Match tier Listed
Presence Current · Arkansas
Last published 2022
Sources OpenAlex · ORCID
Refreshed 2026-08-08

Joseph VanScoy

Researcher

Unknown Researcher

2 h-index 3 pubs 20 cited

Biography and Research Information

OverviewAI-generated summary

Joseph VanScoy's research focuses on the application of machine learning techniques to clinical data. His recent publications include "The h-ANN Model: Comprehensive Colonoscopy Concept Compilation using Combined Contextual Embeddings," "DeIDNER Model: A Neural Network Named Entity Recognition Model for Use in the De-identification of Clinical Notes," and "TAX-Corpus: Taxonomy based Annotations for Colonoscopy Evaluation." These works highlight his efforts in developing computational models for analyzing medical text and images, specifically in the domain of colonoscopy evaluation and the de-identification of patient information.

VanScoy collaborates with researchers at the University of Arkansas for Medical Sciences and Arkansas State University. His work has resulted in a total of three publications, with an h-index of 2 and 20 citations. He remains an active researcher, with his most recent publication in 2022.

Metrics

  • h-index: 2
  • Publications: 3
  • Citations: 20

Selected Publications

  • TAX-Corpus: Taxonomy based Annotations for Colonoscopy Evaluation (2022)
    Proceedings of the 15th International Joint Conference on Biomedical Engineering Systems and Technologies 1 citation DOI OpenAlex
  • DeIDNER Model: A Neural Network Named Entity Recognition Model for Use in the De-identification of Clinical Notes (2022)
    Proceedings of the 15th International Joint Conference on Biomedical Engineering Systems and Technologies 7 citations DOI OpenAlex
  • The h-ANN Model: Comprehensive Colonoscopy Concept Compilation using Combined Contextual Embeddings (2022)
    Proceedings of the 15th International Joint Conference on Biomedical Engineering Systems and Technologies 12 citations DOI OpenAlex

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Collaboration Network

16 Collaborators 4 Institutions 1 Country

Top Collaborators

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