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Comparison of OpenPose and HyperPose artificial intelligence models for analysis of hand-held smartphone videos

机译:调节和荔枝人工智能模型分析手持式智能手机视频的比较

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Movement assessments are invaluable in clinical practice. However, the feasibility of in-person evaluation has been greatly affected due to the COVID-19 pandemic. To overcome this barrier, a virtual assessment system using artificial intelligence (AI) and patient provided videos is needed. AI models for pose inference have produced viable results for identifying a person’s joint centers. Identifying AI models for pose inference that provide clinically meaningful results is important for designing a virtual motion assessment tool. This study aims to evaluate the clinical usefulness of two popular pose inference models, OpenPose and HyperPose. Videos recorded by two physicians, who independently performed movements they deemed clinically relevant. Keypoint skeletons were generated and manually inspected frame-by-frame to determine which model produced higher-quality pose inferences. OpenPose produced significantly better scores than HyperPose when comparing within videos (p<0.001). Right ankle and right wrist had the poorest performances. Best-practices to be used in the future design of a virtual motion assessment tool are required to improve video "AI-friendliness".
机译:运动评估在临床实践中是非常宝贵的。然而,由于Covid-19流行病,人们评估的可行性受到了很大的影响。为了克服这种障碍,需要使用人工智能(AI)和患者的虚拟评估系统提供视频。对于识别人的关节中心来说,姿势推理的AI模型产生了可行的结果。识别提供临床有意义结果的姿势推理的AI模型对于设计虚拟运动评估工具非常重要。本研究旨在评估两个流行的姿势推理模型,调整和血液的临床有用性。两个医生记录的视频,他们独立地执行了他们认为临床相关的运动。生成和手动检查keypoint骨架,以确定哪种模型产生更高质量的姿态推断。在视频内比较时,调节明显更好的分数(P <0.001)。右脚踝和右手腕上有最糟糕的表演。需要在未来设计虚拟运动评估工具设计中使用的最佳实践来提高视频“AI-Friendliness”。

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