Publication | Open Access
An integrated architecture for shallow and deep processing
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Citations
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References
2001
Year
Unknown Venue
Convolutional Neural NetworkEngineeringIntegrated ArchitectureText MiningNatural Language ProcessingSyntaxInformation RetrievalData ScienceSparse Neural NetworkComputational LinguisticsEntity RecognitionLanguage StudiesNamed-entity RecognitionMachine TranslationMachine VisionDeep Nlp ComponentsNlp TaskComputer EngineeringDeep LearningInformation ExtractionSemantic ParsingNeural Architecture SearchShallow ParsingComputer VisionParsingLinguisticsPo Tagging
We present an architecture for the integration of shallow and deep NLP components which is aimed at flexible combination of different language technologies for a range of practical current and future applications. In particular, we describe the integration of a high-level HPSG parsing system with different high-performance shallow components, ranging from named entity recognition to chunk parsing and shallow clause recognition. The NLP components enrich a representation of natural language text with layers of new XML meta-information using a single shared data structure, called the text chart. We describe details of the integration methods, and show how information extraction and language checking applications for realworld German text benefit from a deep grammatical analysis.
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