• Eur Spine J · Aug 2022

    Review

    Artificial intelligence and spine imaging: limitations, regulatory issues and future direction.

    • Alexander L Hornung, Christopher M Hornung, G Michael Mallow, J Nicolas Barajas, Alejandro A Espinoza Orías, Fabio Galbusera, Hans-Joachim Wilke, Matthew Colman, Frank M Phillips, Howard S An, and Dino Samartzis.
    • Department of Orthopaedic Surgery, Rush University Medical Center, Orthopaedic Building, Suite 204-G, 1611 W. Harrison Street, Chicago, IL, 60612, USA.
    • Eur Spine J. 2022 Aug 1; 31 (8): 200720212007-2021.

    BackgroundAs big data and artificial intelligence (AI) in spine care, and medicine as a whole, continue to be at the forefront of research, careful consideration to the quality and techniques utilized is necessary. Predictive modeling, data science, and deep analytics have taken center stage. Within that space, AI and machine learning (ML) approaches toward the use of spine imaging have gathered considerable attention in the past decade. Although several benefits of such applications exist, limitations are also present and need to be considered.PurposeThe following narrative review presents the current status of AI, in particular, ML, with special regard to imaging studies, in the field of spinal research.MethodsA multi-database assessment of the literature was conducted up to September 1, 2021, that addressed AI as it related to imaging of the spine. Articles written in English were selected and critically assessed.ResultsOverall, the review discussed the limitations, data quality and applications of ML models in the context of spine imaging. In particular, we addressed the data quality and ML algorithms in spine imaging research by describing preliminary results from a widely accessible imaging algorithm that is currently available for spine specialists to reference for information on severity of spine disease and degeneration which ultimately may alter clinical decision-making. In addition, awareness of the current, under-recognized regulation surrounding the execution of ML for spine imaging was raised.ConclusionsRecommendations were provided for conducting high-quality, standardized AI applications for spine imaging.© 2022. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.

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