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Dynamic Digital Biomarkers of Motor and Cognitive Function in Parkinson's Disease
Published on: July 24, 2019
Crowdsourcing and machine learning contests in Parkinson's disease research - when do they work?
Leslie C Kirsch1, Jeffrey M Hausdorff2,3,4,5, Victoria J Dardov6
1The Michael J. Fox Foundation for Parkinson's Research, New York, USA.
Journal of Parkinson'S Disease
|July 23, 2026
Summary
Machine learning contests can accelerate Parkinson's disease (PD) research by tackling complex problems. Careful contest design, focusing on solvable challenges and appropriate metrics, is crucial for success in PD research.
Area of Science:
- Neuroscience
- Computational Biology
- Artificial Intelligence
Background:
- Crowdsourcing and machine learning contests are emerging tools in Parkinson's disease (PD) research.
- These methods offer novel approaches to analyze complex datasets and solve challenging problems in neurodegenerative disease research.
Purpose of the Study:
- To review the use of crowdsourcing and machine learning contests in PD research.
- To identify best practices for designing successful contests.
- To explore future opportunities for these methodologies in PD research.
Main Methods:
- Literature survey of crowdsourcing applications in PD research.
- Comparative case study of two machine learning contests: MJFF Freezing of Gait (FOG) Challenge and AMP PD Proteomics Challenge.
- Development of a taxonomy for crowdsourcing projects and a framework for contest success characteristics.
Main Results:
- Contest success is highly dependent on design factors, particularly problem solvability and metric selection.
- The FOG Challenge successfully yielded a high-performing algorithm for a clinical problem.
- The Proteomics Challenge did not produce biologically meaningful results due to issues with data signal and metric selection.
- Underutilized crowdsourcing approaches like gamification and open-source development were identified.
Conclusions:
- Machine learning contests are powerful, open-science tools for addressing complex PD challenges.
- Careful design, including a solvable problem and appropriate scoring metric, is essential for contest success.
- Diverse crowdsourcing techniques hold significant potential to accelerate progress in PD research and clinical care.
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