| Course Name |
Data Science and Machine Learning
|
|
Code
|
Semester
|
Theory
(hour/week) |
Application/Lab
(hour/week) |
Local Credits
|
ECTS
|
|
MBP 227
|
Fall/Spring
|
2
|
2
|
3
|
4
|
| Prerequisites |
None
|
|||||
| Course Language |
Turkish
|
|||||
| Course Type |
Elective
|
|||||
| Course Level |
Short Cycle
|
|||||
| Mode of Delivery | - | |||||
| Teaching Methods and Techniques of the Course | Group WorkProblem SolvingApplication: Experiment / Laboratory / WorkshopLecture / Presentation | |||||
| National Occupation Classification | - | |||||
| Course Coordinator | - | |||||
| Course Lecturer(s) | ||||||
| Assistant(s) | - | |||||
| Course Objectives | The aim of this course is to introduce students to the techniques used to gather information, model data and extract information from large amounts of data. Within the scope of the course, students will be able to make prediction applications on data sets with machine learning algorithms. |
| Learning Outcomes |
The students who succeeded in this course;
|
| Course Description | This course includes data analysis, data visualization methods, data manipulation, feature engineering, supervised and unsupervised machine learning techniques. |
| Related Sustainable Development Goals |
|
|
|
Core Courses | |
| Major Area Courses |
X
|
|
| Supportive Courses | ||
| Media and Management Skills Courses | ||
| Transferable Skill Courses |
| Week | Subjects | Related Preparation |
| 1 | Data Analysis- 1 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 2 |
| 2 | Data Analysis- 2 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 2 |
| 3 | Data Analysis- 3 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 3 |
| 4 | Data Visualization and Interpretation- 1 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 4 |
| 5 | Data Visualization and Interpretation- 2 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 4 |
| 6 | Outlier Analysis | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 5 |
| 7 | Missing Value Analysis | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 5 |
| 8 | Midterm Exam | |
| 9 | Data Transformation and Feature Extraction | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 6 |
| 10 | Basic Concepts in Machine Learning | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 5 |
| 11 | Machine Learning- Unsupervised Learning Applications- 1 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 7 |
| 12 | Machine Learning- Unsupervised Learning Applications- 2 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 8 |
| 13 | Machine Learning- Supervised Learning Applications- 1 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 10 and 11 |
| 14 | Machine Learning- Supervised Learning Applications- 2 | Uğuz, S., “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). Chapter 12 |
| 15 | Review of the Semester | |
| 16 | Final Exam |
| Course Notes/Textbooks | Sinan Uğuz, “Makine Öğrenmesi - Teorik Yönleri ve Python Uygulamaları ile Bir Yapay Zeka Ekolü”, Nobel Akademik Yayıncılık (2021). (ISBN: 9786050331769) |
| Suggested Readings/Materials |
| Semester Activities | Number | Weigthing |
| Participation | ||
| Laboratory / Application | ||
| Field Work | ||
| Quizzes / Studio Critiques | ||
| Portfolio | ||
| Homework / Assignments | ||
| Presentation / Jury | ||
| Project |
1
|
35
|
| Seminar / Workshop | ||
| Oral Exams | ||
| Midterm |
1
|
25
|
| Final Exam |
40
|
|
| Total |
| Weighting of Semester Activities on the Final Grade |
2
|
60
|
| Weighting of End-of-Semester Activities on the Final Grade |
1
|
40
|
| Total |
| Semester Activities | Number | Duration (Hours) | Workload |
|---|---|---|---|
| Theoretical Course Hours (Including exam week: 16 x total hours) |
16
|
2
|
32
|
| Laboratory / Application Hours (Including exam week: '.16.' x total hours) |
16
|
2
|
32
|
| Study Hours Out of Class |
14
|
1
|
14
|
| Field Work |
0
|
||
| Quizzes / Studio Critiques |
0
|
||
| Portfolio |
0
|
||
| Homework / Assignments |
0
|
||
| Presentation / Jury |
0
|
||
| Project |
1
|
12
|
12
|
| Seminar / Workshop |
0
|
||
| Oral Exam |
0
|
||
| Midterms |
1
|
13
|
13
|
| Final Exam |
17
|
0
|
|
| Total |
103
|
|
#
|
Program Competencies/Outcomes |
* Contribution Level
|
|||||
|
1
|
2
|
3
|
4
|
5
|
|||
| 1 |
To be able to have basic computer hardware and software knowledge. |
-
|
X
|
-
|
-
|
-
|
|
| 2 |
Explain web programming and network technologies and develop applications. |
-
|
-
|
-
|
-
|
-
|
|
| 3 |
Have written, verbal and non-verbal communication skills by doing team work. |
-
|
-
|
-
|
-
|
-
|
|
| 4 |
Do research, analyze and produce solutions for the problems encountered in the field. |
X
|
-
|
-
|
-
|
-
|
|
| 5 |
To be able to use basic programming languages related to the field. |
-
|
-
|
X
|
-
|
-
|
|
| 6 |
To be able to design and install a computer system that includes software, hardware, or both, meeting the basic needs of the field. |
X
|
-
|
-
|
-
|
-
|
|
| 7 |
To be able to interpret and follow current developments in the field of computer programming. |
X
|
-
|
-
|
-
|
-
|
|
| 8 |
To be able to carry professional and ethical responsibility and have awareness of professional ethics in their practices. |
-
|
-
|
-
|
-
|
-
|
|
| 9 |
To have basic theoretical and practical knowledge about mathematics, computing and computer science. |
-
|
X
|
-
|
-
|
-
|
|
| 10 |
To be able to follow the information in the field and communicate with colleagues by using English at the general level of European Language Portfolio A2. |
-
|
-
|
-
|
-
|
-
|
|
| 11 |
To be able to direct his/her education to a further level of education |
-
|
-
|
-
|
-
|
-
|
|
| 12 |
Have knowledge about occupational safety, environmental awareness and quality standards. |
-
|
-
|
-
|
-
|
-
|
|
*1 Lowest, 2 Low, 3 Average, 4 High, 5 Highest
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