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University of Toronto

Visual Perception for Self-Driving Cars

Welcome to Visual Perception for Self-Driving Cars, the third course in University of Toronto’s Self-Driving Cars Specialization. This course will introduce you to the main perception tasks in autonomous driving, static and dynamic object detection, and will survey common computer vision methods for robotic perception. By the end of this course, you will be able to work with the pinhole camera model, perform intrinsic and extrinsic camera calibration, detect, describe and match image features and design your own convolutional neural networks. You'll apply these methods to visual odometry, object detection and tracking, and semantic segmentation for drivable surface estimation. These techniques represent the main building blocks of the perception system for self-driving cars. For the final project in this course, you will develop algorithms that identify bounding boxes for objects in the scene, and define the boundaries of the drivable surface. You'll work with synthetic and real image data, and evaluate your performance on a realistic dataset. This is an advanced course, intended for learners with a background in computer vision and deep learning. To succeed in this course, you should have programming experience in Python 3.0, and familiarity with Linear Algebra (matrices, vectors, matrix multiplication, rank, Eigenvalues and vectors and inverses).

状态:Linear Algebra
状态:Robotics
高级设置课程小时

精选评论

EJ

4.0评论日期:Dec 13, 2021

Liked the overarching themes and overall content of the course. Tuning the various OpenCV algorithms was unintuitive and not discussed in the course. Discussion forums are your friend.

LK

4.0评论日期:Mar 24, 2019

Good intro for those with not much experience w/ image processing/computer vision w.r.t. autonomous driving.

TI

5.0评论日期:Jun 4, 2020

although I have been working with object detection and image segmentation things but still alot of learning

PR

5.0评论日期:Dec 31, 2019

superb, the assignment was quite tough but the overall experience was amazing. thanks to instructors, TAs, Coursera, and fellow learners!

RG

5.0评论日期:Oct 6, 2019

Many thanks for this amazing course!!!! was very hard to me but I have learned a lot!!! Thanks!!!

RH

5.0评论日期:May 8, 2020

Wonderful course. I knew little things about gps and imu sensors. Camera is a complete new concept to me. Thank you.

JC

5.0评论日期:Mar 18, 2023

Fantastic course. Learned so much about classical and modern computer vision algorithms for self-driving cars.

AA

4.0评论日期:Sep 22, 2021

The final assignment in this course is at least well designed compared to previous courses.

DD

5.0评论日期:Mar 18, 2025

it was good, but it could be more in depth. what provided in the course was just the tip of the iceberg.

SV

5.0评论日期:Mar 19, 2021

Great learning experience. Concepts broken down and presented clearly. Very useful.

RB

5.0评论日期:Jan 12, 2020

I am really surprised at the depth of topics discussed. I believe i spent around 5-8 hours researching topics on ANN and Machine learning.

MJ

5.0评论日期:Jun 6, 2020

Very difficult course compared to the previous two courses but learning was fun.

所有审阅

显示:20/87

Jon Hauris
1.0
评论日期:Jul 12, 2019
Svetoslav Vassilev
3.0
评论日期:Jan 9, 2020
Igor Semenov
4.0
评论日期:Oct 9, 2019
Abdelrahman Mohamed
4.0
评论日期:Sep 25, 2019
flyhigher Ye
3.0
评论日期:May 5, 2020
Aref
5.0
评论日期:Jul 18, 2019
Chen Long
4.0
评论日期:Sep 11, 2019
Kiavash Fathi
2.0
评论日期:Aug 26, 2021
REVANTH BHATTARAM
5.0
评论日期:Jan 13, 2020
Qinwu Xu
1.0
评论日期:Aug 27, 2020
任家畅
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评论日期:May 15, 2020
刘宇轩
5.0
评论日期:May 18, 2019
PRASHANT KUMAR RAI
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评论日期:Jan 1, 2020
Anton Tmur
3.0
评论日期:May 7, 2020
Jose de Jesus Escamilla Losoyo
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评论日期:Jun 7, 2022
Joachim Schmidtchen
5.0
评论日期:Jun 18, 2019
Jean Nestor
5.0
评论日期:Jun 28, 2020
Shixuan Ran
5.0
评论日期:Aug 8, 2022
haozhen3
5.0
评论日期:Apr 24, 2019
tutq12 VinTech JSC
5.0
评论日期:Jun 3, 2021