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Pattern Recognition and Machine Learning

BE5B33RPZ
Computer Science and ICT, Data, AI

Over deze cursus

The basic formulations of the statistical decision problem are presented. The necessary knowledge about the (statistical) relationship between observations and classes of objects is acquired by learning on the raining set. The course covers both well-established and advanced classifier learning methods, as Perceptron, AdaBoost, Support Vector Machines, and Neural Nets.

This course is also part of the inter-university programme prg.ai Minor. It pools the best of AI education in Prague to provide students with a deeper and broader insight into the field of artificial intelligence. More information is available at https://prg.ai/minor.

Leerresultaten

To teach the student to formalize statistical decision making problems, to use machine learning techniques and to solve pattern recognition problems with the most popular classifiers (SVM, AdaBoost, neural net, nearest neighbour).

Voorkennis

Knowledge of linear algebra, mathematical analysis and probability and statistics.

Bronnen

  • 1.Duda, Hart, Stork: Pattern Classification, 2001.
  • 2.Bishop: Pattern Recognition and Machine Learning, 2006.
  • 3.Schlesinger, Hlavac: Ten Lectures on Statistical and Structural Pattern Recognition, 2002.

Activiteiten

Lectures, Practises, Self-study, Exercises, Tutorial sessions

Aanvullende informatie

cursus
6 ECTS
  • Niveau
    Bachelor
  • Contact uren per week
    4
  • Instructeurs
    Mgr. Šochman Jan Ph.D., Mgr. Drbohlav Ondřej Ph.D., prof. Ing. Matas Jiří Ph.D., Ing. Neumann Lukáš Ph.D.
  • Instructievorm
    Hybrid
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Startdata

  • 22 sep 2025

    tot 15 feb 2026

    VoertaalEngels
    Periode *Winter 2025/2026
    Inschrijvingsperiode gesloten
Dit aanbod is voor studenten van TalTech (Estonia)