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Challenges In Large-Scale Machine Learning Systems: Security And Correctness, Emad Alsuwat
Challenges In Large-Scale Machine Learning Systems: Security And Correctness, Emad Alsuwat
Theses and Dissertations
In this research, we address the impact of data integrity on machine learning algorithms. We study how an adversary could corrupt Bayesian network structure learning algorithms by inserting contaminated data items. We investigate the resilience of two commonly used Bayesian network structure learning algorithms, namely the PC and LCD algorithms, against data poisoning attacks that aim to corrupt the learned Bayesian network model.
Data poisoning attacks are one of the most important emerging security threats against machine learning systems. These attacks aim to corrupt machine learning models by con- taminating datasets in the training phase. The lack of resilience of …