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HiEve: A Corpus for Extracting Event Hierarchies from News Stories

2014-05-01 · LREC 2014 5 · Goran Glava{\v{s}}, Jan {\v{S}}najder, Marie-Francine Moens, Parisa Kordjamshidi

In news stories, event mentions denote real-world events of different spatial and temporal granularity. Narratives in news stories typically describe some real-world event of coarse spatial and temporal granularity along with its subevents. In this work, we present HiEve, a corpus for recognizing relations of spatiotemporal containment between events. In HiEve, the narratives are represented as hierarchies of events based on relations of spatiotemporal containment (i.e., superevent―subevent relations). We describe the process of manual annotation of HiEve. Furthermore, we build a supervised classifier for recognizing spatiotemporal containment between events to serve as a baseline for future research. Preliminary experimental results are encouraging, with classifier performance reaching 58{\%} F1-score, only 11{\%} less than the inter annotator agreement.

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Information RetrievalRelation Extraction

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