Description of Individual Course Units
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Offered By |
Graduate School of Natural and Applied Sciences |
Level of Course Unit |
Second Cycle Programmes (Master's Degree) |
Course Coordinator |
PROFESSOR DOCTOR BURCU HÜDAVERDI |
Offered to |
Data Science |
Course Objective |
The course will provide a basic introduction to modern time series analysis. The course will cover time series decomposition, smoothing techniques, ARMA/ARIMA models, model identification/estimation/linear operators. The students will have the knowledge in identifying systematic pattern of time series data and also they can apply the techniques which they have learned in this course for forecasting and long term plans. The students will use R /Minitab statistical package for computation, visualization, and analysis of time series data. |
Learning Outcomes of the Course Unit |
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Mode of Delivery |
Face -to- Face |
Prerequisites and Co-requisites |
None |
Recomended Optional Programme Components |
None |
Course Contents |
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Recomended or Required Reading |
Textbooks: |
Planned Learning Activities and Teaching Methods |
Lecture format, built around the textbook readings and R/Minitab Statistical package applications with examples chosen to illustrate theoretical concepts. Applications and examples. Questions are encouraged and discussion of material stressed. Lecture, project and presentation. |
Assessment Methods |
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*** Resit Exam is Not Administered in Institutions Where Resit is not Applicable. |
Further Notes About Assessment Methods |
None |
Assessment Criteria |
Evaluation of project and exams |
Language of Instruction |
Turkish |
Course Policies and Rules |
Attendance to at least 70% for the lectures is an essential requirement of this course and is the responsibility of the student. It is necessary that attendance to the lecture and homework delivery must be on time. Any unethical behavior that occurs either in presentations or in exams will be dealt with as outlined in school policy. |
Contact Details for the Lecturer(s) |
Prof. Dr. Burcu Hüdaverdi |
Office Hours |
To be announced. |
Work Placement(s) |
None |
Workload Calculation |
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Contribution of Learning Outcomes to Programme Outcomes |
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