This programme of study is also offered on a part-time basis. Please consult the Registrar's website for more information pertaining to courses offered by the University.
The degree will provide you with an understanding of the fundamental principles of electrical, electronic and control engineering. Throughout the degree course, you are given the mathematical skills required for engineering design and analysis. You are taught how to design and build smarter, and more sustainable technologies, making them more efficient, reliable and affordable with the aim to contribute to society by improving the quality of life especially related to health, comfort and our environment. Self-driving electric cars are but one example of what you can achieve as a future Electrical and Electronics Engineers. This profession is at the heart of clean energy production, distribution and usage, sustainable and smart transport, electrification of transport, space technology, bio-medical technology, automation, robotics, autonomous drones, satellite systems, ship navigation, communications, the list is endless. This explains why the demand for Electrical and Electronic Engineers in Malta and worldwide is high and perpetually increasing.
Electrical and Electronic Engineering is the application of scientific knowledge to develop new, creative and innovative solutions to address humanity's challenges. The degree programme trains you to solve engineering-related problems by applying the fundamentals of engineering in a responsible, methodical and creative manner. You are taught how to design and build smarter, and more sustainable technologies, making them more efficient, reliable and affordable with the aim to contribute to society by improving the quality of life especially related to health, comfort and our environment.
The degree provides an understanding of the fundamental principles of electrical, electronic and control engineering. During the first two years, the programme offers you a number of compulsory core modules that expose you to the fundamentals of circuits, signals, electronics, computing, automation and electrical energy. In third and fourth years, you can choose from a variety of modules allowing for some specialisation in different fields of electrical engineering. Throughout the degree course, you are given the mathematical skills required for engineering design and analysis.
The modules of the degree are shown and described in the programme of studies. The degree covers various areas of electronic engineering such as analogue and digital systems, microcontrollers, Field Programmable Gate Arrays (FPGAs), Very Large Scale Integration (VLSI), Radio Frequency (RF) and high frequency electronics, optoelectronics, electromagnetics, communications systems and sensing and data acquisition. Moreover, you shall be taught how to design industry standard Printed Circuit Boards (PCBs) taking into account noise, electro-static discharge and electro-magnetic issues aimed to make designs: low-cost, compact, low-loss, high-speed, with the least susceptibility to electro-magnetic interference. The applications of electronic designs can range from extremely low power, e.g. picosatellites, to biomedical equipment up to the embedded control and sensing used in high power generation equipment such as for example a 10MW wind turbine.
The degree also covers the area of electrical engineering which is mainly concerned with circuit theory, power electronics, electrical machines, energy conversion, electromagnetics, power engineering and building services. You are taught the fundamentals of electrical engineering for various areas of electrical energy conversion, such as: electric vehicles, electrification of systems on aircraft and ships (electric ships, more electric aircraft), energy storage, solar farms, wind energy, renewable energy sources, microgrids, electric motor control, new lighting systems and more efficient appliances. Building services and power engineering modules will train you for the role of the consultant engineer who takes care of large infrastructural projects.
Another area covered in the degree is that of signals, systems and control engineering, where you will learn how to design and develop complex systems to operate automatically and autonomously. Examples include control of mechatronic systems, process control, intelligent transportation systems, industrial automation, Programmable Logic Control and robot control systems. Moreover, you can learn about methods such as computational intelligence and artificial neural networks which play an important part in all fields of engineering The degree also exposes the student to signal and image processing which permits engineers to analyse, synthesise, filter and extract information from signals. This includes sound, speech and music signals, images, biomedical signals, and even numeric signals, such as financial data.
An example where multi-disciplinary areas of electrical, electronic and systems and control engineering come together is in a self-driving electric car. Such a car needs to sense its environment and react to it appropriately. This requires a variety of sensors from laser range finders (LIDAR) that can determine its distance from other cars, pavements, or pedestrians; to vision sensors (cameras) which allow the car to sense road signage such as stop signs, or traffic lights. The car also requires navigation systems (e.g. GPS) which enable it to determine its location in the world. While sensors provide data about the car's environment, the car requires intelligent control to use this data to function autonomously, be it from stopping at red lights, to planning the best route to arrive at the desired destination. The most important part of the electric car is its engine. The car's engine speed is changed by means of a power electronic converter. Moreover, this converter allows the car to idle without using any energy and also to recuperate energy during braking which is stored in its batteries. All the electronics, on-board computers, as well as the car's motor, require energy to function which is provided by an on-board battery system. Hence, to use the car reliably over long distances, its energy must be used efficiently. As with any other complex system, the development of a self-driving car would see teams of Electrical and Electronics Engineers with different skills and expertise working in synergy.
Self-driving electric cars are but one example of what Electrical and Electronics Engineers can achieve. Electrical and Electronic Engineering is at the heart of clean energy production, distribution and usage, sustainable and smart transport, electrification of transport, space technology, bio-medical technology, automation, robotics, autonomous drones, avionics, satellite systems, ship navigation, communications, mobile telephony, the list is endless. This explains why the demand for Electrical and Electronic Engineers in Malta and worldwide is high and perpetually increasing.
Communication and Academic Skills Programme
The communication and academic skills programme complements students’ main course of study. It introduces them to writing and presenting as situated within academic contexts sensitive to specific disciplines and develops their competences for future careers.
Semester 1 | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
CIS1113 | Introduction to C Programming | 4 ECTS | (NC) | ||||||||
ENR1112 | Technical Report Writing | 2 ECTS | (NC) | ||||||||
ENR1120 | Fundamentals of Mechanical Engineering | 6 ECTS | (NC) | ||||||||
EPC1101 | Electrical Circuit Theory 1 | 5 ECTS | (NC) | ||||||||
ESE1102 | Fundamentals of Electronics | 8 ECTS | (NC) | ||||||||
MAT1801 | Mathematics for Engineers 1 | 4 ECTS | (NC) | ||||||||
SOR1211 | Probability | 2 ECTS | (NC) | ||||||||
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Semester 2 | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
ENR2201 | Public Speaking | 2 ECTS | (NC) | ||||||||
EPC1201 | Electrical Circuit Theory 2 | 5 ECTS | (NC) | ||||||||
EPC1202 | Introduction to Electrical Energy System | 5 ECTS | (NC) | ||||||||
ESE1201 | Transistor Amplifier Circuits | 5 ECTS | (NC) | ||||||||
ESE1203 | Combinational Logic Circuits | 4 ECTS | (NC) | ||||||||
MAT1802 | Mathematics for Engineers 2 | 4 ECTS | (NC) | ||||||||
SCE1201 | Dynamic Systems and Signals 1 | 5 ECTS | (NC) | ||||||||
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Semester 1 | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
CCE2013 | Introduction to Computer Architecture | 5 ECTS | (NC) | ||||||||
CIS2111 | Introduction to Object Oriented Programming | 2 ECTS | (NC) | ||||||||
EPC2101 | Electrical Machines | 5 ECTS | (NC) | ||||||||
ESE2103 | Operational Amplifiers | 5 ECTS | (NC) | ||||||||
ESE2104 | Sequential Logic Circuits | 5 ECTS | (NC) | ||||||||
MAT2803 | Laplace and Fourier Transforms | 2 ECTS | (NC) | ||||||||
SCE2111 | Automatic Control Systems 1 | 5 ECTS | (NC) | ||||||||
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Semester 2 | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
EPC2102 | Electrical Power 1 | 5 ECTS | (NC) | ||||||||
EPC2201 | Power Electronics 1 | 5 ECTS | (NC) | ||||||||
ESE2202 | Introduction to Microcontrollers | 5 ECTS | (NC) | ||||||||
ESE2203 | Electronic Feedback Circuits | 5 ECTS | (NC) | ||||||||
SCE2201 | Numerical Methods for Engineers | 4 ECTS | (NC) | ||||||||
SCE2213 | Automatic Control Systems 2 | 5 ECTS | (NC) | ||||||||
SOR1221 | Sampling and Estimation | 2 ECTS | (NC) | ||||||||
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The total number of study-units to be covered during the year should as much as possible be spread evenly over the two semesters.
Year (This/these unit/s start/s in Semester 1 and continue/s in Semester 2) | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
ENR3008 | Team Project | 5 ECTS | (NC) | ||||||||
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Semester 1 | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
ESE3101 | Signal Conditioning and Data Conversion | 5 ECTS | (NC) | ||||||||
MAT3815 | Mathematics for Engineers 3 | 4 ECTS | |||||||||
SCE3101 | Dynamic Systems and Signals 2 | 5 ECTS | (NC) | ||||||||
Elective Units (Elective units are offered subject to availability, a minimum number of student registrations and time-table constraints) | |||||||||||
ENR3101 | Properties and Applications of Electrical and Electronic Materials | 5 ECTS | |||||||||
EPC3102 | Electrical Power 2 | 5 ECTS | |||||||||
EPC3103 | Power Electronics 2 | 5 ECTS | |||||||||
ESE3102 | Microcontrollers and Interfacing 1 | 5 ECTS | |||||||||
ESE3103 | Introduction to FPGAs | 5 ECTS | |||||||||
ESE3106 | Electronic Systems 1 | 5 ECTS | |||||||||
MNE3501 | Mixed Mode VLSI | 5 ECTS | |||||||||
SCE3113 | Automatic Control Systems 3 | 5 ECTS | |||||||||
SCE3115 | Autonomous Robotic Systems | 5 ECTS | |||||||||
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Semester 2 | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
CCE3320 | Communications Theory for Electrical Engineers | 6 ECTS | (NC) | ||||||||
ENR3201 | Electromagnetic Theory | 5 ECTS | (NC) | ||||||||
Elective Units (Elective units are offered subject to availability, a minimum number of student registrations and time-table constraints) | |||||||||||
CCE2411 | Computer Networks for Electronic Engineering | 5 ECTS | |||||||||
CPS1012 | Operating Systems and Systems Programming 1 | 5 ECTS | |||||||||
EPC3104 | Electromechanical Drives | 5 ECTS | |||||||||
EPC3201 | Power Quality | 5 ECTS | |||||||||
EPC3202 | Industrial Systems | 5 ECTS | |||||||||
ESE3203 | Digital Design with FPGAs 1 | 5 ECTS | |||||||||
ESE3204 | RF Electronics | 5 ECTS | |||||||||
ESE3207 | Instrumentation and Data Acquisition Systems 1 | 5 ECTS | |||||||||
SCE3204 | Image Analysis and Computer Vision | 5 ECTS | |||||||||
SCE3205 | Dynamic Systems and Signals 3 | 5 ECTS | |||||||||
SCE3216 | Automatic Control Systems 4 | 5 ECTS | |||||||||
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The total number of study-units to be covered during the year should as much as possible be spread evenly over the two semesters.
Year (This/these unit/s start/s in Semester 1 and continue/s in Semester 2) | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
ENR4200 | Engineering Project | 20 ECTS | (NC) | ||||||||
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Semester 1 | |||||||||||
Elective Units (Elective units are offered subject to availability, a minimum number of student registrations and time-table constraints) | |||||||||||
EPC4101 | Electrical Power 3 | 5 ECTS | |||||||||
EPC4102 | Electrical Building Technology | 5 ECTS | |||||||||
EPC4103 | Electrical Industrial Technology | 5 ECTS | |||||||||
EPC4104 | Power Electronic Converters and Distributed Generation | 5 ECTS | |||||||||
EPC4105 | Advanced Electrical Drives | 5 ECTS | |||||||||
ESE4105 | Radio Electronic Systems | 5 ECTS | |||||||||
ESE4106 | Instrumentation and Data Acquisition Systems 2 | 5 ECTS | |||||||||
MNE3502 | Analogue VLSI 1 | 5 ECTS | |||||||||
SCE3112 | Control Systems Technology and Automation | 5 ECTS | |||||||||
SCE4101 | Computational Intelligence 1 | 5 ECTS | |||||||||
SCE4102 | Systems Theory | 5 ECTS | |||||||||
SCE4103 | An Introduction to Biomedical Signal Analysis | 5 ECTS | |||||||||
SCE4104 | Practical Applications in Computer Vision | 5 ECTS | |||||||||
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Semester 2 | |||||||||||
Compulsory Units (All students must register for this/these unit/s) | |||||||||||
ENR4006 | Professional Issues in Engineering | 3 ECTS | (NC) | ||||||||
ENR4301 | Engineering Management | 5 ECTS | (NC) | ||||||||
Students are required to choose One of the following: | |||||||||||
ENR4201 | Entrepreneurship for Engineers | 2 ECTS | |||||||||
ENR4203 | Knowledge Transfer Methods for Engineers | 2 ECTS | |||||||||
IME4202 | Industrial Process and Quality Management | 2 ECTS | |||||||||
Elective Units (Elective units are offered subject to availability, a minimum number of student registrations and time-table constraints) | |||||||||||
EPC4202 | Electrical Power Systems Communications and Smart Grids | 5 ECTS | |||||||||
EPC4203 | Electrical Transportation Technologies | 5 ECTS | |||||||||
MNE3503 | Digital VLSI | 5 ECTS | |||||||||
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Requirement for successful completion of Year IV (final year): 60 ECTS credits
Requirement for award of B. Eng (Hons) in Electrical and Electronic Engineering: 240 ECTS credits
This programme of study is governed by The General Regulations for University Undergraduate Awards, 2019 and by the Bye-Laws for the award of Bachelor of Engineering (Honours) - B.Eng. (Hons) - under the auspices of the Faculty of Engineering.