Welcome to State Estimation and Localization for Self-Driving Cars, the second course in University of Toronto’s Self-Driving Cars Specialization. We recommend you take the first course in the Specialization prior to taking this course.

State Estimation and Localization for Self-Driving Cars

State Estimation and Localization for Self-Driving Cars
This course is part of Self-Driving Cars Specialization


Instructors: Jonathan Kelly
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What you'll learn
Understand the key methods for parameter and state estimation used for autonomous driving, such as the method of least-squares
Develop a model for typical vehicle localization sensors, including GPS and IMUs
Apply extended and unscented Kalman Filters to a vehicle state estimation problem
Apply LIDAR scan matching and the Iterative Closest Point algorithm
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Reviewed on Oct 29, 2019
best online course so far that explains kalman filter and estimation methods with examples not just focusing on theoretical ,Thanks to the Dr's and course staff who worked hard to produce this course.
Reviewed on Feb 7, 2023
Video lectures arer great. Programming assignments are also well designed. I just hoped more info of how input data for the last assignment was acquired.
Reviewed on Dec 13, 2021
I have learned KF in the past. First time learning EKF. I liked the rigor in this course! Felt like a legitimate university lesson.




