Driverless

Driverless
Author: Hod Lipson,Melba Kurman
Publsiher: MIT Press
Total Pages: 323
Release: 2017-09-15
Genre: Transportation
ISBN: 9780262534475

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When human drivers let intelligent software take the wheel: the beginning of a new era in personal mobility. “Smart, wide-ranging, [and] nontechnical.” —Los Angeles Times “Anyone who wants to understand what's coming must read this fascinating book.” —Martin Ford, New York Times bestselling author of Rise of the Robots In the year 2014, Google fired a shot heard all the way to Detroit. Google's newest driverless car had no steering wheel and no brakes. The message was clear: cars of the future will be born fully autonomous, with no human driver needed. In the coming decade, self-driving cars will hit the streets, rearranging established industries and reshaping cities, giving us new choices in where we live and how we work and play. In this book, Hod Lipson and Melba Kurman offer readers insight into the risks and benefits of driverless cars and a lucid and engaging explanation of the enabling technology. Recent advances in software and robotics are toppling long-standing technological barriers that for decades have confined self-driving cars to the realm of fantasy. A new kind of artificial intelligence software called deep learning gives cars rapid and accurate visual perception. Human drivers can relax and take their eyes off the road. When human drivers let intelligent software take the wheel, driverless cars will offer billions of people all over the world a safer, cleaner, and more convenient mode of transportation. Although the technology is nearly ready, car companies and policy makers may not be. The authors make a compelling case for why government, industry, and consumers need to work together to make the development of driverless cars our society's next “Apollo moment.”

Introduction to Self Driving Vehicle Technology

Introduction to Self Driving Vehicle Technology
Author: Hanky Sjafrie
Publsiher: CRC Press
Total Pages: 182
Release: 2019-11-21
Genre: Computers
ISBN: 9781000712070

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This book aims to teach the core concepts that make Self-driving vehicles (SDVs) possible. It is aimed at people who want to get their teeth into self-driving vehicle technology, by providing genuine technical insights where other books just skim the surface. The book tackles everything from sensors and perception to functional safety and cybersecurity. It also passes on some practical know-how and discusses concrete SDV applications, along with a discussion of where this technology is heading. It will serve as a good starting point for software developers or professional engineers who are eager to pursue a career in this exciting field and want to learn more about the basics of SDV algorithms. Likewise, academic researchers, technology enthusiasts, and journalists will also find the book useful. Key Features: Offers a comprehensive technological walk-through of what really matters in SDV development: from hardware, software, to functional safety and cybersecurity Written by an active practitioner with extensive experience in series development and research in the fields of Advanced Driver Assistance Systems (ADAS) and Autonomous Driving Covers theoretical fundamentals of state-of-the-art SLAM, multi-sensor data fusion, and other SDV algorithms. Includes practical information and hands-on material with Robot Operating System (ROS) and Open Source Car Control (OSCC). Provides an overview of the strategies, trends, and applications which companies are pursuing in this field at present as well as other technical insights from the industry.

Autonomous Vehicles

Autonomous Vehicles
Author: Nathan Baker
Publsiher: Unknown
Total Pages: 135
Release: 2021-10-26
Genre: Electronic Book
ISBN: 1552215806

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Much of North American society has been built around automobiles -- our cities are designed around them; our economy is propelled by them. Therefore, the impact and benefit of autonomous vehicles to people, to the environment, and to society as a whole will be profound as they become more commonplace. This idea once seemed futuristic and far-fetched, but every day we come closer to realizing such technology in our daily lives. Proper automation will allow vehicles to move more quickly and safely by removing the risk of human error, and the law will need to adapt to this new reality. Civil liability may shift from drivers to manufacturers. Criminal acts will be changed by a "new normal" surrounding criminal intent. How would all of this be affected, for example, by a person's decision to take control of the vehicle rather than rely on automation? What if the person relies only on automation? Both are potentially risky. Over the coming decades, the law surrounding motor vehicles is going to go through profound changes as autonomous vehicles become common and issues of law deriving from advances in technology inevitably arise. The definition of autonomywill be debated as we move to find new solutions to age-old problems, ranging from gridlock to human error. With the transition to, and ongoing evolution of, autonomous vehicles, the law will have to be modified accordingly. A new area of law will be needed, and with it, an assessment of how the current law can be adapted. Autonomous Vehicles: Self-Driving Cars and the Law of Canadawill serve as a ready resource as courts and litigants begin the journey down this new road.

Self Driving Cars

Self Driving Cars
Author: Haydn Sonnad
Publsiher: 21st Century Skills Innovation
Total Pages: 0
Release: 2019
Genre: Juvenile Nonfiction
ISBN: 1534147616

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Did you ever wonder how innovation happens? Or what it takes to turn a new idea into something that works? The Innovation Library takes a look at people and their creative ideas. It explores how lasting contributions are made in diverse fields such as sports, entertainment, medicine, technology, and transportation. Explore the power of being open to different perspectives and sharing failures and successes with other. Discover how acting on creative ideas can lead to new solutions to old problems. -- back cover.

Self driving Cars

Self driving Cars
Author: Michael Fallon
Publsiher: Twenty-First Century Books (Tm)
Total Pages: 108
Release: 2018-08
Genre: Young Adult Nonfiction
ISBN: 9781541500556

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"Author Fallon presents a history of how the technology used in self-driving cars has developed, identifies recent technological gains, and surveys recent controversies surrounding the potential mass adoption of self-driving cars."--Provided by publisher.

Autonomous Vehicles

Autonomous Vehicles
Author: George Dimitrakopoulos,Aggelos Tsakanikas,Elias Panagiotopoulos
Publsiher: Elsevier
Total Pages: 202
Release: 2021-04-15
Genre: Transportation
ISBN: 9780323901383

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Autonomous Vehicles: Technologies, Regulations, and Societal Impacts explores both the autonomous driving concepts and the key hardware and software enablers, Artificial intelligence tools, needed infrastructure, communication protocols, and interaction with non-autonomous vehicles. It analyses the impacts of autonomous driving using a scenario-based approach to quantify the effects on the overall economy and affected sectors. The book assess from a qualitative and quantitative approach, the future of autonomous driving, and the main drivers, challenges, and barriers. The book investigates whether individuals are ready to use advanced automated driving vehicles technology, and to what extent we as a society are prepared to accept highly automated vehicles on the road. Building on the technologies, opportunities, strengths, threats, and weaknesses, Autonomous Vehicles: Technologies, Regulations, and Societal Impacts discusses the needed frameworks for automated vehicles to move inside and around cities. The book concludes with a discussion on what in applications comes next, outlining the future research needs. Broad, interdisciplinary and systematic coverage of the key issues in autonomous driving and vehicles Examines technological impact on society, governance, and the economy as a whole Includes foundational topical coverage, case studies, objectives, and glossary

Applied Deep Learning and Computer Vision for Self Driving Cars

Applied Deep Learning and Computer Vision for Self Driving Cars
Author: Sumit Ranjan,Dr. S. Senthamilarasu
Publsiher: Packt Publishing Ltd
Total Pages: 320
Release: 2020-08-14
Genre: Computers
ISBN: 9781838647025

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Explore self-driving car technology using deep learning and artificial intelligence techniques and libraries such as TensorFlow, Keras, and OpenCV Key FeaturesBuild and train powerful neural network models to build an autonomous carImplement computer vision, deep learning, and AI techniques to create automotive algorithmsOvercome the challenges faced while automating different aspects of driving using modern Python libraries and architecturesBook Description Thanks to a number of recent breakthroughs, self-driving car technology is now an emerging subject in the field of artificial intelligence and has shifted data scientists' focus to building autonomous cars that will transform the automotive industry. This book is a comprehensive guide to use deep learning and computer vision techniques to develop autonomous cars. Starting with the basics of self-driving cars (SDCs), this book will take you through the deep neural network techniques required to get up and running with building your autonomous vehicle. Once you are comfortable with the basics, you'll delve into advanced computer vision techniques and learn how to use deep learning methods to perform a variety of computer vision tasks such as finding lane lines, improving image classification, and so on. You will explore the basic structure and working of a semantic segmentation model and get to grips with detecting cars using semantic segmentation. The book also covers advanced applications such as behavior-cloning and vehicle detection using OpenCV, transfer learning, and deep learning methodologies to train SDCs to mimic human driving. By the end of this book, you'll have learned how to implement a variety of neural networks to develop your own autonomous vehicle using modern Python libraries. What you will learnImplement deep neural network from scratch using the Keras libraryUnderstand the importance of deep learning in self-driving carsGet to grips with feature extraction techniques in image processing using the OpenCV libraryDesign a software pipeline that detects lane lines in videosImplement a convolutional neural network (CNN) image classifier for traffic signal signsTrain and test neural networks for behavioral-cloning by driving a car in a virtual simulatorDiscover various state-of-the-art semantic segmentation and object detection architecturesWho this book is for If you are a deep learning engineer, AI researcher, or anyone looking to implement deep learning and computer vision techniques to build self-driving blueprint solutions, this book is for you. Anyone who wants to learn how various automotive-related algorithms are built, will also find this book useful. Python programming experience, along with a basic understanding of deep learning, is necessary to get the most of this book.

Hands On Vision and Behavior for Self Driving Cars

Hands On Vision and Behavior for Self Driving Cars
Author: Luca Venturi,Krishtof Korda
Publsiher: Packt Publishing Ltd
Total Pages: 374
Release: 2020-10-23
Genre: Computers
ISBN: 9781800201934

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A practical guide to learning visual perception for self-driving cars for computer vision and autonomous system engineers Key FeaturesExplore the building blocks of the visual perception system in self-driving carsIdentify objects and lanes to define the boundary of driving surfaces using open-source tools like OpenCV and PythonImprove the object detection and classification capabilities of systems with the help of neural networksBook Description The visual perception capabilities of a self-driving car are powered by computer vision. The work relating to self-driving cars can be broadly classified into three components - robotics, computer vision, and machine learning. This book provides existing computer vision engineers and developers with the unique opportunity to be associated with this booming field. You will learn about computer vision, deep learning, and depth perception applied to driverless cars. The book provides a structured and thorough introduction, as making a real self-driving car is a huge cross-functional effort. As you progress, you will cover relevant cases with working code, before going on to understand how to use OpenCV, TensorFlow and Keras to analyze video streaming from car cameras. Later, you will learn how to interpret and make the most of lidars (light detection and ranging) to identify obstacles and localize your position. You’ll even be able to tackle core challenges in self-driving cars such as finding lanes, detecting pedestrian and crossing lights, performing semantic segmentation, and writing a PID controller. By the end of this book, you’ll be equipped with the skills you need to write code for a self-driving car running in a driverless car simulator, and be able to tackle various challenges faced by autonomous car engineers. What you will learnUnderstand how to perform camera calibrationBecome well-versed with how lane detection works in self-driving cars using OpenCVExplore behavioral cloning by self-driving in a video-game simulatorGet to grips with using lidarsDiscover how to configure the controls for autonomous vehiclesUse object detection and semantic segmentation to locate lanes, cars, and pedestriansWrite a PID controller to control a self-driving car running in a simulatorWho this book is for This book is for software engineers who are interested in learning about technologies that drive the autonomous car revolution. Although basic knowledge of computer vision and Python programming is required, prior knowledge of advanced deep learning and how to use sensors (lidar) is not needed.