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    Scholarships & exams

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

    Duration

    4 Years

    Bachelor of Robotics

    Iasscom Fortune Institute of Technology
    Duration
    4 Years
    Bachelor of Robotics UG OFFLINE

    Duration

    4 Years

    Bachelor of Robotics

    Iasscom Fortune Institute of Technology
    Duration
    Apply

    Fees

    ₹6,52,000

    Placement

    92.0%

    Avg Package

    ₹12,00,000

    Highest Package

    ₹18,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Bachelor of Robotics
    UG
    OFFLINE

    Fees

    ₹6,52,000

    Placement

    92.0%

    Avg Package

    ₹12,00,000

    Highest Package

    ₹18,00,000

    Seats

    120

    Students

    1,200

    ApplyCollege

    Seats

    120

    Students

    1,200

    Curriculum

    Curriculum Overview

    The Bachelor of Robotics program at Iasscom Fortune Institute of Technology is meticulously structured to provide students with a robust foundation in both theoretical knowledge and practical application. The curriculum emphasizes interdisciplinary learning, encouraging students to integrate concepts from multiple fields such as computer science, electrical engineering, mechanical engineering, and physics.

    Core Subjects

    The core subjects are designed to build essential skills required for advanced robotics applications:

    • Mathematics: Calculus, differential equations, linear algebra, probability, statistics, optimization, numerical methods
    • Physics: Classical mechanics, electromagnetism, thermodynamics, quantum physics, optics, modern physics
    • Computer Science: Programming fundamentals, data structures, algorithms, databases, machine learning, AI techniques
    • Electrical Engineering: Circuits and systems, digital electronics, microprocessors, control systems, signal processing
    • Mechanical Engineering: Mechanics of materials, design principles, manufacturing processes, kinematics, dynamics

    Departmental Electives

    Students are exposed to a wide range of departmental electives that allow them to specialize according to their interests and career goals:

    • Deep Learning and Neural Networks: Covers neural network architectures, backpropagation, convolutional networks, recurrent networks, transformers
    • Computer Vision and Image Processing: Focuses on image acquisition, filtering, segmentation, feature extraction, object recognition
    • Reinforcement Learning and Autonomous Agents: Explores Q-learning, policy gradients, actor-critic methods, multi-agent systems
    • Human-Robot Interaction and Interface Design: Addresses gesture recognition, voice commands, tactile feedback, user experience design
    • Advanced Control Systems for Robotics: Discusses optimal control, robust control, adaptive control, nonlinear control strategies
    • Robotics Hardware and Embedded System Integration: Covers sensor integration, microcontroller programming, motor drives, real-time systems
    • AI Ethics and Responsible AI Development: Examines bias mitigation, fairness, transparency, accountability in autonomous systems
    • Autonomous Navigation and SLAM Algorithms: Studies simultaneous localization and mapping algorithms, sensor fusion, graph optimization
    • Bio-Inspired Robotics: Investigates biological systems such as insect flight, fish swimming, mammalian locomotion
    • Swarm Robotics and Collective Behavior: Focuses on decentralized control algorithms, flocking behavior, consensus protocols

    Project-Based Learning Philosophy

    The department's philosophy on project-based learning is rooted in the belief that hands-on experience drives deeper understanding and fosters innovation. Mini-projects are introduced early in the curriculum to familiarize students with problem-solving approaches and teamwork dynamics. These projects typically last 3-4 weeks and involve small groups of 3-5 students working under faculty guidance.

    Final-year capstone projects span 6 months and require students to propose, design, implement, and present a comprehensive solution addressing a real-world challenge in robotics. Projects are selected through a competitive process involving faculty advisors, industry partners, and student proposals. Students receive mentorship throughout the project lifecycle, from concept development to final demonstration.

    Course Structure Table

    SemesterCourse CodeCourse TitleCredits (L-T-P-C)Prerequisites
    1MATH101Calculus and Differential Equations4-0-0-4-
    1PHYS101Basic Physics for Engineers3-0-0-3-
    1CS101Introduction to Programming3-0-2-4-
    1ME101Engineering Mechanics3-0-0-3-
    1EE101Basic Electrical Circuits3-0-0-3-
    1PHYS102Modern Physics and Applications3-0-0-3-
    1LAB101Programming Lab0-0-2-2-
    2MATH201Linear Algebra and Statistics4-0-0-4MATH101
    2PHYS201Thermodynamics and Fluid Mechanics3-0-0-3PHYS101
    2CS201Data Structures and Algorithms3-0-2-4CS101
    2ME201Mechanics of Materials3-0-0-3ME101
    2EE201Electromagnetic Fields and Circuits3-0-0-3EE101
    2LAB201Computer Programming Lab0-0-2-2CS101
    3MATH301Probability and Random Processes4-0-0-4MATH201
    3PHYS301Quantum Physics and Applications3-0-0-3PHYS102
    3CS301Database Systems and Machine Learning Fundamentals3-0-2-4CS201
    3ME301Design of Mechanical Components3-0-0-3ME201
    3EE301Digital Electronics and Microprocessors3-0-0-3EE201
    3LAB301Electronics Lab0-0-2-2EE201
    4MATH401Advanced Calculus and Optimization4-0-0-4MATH301
    4PHYS401Optics and Modern Physics Applications3-0-0-3PHYS301
    4CS401Advanced Algorithms and AI Techniques3-0-2-4CS301
    4ME401Manufacturing Processes and Automation3-0-0-3ME301
    4EE401Control Systems and Signal Processing3-0-0-3EE301
    4LAB401Microcontroller and Embedded Systems Lab0-0-2-2EE301
    5MATH501Numerical Methods and Computational Techniques4-0-0-4MATH401
    5PHYS501Relativity and Quantum Mechanics3-0-0-3PHYS401
    5CS501Computer Vision and Image Processing3-0-2-4CS401
    5ME501Robotics and Automation Systems3-0-0-3ME401
    5EE501Power Electronics and Drives3-0-0-3EE401
    5LAB501Robotics Lab0-0-2-2-
    6MATH601Advanced Probability and Stochastic Processes4-0-0-4MATH501
    6PHYS601Applications of Quantum Physics3-0-0-3PHYS501
    6CS601Deep Learning and Neural Networks3-0-2-4CS501
    6ME601Advanced Manufacturing and Industrial Robotics3-0-0-3ME501
    6EE601Robotics Control Systems3-0-0-3EE501
    6LAB601Advanced Robotics Lab0-0-2-2-
    7MATH701Mathematical Modeling and Simulation4-0-0-4MATH601
    7PHYS701Applications in Nanotechnology and Biophysics3-0-0-3PHYS601
    7CS701Reinforcement Learning and Autonomous Agents3-0-2-4CS601
    7ME701Human-Robot Interaction and Interface Design3-0-0-3ME601
    7EE701Advanced Control Theory for Robotics3-0-0-3EE601
    7LAB701Capstone Project Lab0-0-2-2-
    8MATH801Advanced Optimization and Numerical Methods4-0-0-4MATH701
    8PHYS801Emerging Technologies in Physics and Robotics3-0-0-3PHYS701
    8CS801AI Ethics and Responsible AI Development3-0-2-4CS701
    8ME801Advanced Robotics Systems Design3-0-0-3ME701
    8EE801Robotics Hardware and Embedded System Integration3-0-0-3EE701
    8LAB801Final Year Capstone Project Lab0-0-2-2-