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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Electronics

    Bishamber Sahai Institute Of Technology
    Duration
    4 Years
    Electronics UG OFFLINE

    Duration

    4 Years

    Electronics

    Bishamber Sahai Institute Of Technology
    Duration
    Apply

    Fees

    ₹6,00,000

    Placement

    92.0%

    Avg Package

    ₹4,50,000

    Highest Package

    ₹8,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Electronics
    UG
    OFFLINE

    Fees

    ₹6,00,000

    Placement

    92.0%

    Avg Package

    ₹4,50,000

    Highest Package

    ₹8,00,000

    Seats

    150

    Students

    250

    ApplyCollege

    Seats

    150

    Students

    250

    Curriculum

    Comprehensive Course Structure

    The Electronics program at Bishamber Sahai Institute Of Technology follows a structured academic calendar spanning eight semesters. Each semester is carefully designed to build upon previous knowledge and prepare students for advanced specialization.

    SemesterCourse CodeCourse TitleCredits (L-T-P-C)Prerequisites
    1PHYS-101Physics for Electronics3-1-0-4-
    1MATH-101Mathematics I4-0-0-4-
    1ENGL-101English Communication3-0-0-3-
    1CHEM-101Chemistry for Engineers3-0-0-3-
    1ECO-101Introduction to Electronics3-1-0-4-
    2MATH-201Mathematics II4-0-0-4MATH-101
    2PHYS-201Electromagnetic Fields and Waves3-1-0-4PHYS-101
    2ECO-201Circuit Analysis I3-1-0-4ECO-101
    2ECO-202Digital Logic Design3-1-0-4ECO-101
    2ECO-203Electronic Devices and Circuits3-1-0-4ECO-101
    3MATH-301Mathematics III4-0-0-4MATH-201
    3ECO-301Signals and Systems3-1-0-4ECO-201
    3ECO-302Analog Electronics I3-1-0-4ECO-203
    3ECO-303Electromagnetic Theory3-1-0-4PHYS-201
    3ECO-304Communication Systems3-1-0-4ECO-301
    4ECO-401Digital Electronics3-1-0-4ECO-202
    4ECO-402Analog Electronics II3-1-0-4ECO-302
    4ECO-403Control Systems3-1-0-4ECO-301
    4ECO-404Microprocessors and Microcontrollers3-1-0-4ECO-202
    5ECO-501Embedded Systems3-1-0-4ECO-404
    5ECO-502Power Electronics3-1-0-4ECO-302
    5ECO-503VLSI Design3-1-0-4ECO-401
    5ECO-504Wireless Communications3-1-0-4ECO-304
    6ECO-601Advanced Signal Processing3-1-0-4ECO-301
    6ECO-602Robotics and Automation3-1-0-4ECO-403
    6ECO-603Biomedical Electronics3-1-0-4ECO-302
    6ECO-604Optoelectronics3-1-0-4ECO-303
    7ECO-701Research Methodology2-0-0-2-
    7ECO-702Mini Project I2-0-0-2-
    7ECO-703Mini Project II2-0-0-2-
    7ECO-704Thesis/Capstone Project6-0-0-6-
    8ECO-801Advanced Topics in Electronics3-1-0-4-
    8ECO-802Internship6-0-0-6-

    Detailed Departmental Electives Overview

    Departmental electives in the Electronics program are designed to deepen students' understanding of specialized areas while providing flexibility for personal interest exploration. The following courses offer advanced insights into contemporary electronic technologies and applications.

    Advanced Signal Processing

    This course delves into advanced mathematical techniques used in signal processing, including wavelet transforms, Kalman filtering, and adaptive algorithms. Students learn to apply these methods to real-world problems in communications, image processing, and biomedical engineering. The curriculum emphasizes practical implementation using MATLAB and Python.

    Robotics and Automation

    Students are introduced to robotics fundamentals, including kinematics, dynamics, control systems, and sensor integration. The course includes hands-on lab sessions where students build and program robots for various tasks such as navigation, object recognition, and manipulation.

    Biomedical Electronics

    This elective explores the intersection of electronics and healthcare, focusing on medical device design, physiological signal analysis, and bioinstrumentation. Students work on projects involving ECG monitoring systems, pulse oximeters, and neural interfaces.

    Optoelectronics

    The course covers principles of light generation, detection, and modulation in electronic devices. Topics include semiconductor lasers, photodiodes, fiber optics, and quantum dots. Students engage in lab experiments to design and test optoelectronic components.

    Power Electronics

    This course focuses on the design and application of power conversion circuits, including DC-DC converters, inverters, and rectifiers. Emphasis is placed on efficiency optimization, thermal management, and integration into renewable energy systems.

    VLSI Design

    Students learn to design integrated circuits using hardware description languages (HDLs) such as Verilog and VHDL. The course covers logic synthesis, layout design, and verification techniques for modern VLSI systems.

    Wireless Communications

    This elective explores wireless communication principles, including modulation schemes, multiple access techniques, and network protocols. Students analyze real-world networks and simulate performance under various conditions.

    Embedded Systems

    The course provides a comprehensive overview of embedded systems architecture, operating systems, and real-time programming. Students develop projects involving microcontrollers, sensors, and communication modules.

    Control Systems

    This course introduces classical and modern control theory, including transfer functions, state-space representation, and system stability analysis. Practical applications include robotics control, process automation, and aerospace systems.

    Digital Electronics

    Focused on digital circuit design, this course covers combinational and sequential logic, flip-flops, counters, registers, and memory elements. Students implement designs using FPGA platforms and verify functionality through simulation tools.

    Project-Based Learning Philosophy

    Our program places a strong emphasis on project-based learning to ensure students gain practical experience alongside theoretical knowledge. Projects are structured to simulate real-world engineering challenges, encouraging innovation and problem-solving skills.

    The first year includes introductory projects such as designing simple circuits and building basic electronic devices. In the second year, students undertake more complex tasks like developing communication systems or analyzing signal processing algorithms. By the third year, students work on specialized projects aligned with their chosen specialization tracks.

    Mini-projects are assigned at the end of each semester, allowing students to apply concepts learned in class to practical scenarios. These projects are evaluated based on design quality, implementation, documentation, and presentation skills.

    The final-year thesis/capstone project is a comprehensive endeavor that allows students to explore an area of personal interest or industry relevance. Students select their topics in consultation with faculty mentors, who provide guidance throughout the research and development phases. The project culminates in a formal presentation and a detailed written report.