• 제목/요약/키워드: Driver Behavior

검색결과 320건 처리시간 0.025초

교통정보가 운전자의 운행행태에 미치는 영향 분석 - 자가운전자를 중심으로 - (Analysis of Driver's Travel Behavior by Traffic Imformation)

  • 임채문;구경남
    • 한국산업융합학회 논문집
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    • 제5권3호
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    • pp.239-246
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    • 2002
  • The propose of this study is to analysis driver's behavior of traveler information. This research made an attempt to explore driver's route change behavior in the en-route stage. Model were developed for each analysis with LIMDEP software which was developed by Willams H Greene. Commuters' transportation change in before trip stage are affected by their income, travel time, and incident information and constant of this model showed their reluctance of change mode. This was resulted from the inappropriateness of traffic information to general commuters which is the main target of traffic information.

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Study on driver's distraction research trend and deep learning based behavior recognition model

  • Han, Sangkon;Choi, Jung-In
    • 한국컴퓨터정보학회논문지
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    • 제26권11호
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    • pp.173-182
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    • 2021
  • 본 논문에서는 운전자의 주의산만을 유발하는 운전자, 탑승자의 동작을 분석하고 핸드폰과 관련된 운전자의 행동 10가지를 인식하였다. 먼저 주의산만을 유발하는 동작을 환경 및 요인으로 분류하고 관련 최근 논문을 분석하였다. 분석된 논문을 기반으로 주의산만을 유발하는 주요 원인인 핸드폰과 관련된 10가지 운전자의 행동을 인식하였다. 약 10만 개의 이미지 데이터를 기반으로 실험을 진행하였다. SURF를 통해 특징을 추출하고 3가지 모델(CNN, ResNet-101, 개선된 ResNet-101)로 실험하였다. 개선된 ResNet-101 모델은 CNN보다 학습 오류와 검증 오류가 8.2배, 44.6배가량 줄어들었으며 평균적인 정밀도와 f1-score는 0.98로 높은 수준을 유지하였다. 또한 CAM(class activation maps)을 활용하여 딥러닝 모델이 운전자의 주의 분산 행동을 판단할 때, 핸드폰 객체와 위치를 결정적 원인으로 활용했는지 검토하였다.

실시간 운전 특성 모니터링 시스템을 위한 차량 환경 개발 (Development of Vehicle Environment for Real-time Driving Behavior Monitoring System)

  • 김만호;손준우;이용태;신승헌
    • 대한인간공학회지
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    • 제29권1호
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    • pp.17-24
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    • 2010
  • There has been recent interest in intelligent vehicle technologies, such as advanced driver assistance systems (ADASs) or in-vehicle information systems (IVISs) that offer a significant enhancement of safety and convenience to drivers and passengers. However, unsuitable design of HMI (Human Machine Interface) must increase driver distraction and workload, which in turn increase the chance of traffic accidents. Distraction in particular often occurs under a heavy driving workload due to multitasking with various electronic devices like a cell phone or a navigation system while driving. According to the 2005 road traffic accidents in Korea report published by the ROad Traffic Authority (ROTA), more than 60% of the traffic accidents are related to driver error caused by distraction. This paper suggests the structure of vehicle environment for real-time driving behavior monitoring system while driving which is can be used the driver workload management systems (DWMS). On-road experiment results showed the feasibility of the suggested vehicle environment for driving behavior monitoring system.

비정상 상태 운전 시 정면충돌에서의 상해 분석 (Analysis of Driver Injuries Caused by Frontal Impact during Abnormal Driver Position)

  • 박지양;윤영한;곽영찬;손창기
    • 자동차안전학회지
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    • 제10권3호
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    • pp.32-37
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    • 2018
  • Recently, the driver can be assisted by the advanced active safety devices such as ADAS from road traffic risks. With this system, driver and passenger may freed from can driving tasks or kept eyes on forward direction while on the road. Help from adoptive cruise control, auto parking and newly develped automated driving vehicles technologies, the driver positions will vary significantly from the current standard driver position during the travel time. On this hypothesis, the objective of this study is analyze the behavior and injuries of drivers in the event of frontal impact under these abnormal driver position. Based on the KNCAP frontal impact testing method, this simulation matrix was set-up with dummies of 5 th tile female Hybrid III dummy and 50 th tile male Hybrid III dummy. The small sedan type passenger car was modeled in this simulation. The series of simulation was performed to compare the injuries and behaviour of each dummy, varying the seating status and seat position of each dummy.

운전자 설문을 통한 자동차 운전자의 실수 확률 추정 (Estimation of Car Driver Error Probabilities Through Driver Questionnaire)

  • 이재인;임창주
    • 한국안전학회지
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    • 제22권1호
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    • pp.61-66
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    • 2007
  • Car crashes are the leading cause of death for persons of every age. Specially, human-related factor has been known to be the primary causal factor of such crashes than vehicle-and environmental-related factors. There are various studies to analyze driver's behavior and characteristics in driving for reducing the car crashes in many areas of car engineering, psychology, human factor, etc. However, there are almost no studies which analyze mainly the human errors in driving and estimate their probabilities in terms of human reliability analysis. This study estimates the probability of human error in driving, i.e. driver error probability. First, fifty driver errors are investigated through DBQ (Driver Behavior Questionnaire) revision and the error likelihoods in driving are collected which are judged by skillful drivers using revised DBQ. Next, these likelihoods are converted into driver error probabilities using the results that verbal probabilistic expressions are changed into quantitative probabilities. Using these probabilities we can improve the warning effects on drivers by indicating their driving error likelihoods quantitatively. We can also expect the reduction effects of car accident through controlling especially dangerous error groups which have higher probabilities. Like these, the results of this study can be used as the primary materials of safety education on drivers.

스마트폰을 활용한 운전자의 운전행위 측정 (A Driver's Driving Behavior Measurement using Smart Phone)

  • 최형길;이길흥
    • 한국ITS학회 논문지
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    • 제14권4호
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    • pp.86-94
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    • 2015
  • 최근 커넥티드 카는 자동차 업계 뿐 아니라 통신업체 등 다양한 산업분야에서 큰 주목을 받고 있다. 자동차도 하나의 디바이스로 인식되고 다양한 기기와 연동되면서 상호 작용하는 시스템으로 발전하고 있고 새로운 형태의 사업기회가 생겨나고 있다. 하지만 차량용 기술 발전에 따라 사고의 위험성 또한 대두되고 있으며 운전자의 사고를 예방하기 위한 다양한 기술들이 여러 기관에서 연구되고 있다. 본 연구에서는 운전자의 사고를 예방하기 위한 운전부하에 대하여 연구하고, 선행 된 연구에 바탕을 두고 운전자의 행동을 판단하여 운전부하를 측정하는 개발하였다. 개발된 알고리즘은 도로 주행 실험을 통하여 다양한 도로상황, 운전자의 상태에 따른 운전행동과 운전부하에서 유효하게 작동함을 확인할 수 있었다.

Effect of Driver's Cognitive Distraction on Driver's Physiological State and Driving Performance

  • Kim, Jun-Hoe;Lee, Woon-Sung
    • 대한인간공학회지
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    • 제31권2호
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    • pp.371-377
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    • 2012
  • Objective: The aim of this study is to investigate effect of driver's cognitive distraction on driver's physiological state and driving performance, and then to determine parameters appropriate for detecting the cognitive distraction. Background: Driver distraction is a major cause of traffic accidents and poses a serious threat to traffic safety due to ever increasing use of in-vehicle information systems and mobile phones during driving. Cognitive distraction, among four different types of distractions, prevents a driver from processing traffic information correctly and adapting to change in surround vehicle behavior in time. However, the cognitive distraction is more difficult to detect because it normally does not involve significant change in driver behavior. Method: A full-scale driving simulator was used to create virtual driving environment and situations. Participants in the experiment drove the driving simulator in three different conditions: attentive driving with no secondary task, driving and conducting secondary task of adding numbers, and driving and conducting secondary task of conversing with an experimenter. Parameters related with driver's physiological state and driving performance were measured and analyzed for their change. Results: The experiment results show that driver's cognitive distraction, induced by secondary task of addition and conversation during driving, increased driver's cognitive workload, and indeed brought change in driver's physiological state and degraded driving performance. Conclusion: The galvanic skin response, pupil size, steering reversal rate, and driver reaction time are shown to be statistically significant for detecting cognitive distraction. The appropriate combination of these parameters will be used to detect the cognitive distraction and estimate risk of traffic accidents in real-time for a driver distraction warning system.

운전자 운전행동 분석을 통한 안전운전 지원시스템 설계 및 구현 (The Design and Implementation of Driver Safety Assist System by Analysis of Driving Behavior Data)

  • 고재진;최기호
    • 한국항행학회논문지
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    • 제17권2호
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    • pp.165-170
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    • 2013
  • 본 논문에서는 운전자의 주행습관 속에서 안전운전에 지원을 위한 정보 획득 및 분석 장치를 구현하였다. 안전운전 지원을 위하여 공격적 운전행동을 정의하고 운전 중 행동을 인식할 수 있는 정보 획득 방법을 고안하였다. 정보 수집 장치와 정보 분석모듈 그리고 운전행동 비교모듈을 설계하여 정보의 정확성을 높였으며. 운전자의 평소 운전행동과 비교하여 이상행동을 검출하여 경고할 수 있도록 시스템을 설계하였다.

Designing Real-time Observation System to Evaluate Driving Pattern through Eye Tracker

  • Oberlin, Kwekam Tchomdji Luther.;Jung, Euitay
    • 한국멀티미디어학회논문지
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    • 제25권2호
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    • pp.421-431
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    • 2022
  • The purpose of this research is to determine the point of fixation of the driver during the process of driving. Based on the results of this research, the driving instructor can make a judgement on what the trainee stare on the most. Traffic accidents have become a serious concern in modern society. Especially, the traffic accidents among unskilled and elderly drivers are at issue. A driver should put attention on the vehicles around, traffic signs, passersby, passengers, road situation and its dashboard. An eye-tracking-based application was developed to analyze the driver's gaze behavior. It is a prototype for real-time eye tracking for monitoring the point of interest of drivers in driving practice. In this study, the driver's attention was measured by capturing the movement of the eyes in real road driving conditions using these tools. As a result, dwelling duration time, entry time and the average of fixation of the eye gaze are leading parameters that could help us prove the idea of this study.