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  4. Data Readiness: Hunting the Data – A Framework for Data-Intensive Applications
 
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2026
Conference Paper
Title

Data Readiness: Hunting the Data – A Framework for Data-Intensive Applications

Abstract
The proliferation of data-intensive applications, such as artificial intelligence and smart manufacturing, has significantly increased the need for effective data management strategies. However, existing data management strategy frameworks are often too generic and lack practical implementation guidance. This leads organizations to develop ad hoc or custom-built solutions. We address this gap by developing a lightweight data readiness framework (DRF) specifically designed for data-intensive applications. Utilizing a tailored design science approach and a systematic literature review of 42 relevant studies, we identify five dimensions of DR: metadata management, data provenance and lineage, data quality, data interoperability, and data governance. The resulting DRF enables a structured classification and assessment of DR aspects in data-intensive projects. To evaluate the framework, we applied it to three digital twin demonstrators with varying levels of practical complexity. The evaluation provided early indications of the framework ‘s applicability, utility, and robustness.
Author(s)
Schmelzer, Robert
Technische Universität Chemnitz
Schrage, Tennessee
Technische Universität Chemnitz
Rose, Daniel
Technische Universität Chemnitz
Valk, Hendrik van der
Fraunhofer-Institut für Software- und Systemtechnik ISST  
Langenbach, Katharina
Technische Universität Dortmund
Dinter, Barbara
Technische Universität Chemnitz
Mainwork
Information Systems. 22nd European, Mediterranean and Middle Eastern Conference, EMCIS 2025. Proceedings. Part I  
Conference
European, Mediterranean, and Middle Eastern Conference on Information Systems 2025  
DOI
10.1007/978-3-032-18484-9_8
Language
English
Fraunhofer-Institut für Software- und Systemtechnik ISST  
Keyword(s)
  • Data Management

  • Data Readiness

  • Digital Twins

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