Identification of motor progression in Parkinson’s disease using wearable sensors and machine learning
Charalampos Sotirakis, Zi Su, Maksymilian A. Brzezicki, Niall Conway, Lionel Tarassenko, James J. FitzGerald, Chrystalina A. Antoniades

TL;DR
Wearable sensors and machine learning can track motor progression in Parkinson’s disease more accurately than traditional clinical scales.
Contribution
A novel combination of wearable sensor data and machine learning models to estimate and track motor symptom progression in Parkinson’s disease.
Findings
The Random Forest model provided the most accurate estimation of the MDS-UPDRS-III clinical rating scale.
Wearable sensors detected significant motor symptom progression over 15 months that clinical scales failed to capture.
Twenty-nine features showed significant progression with time at the group level.
Abstract
Wearable devices offer the potential to track motor symptoms in neurological disorders. Kinematic data used together with machine learning algorithms can accurately identify people living with movement disorders and the severity of their motor symptoms. In this study we aimed to establish whether a combination of wearable sensor data and machine learning algorithms with automatic feature selection can estimate the clinical rating scale and whether it is possible to monitor the motor symptom progression longitudinally, for people with Parkinson’s Disease. Seventy-four patients visited the lab seven times at 3-month intervals. Their walking (2-minutes) and postural sway (30-seconds,eyes-closed) were recorded using six Inertial Measurement Unit sensors. Simple linear regression and Random Forest algorithms were utilised together with different routines of automatic feature selection or…
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Taxonomy
TopicsParkinson's Disease Mechanisms and Treatments · Botulinum Toxin and Related Neurological Disorders · Balance, Gait, and Falls Prevention
