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A Tidy Data Model for Natural Language Processing using cleanNLP

2017-03-27 · Taylor Arnold

The package cleanNLP provides a set of fast tools for converting a textual corpus into a set of normalized tables. The underlying natural language processing pipeline utilizes Stanford's CoreNLP library, exposing a number of annotation tasks for text written in English, French, German, and Spanish. Annotators include tokenization, part of speech tagging, named entity recognition, entity linking, sentiment analysis, dependency parsing, coreference resolution, and information extraction.

📄 PDF Abstract BibTeX arXiv:1703.09570

Code (1)

statsmaths/cleanNLP 공식 구현

Tasks

coreference-resolutionCoreference ResolutionDependency ParsingEntity Linkingnamed-entity-recognitionNamed Entity RecognitionNamed Entity Recognition (NER)Part-Of-Speech TaggingSentiment Analysis

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