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What is Named Entity Recognition (NER)

Handbook of Research on Applied Cybernetics and Systems Science
An entity extraction task which aims to identify and retrieve the text carrying relevant information into some predefined categories.
Published in Chapter:
Patient Data De-Identification: A Conditional Random-Field-Based Supervised Approach
Shweta Yadav (Indian Institute of Technology Patna, India), Asif Ekbal (Indian Institute of Technology Patna, India), Sriparna Saha (Indian Institute of Technology Patna, India), Parth S. Pathak (ezDI, LLC, India), and Pushpak Bhattacharyya (Indian Institute of Technology Patna, India)
Copyright: © 2017 |Pages: 20
DOI: 10.4018/978-1-5225-2498-4.ch011
Abstract
With the rapid increment in the clinical text, de-identification of patient Protected Health Information (PHI) has drawn significant attention in recent past. This aims for automatic identification and removal of the patient Protected Health Information from medical records. This paper proposes a supervised machine learning technique for solving the problem of patient data de- identification. In the current paper, we provide an insight into the de-identification task, its major challenges, techniques to address challenges, detailed analysis of the results and direction of future improvement. We extract several features by studying the properties of the datasets and the domain. We build our model based on the 2014 i2b2 (Informatics for Integrating Biology to the Bedside) de-identification challenge. Experiments show that the proposed system is highly accurate in de-identification of the medical records. The system achieves the final recall, precision and F-score of 95.69%, 99.31%, and 97.46%, respectively.
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More Results
Teaching Machines to Find Names
A subtask of IE that seeks to identify and classify named entities in text into predefined categories such as the names of persons, organizations, locations, expressions of times, quantities, monetary values, percentages, etc.
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Investigating Natural Language Processing Strategies for Cognitive Support in Chemo-Brain Patients
A subtask of NLP that focuses on identifying and classifying entities (names of individuals, organizations, locations, dates, numerical values, etc) within textual data.
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