Memory-Based Dependency Parsing

Joakim Nivre, Johan Hall, Jens Nilsson · 2004

Abstract. This paper describes experiments on using inductive machine learning to guide a deterinistic dependency parser for unrestricted natural language text. Using data from a small treebank of Swedish, an eager probabilistic learning algorithm is used to induce context-sensitive parse tables. Evaluation shows a significant improvement over the baseline, which uses a table without contextual information. 1

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