Understanding common human driving semantics for autonomous vehicles
Autonomous vehicles will share roads with human-driven vehicles until the transition to fully autonomous transport systems is complete. The critical challenge of improving mutual understanding between both vehicle types cannot be addressed only by feeding extensive driving data into data-driven mode...
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Published in | Patterns (New York, N.Y.) Vol. 4; no. 7; p. 100730 |
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Main Authors | , , , , , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
United States
Elsevier Inc
14.07.2023
Elsevier |
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Abstract | Autonomous vehicles will share roads with human-driven vehicles until the transition to fully autonomous transport systems is complete. The critical challenge of improving mutual understanding between both vehicle types cannot be addressed only by feeding extensive driving data into data-driven models but by enabling autonomous vehicles to understand and apply common driving behaviors analogous to human drivers. Therefore, we designed and conducted two electroencephalography experiments for comparing the cerebral activities of human linguistics and driving understanding. The results showed that driving activates hierarchical neural functions in the auditory cortex, which is analogous to abstraction in linguistic understanding. Subsequently, we proposed a neural-informed, semantics-driven framework to understand common human driving behavior in a brain-inspired manner. This study highlights the pathway of fusing neuroscience into complex human behavior understanding tasks and provides a computational neural model to understand human driving behaviors, which will enable autonomous vehicles to perceive and think like human drivers.
•Reveal human auditory cortex activation during driving•Discover the hierarchical structure of human driving understanding•Propose a neural-informed semantics-driven driving understanding model•Address long-term contextual dependency of driving behaviors
“Driving like humans” is the ultimate goal of autonomous driving. Hence, human-like driving understanding ability is required for autonomous vehicles to better understand the driving behaviors of surrounding human-driven vehicles. In this study, we investigated human driving neural response and subsequently built a biologically plausible model to interpret driving behaviors like humans. This study pioneers the design of bio-inspired, human-like autonomous vehicles and can ultimately benefit future research of human-machine interactions.
Autonomous vehicles will share roads with human-driven vehicles and bring with them problems regarding bidirectional understanding of driving behavior. Based on cerebral neurological findings from the human process for understanding driving, a novel neural-inspired semantics-driven driving understanding model is proposed for autonomous vehicles. The model imitates the way humans understand driving and can interpret long-term driving behavior evolutions like human drivers. |
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AbstractList | Autonomous vehicles will share roads with human-driven vehicles until the transition to fully autonomous transport systems is complete. The critical challenge of improving mutual understanding between both vehicle types cannot be addressed only by feeding extensive driving data into data-driven models but by enabling autonomous vehicles to understand and apply common driving behaviors analogous to human drivers. Therefore, we designed and conducted two electroencephalography experiments for comparing the cerebral activities of human linguistics and driving understanding. The results showed that driving activates hierarchical neural functions in the auditory cortex, which is analogous to abstraction in linguistic understanding. Subsequently, we proposed a neural-informed, semantics-driven framework to understand common human driving behavior in a brain-inspired manner. This study highlights the pathway of fusing neuroscience into complex human behavior understanding tasks and provides a computational neural model to understand human driving behaviors, which will enable autonomous vehicles to perceive and think like human drivers. Autonomous vehicles will share roads with human-driven vehicles until the transition to fully autonomous transport systems is complete. The critical challenge of improving mutual understanding between both vehicle types cannot be addressed only by feeding extensive driving data into data-driven models but by enabling autonomous vehicles to understand and apply common driving behaviors analogous to human drivers. Therefore, we designed and conducted two electroencephalography experiments for comparing the cerebral activities of human linguistics and driving understanding. The results showed that driving activates hierarchical neural functions in the auditory cortex, which is analogous to abstraction in linguistic understanding. Subsequently, we proposed a neural-informed, semantics-driven framework to understand common human driving behavior in a brain-inspired manner. This study highlights the pathway of fusing neuroscience into complex human behavior understanding tasks and provides a computational neural model to understand human driving behaviors, which will enable autonomous vehicles to perceive and think like human drivers.Autonomous vehicles will share roads with human-driven vehicles until the transition to fully autonomous transport systems is complete. The critical challenge of improving mutual understanding between both vehicle types cannot be addressed only by feeding extensive driving data into data-driven models but by enabling autonomous vehicles to understand and apply common driving behaviors analogous to human drivers. Therefore, we designed and conducted two electroencephalography experiments for comparing the cerebral activities of human linguistics and driving understanding. The results showed that driving activates hierarchical neural functions in the auditory cortex, which is analogous to abstraction in linguistic understanding. Subsequently, we proposed a neural-informed, semantics-driven framework to understand common human driving behavior in a brain-inspired manner. This study highlights the pathway of fusing neuroscience into complex human behavior understanding tasks and provides a computational neural model to understand human driving behaviors, which will enable autonomous vehicles to perceive and think like human drivers. Autonomous vehicles will share roads with human-driven vehicles until the transition to fully autonomous transport systems is complete. The critical challenge of improving mutual understanding between both vehicle types cannot be addressed only by feeding extensive driving data into data-driven models but by enabling autonomous vehicles to understand and apply common driving behaviors analogous to human drivers. Therefore, we designed and conducted two electroencephalography experiments for comparing the cerebral activities of human linguistics and driving understanding. The results showed that driving activates hierarchical neural functions in the auditory cortex, which is analogous to abstraction in linguistic understanding. Subsequently, we proposed a neural-informed, semantics-driven framework to understand common human driving behavior in a brain-inspired manner. This study highlights the pathway of fusing neuroscience into complex human behavior understanding tasks and provides a computational neural model to understand human driving behaviors, which will enable autonomous vehicles to perceive and think like human drivers. • Reveal human auditory cortex activation during driving • Discover the hierarchical structure of human driving understanding • Propose a neural-informed semantics-driven driving understanding model • Address long-term contextual dependency of driving behaviors “Driving like humans” is the ultimate goal of autonomous driving. Hence, human-like driving understanding ability is required for autonomous vehicles to better understand the driving behaviors of surrounding human-driven vehicles. In this study, we investigated human driving neural response and subsequently built a biologically plausible model to interpret driving behaviors like humans. This study pioneers the design of bio-inspired, human-like autonomous vehicles and can ultimately benefit future research of human-machine interactions. Autonomous vehicles will share roads with human-driven vehicles and bring with them problems regarding bidirectional understanding of driving behavior. Based on cerebral neurological findings from the human process for understanding driving, a novel neural-inspired semantics-driven driving understanding model is proposed for autonomous vehicles. The model imitates the way humans understand driving and can interpret long-term driving behavior evolutions like human drivers. Autonomous vehicles will share roads with human-driven vehicles until the transition to fully autonomous transport systems is complete. The critical challenge of improving mutual understanding between both vehicle types cannot be addressed only by feeding extensive driving data into data-driven models but by enabling autonomous vehicles to understand and apply common driving behaviors analogous to human drivers. Therefore, we designed and conducted two electroencephalography experiments for comparing the cerebral activities of human linguistics and driving understanding. The results showed that driving activates hierarchical neural functions in the auditory cortex, which is analogous to abstraction in linguistic understanding. Subsequently, we proposed a neural-informed, semantics-driven framework to understand common human driving behavior in a brain-inspired manner. This study highlights the pathway of fusing neuroscience into complex human behavior understanding tasks and provides a computational neural model to understand human driving behaviors, which will enable autonomous vehicles to perceive and think like human drivers. •Reveal human auditory cortex activation during driving•Discover the hierarchical structure of human driving understanding•Propose a neural-informed semantics-driven driving understanding model•Address long-term contextual dependency of driving behaviors “Driving like humans” is the ultimate goal of autonomous driving. Hence, human-like driving understanding ability is required for autonomous vehicles to better understand the driving behaviors of surrounding human-driven vehicles. In this study, we investigated human driving neural response and subsequently built a biologically plausible model to interpret driving behaviors like humans. This study pioneers the design of bio-inspired, human-like autonomous vehicles and can ultimately benefit future research of human-machine interactions. Autonomous vehicles will share roads with human-driven vehicles and bring with them problems regarding bidirectional understanding of driving behavior. Based on cerebral neurological findings from the human process for understanding driving, a novel neural-inspired semantics-driven driving understanding model is proposed for autonomous vehicles. The model imitates the way humans understand driving and can interpret long-term driving behavior evolutions like human drivers. |
ArticleNumber | 100730 |
Author | Sun, Sudan Liao, Chenlei Zhang, Bing Geng, Maosi Gao, Ziyou Chen, Xiqun (Michael) Li, Zhihui Xia, Yingji Zhang, Lei Ochieng, Washington Yotto Zhu, Zheng Zeng, Zhenyu Angeloudis, Panagiotis Chen, Yong Elhajj, Mireille |
Author_xml | – sequence: 1 givenname: Yingji surname: Xia fullname: Xia, Yingji organization: Institute of Intelligent Transportation Systems, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China – sequence: 2 givenname: Maosi surname: Geng fullname: Geng, Maosi organization: Institute of Intelligent Transportation Systems, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China – sequence: 3 givenname: Yong surname: Chen fullname: Chen, Yong organization: Institute of Intelligent Transportation Systems, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China – sequence: 4 givenname: Sudan surname: Sun fullname: Sun, Sudan organization: School of Medicine, Zhejiang University, Hangzhou 310058, China – sequence: 5 givenname: Chenlei surname: Liao fullname: Liao, Chenlei organization: Institute of Intelligent Transportation Systems, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China – sequence: 6 givenname: Zheng surname: Zhu fullname: Zhu, Zheng organization: Institute of Intelligent Transportation Systems, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China – sequence: 7 givenname: Zhihui surname: Li fullname: Li, Zhihui organization: School of Transportation, Jilin University, Changchun 130022, China – sequence: 8 givenname: Washington Yotto surname: Ochieng fullname: Ochieng, Washington Yotto organization: Department of Civil and Environmental Engineering, Imperial College London, South Kensington Campus, London SW7 2AZ, UK – sequence: 9 givenname: Panagiotis surname: Angeloudis fullname: Angeloudis, Panagiotis organization: Department of Civil and Environmental Engineering, Imperial College London, South Kensington Campus, London SW7 2AZ, UK – sequence: 10 givenname: Mireille surname: Elhajj fullname: Elhajj, Mireille organization: Department of Civil and Environmental Engineering, Imperial College London, South Kensington Campus, London SW7 2AZ, UK – sequence: 11 givenname: Lei surname: Zhang fullname: Zhang, Lei organization: Alibaba Group, Hangzhou 310052, China – sequence: 12 givenname: Zhenyu surname: Zeng fullname: Zeng, Zhenyu organization: Alibaba Group, Hangzhou 310052, China – sequence: 13 givenname: Bing surname: Zhang fullname: Zhang, Bing organization: Alibaba Group, Hangzhou 310052, China – sequence: 14 givenname: Ziyou surname: Gao fullname: Gao, Ziyou organization: School of Traffic and Transportation, Beijing Jiaotong University, Beijing 100044, China – sequence: 15 givenname: Xiqun (Michael) orcidid: 0000-0001-8285-084X surname: Chen fullname: Chen, Xiqun (Michael) email: chenxiqun@zju.edu.cn organization: Institute of Intelligent Transportation Systems, College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China |
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Keywords | driving semantics electroencephalography human-machine interaction hierarchical understanding abstraction neuroscience driving behavior perception autonomous vehicle neural-informed model DSML 2: Proof-of-concept: Data science output has been formulated, implemented, and tested for one domain/problem |
Language | English |
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