## Machine Learning

Faculteit | Science and Engineering |

Jaar | 2019/20 |

Vakcode | KIM.ML09 |

Vaknaam | Machine Learning |

Niveau(s) | master |

Voertaal | Engels |

Periode | semester I b |

ECTS | 5 |

Rooster | rooster.rug.nl |

Uitgebreide vaknaam | Machine Learning |

Leerdoelen | At the end of the course, the student: - is aware of the universal challenges that arise in (almost) every machine learning (ML) project: curse of dimensionality, bias-variance tradeoff, choice of loss function, architecture design (structural bias), and know about standard coping strategies (dimension reduction, regularization, cross-validation); - has a coarse overview of the rich landscape of modern ML (supervised / unsupervised / reinforcement learning, different modeling attitudes, goals and methods in different subfields of ML); - has an understanding of basic algorithmic techniques that is sufficient to allow him/her to practically apply these techniques by programming from scratch or using a high-level toolbox; - can easily and quickly implement simple (but not necessarily poorly performing) linear, baseline ML pipelines for supervised learning problems; - can design, implement, run, test and evaluate a more complex, multi-module, nonlinear ML pipeline for supervised learning problems, possibly including unsupervised components. |

Omschrijving | Machine learning (ML) is about algorithms which are fed with (large quantities of) real-world data, and which return a compressed model of the data. An example is a spoken language model: the input data are speech recordings, from which ML methods build a model of spoken English -- useful, for instance, in automated speech recognition systems. There exists a large number of formalisms in which such models can be formulated and implemented, and an even larger diversity of learning algorithms to estimate such models from data. However, there is only a relatively small number of fundamental challenges which are common to all of these formalisms and algorithms. This lecture introduces such fundamental concepts and a choice of standard model formalisms (decision trees, linear classifiers and regressors, K-means clustering, self-organizing feature maps, sampling / energy based distribution modeling, hidden Markov models and graphical models, feedforward and recurrent neural networks). There will be a practical where students will implement their own machine learning system and they will write a report about this system and the obtained results. Furthermore, there will be a written final exam at the end of the course. |

Uren per week | |

Onderwijsvorm |
Hoorcollege (LC), Practisch werk (PRC), Werkcollege (T)
(There will be lectures given by the lecturer and a computer practicum.) |

Toetsvorm |
Schriftelijk tentamen (WE), Verslag (R)
(The examination will count for 50% of the final mark and the practical report also for 50%. The grade of the exam needs to be higher or equal to 5.0 in order to pass this course.) |

Vaksoort | master |

Coördinator | prof. dr. H. Jaeger |

Docent(en) | prof. dr. H. Jaeger |

Entreevoorwaarden | Knowledge about Calculus and Linear Algebra is necessary in order to do well for this course. |

Opmerkingen | This course is NOT an introduction to deep learning! But it is a highly recommended preparation for the follow-up course "Deep Learning" (WMAI18002). |

Opgenomen in |