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

    Duration

    4 Years

    Microcontrollers

    Electronics Service And Training Centre
    Duration
    4 Years
    Microcontrollers UG OFFLINE

    Duration

    4 Years

    Microcontrollers

    Electronics Service And Training Centre
    Duration
    Apply

    Fees

    ₹12,00,000

    Placement

    92.0%

    Avg Package

    ₹8,50,000

    Highest Package

    ₹18,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Microcontrollers
    UG
    OFFLINE

    Fees

    ₹12,00,000

    Placement

    92.0%

    Avg Package

    ₹8,50,000

    Highest Package

    ₹18,00,000

    Seats

    100

    Students

    300

    ApplyCollege

    Seats

    100

    Students

    300

    Curriculum

    Comprehensive Course Structure

    The B.Tech program in Microcontrollers is structured over 8 semesters, each building upon the previous one to ensure a progressive and comprehensive understanding of embedded systems design and development. The curriculum includes core courses, departmental electives, science electives, and laboratory sessions designed to provide both theoretical knowledge and practical skills.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1EC 101Engineering Mathematics I3-1-0-4None
    1EC 102Basic Electronics3-1-0-4None
    1EC 103Programming in C3-1-0-4None
    1EC 104Digital Logic Design3-1-0-4None
    1EC 105Basic Electrical Engineering3-1-0-4None
    1EC 106Introduction to Microcontrollers2-0-2-3None
    2EC 201Engineering Mathematics II3-1-0-4EC 101
    2EC 202Electronics Devices and Circuits3-1-0-4EC 102
    2EC 203Data Structures and Algorithms3-1-0-4EC 103
    2EC 204Microprocessor Architecture3-1-0-4EC 104
    2EC 205Electronic Measurements and Instrumentation3-1-0-4EC 102
    2EC 206Microcontroller Laboratory0-0-4-2EC 106
    3EC 301Engineering Mathematics III3-1-0-4EC 201
    3EC 302Analog and Digital Communication3-1-0-4EC 202
    3EC 303Embedded Systems Design3-1-0-4EC 204
    3EC 304Signal and System Analysis3-1-0-4EC 201
    3EC 305Microcontroller Programming3-1-0-4EC 103
    3EC 306Real-Time Operating Systems3-1-0-4EC 303
    4EC 401Probability and Statistics3-1-0-4EC 201
    4EC 402Wireless Communication Systems3-1-0-4EC 302
    4EC 403Sensors and Actuators3-1-0-4EC 202
    4EC 404Control Systems3-1-0-4EC 304
    4EC 405Advanced Microcontroller Applications3-1-0-4EC 305
    4EC 406Embedded System Testing and Validation3-1-0-4EC 303
    5EC 501Microcontroller Security3-1-0-4EC 405
    5EC 502Power Electronics and Drives3-1-0-4EC 202
    5EC 503Internet of Things (IoT) Technologies3-1-0-4EC 302
    5EC 504Microcontroller-Based Robotics3-1-0-4EC 303
    5EC 505Advanced Embedded Systems3-1-0-4EC 406
    5EC 506Capstone Project I0-0-6-3EC 405
    6EC 601Advanced Control Systems3-1-0-4EC 404
    6EC 602Biomedical Instrumentation3-1-0-4EC 303
    6EC 603Smart Grid Technologies3-1-0-4EC 502
    6EC 604Automotive Electronics3-1-0-4EC 503
    6EC 605Industrial Automation3-1-0-4EC 504
    6EC 606Capstone Project II0-0-6-3EC 505
    7EC 701Research Methodology3-1-0-4None
    7EC 702Special Topics in Embedded Systems3-1-0-4EC 605
    7EC 703Thesis Preparation0-0-6-3EC 701
    8EC 801Final Year Project0-0-12-6EC 703
    8EC 802Professional Ethics and Social Responsibility2-0-0-2None
    8EC 803Internship0-0-12-6EC 505

    Detailed Course Descriptions

    The department emphasizes advanced departmental electives that align with industry trends and research directions. Here are descriptions of several key courses:

    Microcontroller Security

    This course delves into the critical challenges of securing embedded systems, covering topics such as hardware-level security, cryptographic implementations, secure boot processes, and threat modeling for microcontroller-based applications. Students learn to design robust security frameworks that protect against physical attacks, side-channel leaks, and software vulnerabilities.

    Power Electronics and Drives

    This course explores the principles of power conversion and motor control using microcontroller-based systems. It covers rectifiers, inverters, DC-DC converters, and PWM techniques for controlling electric drives in industrial applications. The course integrates practical lab sessions where students implement power electronics circuits using microcontroller controllers.

    Internet of Things (IoT) Technologies

    Students are introduced to the architecture, protocols, and standards of IoT systems. Topics include sensor networks, cloud integration, edge computing, data analytics, and privacy considerations. The course emphasizes hands-on development using platforms like ESP32, Raspberry Pi, and Arduino for building scalable IoT applications.

    Microcontroller-Based Robotics

    This course combines microcontroller programming with robotics fundamentals. Students learn to design and build autonomous robots using sensors, actuators, and microcontrollers. The curriculum includes path planning, obstacle avoidance, motor control, and communication between robot components.

    Advanced Embedded Systems

    This course explores advanced architectures and optimization techniques in embedded systems. It covers topics such as memory management, performance profiling, real-time scheduling algorithms, and low-power design strategies. Students also study system-on-chip (SoC) integration and heterogeneous computing models.

    Research Methodology

    This foundational course prepares students for independent research by teaching them how to formulate research questions, conduct literature reviews, design experiments, analyze data, and write technical reports. The course includes guest lectures from leading researchers and practical sessions in lab environments.

    Project-Based Learning Philosophy

    The department believes in project-based learning as a core pedagogical strategy that bridges theory with practice. Students engage in both mini-projects and final-year thesis projects throughout their academic journey, guided by faculty mentors with industry experience.

    Mini-Projects (Semesters 1-5)

    These projects are integrated into the curriculum to reinforce learning objectives and encourage experimentation. Each mini-project is assigned a credit value of 2-3 credits and requires students to apply concepts learned in lectures to real-world problems. Mini-projects often involve team collaboration and are evaluated based on design documentation, implementation quality, and presentation skills.

    Final-Year Thesis/Capstone Project

    The capstone project is the culmination of the student's academic journey, requiring them to solve a significant problem in microcontroller-based systems. Students work closely with faculty mentors to select a topic, design a solution, implement it using appropriate tools and technologies, and document their findings. The project must demonstrate innovation, technical depth, and practical applicability.

    Project Selection Process

    Students are encouraged to propose their own project ideas or select from a list of faculty-recommended projects. The selection process involves discussions with potential mentors, review of project feasibility, and alignment with departmental research priorities. Projects are chosen based on relevance to industry needs, available resources, and the student's interests.