in a stream
2013
Proceedings of the 36th international ACM SIGIR conference on Research and development in information retrieval - SIGIR '13
Filtering a time-ordered corpus for documents that are highly relevant to an entity is a task receiving more and more attention over the years. One application is to reduce the delay between the moment an information about an entity is being first observed and the moment the entity entry in a knowledge base is being updated. Current state-of-the-art approaches are highly supervised and require training examples for each entity monitored. We propose an approach which does not require new
doi:10.1145/2484028.2484180
dblp:conf/sigir/BonnefoyBB13
fatcat:vzbqdkxvgvgidpmkcbrswpxfuq