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Topics in trustworthy machine learning and AI: Robustness, privacy and data heterogeneity

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Birmingham, United Kingdom

Academic Connect
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Topics in trustworthy machine learning and AI: Robustness, privacy and data heterogeneity

About the Project

Machine learning and statistical algorithms are now implemented at a large scale in almost every aspect of our society, significantly impacting our daily lives through their performance. Hence, there is a soaring demand for the development of trustworthy procedures. Two projects are available under the broad theme of Topics in trustworthy machine learning and AI.

(1) Robust and private learning in heterogenous and distributed environments. Building on previous work in this area, we plan to tackle more challenging data types, such as network and tensor data, and to study the effects of data heterogeneity, privacy, and contamination within a unified framework.

(2) Differential privacy of sampling algorithms. Sampling algorithms inherently possess privacy properties due to its probabilistic nature. Although such nature has been explored for simple sampling algorithms, there is considerable room for further investigation into more sophisticated sampling schemes, the effects of subsampling, and relaxations of the conditions on the target distribution.

If you are interested, please send your CV to m.li.15@bham.ac.uk.

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