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An International Consensus Framework for Computer Vision-ready acquisition and reporting: Toward Measurement-grade video in Neurology

J. Alty, G. Amprimo, J. Shin, M. Wuehr, M. Novotny, M. Merello, M. de Koning-Tijssen,, H. Haberfehlner, S. Relton, D. Wong, J. Taeger, A. Zwergal, S. Walther, B. Taati, R. Roemmich, C. Ferraris, M. Mckeown, A. Gupta, R. Li, M. Friedrich (Hobart, Australia)

Meeting: 2026 International Congress

Keywords: Ataxia: Clinical features, Bradykinesia, Tremors: Clinical features

Category: Artificial Intelligence (AI) and Machine Learning

Objective: To develop an international consensus framework for clinical video acquisition and metadata reporting optimized for Computer Vision-based movement analysis

Background: Advances in Computer Vision (an AI method for analyzing digital images) now enable objective analysis of neurological motor signs from clinical videos. While >100 studies demonstrate this potential, inconsistent recording and reporting practices – not algorithmic capability – have become the primary barrier to reproducibility and clinical translation. Currently, no guideline exists for acquiring measurement-grade video in neurology

Method: A multidisciplinary panel of 23 experts across 6 motor domains (hand/upper limb, gait, face, posture/balance, eye movements, head/neck) completed a two-round modified Delphi process. Round 1 (n=23) elicited experiential knowledge through open-ended prompts and domain-specific synthesis groups. Round 2 (n=19) presented a tiered framework for confirmatory rating; items were classified as mandatory if ≥70% of panelists endorsed this category

Results: Panelists strongly agreed that video acquisition should constitute a protocolized measurement step (mean 4.52±0.73) and that multicenter harmonization is necessary for video-based studies in Neurology (4.48±0.59). The panel converged on a framework distinguishing mandatory, optimal, and contextual elements across a 16-item acquisition protocol and 21-item metadata reporting guideline. Two acquisition items reached mandatory consensus: video setup defined in the study protocol (89%) and standardized motor task instructions (84%). Four metadata items were mandatory: task instructions (89%), disease severity and motor confounders (84%), video frame rate (79%), and patient demographics (74%). Panel confidence was high for both blocks (acquisition: 4.32± 0.46; metadata: 4.26± 0.64). 84% of respondents reported that existing studies at least partially underrepresent patient diversity.

Conclusion: This produces the first consensus framework for Computer Vision-optimized video acquisition in neurology. Targeted standardization of recording setup, task design, and metadata reporting provides a pragmatic path to transforming routine clinical video into reproducible quantitative movement analysis and digital biomarkers. Improving diversity and equity in video-based datasets will be essential to ensure generalizable clinical applications.

Fig 1. Participant characteristics

Fig 1. Participant characteristics

Fig 2. Consensus on video acquisition features

Fig 2. Consensus on video acquisition features

Fig 3.  Consensus on metadata

Fig 3. Consensus on metadata

References: Friedrich MU, Relton S, Wong D, Alty J. Computer Vision in Clinical Neurology: A Review. JAMA Neurol. 2025 Feb 17. doi: 10.1001/jamaneurol.2024.5326

To cite this abstract in AMA style:

J. Alty, G. Amprimo, J. Shin, M. Wuehr, M. Novotny, M. Merello, M. de Koning-Tijssen,, H. Haberfehlner, S. Relton, D. Wong, J. Taeger, A. Zwergal, S. Walther, B. Taati, R. Roemmich, C. Ferraris, M. Mckeown, A. Gupta, R. Li, M. Friedrich. An International Consensus Framework for Computer Vision-ready acquisition and reporting: Toward Measurement-grade video in Neurology [abstract]. Mov Disord. 2026; 41 (suppl 1). https://www.mdsabstracts.org/abstract/an-international-consensus-framework-for-computer-vision-ready-acquisition-and-reporting-toward-measurement-grade-video-in-neurology/. Accessed October 1, 2026.
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