Literature DB >> 27071203

Toward Unobtrusive Patient Handling Activity Recognition for Injury Reduction Among At-Risk Caregivers.

Feng Lin, Aosen Wang, Lora Cavuoto, Wenyao Xu.   

Abstract

Nurses regularly perform patient handling activities. These activities with awkward postures expose healthcare providers to a high risk of overexertion injury. The recognition of patient handling activities is the first step to reduce injury risk for caregivers. The current practice on workplace activity recognition is based on human observational approach, which is neither accurate nor projectable to a large population. In this paper, we aim at addressing these challenges. Our solution comprises a smart wearable device and a novel spatio-temporal warping (STW) pattern recognition framework. The wearable device, named Smart Insole 2.0, is equipped with a rich set of sensors and can provide an unobtrusive way to automatically capture the information of patient handling activities. The STW pattern recognition framework fully exploits the spatial and temporal characteristics of plantar pressure by calculating a novel warped spatio-temporal distance, to quantify the similarity for the purpose of activity recognition. To validate the effectiveness of our framework, we perform a pilot study with eight subjects, including eight common activities in a nursing room. The experimental results show the overall classification accuracy achieves 91.7%. Meanwhile, the qualitative profile and load level can also be classified with accuracies of 98.3% and 92.5%, respectively.

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Year:  2016        PMID: 27071203     DOI: 10.1109/JBHI.2016.2551459

Source DB:  PubMed          Journal:  IEEE J Biomed Health Inform        ISSN: 2168-2194            Impact factor:   5.772


  1 in total

1.  Network Coded Cooperative Communication in a Real-Time Wireless Hospital Sensor Network.

Authors:  R Prakash; A Balaji Ganesh; Somu Sivabalan
Journal:  J Med Syst       Date:  2017-03-16       Impact factor: 4.460

  1 in total

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