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Detecting Sensitive Mobility Features for Parkinson's Disease Stages Via Machine Learning

84

Citations

39

References

2021

Year

Abstract

Applying machine-learning to multiple, wearable-derived features reveals that different measures of gait and mobility are associated with and discriminate distinct stages of PD. These disparate feature sets can augment the objective monitoring of disease progression and may be useful for cohort selection and power analyses in clinical trials of PD. © 2021 International Parkinson and Movement Disorder Society.

References

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