Analysis of the Characteristics and Number of Bicycle–Passenger Conflicts at Bus Stops for Improving Safety
Abstract
:1. Introduction
2. Methods
2.1. Data Collection
2.1.1. Field Survey
- (1)
- Differences in bicycle track width;
- (2)
- Paved level terrain, good sight;
- (3)
- Far from intersections and block accesses; and
- (4)
- Suitable space for installing cameras.
2.1.2. Data Extraction
2.1.3. Descriptive Analysis for Traffic Flows and Conflicts of Bus Stops
2.2. Generalized Event Count Model (GEC)
3. Results and Discussions
3.1. Duration and Distribution Characteristics of Bicycle–Passenger Conflict
3.2. Comparative Analysis for Four Types of Bicycle–Passenger Conflicts
3.3. Bicycle–Passanger Conflict Estimation
4. Conclusions
- The distribution of conflict duration was in accordance with normal distribution and the average duration was 1.716 s 60.9% of conflicts existed near the accesses of bus stops in longitudinal direction, whilst 27.23% and 58.72% of conflicts occurred at the left and center parts of cycle tracks, respectively.
- Type 1 conflict was significantly different from the other three types of conflicts in duration, whilst there was no significant difference among Type 2, 3, and 4.
- The proposed GEC model showed good performance in predicting bicycle–passenger conflicts, with 15.71% of MAPE and 0.8772 of R2.
- The results of the GEC model show that bicycle volume, bus passenger volume, and passenger crossing time were critical factors impacting the number of bicycle–passenger conflicts at stops in these factors, passenger crossing time is most easily controlled and transportation agencies could implement countermeasures, like installing separations and setting a crosswalk, to improve the safety at bus stops.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Moreno Gonzalez, E.; Romana, M.G.; Martinez Alvaro, O. Bus Dwell-Time Model of Main Urban Route Stops Case Study in Madrid, Spain. Transp. Res. Rec. 2012, 2274, 126–134. [Google Scholar] [CrossRef]
- Bordagaray, M.; dell’Olio, L.; Ibeas, A.; Cecin, P. Modelling user perception of bus transit quality considering user and service heterogeneity. Transp. A Transp. Sci. 2014, 10, 705–721. [Google Scholar] [CrossRef]
- Cherry, C.; Cervero, R. Use characteristics and mode choice behavior of electric bike users in China. Transp. Policy 2007, 14, 247–257. [Google Scholar] [CrossRef] [Green Version]
- Fishman, E.; Cherry, C. E-bikes in the Mainstream: Reviewing a Decade of Research. Transp. Rev. 2015, 36, 72–91. [Google Scholar] [CrossRef]
- Fan, R.; Yu, H.; Liu, P.; Wang, W. Using VISSIM simulation model and Surrogate Safety Assessment Model for estimating field measured traffic conflicts at freeway merge areas. IET Intell. Transp. Syst. 2013, 7, 68–77. [Google Scholar] [CrossRef]
- Hayward, J.C. Near-miss determination through use of a scale of danger. Highw. Res. Rec. 1972, 384, 24–34. [Google Scholar]
- Cynecki, M.J. Development of Conflicts Analysis Technique for Pedestrian Crossings. Transp. Res. Rec. 1980, 743, 12–20. [Google Scholar]
- Chin, H.C.; Quek, S.T. Measurement of Traffic Conflicts. Saf. Sci. 1997, 26, 169–185. [Google Scholar] [CrossRef]
- Minderhoud, M.M.; Bovy, P.H.L. Extended Time-to-Collision Measures for Road Traffic Safety Assessment. Accid. Anal. Prev. 2001, 33, 89–97. [Google Scholar] [CrossRef]
- Kaparias, I.; Bell, M.G.H.; Greensted, J.; Cheng, S.; Miri, A.; Taylor, C.; Mount, B. Development and Implementation of a Vehicle-Pedestrian Conflict Analysis Method. Transp. Res. Rec. 2010, 2198, 75–82. [Google Scholar] [CrossRef]
- Kiyota, M.; Vandebona, U.; Katafuchi, N.; Inoue, S. Bicycle and pedestrian traffic conflicts on shared pavements. In Proceedings of the Fourteenth Velo-city International Conference Proceedings, Amsterdam, The Netherlands, 15 June 2000. [Google Scholar]
- Casey, C.; Mattingly, S.; Li, J.; Williams, J. Developing Public Health Performance Measures to Capture the Effects of Transportation Facilities on Multiple Public Health Outcomes; Transportation Research Center for Livable Communities: Kalamazoo, MI, USA, 2016; pp. 103–116. [Google Scholar]
- Koshy, R.Z.; Arasan, V.T. Influence of bus stops on flow characteristics of mixed traffic. J. Transp. Eng. 2005, 131, 640–643. [Google Scholar] [CrossRef]
- Zhao, X.M.; Jia, B.; Gao, Z.Y.; Jiang, R. Traffic interactions between motorized vehicles and nonmotorized vehicles near a bus stop. J. Transp. Eng. 2009, 135, 894–906. [Google Scholar] [CrossRef]
- Zhao, D.; Wang, W.; Zheng, Y.; Ji, Y.; Wang, W.; Hu, X. Evaluation of interactions between buses and bicycles at stops. Transp. Res. Rec. 2014, 2468, 11–18. [Google Scholar] [CrossRef]
- Zhang, F.; Li, Z.; Zhao, D.G.; Wang, Y.; Wang, W.; Li, J. Influences of Various Types of Bus Stops on Traffic Operations of Bicycles, Vehicles, and Buses. In Proceedings of the 94th Transportation Research Board (TRB) Annual Meeting, Washington, DC, USA, 11–15 January 2015. [Google Scholar]
- Luo, Q.; Zheng, T.; Wu, W.; Jia, H.; Li, J. Modeling the effect of bus stops on capacity of curb lane. Int. J. Mod. Phys. C 2018, 29, 1850022. [Google Scholar] [CrossRef]
- Pan, Y.; Chen, S.; Li, T.; Niu, S.; Tang, K. Exploring spatial variation of the bus stop influence zone with multi-source data: A case study in Zhenjiang, China. J. Transp. Geogr. 2019, 76, 166–177. [Google Scholar] [CrossRef]
- Nashad, T.; Yasmin, S.h.; Eluru, N.; Lee, J.; Abdel-Aty, M. Joint Modeling of Pedestrian and Bicycle Crashes: Copula-Based Approach. Transp. Res. Rec. 2016, 2601, 119–127. [Google Scholar] [CrossRef] [Green Version]
- Ye, Z.; Xu, Y. A generalized event count model for crash data analysis. In Proceedings of the 94th Transportation (Research Board TRB) Annual Meeting, Washington, DC, USA, 11–15 January 2015. [Google Scholar]
- Wang, C.; Ye, Z.; Xu, Y.; Feng, J. Effect of Dwelling Buses on the Traffic Operations of Nonmotor Vehicles at Bus Stops. J. Transp. Eng. Part A Syst. 2018, 144, 04018013. [Google Scholar] [CrossRef]
- Myers, R.H.; Montgomery, D.C.; Vining, G.G.; Robinson, T.J. Generalized Linear Models: With Applications in Engineering and the Sciences; Wiley: New York, NY, USA, 2012; pp. 46–48. [Google Scholar]
- Lee, L.F. Specification test for Poisson regression models. Int. Econ. Rev. 1986, 27, 689–706. [Google Scholar] [CrossRef]
- King, G. Variance specification in event count models: From restrictive assumptions to a generalized estimator. Am. J. Pol. Sci. 1989, 33, 762–784. [Google Scholar] [CrossRef]
- Wang, C.; Ye, Z.; Wang, Y.; Xu, Y.; Wang, W. Modeling level of safety for bus stops in China. Traffic Inj. Prev. 2016, 17, 656–661. [Google Scholar]
- David, B.; Joshua, S.; Kevin, M.; Luis, M.M. Assessing safety of shared space using cyclist-pedestrian interactions and automated video conflict analysis. Transp. Res. Part D Transp. Environ. 2018, 65, 710–724. [Google Scholar]
Number | Stop | Variable | Mean | Median | SD | Minimum | Maximum |
---|---|---|---|---|---|---|---|
1 | Gangzicun | BV a | 452.7 | 440.0 | 127.0 | 280.0 | 810.0 |
PV b | 292.0 | 240.0 | 104.8 | 180.0 | 480.0 | ||
PCT c | 35.7 | 36.4 | 15.2 | 16.6 | 71.6 | ||
NC d | 75.0 | 75.0 | 56.1 | 30.0 | 150.0 | ||
2 | Zhongyangmennan | BV a | 586.1 | 583.8 | 93.1 | 381.1 | 737.8 |
PV b | 132.9 | 120.0 | 102.4 | 60.0 | 420.0 | ||
PCT c | 14.9 | 15.4 | 7.9 | 5.5 | 27.2 | ||
NC d | 265.7 | 300.0 | 252.4 | 30.0 | 690.0 | ||
3 | Jimingsi | BV a | 202.1 | 189.5 | 58.5 | 126.3 | 355.3 |
PV b | 224.0 | 180.0 | 122.1 | 90.0 | 540.0 | ||
PCT c | 35.2 | 29.4 | 20.7 | 13.1 | 76.7 | ||
NC d | 375.0 | 330.0 | 271.7 | 120.0 | 780.0 | ||
4 | Suojincun | BV a | 673.3 | 730.0 | 230.9 | 30.0 | 1040.0 |
PV b | 256.0 | 270.0 | 131.2 | 60.0 | 510.0 | ||
PCT c | 40.8 | 29.1 | 39.4 | 7.4 | 120.0 | ||
NC d | 110.0 | 90.0 | 101.6 | 30.0 | 270.0 | ||
5 | Gulou | BV a | 713.3 | 762.9 | 218.3 | 222.9 | 951.4 |
PV b | 1003.3 | 930.0 | 544.0 | 270.0 | 1860.0 | ||
PCT c | 61.9 | 61.3 | 25.7 | 20.8 | 100.7 | ||
NC d | 686.3 | 495.0 | 551.6 | 210.0 | 1650.0 | ||
6 | Zhongyangmenbei | BV a | 1316.7 | 1350.0 | 180.6 | 1007.1 | 1528.6 |
PV b | 360.0 | 345.0 | 62.9 | 300.0 | 450.0 | ||
PCT c | 37.4 | 36.9 | 8.6 | 26.0 | 52.1 | ||
NC d | 324.0 | 270.0 | 162.1 | 210.0 | 510.0 | ||
Overall | BV a | [30.0,1528.6] | |||||
PV b | [60.0,1860.0] | ||||||
PCT c | [5.5,120.0] | ||||||
NC d | [30.0,1650.0] |
Type of Conflict | Sample Size | Proportion | Minimum (s) | Maximum (s) | Mean (s) | Median (s) | SD (s) |
---|---|---|---|---|---|---|---|
1 | 260 | 48.06% | 0.400 | 17.431 | 2.756 | 1.953 | 2.810 |
2 | 83 | 15.34% | 0.390 | 6.795 | 1.540 | 1.195 | 1.193 |
3 | 83 | 15.34% | 0.458 | 6.201 | 1.896 | 1.757 | 0.945 |
4 | 115 | 21.26% | 0.294 | 9.185 | 1.505 | 1.264 | 1.026 |
Source | a SS | b DF | c MS | d F | Prob > F |
---|---|---|---|---|---|
Groups | 179.4 | 3 | 59.8 | 13.64 | 1.37 × 10−8 |
Error | 2354.34 | 537 | 4.38 | ||
Total | 2533.74 | 540 |
Parameter | Estimate | Standard Error | p-Value |
---|---|---|---|
Constant (β0) | −3.652 | 0.326 | <1 × 10−12 |
BV (β1) | 0.589 | 0.052 | <1.218 × 10−8 |
PV (β2) | 0.528 | 0.063 | <1 × 10−12 |
PCT (β3) | 3.143 | 0.318 | <1 × 10−12 |
σ2 | - | - | 1.125 |
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Yan, X.; Wang, T.; Chen, J.; Ye, X.; Yang, Z.; Bai, H. Analysis of the Characteristics and Number of Bicycle–Passenger Conflicts at Bus Stops for Improving Safety. Sustainability 2019, 11, 5263. https://doi.org/10.3390/su11195263
Yan X, Wang T, Chen J, Ye X, Yang Z, Bai H. Analysis of the Characteristics and Number of Bicycle–Passenger Conflicts at Bus Stops for Improving Safety. Sustainability. 2019; 11(19):5263. https://doi.org/10.3390/su11195263
Chicago/Turabian StyleYan, Xingchen, Tao Wang, Jun Chen, Xiaofei Ye, Zhen Yang, and Hua Bai. 2019. "Analysis of the Characteristics and Number of Bicycle–Passenger Conflicts at Bus Stops for Improving Safety" Sustainability 11, no. 19: 5263. https://doi.org/10.3390/su11195263
APA StyleYan, X., Wang, T., Chen, J., Ye, X., Yang, Z., & Bai, H. (2019). Analysis of the Characteristics and Number of Bicycle–Passenger Conflicts at Bus Stops for Improving Safety. Sustainability, 11(19), 5263. https://doi.org/10.3390/su11195263