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040242 VO Data Analytics (MA) (2025W)
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Registration/Deregistration
Note: The time of your registration within the registration period has no effect on the allocation of places (no first come, first served).
Details
Language: German
Examination dates
-
Wednesday
28.01.2026
16:45 - 18:15
Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
Hörsaal 14 Oskar-Morgenstern-Platz 1 2.Stock
Hörsaal 4 Oskar-Morgenstern-Platz 1 Erdgeschoß - Wednesday 25.02.2026 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 25.02.2026 18:15 - 19:30 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 06.05.2026 18:30 - 20:00 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
Lecturers
- Bertram Wassermann
- Jakob Rericha (Student Tutor)
Classes (iCal) - next class is marked with N
- Wednesday 01.10. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 08.10. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 15.10. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 22.10. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 29.10. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 05.11. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 19.11. 16:45 - 18:15 Hörsaal 4 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 26.11. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 03.12. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 10.12. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 17.12. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 07.01. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 14.01. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
- Wednesday 21.01. 16:45 - 18:15 Hörsaal 1 Oskar-Morgenstern-Platz 1 Erdgeschoß
Information
Aims, contents and method of the course
Assessment and permitted materials
Final test at the end of the course, Written exam in the form of single and multiple choiceThe test is carried out as a face-to-face test personally at the University campus
Minimum requirements and assessment criteria
To pass this course you have to attain min 60% of the total points during the written exam.
Examination topics
1) Analyze a given Problem and sketch a solution with Datamining methods
2) Questsion concerning the steps of a standard analysis
3) Understand (= be able to read and Interpret) statistical model equations
and statistical ReportsMore Details about the exam will be given during the course.
2) Questsion concerning the steps of a standard analysis
3) Understand (= be able to read and Interpret) statistical model equations
and statistical ReportsMore Details about the exam will be given during the course.
Reading list
Werner Brannath, Andreas Futschik, Statistik für WirtschaftswissenschaftlerWeitere Literatur wird während der Vorlesung bekannt gegeben.Folien, die im Kurs diskutiert werden (werden auf der Homepage veröffentlicht).
Association in the course directory
Last modified: Mo 27.07.2026 09:26
. Fraud Detection
. Revenue Management
. Market ResearchThe presented concepts of data-naming and big data will include i.a.. Multiple Regression,
. Logistic Regression
. Statistical Analysis of Frequency Data
. Analysis of variance
. Time series analysis