Course Overview
This course covers software and hardware design for real-time embedded systems. Topics include real-time implementation of DSP algorithms, code and hardware optimization for speed and power, real-time operating systems, reliable operation, and overall system architecture. In the laboratory, students will apply selected concepts learned in the lectures by implementing them on a development board centered around a DSP-oriented microcontroller. This course uses C as the programming language. There is some interaction with assembly code.
Prerequisite(s)
Credits
4.0
- Not offered this term
- This course is not offered this term. Notify me to receive email notifications when the course opens for registration next term.
Learning Outcomes
Upon successful completion of the course, the student will be able to:
- Select a processor or other implementation platform for the real-time embedded task at hand. [1,2]
- Design and implement hardware interfaces, including the related software. [4,5]
- Understand real-time operating system concepts including scheduling, interrupt handling, context switching, task synchronization, and resource sharing. [1,2]
- Predict and measure real-time performance. [3]
- Design and implement a real-time system in the lab. [2,3,4,5,6,7]
- Consider all aspects, including software and hardware, and technical and non-technical concepts, in the design of real-time embedded systems. [4,12]
Engineering accreditation
The Canadian Engineering Accreditation Board (CEAB) oversees the accreditation of engineering programs across Canada. To measure the effectiveness of an engineering program the CEAB has identified twelve specific attributes that the graduate is expected to possess and use as the foundation to developing and advancing an engineering career. To ensure that the overall curriculum of the Bachelor of Engineering in Electrical program covers these attributes sufficiently, the learning outcomes for each course have been mapped to applicable CEAB graduate attributes.
1. A knowledge base for engineering: Demonstrated competence in university level mathematics, natural sciences, engineering fundamentals, and specialized engineering knowledge appropriate to the program.
2. Problem analysis: An ability to use appropriate knowledge and skills to identify, formulate, analyze, and solve complex engineering problems in order to reach substantiated conclusions.
3. Investigation: An ability to conduct investigations of complex problems by methods that include appropriate experiments, analysis and interpretation of data, and synthesis of information in order to reach valid conclusions.
4. Design: An ability to design solutions for complex, open-ended engineering problems and to design systems, components or processes that meet specified needs with appropriate attention to health and safety risks, applicable standards, and economic, environmental, cultural and societal considerations.
5. Use of engineering tools: An ability to create, select, apply, adapt, and extend appropriate techniques, resources, and modern engineering tools to a range of engineering activities, from simple to complex, with an understanding of the associated limitations.
6. Individual and team work: An ability to work effectively as a member and leader in teams, preferably in a multi-disciplinary setting.
7. Communication skills: An ability to communicate complex engineering concepts within the profession and with society at large. Such ability includes reading, writing, speaking and listening, and the ability to comprehend and write effective reports and design documentation, and to give and effectively respond to clear instructions.
8. Professionalism: An understanding of the roles and responsibilities of the professional engineer in society, especially the primary role of protection of the public and the public interest.
9. Impact of engineering on society and the environment: An ability to analyze social and environmental aspects of engineering activities. Such ability includes an understanding of the interactions that engineering has with the economic, social, health, safety, legal, and cultural aspects of society, the uncertainties in the prediction of such interactions; and the concepts of sustainable design and development and environmental stewardship.
10. Ethics and equity: An ability to apply professional ethics, accountability, and equity.
11. Economics and project management: An ability to appropriately incorporate economics and business practices including project, risk, and change management into the practice of engineering and to understand their limitations.
12. Life-long learning: An ability to identify and to address their own educational needs in a changing world in ways sufficient to maintain their competence and to allow them to contribute to the advancement of knowledge.
Effective as of Fall 2017
Related Programs
Real-Time Embedded Systems (ELEX 7820) is offered as a part of the following programs:
- Indicates programs eligible for students to apply for Post-graduation Work Permit (PGWP).
School of Energy
- Electrical Engineering
Bachelor of Engineering Full-time
Programs and courses are subject to change without notice. Find out more about BCIT course cancellations.