Advanced Topics in Knowledge Management and Discovery KMD
Timetable
Day | Time | Frequency | Period | Room | Lecturer | Remarks | Max. participants |
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Seminar - Seminar - Dates/Times/Location: | |||||||
Mon. | 13:00 bis 15:00 | weekly |
Hielscher
, Spiliopoulou | 20 |
Overview (from LSF)
Learning Content | Topics In this master seminar, advanced topics in knowledge management and discovery (data mining, machine learning, ...) will be presented and discussed.
What you will learn Each participant has to pick a topic out of a pool of topic from their respective supervisor. The topics encompass one till two research papers. Based on the paper(s) the student has to pick a third one by his own. To guide the student while reading the papers, we are going to provide a list of questions which have to be answered for each paper. That lists have to be submitted by the review due (cf. timline). Feedback towards the reviews is provided by us afterwards. According to the feedback you start writing a small survey (3 pages) of the read papers. Each student has to give a presentation of 15-20 minutes where he/she compares the papers and also explaines the main contributions of the papers.
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Comments | Our list of topics will be presented at the begining of the semester (cf. our website for details).
Seminar topics will be assigned by the supervisors. Please contact Tommy Hielscher for further information. |
Literature | Recent publications on advanced topics in knowledge management and discovery (data mining, machine learning, ...) |
Target Group | Master students in informatics or in related studies who have already attended and presented at a (bachelor) seminar. |