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1.
Yearb Med Inform ; 26(1): 38-52, 2017 Aug.
Article in English | MEDLINE | ID: mdl-28480475

ABSTRACT

Objective: To perform a review of recent research in clinical data reuse or secondary use, and envision future advances in this field. Methods: The review is based on a large literature search in MEDLINE (through PubMed), conference proceedings, and the ACM Digital Library, focusing only on research published between 2005 and early 2016. Each selected publication was reviewed by the authors, and a structured analysis and summarization of its content was developed. Results: The initial search produced 359 publications, reduced after a manual examination of abstracts and full publications. The following aspects of clinical data reuse are discussed: motivations and challenges, privacy and ethical concerns, data integration and interoperability, data models and terminologies, unstructured data reuse, structured data mining, clinical practice and research integration, and examples of clinical data reuse (quality measurement and learning healthcare systems). Conclusion: Reuse of clinical data is a fast-growing field recognized as essential to realize the potentials for high quality healthcare, improved healthcare management, reduced healthcare costs, population health management, and effective clinical research.


Subject(s)
Biomedical Research , Data Mining , Delivery of Health Care , Forecasting , Humans
2.
Yearb Med Inform ; : 128-44, 2008.
Article in English | MEDLINE | ID: mdl-18660887

ABSTRACT

OBJECTIVES: We examine recent published research on the extraction of information from textual documents in the Electronic Health Record (EHR). METHODS: Literature review of the research published after 1995, based on PubMed, conference proceedings, and the ACM Digital Library, as well as on relevant publications referenced in papers already included. RESULTS: 174 publications were selected and are discussed in this review in terms of methods used, pre-processing of textual documents, contextual features detection and analysis, extraction of information in general, extraction of codes and of information for decision-support and enrichment of the EHR, information extraction for surveillance, research, automated terminology management, and data mining, and de-identification of clinical text. CONCLUSIONS: Performance of information extraction systems with clinical text has improved since the last systematic review in 1995, but they are still rarely applied outside of the laboratory they have been developed in. Competitive challenges for information extraction from clinical text, along with the availability of annotated clinical text corpora, and further improvements in system performance are important factors to stimulate advances in this field and to increase the acceptance and usage of these systems in concrete clinical and biomedical research contexts.


Subject(s)
Information Storage and Retrieval/methods , Medical Records Systems, Computerized , Natural Language Processing , Biomedical Research/methods , Humans , Population Surveillance/methods , Vocabulary, Controlled
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