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March 7, 2026International Journal of Health Policy and Management0 citationsOpen Access

Applying Abstract Text Mining as a Complement to PRISMA in Reviewing the Scope of Healthcare’s Circular Economy Comment on "A Review of the Applicability of Current Green Practices in Healthcare Facilities"

AEAmin Esmaeili

Key Points

  • The commentary aims to introduce a text mining approach to augment the PRISMA methodology in assessing the circular economy in healthcare.
  • Introduced abstract text mining (ATM) as a complementary method to PRISMA.
  • Expanded search terms used by Soares et al. for broader analysis.
  • Extracted article abstracts and mapped scope areas using latent Dirichlet allocation (LDA) topic modeling.
  • Identified three additional scope areas: alternative treatment pathways, pharmaceutical footprint reduction, and emerging technologies utilization.

Abstract

Efforts to reduce the healthcare sector’s carbon footprint and greenhouse gas (GHG) emissions have brought increased attention to the adoption of the circular economy (CE) in recent years. These efforts aim to lower carbon-intensive products while improving efficiency, waste reduction, and healthcare resilience. Soares et al conducted a scoping review examining CE applicability in healthcare and identified strategies to enhance its implementation. In this commentary paper, a novel abstract text mining (ATM) approach is introduced as a complement to the standard Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) methodology. Using this approach, the search terms employed by Soares et al were expanded, article abstracts were extracted, and scope areas were mapped with the assistance of a well-established machine learning technique—latent Dirichlet allocation (LDA) topic modeling. Comparison of the ATM results with those reported by Soares et al revealed three additional scope areas: alternative treatment pathways, pharmaceutical footprint reduction, and the utilization of emerging technologies.

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Cite This Study

Amin Esmaeili (2026) studied this question.

synapsesocial.com/papers/69abc1955af8044f7a4ea609https://doi.org/10.34172/ijhpm.9410
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