Английская Википедия:Danielle Belgrave
Шаблон:Short description Шаблон:Infobox scientist
Danielle Charlotte Belgrave is a Trinidadian-British computer scientist based at DeepMind, who uses statistics and machine learning to understand the progression of diseases.[1][2][3]
Early life and education
Belgrave grew up in Trinidad and Tobago, where her high school mathematics teacher inspired her to work as a data scientist.[4] She studied statistics and business at the London School of Economics (LSE).[5][6] She was a graduate student at University College London (UCL), where she earned a master's degree in statistics.[5] In 2010 Belgrave moved to the University of Manchester, where she earned a PhD for research supervised by Iain Buchan, Christopher Bishop and Шаблон:Ill[2][7][5] supported by a Microsoft Research scholarship. She was awarded a Dorothy Hodgkin postgraduate award by Microsoft and the Barry Kay Award by the British Society of Allergy and Clinical Immunology (BSACI).[8]
Research and career
After graduating, Belgrave worked at GlaxoSmithKline (GSK), where she was awarded the Exceptional Scientist Award.[5] Belgrave joined Imperial College London as a Medical Research Council (MRC) statistician in 2015.[5][9][8] She develops statistical machine learning models to look at disease progression in an effort to design new management strategies and understand heterogeneity.[3][10] Statistical learning methods can inform the management of medical conditions by providing a framework for endotype discovery using probabilistic modelling.[4][11] She uses statistical models to identify the underlying endotypes of a condition from a set of phenotypes.[12]
She studied whether atopic march, the progression of allergic diseases from early life, adequately describes atopic diseases like eczema in early life.[13] Belgrave used a latent disease profile model to study atopic march in over 9,000 children, where machine learning was used to identify groups of children with similar eczema onset patterns.[13] She is part of the study team for early life asthma research consortium.[14] Belgrave is interested in using big data for meaningful clinical interpretation, to inform personalized prevention strategies.[14]
Her research focuses on Bayesian and statistical machine learning within the healthcare to develop personalized medicine.[2] Шаблон:As of Belgrave is developing and implementing methods which incorporate domain knowledge with data-driven models. Her research interests include latent variable models, longitudinal studies, survival analysis, ‘omics, dimensionality reduction, Bayesian graphical models and cluster analysis.[2][1]
Belgrave is part of the regulatory algorithms project, which evaluates how healthcare algorithms should be regulated.[15] In particular, Belgrave is interested in what scheme of liability should be imposed on artificial intelligence for healthcare.[15] She serves on the 2019 organizing committee of the Conference on Neural Information Processing Systems[16] and as an advisor for DeepAfricAI.[17]
References
Шаблон:Reflist Шаблон:Authority control
- ↑ 1,0 1,1 Шаблон:Google scholar id
- ↑ 2,0 2,1 2,2 2,3 Шаблон:Cite web
- ↑ 3,0 3,1 Шаблон:Cite web
- ↑ 4,0 4,1 Шаблон:Cite web
- ↑ 5,0 5,1 5,2 5,3 5,4 Шаблон:Cite web
- ↑ Шаблон:Cite web
- ↑ Шаблон:Cite thesis
- ↑ 8,0 8,1 Шаблон:Cite web
- ↑ Шаблон:Cite web
- ↑ Шаблон:Cite web
- ↑ Шаблон:Citation
- ↑ Шаблон:Cite web
- ↑ 13,0 13,1 Шаблон:Cite journal
- ↑ 14,0 14,1 Шаблон:Cite journal Шаблон:Closed access
- ↑ 15,0 15,1 Шаблон:Cite web
- ↑ Шаблон:Cite web
- ↑ Шаблон:Cite web
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