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Autonomous Driving - 打包一波自动驾驶资料

Courses

(Toronto) CSC2541: Visual Perception for Autonomous Driving, Winter 2016


  • homepage: http://www.cs.toronto.edu/~urtasun/courses/CSC2541/CSC2541_Winter16.html

(MIT) 6.S094: Deep Learning for Self-Driving Cars

  • homepage: http://selfdrivingcars.mit.edu/

  • github: https://github.com/lexfridman/deepcars

  • youtube: https://www.youtube.com/playlist?list=PLrAXtmErZgOeiKm4sgNOknGvNjby9efdf

  • mirror: https://pan.baidu.com/s/1boLRFaB

How to Land An Autonomous Vehicle Job: Coursework

  • blog: https://medium.com/self-driving-cars/how-to-land-an-autonomous-vehicle-job-coursework-e7acc2bfe740#.7vfjx3i1j

Papers

An Empirical Evaluation of Deep Learning on Highway Driving

  • arxiv: http://arxiv.org/abs/1504.01716

  • github: https://github.com/brodyh/caffe

DeepDriving

DeepDriving: Learning Affordance for Direct Perception in Autonomous Driving


  • project page: http://deepdriving.cs.princeton.edu/

  • paper: http://deepdriving.cs.princeton.edu/paper.pdf

  • code: http://deepdriving.cs.princeton.edu/DeepDriving.zip

End to End Learning for Self-Driving Cars

  • intro: NVIDIA DevBox and Torch 7, 30 FPS

  • arxiv: http://arxiv.org/abs/1604.07316

  • blog: https://devblogs.nvidia.com/parallelforall/deep-learning-self-driving-cars/

  • demo: https://www.youtube.com/watch?v=NJU9ULQUwng&feature=youtu.be

  • github: https://github.com/SullyChen/Nvidia-Autopilot-TensorFlow

End-to-End Deep Learning for Self-Driving Cars

  • blog: https://devblogs.nvidia.com/parallelforall/deep-learning-self-driving-cars/


Can we unify monocular detectors for autonomous driving by using the pixel-wise semantic segmentation of CNNs?

  • arxiv: http://arxiv.org/abs/1607.00971

BRAIN4CARS: Cabin Sensing for Safe and Personalized Driving

Brain4Cars: Sensory-Fusion Recurrent Neural Models for Driver Activity Anticipation

Brain4Cars: Car That Knows Before You Do via Sensory-Fusion Deep Learning Architecture

  • arxiv: http://arxiv.org/abs/1601.00740

Car that Knows Before You Do: Anticipating Maneuvers via Learning Temporal Driving Models


  • arxiv: http://arxiv.org/abs/1504.02789

  • github: https://github.com/asheshjain399/ICCV2015_Brain4Cars

Recurrent Neural Networks for Driver Activity Anticipation via Sensory-Fusion Architecture


  • project page: http://www.brain4cars.com/

  • arxiv: http://arxiv.org/abs/1509.05016

  • github: https://github.com/asheshjain399/RNNexp

Long-term Planning by Short-term Prediction

  • arxiv: http://arxiv.org/abs/1602.01580

Learning a Driving Simulator


  • introo: by hacker Geohot

  • project page: http://research.comma.ai/

  • arxiv: http://arxiv.org/abs/1608.01230

  • paper: https://github.com/commaai/research/blob/master/paper/commalds.pdf

  • github: https://github.com/commaai/research

Comma.ai open-sources the data it used for its first successful driverless trips

  • blog: https://techcrunch.com/2016/08/03/comma-ai-open-sources-the-data-it-used-for-its-first-successful-driverless-trips/

Autonomous driving challenge: To Infer the property of a dynamic object based on its motion pattern using recurrent neural network

  • arxiv: http://arxiv.org/abs/1609.00361

Safe, Multi-Agent, Reinforcement Learning for Autonomous Driving

  • arxiv: https://arxiv.org/abs/1610.03295

Learning from Maps: Visual Common Sense for Autonomous Driving

  • arxiv: https://arxiv.org/abs/1611.08583

SAD-GAN: Synthetic Autonomous Driving using Generative Adversarial Networks

  • intro: Accepted at the Deep Learning for Action and Interaction Workshop, 30th Conference on Neural Information Processing Systems (NIPS 2016)

  • arxiv: https://arxiv.org/abs/1611.08788

MultiNet: Real-time Joint Semantic Reasoning for Autonomous Driving

  • intro: first place on Kitti Road Segmentation. joint classification, detection and semantic segmentation via a unified architecture, less than 100 ms to perform all tasks

  • arxiv: https://arxiv.org/abs/1612.07695

  • github: https://github.com/MarvinTeichmann/MultiNet

Projects

Caffe-Autopilot: Car autopilot software that uses C++, BVLC Caffe, OpenCV, and SFML

  • github: https://github.com/SullyChen/Caffe-Autopilot

Self Driving Car Demo

  • intro; A project that trains a virtual car to how to move an object around a screen (drive itself) without running into obstacles using a type of reinforcement learning called Q-Learning

  • github: https://github.com/llSourcell/Self-Driving-Car-Demo/

Autoware: Open-source software for urban autonomous driving

  • github: https://github.com/CPFL/Autoware

Open Sourcing 223GB of Driving Data

  • homepage: https://udacity.com/self-driving-car

  • blog: https://medium.com/udacity/open-sourcing-223gb-of-mountain-view-driving-data-f6b5593fbfa5#.q8nk5bfpp

  • github: https://github.com/udacity/self-driving-car

Machine Learning for RC Cars


  • github: https://github.com/kendricktan/suiron

Self Driving (Toy) Ferrari

  • github: https://github.com/RyanZotti/Self-Driving-Car

Lane Finding Project for Self-Driving Car ND

  • github: https://github.com/udacity/CarND-LaneLines-P1

Instructions on how to get your development environment ready for Udacity Self Driving Car (SDC) Challenges

  • github: https://github.com/gtarobotics/self-driving-car

DeepDrive: self-driving car AI

  • intro: Caffe Model / Dataset / Tips and Tricks

  • homepage: http://deepdrive.io/

DeepDrive setup: Run a self-driving car simulator from the comfort of your own PC

  • github: https://github.com/crizCraig/deepdrive

DeepTesla: End-to-End Learning from Human and Autopilot Driving

http://selfdrivingcars.mit.edu/deeptesla/


Blogs

Self-driving cars: How far away are we REALLY from autonomous cars?(7 Aug 2015)

http://www.alphr.com/cars/1001329/self-driving-cars-how-far-away-are-we-really-from-autonomous-cars

Practice makes perfect: Driverless cars will learn from their mistakes(9 Oct 2015)

http://www.alphr.com/cars/1001713/practice-makes-perfect-driverless-cars-will-learn-from-their-mistakes

Eyes on the Road: How Autonomous Cars Understand What They’re Seeing

  • blog: http://blogs.nvidia.com/blog/2016/01/05/eyes-on-the-road-how-autonomous-cars-understand-what-theyre-seeing/

Human-in-the-loop deep learning will help drive autonomous cars

http://venturebeat.com/2016/06/25/human-in-the-loop-deep-learning-will-help-drive-autonomous-cars/

Using reinforcement learning in Python to teach a virtual car to avoid obstacles

  • part 1: https://medium.com/@harvitronix/using-reinforcement-learning-in-python-to-teach-a-virtual-car-to-avoid-obstacles-6e782cc7d4c6#.rneyuerga

  • part 2: https://medium.com/@harvitronix/reinforcement-learning-in-python-to-teach-a-virtual-car-to-avoid-obstacles-part-2-93e614fcd238#.1pt1lli4c

  • part 3: https://medium.com/@harvitronix/reinforcement-learning-in-python-to-teach-an-rc-car-to-avoid-obstacles-part-3-a1d063ac962f#.jwzm2v1r4

  • github: https://github.com/harvitronix/reinforcement-learning-car

Autonomous RC car using Raspberry Pi and Neural Networks

  • blog: http://www.multunus.com/blog/2016/07/autonomous-rc-car-using-raspberry-pi-and-neural-networks/

  • github: https://github.com/multunus/autonomous-rc-car

The Road Ahead: Autonomous Vehicles Startup Ecosystem


https://medium.com/the-mission/the-road-ahead-autonomous-vehicles-startup-ecosystem-3c91d546673d#.gft1xyh9l

Deep Driving - A revolutionary AI technique is about to transform the self-driving car

https://www.technologyreview.com/s/602600/deep-driving/

**Visualizations for regressing wheel steering angles in self driving cars with Keras **

  • blog: http://jacobcv.blogspot.jp/2016/10/visualizations-for-regressing-wheel.html

  • github: https://github.com/jacobgil/keras-steering-angle-visualizations

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