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Updated: Jun 13, 2026

Knowledge Based Cloud FE Simulation of Sheet Metal Forming Processes
11:05

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Published on: December 13, 2016

Knowledge and information modeling.

Maria Madsen1

  • 1School of Management and Information Systems, Central Queensland University, Rockhampton Qld and eHealth Education Pty Ltd. m.madsen@ehealtheducation.net

Studies in Health Technology and Informatics
|April 22, 2010
PubMed
Summary
This summary is machine-generated.

This chapter explores health information system modeling, emphasizing tool selection and the impact of requirements on model quality. It differentiates information and knowledge models, highlighting openEHR benefits for healthcare data.

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Area of Science:

  • Health Informatics
  • Information Science
  • Computer Science

Background:

  • Effective health information systems rely on robust data modeling.
  • Selecting appropriate modeling methods is crucial for system design.
  • The quality of system requirements directly influences model quality.

Purpose of the Study:

  • To provide an educational overview of common modeling methods in health information systems.
  • To differentiate between information and knowledge models.
  • To highlight the advantages of the openEHR approach for healthcare data.

Main Methods:

  • Overview of commonly used modeling methods.
  • Discussion on tool and method selection criteria.
  • Analysis of the relationship between system requirements and model quality.

Main Results:

  • Common modeling methods and their representations are explained.
  • The importance of aligning tools/methods with system design is emphasized.
  • The critical role of system requirements specification in determining model quality is detailed.

Conclusions:

  • Proper selection of modeling tools and methods is vital for health information systems.
  • Understanding the distinction between information and knowledge models is key.
  • The openEHR approach offers significant benefits for healthcare data modeling.