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학술논문보건정보통계학회지2022.05 발행KCI 피인용 3

전자의무기록 데이터 분석 접근법

Approach for Electronic Medical Record Data Analysis

한창호(연세대학교 의과대학); 박찬민(연세대학교 의과대학); 김유정(연세대학교 의과대학); 강소라(아주대학교 의과대학); 박태준(아주대학교 의과대학); 윤덕용(연세대학교 의과대학)

, 1~8쪽

초록

As the healthcare environment is being digitalized and changed rapidly, research using medical big data is increasing. One of the most applicable data is electronic medical records which can provide a large amount of clinically practical meaning. Electronic medical data include patient’s demographic infor- mation, laboratory test results, imaging and biosignal data. In this article, we provide support for a wide variety of researchers in their efforts to use elec- tronic medical record data accurately and usefully in their work. From the basic concept of the research using electronic medical records to challenging aspects like data integration between multiple institutions are described. Also, examples of each type of data are covered; structured such as numeric data and unstructured such as images, biosignals and narrative text. Using these kinds of electronic medical records, analyses are processed by data cleansing, transforming, and reducing in order. Many kinds of variables such as the exposure and outcome of interest, covariate and the research design can be chosen during the preprocessing. As many machine-learning-based studies as well as epidemiologic-based studies have been conducted using electronic medical records, various research frameworks have been proposed. However, data quality management and data standardization for multi- center data analysis are still remaining as challenging tasks.

Abstract

As the healthcare environment is being digitalized and changed rapidly, research using medical big data is increasing. One of the most applicable data is electronic medical records which can provide a large amount of clinically practical meaning. Electronic medical data include patient’s demographic infor- mation, laboratory test results, imaging and biosignal data. In this article, we provide support for a wide variety of researchers in their efforts to use elec- tronic medical record data accurately and usefully in their work. From the basic concept of the research using electronic medical records to challenging aspects like data integration between multiple institutions are described. Also, examples of each type of data are covered; structured such as numeric data and unstructured such as images, biosignals and narrative text. Using these kinds of electronic medical records, analyses are processed by data cleansing, transforming, and reducing in order. Many kinds of variables such as the exposure and outcome of interest, covariate and the research design can be chosen during the preprocessing. As many machine-learning-based studies as well as epidemiologic-based studies have been conducted using electronic medical records, various research frameworks have been proposed. However, data quality management and data standardization for multi- center data analysis are still remaining as challenging tasks.

발행기관:
한국보건정보통계학회
DOI:
http://dx.doi.org/10.21032/jhis.2022.47.S1.S1
분류:
보건통계

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전자의무기록 데이터 분석 접근법 | 보건정보통계학회지 2022 | AskLaw | 애스크로 AI