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Implementing tokenization in clinical research to expand real-world insights
Chelsea Walters1, Crystal S Langlais1,2, Eva E Oakkar1
1Real World Solutions, IQVIA, Durham, NC, United States.
Tokenization is crucial for linking real-world data (RWD) with primary data in enriched clinical studies. This article explores operationalizing tokenization in the US to generate robust real-world evidence.
Area of Science:
- Clinical Research
- Data Science
- Health Informatics
Background:
- Growing interest in using real-world data (RWD) for clinical research, particularly for treatment safety and effectiveness.
- Enriched studies combining primary and secondary RWD are increasingly common, necessitating advanced data linkage methodologies.
Purpose of the Study:
- To explore key aspects of implementing tokenization in the United States (US) for linking RWD with primary data.
- To define relevant terminology and discuss appropriate study designs and RWD sources for tokenization.
- To highlight advantages and considerations for stakeholders in generating real-world evidence using tokenization.
Main Methods:
- Exploration of tokenization as a tool for linking secondary RWD with primary study data.
- Discussion of operational considerations for implementing tokenization in study set-up.
- Review of study designs and RWD sources suitable for tokenization.
Main Results:
- Tokenization is a key enabler for linking disparate data sources in enriched studies.
- Key aspects for operationalizing tokenization in the US are identified, addressing overlooked considerations.
- Advantages and considerations for study stakeholders are highlighted to enhance real-world evidence generation.
Conclusions:
- Tokenization is a vital methodology for successful enriched studies requiring data linkage.
- Proper implementation and understanding of tokenization are essential for maximizing the value of RWD in clinical research.
- Case studies illustrate scenarios where tokenization is a suitable fit for achieving study objectives.
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