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Personalized Machine Learning
NIE-PML
Personalized machine learning (PML) is a sub-field of machine learning that aims to create models and predictions based on the unique characteristics and behaviors of individual entities. While PML is commonly used in applications such as recommender systems, which recommend items to users based on their personal interests, its principles can be applied to a wide range of other fields, including education, medicine, and chemical engineering. In this course, we will explore the latest PML methods from theoretical, algorithmic, and practical perspectives. Specifically, we will focus on cutting-edge models that are of interest to both the research and commercial communities.
Prerequisites
The knowledge of basic calculus, linear algebra, probability theory and basics of machine learning is assumed. So a student that completed at least one course of block Perception or CoreML has the requisites to attend the course. Suitable for master students.
Details
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FIT CTU
FACULTY
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Winter
TERM
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Personalized Machine Learning
OFFICIAL CZECH NAME
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https://bilakniha.cvut.cz/cs/predmet7580806.html#gsc.tab=0
OFFICIAL LINK IN CZECH
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Personalized Machine Learning
OFFICIAL ENGLISH NAME
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https://bilakniha.cvut.cz/en/predmet7580806.html#gsc.tab=0
OFFICIAL LINK IN ENGLISH
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https://courses.fit.cvut.cz/NIE-PML/index.html
Course website
STILL SOME QUESTIONS?
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FEE CTU
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FIT CTU
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FSV CUNI
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MFF CUNI
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Artificial Intelligence I
Winter
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Artificial Intelligence II
Summer
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Deep Learning
Summer
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Deep Reinforcement Learning
Summer
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Dialogue Systems
Summer
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Introduction to Artificial Intelligence
Summer
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Introduction to Machine Learning with Python
Winter
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Large Language Models
Summer
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Modern Algorithmic Game Theory
Winter
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Natural Language Processing
Summer
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