Course detail
RF Engineering and Identification
FEKT-GRFIAcad. year: 2019/2020
Radio frequency identification is a technology, which has recently experienced a rapid growth. The course will focus on linking of knowledge of radio systems and communication and on developing relationships for the RFID use case. Students will find themselves confronted with the topics of RF hardware design, digital signal processing and efficient and secure wireless communication. Knowledge gained in the course will help students in seeking for opportunities in the industrial sector.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Learning outcomes of the course unit
Prerequisites
Co-requisites
Planned learning activities and teaching methods
Assesment methods and criteria linked to learning outcomes
Course curriculum
1. Fundamental principles of operation, 1-bit transponder, full-duplex and half-duplex procedures, sequential procedures.
2. Inductive coupling, electromagnetic coupling with backscatter, close coupling, electrical coupling, data transfer between a tag and a reader.
3. Physical Principles of RFID Systems, Magnetic Field, transponder operation in magnetic field, transponder-reader system, magnetic materials.
4. Electromagnetic waves, polarization, principle of microwave transponder in electric field, SAW-transponder.
5. Frequency Ranges and Radio Licensing Regulations, coding and modulation, data integrity and security.
6. Standardization, radio interface, protocol structure, coding, anti-collision algorithms.
7. Antennas from the perspective of tag and reader.
8. The Architecture of Electronic Data Carriers, Transponder with Memory Function, Microprocessors-based RFID.
9. Architecture of an analog frontend, control unit, algorithms for performance optimization.
10. Sources of noise and methods of its minimization, sensitivity, monostatic and bi-static system, direct coupling of transmitter and receiver.
11. Measurement of systems parameters, performance, conformance, LLRP protocol.
12. RFID in Wireless Sensor Networks, UWB, Ranging, Practical aspects of RFID systems, application, manufacturing, and internet of things.
13. Dynamic positioning for automotive applications based on UWB technologies.
Laboratory exercises:
1. Design of UHF EPC Class 1 Gen 2 reader functions using SW-defined radio.
2. Measurement of signals in the UHF band using the designed demodulator, spectral analysis.
3. Design of HF reader functions using SW-defined radio.
4. Measurement of parameters in HF band, sideband analysis, bits identification and protocol flow.
5. Analysis of functions of a commercial reader, tracking of the processes of modulation and demodulation, symbol shaping.
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
Basic literature
Recommended reading
Classification of course in study plans
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
2. Inductive coupling, electromagnetic coupling with backscatter, close coupling, electrical coupling, data transfer between a tag and a reader.
3. Physical Principles of RFID Systems, Magnetic Field, transponder operation in magnetic field, transponder-reader system, magnetic materials.
4. Electromagnetic waves, polarization, principle of microwave transponder in electric field, SAW-transponder.
5. Frequency Ranges and Radio Licensing Regulations, coding and modulation, data integrity and security.
6. Standardization, radio interface, protocol structure, coding, anti-collision algorithms.
7. Antennas from the perspective of tag and reader.
8. The Architecture of Electronic Data Carriers, Transponder with Memory Function, Microprocessors-based RFID.
9. Architecture of an analog frontend, control unit, algorithms for performance optimization.
10. Sources of noise and methods of its minimization, sensitivity, monostatic and bi-static system, direct coupling of transmitter and receiver.
11. Measurement of systems parameters, performance, conformance, LLRP protocol.
12. RFID in Wireless Sensor Networks, UWB, Ranging, Practical aspects of RFID systems, application, manufacturing, and internet of things.
13. Dynamic positioning for automotive applications based on UWB technologies.
Laboratory exercise
Teacher / Lecturer
Syllabus
2. Measurement of signals in the UHF band using the designed demodulator, spectral analysis.
3. Design of HF reader functions using SW-defined radio.
4. Measurement of parameters in HF band, sideband analysis, bits identification and protocol flow.
5. Analysis of functions of a commercial reader, tracking of the processes of modulation and demodulation, symbol shaping.