access icon free Empirical analysis of the causes of stop-and-go waves at sags

Stop-and-go waves are spatially-confined regions of low traffic speed that propagate upstream at a constant velocity. The occurrence of stop-and-go waves on freeways has negative impacts on both travel time and traffic safety. Sags are freeway sections along which gradient changes significantly from downwards to upwards. Stop-and-go waves often emerge on the uphill section of sags, both in uncongested and congested traffic conditions. According to previous studies, the formation of stop-and-go waves at sags can be caused by local changes in car-following behaviour as well as disruptive lane changes. However, it is not clear which of those two causes is more frequent. This paper aims to identify the primary factor triggering stop-and-go waves at sags. To this end, the authors analyse vehicle trajectories collected by means of video cameras on a three-lane sag of the Tomei Expressway (Japan), identifying the causes of formation and growth of stop-and-go waves on the study site. The results show that the primary factor triggering stop-and-go waves is related to car-following behaviour. This finding shows the relevance of developing systems to assist drivers in performing the acceleration task at sags.

Inspec keywords: road traffic; driver information systems; data analysis; video cameras

Other keywords: video cameras; car-following behaviour; traffic safety; low traffic speed regions; stop-and-go waves; uncongested traffic conditions; three-lane sag; freeway sections; travel time; vehicle trajectories; Japan; Tomei Expressway; disruptive lane changes

Subjects: Traffic engineering computing; Data handling techniques

References

    1. 1)
      • 18. Patire, A.D.: ‘Observations of lane changing patterns on an uphill expressway’.Ph.D. Thesis, University of California, Berkeley, 2010.
    2. 2)
      • 7. Hatakenaka, H., Hirasawa, T., Yamada, K., Yamada, H., Katayama, Y., Maeda, M.: ‘Development of AHS for traffic congestion in sag sections’. Proc. ITS World Congress, London, UK, October 2006.
    3. 3)
    4. 4)
    5. 5)
    6. 6)
      • 21. Goñi Ros, B., Knoop, V.L., van Arem, B., Hoogendoorn, S.P.: ‘Car-following behavior at sags and its impacts on traffic flow’. Proc. Annual Meeting of the Transportation Research Board, Washington, DC, January 2013.
    7. 7)
    8. 8)
      • 15. Xing, J., Muramatsu, E., Harayama, T.: ‘Balance lane use with VMS to mitigate motorway traffic congestion’. Proc. ITS World Congress, Vienna, Austria, October 2012.
    9. 9)
    10. 10)
    11. 11)
      • 10. Koshi, M.: ‘An interpretation of a traffic engineer on vehicular traffic flow’, in: Fukui, M., Sugiyama, Y., Schreckenberg, M., Wolf, D.E. (eds): ‘Traffic and Granular Flow’01’ (Springer, 2003), pp. 199210.
    12. 12)
      • 19. Ahn, S., Cassidy, M.J.: ‘Freeway traffic oscillations and vehicle lane-change maneuvers’, in Allsop, R.E., Bell, M.G.H., Heydecker, B.G. (eds.): ‘17th Int. Symp. Transportation and Traffic Theory’ (Elsevier, 2007), pp. 691710.
    13. 13)
    14. 14)
    15. 15)
      • 4. Furuichi, T., Yamamoto, S., Kotani, M., Iwasaki, M.: ‘Characteristics of spatial speed change at motorway sag sections and capacity bottlenecks’. Proc. Annual Meeting of the Transportation Research Board, Washington, DC, January 2003.
    16. 16)
      • 11. Yoshizawa, R., Shiomi, Y., Uno, N., Iida, K., Yamaguchi, M.: ‘Analysis of car-following behavior on sag and curve sections at intercity expressways with driving simulator’, Int. J. Intell. Transp. Syst. Res., 2012, 10, (2), pp. 5665.
    17. 17)
      • 20. Moore, D.S., McCabe, G.P., Craig, B.: ‘Introduction to the practice of statistics’ (W.H. Freeman & Co., 2011, 7th edn.).
    18. 18)
      • 13. Goñi Ros, B., Knoop, V.L., van Arem, B., Hoogendoorn, S.P.: ‘Reducing congestion at uphill freeway sections by means of a gradient compensation system’. Proc. IEEE Intelligent Vehicles Symposium, Alcalá de Henares, Spain, June 2012, pp. 191198.
    19. 19)
      • 6. Okamura, H., Watanabe, S., Watanabe, T.: ‘An empirical study on the capacity of bottlenecks on the basic suburban expressway sections in Japan’. Proc. Int. Symposium on Highway Capacity, Maui, Hawaii, June–July 2000.
    20. 20)
      • 5. Koshi, M., Kuwahara, M., Akahane, H.: ‘Capacity of sags and tunnels on Japanese motorways’, ITE J., 1992, 62, (5), pp. 1722.
    21. 21)
      • 2. Schreiter, T., van Lint, J.W.C., Yuan, Y., Hoogendoorn, S.P.: ‘Propagation wave speed estimation of freeway traffic with image processing tools’. Proc. Annual Meeting of the Transportation Research Board, Washington, DC, January 2010.
http://iet.metastore.ingenta.com/content/journals/10.1049/iet-its.2013.0102
Loading

Related content

content/journals/10.1049/iet-its.2013.0102
pub_keyword,iet_inspecKeyword,pub_concept
6
6
Loading