Deep learning to quantify care manipulation activities in neonatal intensive care units

Author:

Majeedi Abrar,McAdams Ryan M.ORCID,Kaur Ravneet,Gupta Shubham,Singh Harpreet,Li YinORCID

Abstract

AbstractEarly-life exposure to stress results in significantly increased risk of neurodevelopmental impairments with potential long-term effects into childhood and even adulthood. As a crucial step towards monitoring neonatal stress in neonatal intensive care units (NICUs), our study aims to quantify the duration, frequency, and physiological responses of care manipulation activities, based on bedside videos and physiological signals. Leveraging 289 h of video recordings and physiological data within 330 sessions collected from 27 neonates in 2 NICUs, we develop and evaluate a deep learning method to detect manipulation activities from the video, to estimate their duration and frequency, and to further integrate physiological signals for assessing their responses. With a 13.8% relative error tolerance for activity duration and frequency, our results were statistically equivalent to human annotations. Further, our method proved effective for estimating short-term physiological responses, for detecting activities with marked physiological deviations, and for quantifying the neonatal infant stressor scale scores.

Funder

U.S. Department of Health & Human Services | NIH | National Center for Advancing Translational Sciences

UW | Office of the Vice Chancellor for Research and Graduate Education, University of Wisconsin-Madison

McPherson Eye Research Institute, UW Madison

Publisher

Springer Science and Business Media LLC

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