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Published education catalogue

Machine Learning

Education information from the published source. The education record and its time-bound offerings are kept separate.

Education facts

Code: AMI23G

The course focuses mainly on the applied aspects of machine learning with special emphasis on neural networks and deep learning. The course provides an introduction to machine learning and an overview of neural networks. The perceptron as the basic element for linear separability and its limitations in classification are discussed. Students then study the different activation functions and the sigmoid perceptron so that they can solve non linear classification problems. Different types of machine learning paradigms such as supervised, unsupervised, and reinforcement learning are covered. Feed forward neural networks and the back propagation algorithm are presented. The course also covers recurrent neural networks. Finally, deep learning is discussed with emphasis on the basic principles and different types of neural networks for deep learning.

Entry requirements

30 credits second level within the Mainfield of Microdata Analysis

Education offerings

Each offering has its own dates and conditions. Closed offerings are retained as history and do not mean that a new application is open.

  • Machine Learning

    Dalarna University

    Borlänge

    Start date:

    End date:

    Pace of study: 50 %

Source and updates

Skolverket Susa-navet

Retrieved: .

Published: .

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Publication version: 8e217193-f5fa-4778-b085-a4521fd03e8d

Checksum: 1b0dc54c0fc8a359f83ba9dc8f9d468479ce432de4c03bce3b8b33dd67fe3f6c

Last changed according to the source: 2026-09-07T10:40:11