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  Course Description
Course Name : Diagnostic Radiology Physics

Course Code : MEDF-504

Course Type : Compulsory

Level of Course : Second Cycle

Year of Study : 1

Course Semester : Spring (16 Weeks)

ECTS : 3

Name of Lecturer(s) : Asst.Prof.Dr. HÜSEYİNTUĞSAN BALLI

Learning Outcomes of the Course : gets information and makes practices about x-ray imaging systems
gets information and makes practices about computed tomography imaging system
learns and makes practices about magnetic resonance imaging system
learns and makes practices about diagnostic ultrasound imaging systems

Mode of Delivery : Face-to-Face

Prerequisites and Co-Prerequisites : None

Recommended Optional Programme Components : None

Aim(s) of Course : The aim of this course is to teach principles of basic physics and practice about radiodiagnostic imaging, to inform students about using proposes of imaging instruments that are used in radiodiagnosis (Roentgen, CT, MR, USG).

Course Contents : Radiologic terminology, Advanced x-ray imaging (Mammography, Fluoroscopy, digital fluoroscopy), Physics and instrumentation of CT, Clinical CT, Computed tomography imaging, Physics and instrumentation of MR, Magnetic resonance imaging, Clinical MR, Physics and instrumentation of USG, Diagnostic ultrasound imaging, Clinical USG,

Language of Instruction : Turkish

Work Place : Classroom


  Course Outline /Schedule (Weekly) Planned Learning Activities
Week Subject Student's Preliminary Work Learning Activities and Teaching Methods
1 Radiologic terminology student reads related chapter previously lecture by teacher, class discussion, examples, practice
2 Advanced x-ray imaging (Mammography, Fluoroscopy, digital fluoroscopy) student reads related chapter previously lecture by teacher, class discussion, examples, practice
3 Advanced x-ray imaging (Mammography, Fluoroscopy, digital fluoroscopy) student reads related chapter previously lecture by teacher, class discussion, examples, practice
4 Physics and instrumentation of CT student reads related chapter previously lecture by teacher, class discussion, examples, practice
5 Clinical CT student reads related chapter previously lecture by teacher, class discussion, examples, practice
6 Computed tomography imaging student reads related chapter previously lecture by teacher, class discussion, examples, practice
7 Computed tomography imaging student reads related chapter previously lecture by teacher, class discussion, examples, practice
8 Quiz student reads related chapters from textbook and lecture notes previously oral exam and practice
9 Physics and instrumentation of MR student reads related chapter previously lecture by teacher, class discussion, examples, practice
10 Magnetic resonance imaging student reads related chapter previously lecture by teacher, class discussion, examples, practice
11 Magnetic resonance imaging student reads related chapter previously lecture by teacher, class discussion, examples, practice
12 Clinical MR student reads related chapter previously lecture by teacher, class discussion, examples, practice
13 Physics and instrumentation of USG student reads related chapter previously lecture by teacher, class discussion, examples, practice
14 Diagnostic ultrasound imaging student reads related chapter previously lecture by teacher, class discussion, examples, practice
15 Clinical USG student reads related chapter previously lecture by teacher, class discussion, examples, practice
16/17 final exam oral and written exams, practice


  Required Course Resources
Resource Type Resource Name
Recommended Course Material(s)   Radiologic science for technologist, Stewart Carlyle Bushong, Elsevier, 2013
 Nuclear medicine and PET/CT Technology and Techniques, Paul E Christian, Kristen M Waterstram-Rich, MOSBY, 2007
Required Course Material(s)  internet databases
 lecture slides


  Assessment Methods and Assessment Criteria
Semester/Year Assessments Number Contribution Percentage
    Mid-term Exams (Written, Oral, etc.) 1 80
    Homeworks/Projects/Others 2 20
Total 100
Rate of Semester/Year Assessments to Success 40
 
Final Assessments 100
Rate of Final Assessments to Success 60
Total 100

  Contribution of the Course to Key Learning Outcomes
# Key Learning Outcome Contribution*
1 Lists and describes the functions of health organizations, explains how national and international health organizations are organized, and explains how to manage clinics. 0
2 owns some of the features of the human biological sciences (anatomy, physiology, pathology, cellular and biomolecular structure, radiologic anatomy, and so on.) related to Medical Physics applications 4
3 explains and discusses the ethical and legal issues in the field of health care profession (eg, research ethics, data protection, privacy, reputation, ethics management). 0
4 explains the neccessary technical substructure for the qualified service in the future of Medical Physics. 3
5 explains the national legislative frameworks, regulations, guidelines and codes of practice of the European Community on the subject of medical Phyics 0
6 In order to explain the structure, function, the characteristics and the limitations, he/she uses the physical concepts, principles and theories in a detailed and quantitative way by covering the areas of medical physics. Also explains the use of medical devices in the field of medical physics. 5
7 describes the properties of ionizing radiation (electromagnetic, electrons, ions, neutrons), and other physical agents (electrical energy, static electricity / magnetic fields, non-ionizing electromagnetic radiation, vibration, sound and ultrasound, laser) in a detailed and quantitive way. 5
8 describes the useful and reverse effects of onizing radiation and different physical agents that have a link with medical devices by means of biological models in a numerical way and explains the factors affecting the magnitude of the biological effect. Explains the ways of manipulation to improve clinical outcomes. 3
9 explains deterministic / stochastic, early / late, teratogenic / genetic effects related to each physical agent 0
10 In order to review something in a systematic manner in the field of Medical Physics, he/she makes up a list of related literature in the fields of the General Physics, Medical Physics and Health physics. 0
11 uses the general concepts, principles and theories of physics to sort out clinical problems of safety / risk management related to the clinical use of medical devices, and on ionization radiation. 5
12 uses the general concepts,principles and theories of physics to transfer new devices and related techniques to the clinical environment. 5
13 designs digital clinical and biomedical studies based on meticulous and rigorous statistical base. 0
14 Uses statistical packages for the analysis of clinical and biomedical data. 0
15 tells the use of dosimetries used in medical physics based on physical concepts, principles and theories. 0
16 identifies the dosimetric quantities of patients in each clinical process, and describes the methods for the measurement of these features. 0
17 describes and explains different dosimetric quantities that are used and explains the relationship between dosimetric quantities (energy flux, kerma, absorbed dose). 0
18 explains the principles of biological monitoring and dosimetry. 0
19 Understands the nature of the anatomical medical images. 5
20 During the administration of ionizing radiation to the patient, he/she determines the method and designs different applications to improve this method. 5
* Contribution levels are between 0 (not) and 5 (maximum).

  Student Workload - ECTS
Works Number Time (Hour) Total Workload (Hour)
Course Related Works
    Class Time (Exam weeks are excluded) 14 3 42
    Out of Class Study (Preliminary Work, Practice) 14 2 28
Assesment Related Works
    Homeworks, Projects, Others 2 5 10
    Mid-term Exams (Written, Oral, etc.) 1 2 2
    Final Exam 1 2 2
Total Workload: 84
Total Workload / 25 (h): 3.36
ECTS Credit: 3