Collegese

Welcome to Collegese! Sign in →

Collegese

    Search colleges and courses

    Search and navigate to colleges and courses

    Start your journey

    Ready to find your dream college?

    Join thousands of students making smarter education decisions.

    Watch How It WorksGet Started

    Discover

    Browse & filter colleges

    Compare

    Side-by-side analysis

    Explore

    Detailed course info

    Collegese

    India's education marketplace helping students discover the right colleges, compare courses, and build careers they deserve.

    © 2026 Collegese. All rights reserved. A product of Nxthub Consulting Pvt. Ltd.

    Apply

    Scholarships & exams

    support@collegese.com
    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Electronics

    Roorkee College Of Engineering
    Duration
    4 Years
    Electronics UG OFFLINE

    Duration

    4 Years

    Electronics

    Roorkee College Of Engineering
    Duration
    Apply

    Fees

    ₹12,00,000

    Placement

    92.0%

    Avg Package

    ₹6,50,000

    Highest Package

    ₹12,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Electronics
    UG
    OFFLINE

    Fees

    ₹12,00,000

    Placement

    92.0%

    Avg Package

    ₹6,50,000

    Highest Package

    ₹12,00,000

    Seats

    120

    Students

    600

    ApplyCollege

    Seats

    120

    Students

    600

    Curriculum

    Comprehensive Course Structure

    The Electronics curriculum at Roorkee College Of Engineering is meticulously structured to ensure a progressive and comprehensive learning experience over four years. The program includes core subjects, departmental electives, science electives, and laboratory components designed to build both theoretical understanding and practical skills.

    SemesterCourse CodeCourse TitleCredits (L-T-P-C)Prerequisites
    IES101Engineering Mathematics I3-0-2-4-
    IES102Physics for Electronics3-0-2-4-
    IES103Chemistry for Engineers3-0-2-4-
    IES104Introduction to Electronics3-0-2-4-
    IES105Programming for Engineers3-0-2-4-
    IES106Engineering Graphics2-0-2-3-
    IES107Workshop Practice0-0-4-2-
    IIES201Engineering Mathematics II3-0-2-4ES101
    IIES202Circuit Analysis3-0-2-4ES102
    IIES203Electronic Devices3-0-2-4ES102
    IIES204Digital Logic Design3-0-2-4ES104
    IIES205Signals and Systems3-0-2-4ES101
    IIES206Lab: Circuit Analysis0-0-4-2ES202
    IIIES301Control Systems3-0-2-4ES205
    IIIES302Microprocessors and Microcontrollers3-0-2-4ES204
    IIIES303Communication Systems3-0-2-4ES205
    IIIES304Electromagnetic Fields3-0-2-4ES102
    IIIES305Probability and Statistics3-0-2-4ES101
    IIIES306Lab: Microprocessors0-0-4-2ES302
    IVES401Embedded Systems Design3-0-2-4ES302
    IVES402VLSI Design Fundamentals3-0-2-4ES302
    IVES403Power Electronics3-0-2-4ES203
    IVES404Signal Processing3-0-2-4ES205
    IVES405Antennas and Wave Propagation3-0-2-4ES304
    IVES406Lab: Embedded Systems0-0-4-2ES401
    VES501Machine Learning for Signal Processing3-0-2-4ES404
    VES502Wireless Communication3-0-2-4ES303
    VES503Biomedical Electronics3-0-2-4ES302
    VES504Robotics and Control Systems3-0-2-4ES301
    VES505Advanced VLSI Design3-0-2-4ES402
    VES506Lab: Advanced VLSI Design0-0-4-2ES505
    VIES601Internet of Things (IoT)3-0-2-4ES401
    VIES602Power System Analysis3-0-2-4ES303
    VIES603Renewable Energy Systems3-0-2-4ES303
    VIES604Computer Vision and Image Processing3-0-2-4ES404
    VIES605Advanced Control Systems3-0-2-4ES301
    VIES606Lab: IoT and Embedded Systems0-0-4-2ES601
    VIIES701Capstone Project I3-0-2-4-
    VIIES702Research Methodology3-0-2-4-
    VIIES703Advanced Topics in Electronics3-0-2-4-
    VIIIES801Capstone Project II3-0-2-4ES701
    VIIIES802Electronics in Industry3-0-2-4-
    VIIIES803Entrepreneurship and Innovation3-0-2-4-

    Advanced Departmental Electives

    The department offers several advanced elective courses designed to deepen students' understanding of specialized areas within electronics:

    • Machine Learning for Signal Processing: This course explores the intersection of signal processing and machine learning, focusing on applications in audio, image, and biomedical signals. Students learn to implement algorithms using Python and MATLAB, with a focus on real-world case studies.
    • Wireless Communication: A comprehensive exploration of wireless communication systems including modulation techniques, multiple access methods, and network protocols. The course integrates theoretical concepts with practical implementation using software-defined radios.
    • Biomedical Electronics: Focuses on the application of electronic principles in healthcare, covering topics such as medical imaging, biosensors, and patient monitoring systems. Students gain hands-on experience with biomedical instrumentation.
    • Robotics and Control Systems: Combines control theory with robotics applications, teaching students to design and implement autonomous robotic systems using microcontrollers and sensors.
    • Advanced VLSI Design: Covers advanced topics in very large-scale integration including system-on-chip design, low-power design techniques, and advanced fabrication processes. Students work on real-world design projects using industry-standard tools.
    • Internet of Things (IoT): Explores the architecture and implementation of IoT systems, covering sensor networks, cloud computing integration, and security considerations in connected devices.
    • Power System Analysis: Introduces students to the analysis of electrical power systems including load flow studies, stability analysis, and protection schemes. The course emphasizes practical applications in modern power grids.
    • Renewable Energy Systems: Focuses on the integration of renewable energy sources into the power grid, covering solar and wind energy conversion systems, energy storage technologies, and smart grid concepts.
    • Computer Vision and Image Processing: Combines image processing techniques with machine learning algorithms to solve problems in computer vision applications such as object recognition and tracking.
    • Advanced Control Systems: Covers modern control theory including state-space methods, robust control, and optimal control. The course emphasizes design and implementation of control systems for complex industrial processes.

    Project-Based Learning Philosophy

    The department strongly believes in project-based learning as a means to bridge the gap between theoretical knowledge and practical application. Students are encouraged to engage in hands-on projects from their first year, gradually increasing in complexity and scope.

    The structure of the project-based learning approach includes:

    • Mini-projects (Year I-II): These are smaller-scale projects designed to reinforce fundamental concepts and build basic skills. Projects typically involve designing simple circuits or implementing basic algorithms.
    • Intermediate Projects (Year III): These projects focus on more complex applications, often involving integration of multiple concepts and technologies. Students work in teams to develop prototypes or simulation models.
    • Capstone Projects (Year IV): The final-year capstone project is a comprehensive endeavor that requires students to apply all their knowledge to solve a real-world problem. Projects are often sponsored by industry partners and involve extensive research and development.

    Evaluation criteria for projects include:

    • Technical Execution
    • Innovation and Creativity
    • Team Collaboration
    • Documentation Quality
    • Presentation Skills
    • Problem-Solving Approach

    The project selection process involves a combination of faculty recommendations, student interest, and industry relevance. Students are matched with mentors based on their interests and expertise, ensuring personalized guidance throughout the project lifecycle.