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A Computational Model of Human Preferences for Pronoun Resolution
2017
Proceedings of the Student Research Workshop at the 15th Conference of the European Chapter of the Association for Computational Linguistics
We present a cognitive computational model of pronoun resolution that reproduces the human interpretation preferences of the Subject Assignment Strategy and the Parallel Function Strategy. Our model relies on a probabilistic pronoun resolution system trained on corpus data. Factors influencing pronoun resolution are represented as features weighted by their relative importance. The importance the model gives to the preferences is in line with psycholinguistic studies. We demonstrate the
doi:10.18653/v1/e17-4006
dblp:conf/eacl/SeminckA17
fatcat:cb43xx6zz5bjvnrgsjrfudblam