In the contemporary era, electronics stands as the foremost domain of rapid technological advancement, characterized by unparalleled growth and continual evolution. It permeates every facet of engineering, spanning computer science, telecommunications, defense systems, mechatronics, instrumentation, automation, robotics, artificial intelligence, computer networks, satellite technology, and educational spheres. Electronics has precipitated a paradigm shift in global civilization, revolutionizing the very fabric of human existence.
The realm of communication has undergone a profound transformation, owing to the relentless progress in electronics. Presently, communication transcends geographical barriers, facilitated by computers, mobile devices, and satellite networks spanning vast expanses of land and sea. Yet, the horizon of possibilities remains boundless, with emerging technologies poised to further revolutionize communication, all rooted deeply in the foundational principles of electronics.
Vision:
To be a globally recognized centre in the field of electronics for preparing trained technical professionals with deep sense of integrity and an ingrained desire to contribute towards development of the society.
Mission:
The establishment of the School of Electronics & Communication Engineering aims to provide students with unparalleled training in electronics, equipping them to meet the rigorous demands of the fiercely competitive global industrial landscape. The objectives of the B.Tech. Programme encompass
1. Engineering knowledge: Apply the knowledge of mathematics, science, engineering fundamentals, and an engineering specialization to the solution of complex engineering problem.
2. Problem analysis: Identify, formulate, review research literature, and analyze complex engineering problems reaching substantiated conclusions using first principles of mathematics, natural sciences, and engineering sciences.
3. Design/development of solutions: Design solutions for complex engineering problems and design system components or processes that meet the specified needs with appropriate consideration for the public health and safety, and the cultural, societal, and environmental considerations.
4. Conduct investigations of complex problems: Use research-based knowledge and research methods including design of experiments, analysis and interpretation of data, and synthesis of the information to provide valid conclusions.
5. Modern tool usage: Create, select, and apply appropriate techniques, resources, and modern engineering and IT tools including prediction and modeling to complex engineering activities with an understanding of the limitations.
6. The engineer and society: Apply reasoning informed by the contextual knowledge to assess societal, health, safety, legal and cultural issues and the consequent responsibilities relevant to the professional engineering practice.
7. Environment and sustainability: Understand the impact of the professional engineering solutions in societal and environmental contexts, and demonstrate the knowledge of and need for sustainable development.
8. Ethics: Apply ethical principles and commit to professional ethics and responsibilities and norms of the engineering practice.
9. Individual and team work: Function effectively as an individual, and as a member or leader in diverse teams, and in multidisciplinary settings.
10. Communication: Communicate effectively on complex engineering activities with the engineering community and with society at large, such as, being able to comprehend and write effective reports and design documentation, make effective presentations, and give and receive clear instructions.
11. Project management and finance: Demonstrate knowledge and understanding of the engineering and management principles and apply these to one’s own work, as a member and leader in a team, to manage projects and in multidisciplinary environments.
12. Life-long learning: Recognize the need for, and have the preparation and ability to engage in independent and life-long learning in the broadest context of technological change.
Program Education Objectives (B.Tech.)
Program Specific Outcomes (B.Tech.)
Program Education Objectives ( M.Tech.)
Program Specific Outcomes ( M.Tech.)
Students should be able to apply their knowledge of ECE principles to design and implement solutions in diverse areas like VLSI, signal processing, communication, and embedded systems.
Students should demonstrate proficiency in using software and hardware tools, including simulation software, CAD tools, and specialized testing equipment.
Students should be able to identify, formulate, and solve complex problems in ECE, and conduct research to develop novel solutions.
Students should be able to demonstrate ethical behavior and professional responsibility in their work, considering the societal and environmental impact of their engineering solutions.
Program | Course Structure/Syllabus |
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B.Tech. | VAC/SEC/AEC 2025 Batch 2024 Batch 2023 Batch 2022 Batch 2021 Batch 2020 Batch 2019 Batch |
M.Tech. | Course Structure |
The program prioritizes experiential learning, with a substantial portion of the curriculum dedicated to practical application. Students engage with state-of-the-art equipment and apply classroom knowledge. Alongside traditional coursework, students refine skills through group discussions, presentations, and mandatory project work starting from the 5th semester. Continuous assessment evaluates their progress. Furthermore, students undertake summer training in industrial settings, gaining insights into project management, teamwork, quality assurance, and documentation adhering to industry standards. This comprehensive approach ensures students are equipped with not only theoretical knowledge but also practical competencies essential for their professional development.
At the School of Electronics and Communication, University, we pride ourselves on providing a dynamic learning environment equipped with state-of-the-art facilities to nurture the next generation of innovators and engineers. Our infrastructure is designed to foster collaborative learning and hands-on experience, ensuring students are well-prepared for the challenges of the modern world.
In summary, the School of Electronics and Communication at University offers a robust infrastructure designed to cultivate excellence in teaching, research, and industry engagement. From interactive classrooms to cutting-edge laboratories and industry partnerships, we are committed to providing students with a comprehensive education that prepares them for success in the ever-evolving field of electronics and communication engineering.
B.Tech. Results
M.Tech. Results
Title | Date | Action |
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Summer semester registration 2024-25 | 12/06/2025 | Download |