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  1. NTU Theses and Dissertations Repository
  2. 電機資訊學院
  3. 電信工程學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/26309
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dc.contributor.advisor陳宏銘
dc.contributor.authorHao-Wei Chuen
dc.contributor.author朱浩瑋zh_TW
dc.date.accessioned2021-06-08T07:05:52Z-
dc.date.copyright2008-10-23
dc.date.issued2008
dc.date.submitted2008-10-15
dc.identifier.citation[1] National Police Agency, Ministry of the Interior of R.O.C, http://www.npa.gov.tw/
[2] Zehang Sun, George Bebis, Ronald Miller, 'On-Road Vehicle Detection: A Review,' IEEE Transactions on Pattern Analysis and Machine Intelligence, vol. 28, no. 5, pp. 694-711, May, 2006.
[3] Available: http://www.lexus.com/models/IS/features/safety/precollision_system_pcs.html
[4] Available: http://www.volvocars.com/intl/All-Cars-MY09/Volvo-S80/Pages/FeaturesEquipment.aspx
[5] Giachetti, A.; Campani, M.; Torre, V., 'The use of optical flow for road navigation,' Robotics and Automation, IEEE Transactions on , vol.14, no.1, pp.34-48, Feb 1998
[6] Zhang, Z, 'Flexible Camera Calibration by Viewing a Plane from Unknown Orientations,' ICCV, pp. 666-673, 1999
[7] Lee, O and Wang, Y, “Motion-Compensated Prediction Using Nodal-Based Deformable Block Matching”, Journal of Visual Communication and Image Representation, vol. 6, no. 1, pp. 26-34, 1995
[8] Fischler, M. A. and Bolles, R. C. “Random Sample Consensus: A Paradigm for Model Fitting with Applications to Image Analysis and Automated Cartography”, Commun. ACM , vol. 24, issue 6, pp. 381-395, 1981
[9] Guo, D.; Fraichard, T.; Xie, M.; Laugier C., “Color Modeling by Spherical Influence Field in Sensing Driving Environment”, Proceedings of the IEEE Intelligent Vehicle Symposium, pp. 249-255, 2000
[10] Wei Liu; XueZhi Wen; Bobo Duan; Huai Yuan; Nan Wang, 'Rear Vehicle Detection and Tracking for Lane Change Assist,' Intelligent Vehicles Symposium, 2007 IEEE , pp.252-257, June, 2007
[11] C. Tzomakas and W. Seelen, “Vehicle Detection in Traffic Scenes Using Shadows”, Technical Report 98-06, Institut fur Neuroinformatik, Ruht-Universitat, Bochum, Germany, 1998
[12] Zehang Sun, Ronald Miller, George Bebis, David DiMeo, 'A Real-time Precrash Vehicle Detection System,' wacv, p. 171, Sixth IEEE Workshop on Applications of Computer Vision (WACV'02), 2002
[13] R. Cucchuara and M. Piccardi, “Vehicle Detection under Day and Night Illumination”, Proc. Int’l ICSC Symp. Intelligent Industrial Automation, 1999
[14] M. Bertozzi and A. Broggi, “GOLD: A Parallel Real-Time Stereo Vision System for Generic Obstacle and Lane Detection”, IEEE Transaction on Image Processing, vol. 7, no. 1, pp. 62-81, January, 1998
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/26309-
dc.description.abstract為了降低在日常生活中交通事故所造成的傷亡,藉由雷達或相機的車用來車偵測與碰撞警示系統已在近年逐步受到重視。本論文提出一套適用於日間的車輛偵測系統,該系統利用架設在車輛後方是數位相機擷取路面的影像資料,並分析畫面中各方塊之移動向量場,分割出畫面中屬於路面和屬於來車的部份,並藉由估算來車與駕駛車輛的距離,依照距離長短不同而給予不同程度的警報。
  然而,利用傳統的方式估算移動向量場時,會因為投影變換的誤差以及路面材質強度的不足,移動向量場無法被準確的估算。本論文提出一套演算法,可在不影響來車部份的移動向量場的狀況下降低路面部份移動向量場的誤差。藉由移動向量場分割的結果,我們可以進一步的和色彩分析的結果整合以估計來車的距離和方位,最後可在大約二十公尺的範圍內有效估計來車的存在。
zh_TW
dc.description.abstractOn road vehicle detection and collision warning system has attracted more attention these years in order to minimize the traffic accidents in the daily life. A vehicle detection system applicable in daytime is proposed in the thesis. In this system, a digital camera mounted behind the vehicle to capture the image sequence. Our purposed system then analyzes the block based motion vector field, segment out the vehicle region from the road bed region, and then estimates the relative position between the driver and the vehicle. The system is also able to assist the driver by sending out a warning signal according to the estimated relative distance.
However, tradition block based motion analysis does not work properly due to the perspective distortion and low texture on the road area. We purposed an algorithm to rectify the motion on the road plane without affecting the motion accuracy on the vehicle region. Segmentation is done by analyzing the motion vector. To increase the accuracy of the results, color based segmentation is also implemented to fuse with the motion based segmentation, and the experimental results showed that the proposed system is able to detect the existence of vehicles effectively in a distance of about 20 meters.
en
dc.description.provenanceMade available in DSpace on 2021-06-08T07:05:52Z (GMT). No. of bitstreams: 1
ntu-97-R95942048-1.pdf: 1554907 bytes, checksum: f543c967096a86c6a6842c3244d4a880 (MD5)
Previous issue date: 2008
en
dc.description.tableofcontentsChapter 1 1
Introduction 1
1.1 Background 2
1.1.1 Active Sensors 2
1.1.2 Optical Sensors 3
1.2 Research Contribution 4
1.3 Thesis Organization 5
Chapter 2 6
Motion Estimation 6
2.1 Camera Position and Calibration 6
2.2 A Review of Motion Estimation 8
2.3 Analysis of Motion Estimation for On Road Image Sequences 10
2.3.1 Perspective distortion 11
2.3.2 Lack of textures 13
2.3.3 Other sources of motion error 17
2.4 Proposed Motion Estimation and Experimental Results 18
2.4.1 Perspective Parameter Decision 18
2.4.2 Enhanced Motion Estimation 21
Chapter 3 25
Using Color Based Approaches to Enhance Motion and Segmentation 25
3.1 The L*a*b* Based Color Model 26
3.2 Application to Motion Segmentation 28
Chapter 4 31
Vehicle Segmentation and Detection 31
4.1 Proposed tracking algorithm 31
4.2 Vehicle segmentation 33
4.3 Collision Warning Mechanism 33
Chapter 5 37
Discussion and Conclusions 37
5.1 Discussions 37
5.2 Conclusions 38
Reference 40
dc.language.isoen
dc.subject碰撞警示zh_TW
dc.subject移動向量分析zh_TW
dc.subject車輛偵測zh_TW
dc.subjectVehicle detectionen
dc.subjectCollision warningen
dc.subjectMotion vector analysisen
dc.title使用移動向量分析之車用來車偵測與碰撞警示系統zh_TW
dc.titleVehicle Detection and Collision Warning System using Motion Vector Analysisen
dc.typeThesis
dc.date.schoolyear97-1
dc.description.degree碩士
dc.contributor.oralexamcommittee鍾國亮,董蘭榮,李明穗
dc.subject.keyword移動向量分析,車輛偵測,碰撞警示,zh_TW
dc.subject.keywordMotion vector analysis,Vehicle detection,Collision warning,en
dc.relation.page41
dc.rights.note未授權
dc.date.accepted2008-10-16
dc.contributor.author-college電機資訊學院zh_TW
dc.contributor.author-dept電信工程學研究所zh_TW
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