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AI for Autonomous Vehicles and Robotics · LearnSpace
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AI for Autonomous Vehicles and Robotics

Курс от University of Michigan
Средний≈ 6.7 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

In this course, you will delve into the groundbreaking intersection of AI and autonomous systems, including autonomous vehicles and robotics. “AI for Autonomous Vehicles and Robotics” offers a deep exploration of how machine learning (ML) algorithms and techniques are revolutionizing the field of autonomy, enabling vehicles and robots to perceive, learn, and make decisions in dynamic environments. Through a blend of theoretical insights and practical applications, you’ll gain a solid understanding of supervised and unsupervised learning, reinforcement learning, and deep learning. You will delve into ML techniques tailored for perception tasks, such as object detection, segmentation, and tracking, as well as decision-making and control in autonomous systems. You will also explore advanced topics in machine learning for autonomy, including predictive modeling, transfer learning, and domain adaptation. Real-world applications and case studies will provide insights into how machine learning is powering innovations in self-driving cars, drones, and industrial robots. By the course's end, you will be able to leverage ML techniques to advance autonomy in vehicles and robots, driving innovation and shaping the future of autonomous systems engineering.

Навыки, которые вы освоите

RoboticsArtificial IntelligenceComputer VisionReinforcement LearningMachine LearningAlgorithmsMachine Learning AlgorithmsMachine Learning MethodsImage AnalysisArtificial Intelligence and Machine Learning (AI/ML)Transfer LearningGenerative AIControl SystemsDeep Learning

Программа курса

3 модулей · 24 учебных материалов

01Introduction to Key Concepts and Fundamentals7 материалов

Overview of Robotics Techniques

Introduction to Robotics TechniquesВидеоCourse SyllabusЧтениеHelp Us Learn About You!ЧтениеIntroduction to Jupyter Labs on CourseraЧтение

Overview of Self-Driving Cars

Учитесь у экспертов

Wei Lu

Charles M Vest Collegiate Professor of Engineering and Associate Chair of Mechanical Engineering

AI for Autonomous Vehicles and Robotics
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Обучение на Coursera

≈ 6.7 ч

3 модулей

Язык: Английский

Субтитры: Венгерский, Казахский, Испанский

Часть программы вашего университета
Introduction to Self-Driving CarsВидео
Convolutional Neural NetworksЧтение
Module 1 AssignmentЗадание
02Key Algorithms in Robotics and Self-Driving Cars6 материалов

Algorithms in Robotics

Algorithms in RoboticsВидеоIntroduction to Kalman FiltersЧтение

Algorithms in Self-Driving Cars

Algorithms in Self-Driving CarsВидеоKalman Filters in State Estimation ImplementationЧтениеKalman Filters in State Estimation- Programming ExerciseЛабораторнаяModule 2 AssignmentЗадание
03Application of AI/ML in Robotics and Self-Driving Cars11 материалов

Motion Planning, Perception, and Learning in Robotics

Motion Planning, Perception, and Learning in RoboticsВидеоIntroduction to Reinforcement LearningЧтениеReinforcement Learning (Q-table) ImplementationЧтениеReinforcement Learning (Q-table)- Programming ExerciseЛабораторная

State Estimation and Localization for Autonomous Vehicles

State Estimation and Localization for Autonomous VehiclesВидеоIntroduction to SLAMЧтение

Visual Perception for Self-Driving Cars

Visual Perception for Self-Driving CarsВидеоRegional Convolutional Neural Networks (R-CNN)ЧтениеModule 3 AssignmentЗаданиеEnd of Course SurveyЧтениеReferencesЧтение