Automated Clinical Assessment from Smart home-based Behavior Data

نویسندگان

  • Prafulla Nath Dawadi
  • Maureen Schmitter-Edgecombe
چکیده

Smart home technologies offer potential benefits for assisting clinicians by automating health monitoring and wellbeing assessment. In this paper, we examine the actual benefits of smart home-based analysis by monitoring daily behaviour in the home and predicting standard clinical assessment scores of the residents. To accomplish this goal, we propose a Clinical Assessment using Activity Behavior (CAAB) approach to model a smart home resident’s daily behavior and predict the corresponding standard clinical assessment scores. CAAB uses statistical features that describe characteristics of a resident’s daily activity performance to train machine learning algorithms that predict the clinical assessment scores. We evaluate the performance of CAAB utilizing smart home sensor data collected from 18 smart homes over two years using prediction and classification-based experiments. In the prediction-based experiments, we obtain a statistically significant correlation (r = 0.72) between CAABpredicted and clinician-provided cognitive assessment scores and a statistically significant correlation (r = 0.45) between CAABpredicted and clinician-provided mobility scores. Similarly, for the classification-based experiments, we find CAAB has a classification accuracy of 72% while classifying cognitive assessment scores and 76% while classifying mobility scores. These prediction and classification results suggest that it is feasible to predict standard clinical scores using smart home sensor data and learning-based data analysis.

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تاریخ انتشار 2015