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Links: BECM33MLF, Lectures, Labs and Seminars, upload system, course schedule, schedule of academic year.
The goal of statistical machine learning is to design systems that incorporate models and algorithms capable of learning to solve problems from examples and prior knowledge. This course is organized around two main objectives. First, it aims to clarify the fundamental principles of machine learning—such as risk minimization, maximum likelihood estimation, and Bayesian learning—and to explore their theoretical foundations. Second, it focuses on introducing core models for classification and regression, and on demonstrating how these models can be effectively learned by applying these foundational concepts.
Lectures
Seminars