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Demonstrate the ability to apply machine learning skills to solve a variety of autonomous driving related problems. README includes GitHub repository links for 5 successfully completed projects.

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Udacity-Self-Driving-Car-ND-Term1

The focus of Term 1 is applying machine learning to automotive tasks: deep learning, convolutional neural networks, support vector machines, and computer vision. It includes 5 projects from the Udacity SDC-ND Term 1 curriculum.

GitHub repository links to Term 1 projects are as given below.

Projects


1. Lane Lines

p1

To Implement a basic pipeline to find lane lines on the road using Canny edge detector and Hough transforms. Here is the link for the completed project - SDC-P1-Lane-Lines


2. Traffic Sign Classifier

p2

To build a Traffic Sign Recognition Classifier using Neural Network architecture. Here is the link for the completed project - SDC-P2-Traffic-Sign-Classifier


3. Behavioural Cloning

p3

To train Deep Neural Network to learn, how to drive a car using simulator data. Here is the link for the completed project - SDC-P3-Behavioural-Cloning


4. Advanced Lane Finding

p4

This project deals with finding lanes in complex scenarios like curving lines, shadows and changes in the color of the pavement. Here is the link for the completed project - SDC-P4-Advanced-Lane-Finding


5. Vehicle Detection And Tracking

p5

To detect vehicles in an image and track them from frame to frame in a video stream. Here is the link for the completed project - SDC-P5-Vehicle-Detection-And-Tracking


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Demonstrate the ability to apply machine learning skills to solve a variety of autonomous driving related problems. README includes GitHub repository links for 5 successfully completed projects.

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