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Human-Like Decision Making and Control for Autonomous Driving

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Release : 2022-07-25
Genre : Mathematics
Kind : eBook
Book Rating : 028/5 ( reviews)

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Book Synopsis Human-Like Decision Making and Control for Autonomous Driving by : Peng Hang

Download or read book Human-Like Decision Making and Control for Autonomous Driving written by Peng Hang. This book was released on 2022-07-25. Available in PDF, EPUB and Kindle. Book excerpt: This book details cutting-edge research into human-like driving technology, utilising game theory to better suit a human and machine hybrid driving environment. Covering feature identification and modelling of human driving behaviours, the book explains how to design an algorithm for decision making and control of autonomous vehicles in complex scenarios. Beginning with a review of current research in the field, the book uses this as a springboard from which to present a new theory of human-like driving framework for autonomous vehicles. Chapters cover system models of decision making and control, driving safety, riding comfort and travel efficiency. Throughout the book, game theory is applied to human-like decision making, enabling the autonomous vehicle and the human driver interaction to be modelled using noncooperative game theory approach. It also uses game theory to model collaborative decision making between connected autonomous vehicles. This framework enables human-like decision making and control of autonomous vehicles, which leads to safer and more efficient driving in complicated traffic scenarios. The book will be of interest to students and professionals alike, in the field of automotive engineering, computer engineering and control engineering.

Decision-Making Techniques for Autonomous Vehicles

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Release : 2023-03-03
Genre : Technology & Engineering
Kind : eBook
Book Rating : 491/5 ( reviews)

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Book Synopsis Decision-Making Techniques for Autonomous Vehicles by : Jorge Villagra

Download or read book Decision-Making Techniques for Autonomous Vehicles written by Jorge Villagra. This book was released on 2023-03-03. Available in PDF, EPUB and Kindle. Book excerpt: Decision-Making Techniques for Autonomous Vehicles provides a general overview of control and decision-making tools that could be used in autonomous vehicles. Motion prediction and planning tools are presented, along with the use of machine learning and adaptability to improve performance of algorithms in real scenarios. The book then examines how driver monitoring and behavior analysis are used produce comprehensive and predictable reactions in automated vehicles. The book ultimately covers regulatory and ethical issues to consider for implementing correct and robust decision-making. This book is for researchers as well as Masters and PhD students working with autonomous vehicles and decision algorithms. Provides a complete overview of decision-making and control techniques for autonomous vehicles Includes technical, physical, and mathematical explanations to provide knowledge for implementation of tools Features machine learning to improve performance of decision-making algorithms Shows how regulations and ethics influence the development and implementation of these algorithms in real scenarios

Driving Decisions

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Kind : eBook
Book Rating : 493/5 ( reviews)

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Book Synopsis Driving Decisions by : Sam Hind

Download or read book Driving Decisions written by Sam Hind. This book was released on . Available in PDF, EPUB and Kindle. Book excerpt:

Incorporating Social Information Into An Autonomous Vehicle's Decision-Making Process and Control

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Author :
Release : 2021
Genre :
Kind : eBook
Book Rating : /5 ( reviews)

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Book Synopsis Incorporating Social Information Into An Autonomous Vehicle's Decision-Making Process and Control by : Kasra Mokhtari

Download or read book Incorporating Social Information Into An Autonomous Vehicle's Decision-Making Process and Control written by Kasra Mokhtari. This book was released on 2021. Available in PDF, EPUB and Kindle. Book excerpt: How can autonomous vehicles offer safer behavior by accounting for social information? Social information includes not only information about the number of pedestrians, but also pedestrians' behavior, age, course of action, etc. While driving, the interaction of a vehicle and the other road users is complicated because each operator acts dynamically and according to their own will, thus creating additional uncertainties for an autonomous vehicle to consider. To address some of these uncertainties and to avoid collisions human drivers use a variety of tricks and heuristics learned during their time driving. However, substituting human drivers with autonomous control systems comes at the price of eliminating the underlying social intelligence of human drivers that makes these predictions possible. Steps should, therefore, be taken to imbue autonomous vehicles with the ability to use social information to increase safety since information about the social environment may provide autonomous vehicles with valuable data influencing how these systems select and moderate their actions. This dissertation develops well-defined methods that will enable an autonomous vehicle to use social information to adjust the vehicle's course of action with the hope of providing a much safer environment for pedestrians, other car drivers, and AV passengers. We first generate our social information dataset by repeatedly driving in State College, PA along the different paths. We then present an initial examination of how social information (i.e. pedestrian density) could be used first for path recognition and then for predicting the number of pedestrians that the vehicle will encounter in the future which is intuitively related to the risk of traveling down a path for autonomous vehicles. Moreover, we develop a method for an AV operating near a college campus to evaluate the risk associated with different options and to select the minimal risk option in the hope of improving safety. We then design a decision-making framework for controlling an autonomous vehicle as it navigates through an unsignalized intersection crowded with pedestrians in both cases where it receives true state of the environment and noisy observations. We hope that the research presented in this dissertation will inspire future researchers to develop autonomous vehicles that more intelligently and efficiently account for pedestrian information in their decision-making framework to make a collision-free world.

Decision-making Strategies for Automated Driving in Urban Environments

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Release : 2020-04-25
Genre : Technology & Engineering
Kind : eBook
Book Rating : 055/5 ( reviews)

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Book Synopsis Decision-making Strategies for Automated Driving in Urban Environments by : Antonio Artuñedo

Download or read book Decision-making Strategies for Automated Driving in Urban Environments written by Antonio Artuñedo. This book was released on 2020-04-25. Available in PDF, EPUB and Kindle. Book excerpt: This book describes an effective decision-making and planning architecture for enhancing the navigation capabilities of automated vehicles in the presence of non-detailed, open-source maps. The system involves dynamically obtaining road corridors from map information and utilizing a camera-based lane detection system to update and enhance the navigable space in order to address the issues of intrinsic uncertainty and low-fidelity. An efficient and human-like local planner then determines, within a probabilistic framework, a safe motion trajectory, ensuring the continuity of the path curvature and limiting longitudinal and lateral accelerations. LiDAR-based perception is then used to identify the driving scenario, and subsequently re-plan the trajectory, leading in some cases to adjustment of the high-level route to reach the given destination. The method has been validated through extensive theoretical and experimental analyses, which are reported here in detail.

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