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Introduction to Data science and AI

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

Education facts

Code: DIT407

During the course, a wide selection of methods for Data Science and AI will be introduced.<br> The course is divided into three parts: Introduction to data science - Implementation of data science solutions, using Python, basic data analysis and visualization. - Introduction of the data science process, and appropriate methodology. - Examples of core data science methods with case studies such as in clustering, classification and regression. - Data science put in context regarding ethics, regulations and limitations. Statistical methods for data science and AI - Introduction of some common stochastic models with examples of applications indata science and AI (for instance, naive Bayes classifiers, topic models for text and Hidden Markov Models for sequence data). Artificial Intelligence - Introduction to classical AI and machine learning, including the relationship torelated areas such as algorithms and optimization, and AI philosophy. - Examples of methods and applications of AI, in classical AI (search and constraint satisfaction), and ML-based (search engines, naive Bayes and neural networks) - Discussion of ethics and societal impact of AI.

Entry requirements

To be eligible for the course students should have: 7\.5 hec in basic mathematics (containing e.g. calculus, linear algebra and/or discrete mathematics) or the course Applied mathematical thinking (DIT025 or equivalent) 7,5 hec mathematical statistics (e.g. MSG810 or DIT862 or DIT278 or similar) or the two courses DIT847 and DIT278 (or equivalent) or the course DIT022 7,5 hec Programming in a General-Purpose Language (e.g. C/C++/Java/Python or similar.  Applicants must prove knowledge of English: English 6/English B or the equivalent level of an internationally recognized test, for example TOEFL, IELTS.

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.

Source and updates

Skolverket Susa-navet

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

Checksum: 1b0dc54c0fc8a359f83ba9dc8f9d468479ce432de4c03bce3b8b33dd67fe3f6c

Last changed according to the source: 2024-09-10T10:12:27