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使用姿势估计对3个月大婴儿的手臂和腿部运动进行量化:概念验证。

Quantifying Arm and Leg Movements in 3-Month-Old Infants Using Pose Estimation: Proof of Concept.

作者信息

Rosales Marcelo R, Simsic Janet, Kneeland Tondi, Heathcock Jill

机构信息

School of Health and Rehabilitation Sciences, The Ohio State University, Columbus, OH 43210, USA.

Heart Center Nationwide Children's Hospital, Columbus, OH 43210, USA.

出版信息

Sensors (Basel). 2024 Nov 27;24(23):7586. doi: 10.3390/s24237586.

Abstract

BACKGROUND

Pose estimation (PE) has the promise to measure pediatric movement from a video recording. The purpose of this study was to quantify the accuracy of a PE model to detect arm and leg movements in 3-month-old infants with and without (TD, for typical development) complex congenital heart disease (CCHD).

METHODS

Data from 12 3-month-old infants (N = 6 TD and N = 6 CCHD) were used to assess MediaPipe's full-body model. Positive predictive value (PPV) and sensitivity assessed the model's accuracy with behavioral coding.

RESULTS

Overall, 499 leg and arm movements were identified, and the model had a PPV of 85% and a sensitivity of 94%. The model's PPV in TD was 84% and the sensitivity was 93%. The model's PPV in CCHD was 87% and the sensitivity was 98%. Movements per hour ranged from 399 to 4211 for legs and 236 to 3767 for arms for all participants, similar ranges to the literature on wearables. No group differences were detected.

CONCLUSIONS

There is a strong promise for PE and models to describe infant movements with accessible and affordable resources-like a cell phone and curated video repositories. These models can be used to further improve developmental assessments of limb function, movement, and changes over time.

摘要

背景

姿态估计(PE)有望通过视频记录来测量小儿的运动。本研究的目的是量化一个PE模型在检测患有和未患有(TD,典型发育)复杂先天性心脏病(CCHD)的3个月大婴儿的手臂和腿部运动时的准确性。

方法

来自12名3个月大婴儿(N = 6名TD和N = 6名CCHD)的数据用于评估MediaPipe的全身模型。阳性预测值(PPV)和敏感性通过行为编码来评估模型的准确性。

结果

总体而言,共识别出499次腿部和手臂运动,该模型的PPV为85%,敏感性为94%。该模型在TD中的PPV为84%,敏感性为93%。该模型在CCHD中的PPV为87%,敏感性为98%。所有参与者每小时的腿部运动次数在399至4211次之间,手臂运动次数在236至3767次之间,与可穿戴设备的文献报道范围相似。未检测到组间差异。

结论

PE和模型有很大的前景,可以用手机和精心策划的视频库等可获取且经济实惠的资源来描述婴儿的运动。这些模型可用于进一步改善对肢体功能、运动以及随时间变化的发育评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/49b3/11644686/40c9542828ce/sensors-24-07586-g001.jpg

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