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Learn To Tackle Health IT & Big Data the Right Way. Become a leader in the dynamic and rapidly growing field of health informatics.
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배울 내용
Articulate a coherent problem definition of, and a plan for addressing, a health informatics problem.
Answer a health informatics problem through data retrieval and analysis.
Design a health informatics solution for decision support.
Create a change management and deployment plan for a health informatics intervention.
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이 전문 분야 정보
응용 학습 프로젝트
Learners will create a comprehensive plan for a health informatics intervention by applying knowledge and skills, including: change management, workflow reengineering, decision support, data querying and analysis, and an understanding of the social and technical context of the health informatics problem.
While there are no prerequisites, prior experience with, or knowledge of, health, healthcare, or technology, and statistics are helpful.
While there are no prerequisites, prior experience with, or knowledge of, health, healthcare, or technology, and statistics are helpful.
이 전문 분야에는 5개의 강좌가 있습니다.
The Social and Technical Context of Health Informatics
Improving health and healthcare institutions requires understanding of data and creation of interventions at the many levels at which health IT interact and affect the institution. These levels range from the external “world” in which the institution operates down to the specific technologies. Data scientists find that, when they aim at implementing their models in practice, it is the “socio” components that are both novel to them and mission critical to success. At the end of this course, students will be able to make a quick assessment of a health informatics problem—or a proposed solution—and to determine what is missing and what more needs to be learned.
Leading Change in Health Informatics
Do you dream of being a CMIO or a Senior Director of Clinical Informatics? If you are aiming to rise up in the ranks in your health system or looking to pivot your career in the direction of big data and health IT, this course is made for you. You'll hear from experts at Johns Hopkins about their experiences harnessing the power of big data in healthcare, improving EHR adoption, and separating out the hope vs hype when it comes to digital medicine.
The Outcomes and Interventions of Health Informatics
For clinical data science to be effective in healthcare—to achieve the outcomes desired—it must translate into decision support of some sort, either at the patient, clinician, or manager level. By the end of this course, students will be able to articulate the need for an intervention, to right size it, to choose the appropriate technology, to describe how knowledge should be obtained, and to design a monitoring plan.
The Data Science of Health Informatics
Health data are notable for how many types there are, how complex they are, and how serious it is to get them straight. These data are used for treatment of the patient from whom they derive, but also for other uses. Examples of such secondary use of health data include population health (e.g., who requires more attention), research (e.g., which drug is more effective in practice), quality (e.g., is the institution meeting benchmarks), and translational research (e.g., are new technologies being applied appropriately). By the end of this course, students will recognize the different types of health and healthcare data, will articulate a coherent and complete question, will interpret queries designed for secondary use of EHR data, and will interpret the results of those queries.
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The mission of The Johns Hopkins University is to educate its students and cultivate their capacity for life-long learning, to foster independent and original research, and to bring the benefits of discovery to the world.
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