Chapter
Jun 4, 2021

Dimensions of Resilience Measurement in Critical Transportation Infrastructure

Publication: International Conference on Transportation and Development 2021

ABSTRACT

Researchers have developed several dimensions for measuring the resilience of transportation infrastructure while considering the interdependency among different critical infrastructure. Only a few of them are fully capable of measuring the resilience of an existing roadway as a standalone system. Therefore, this study aimed to identify and prepare a list of dimensions to measure the technical and organizational resilience of the roadway network. To achieve this goal, a comprehensive literature review of over 100 peer-reviewed articles was conducted and fourteen dimensions were listed. Results indicated that the number of nodes (intersections) on roads has a significant negative correlation with the resilience of the pavement network. Also, information dissemination and preparedness action are two dimensions that have a high level of impact on transportation network resilience. The findings of this study will help practitioners in developing appropriate strategies to enhance the resilience of transportation roadway networks.

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REFERENCES

Bruneau, M., Chang, S. E., Eguchi, R. T., Lee, G. C., O’Rourke, T. D., Reinhorn, A. M., Shinozuka, M., Tierney, K. T., Wallace, W. A., and Von Winterfeldt, D. (2003). A framework to quantitatively assess and enhance the seismic resilience of communities. Earthquake spectra, 19(4), 733-752.
Bueno, N. P. (2012). Assessing the resilience of small socio-ecological systems based on the dominant polarity of their feedback structure. System Dynamics Review, 28(4), 351-360.
Chang, S. E., and Shinozuka, M. (2004). Measuring improvements in the disaster resilience of communities. Earthquake spectra, 20(3), 739-755.
Chaudry, M., Ekins, P., Ramachandran, K., Shakoor, A., Skea, J., Strbac, G., Wang, X., and Whitaker, J. (2011). Building a resilient UK energy system.
Cimellaro, G. P., Arcidiacono, V., and Reinhorn, A. M. (2018). Disaster resilience assessment of building and transportation system. Journal of Earthquake Engineering, 1-27.
Dick, K., Russell, L., Souley Dosso, Y., Kwamena, F., and Green, J. R. (2019). Deep learning for critical infrastructure resilience. Journal of Infrastructure Systems, 25(2), 05019003.
Faturechi, R., and Miller-Hooks, E. (2014). Travel time resilience of roadway networks under disaster. Transportation research part B: methodological, 70, 47-64.
Ganin, A. A., Kitsak, M., Marchese, D., Keisler, J. M., Seager, T., and Linkov, I. (2017). Resilience and efficiency in transportation networks. Science advances, 3(12), e1701079.
Ganin, A. A., Mersky, A. C., Jin, A. S., Kitsak, M., Keisler, J. M., and Linkov, I. (2019). Resilience in intelligent transportation systems (ITS). Transportation Research Part C: Emerging Technologies, 100, 318-329.
Gay, L. F., and Sinha, S. K. (2013). Resilience of civil infrastructure systems: literature review for improved asset management. International Journal of Critical Infrastructures, 9(4), 330-350.
Goidel, K., Horney, J. A., Kellstedt, P. M., Sullivan, E., and Brown, S. E. (2019). Perceptions of disaster resilience in four Texas coastal communities. Local Government Studies, 45(3), 413-432.
Henry, D., and Ramirez-Marquez, J. E. (2012). Generic metrics and quantitative approaches for system resilience as a function of time. Reliability Engineering & System Safety, 99, 114-122.
Holling, C. S. (1973). Resilience and stability of ecological systems. Annual review of ecology and systematics, 4(1), 1-23.
Ilbeigi, M. (2019). Statistical process control for analyzing resilience of transportation networks. International journal of disaster risk reduction, 33, 155-161.
Keogh, M., and Cody, C. (2013). Resilience in regulated utilities. National Association of Regulatory Utility Commissioners. Washington DC, November. Accessible at: www. naruc. org/Grants/Documents/Resilience% 20in% 20Regulated% 20Utilities% 20ONLINE% 2011_12. pdf.
Kermanshachi, S., Bergstrand, K., and Rouhanizadeh, B. (2019). Identifying, Weighting and Causality Modeling of Social and Economic Barriers to Rapid Infrastructure Recovery from Natural Disasters: A Study of Hurricanes Harvey, Irma and Maria.
Koc, E., Cetiner, B., Soibelman, L., and Taciroglu, E. (2019). System-Based Vulnerability and Resilience Assessment in Mega-Scale Transportation Systems: Towards Data and Model-Driven Methodologies. In Computing in Civil Engineering 2019: Smart Cities, Sustainability, and Resilience(pp. 444-450). Reston, VA: American Society of Civil Engineers.
Labaka, L., Hernantes, J., and Sarriegi, J. M. (2016). A holistic framework for building critical infrastructure resilience. Technological Forecasting and Social Change, 103, 21-33.
Liao, T. Y., Hu, T. Y., and Ko, Y. N. (2018). A resilience optimization model for transportation networks under disasters. Natural hazards, 93(1), 469-489.
McDaniels, T., Chang, S., Cole, D., Mikawoz, J., and Longstaff, H. (2008). Fostering resilience to extreme events within infrastructure systems: Characterizing decision contexts for mitigation and adaptation. Global Environmental Change, 18(2), 310-318.
Murray-Tuite, P. M. (2006, December). A comparison of transportation network resilience under simulated system optimum and user equilibrium conditions. In Proceedings of the 2006 Winter Simulation Conference (pp. 1398-1405). IEEE.
Nan, C., and Sansavini, G. (2017). A quantitative method for assessing resilience of interdependent infrastructures. Reliability Engineering & System Safety, 157, 35-53.
Nipa, T. J., Kermanshachi, S., and Ramaji, I. (2019, June). Comparative analysis of strengths and limitations of infrastructure resilience measurement methods. In 7th CSCE International Construction Specialty Conference (ICSC) (pp. 12-15).
Nipa, T. J., and Kermanshachi, S. (2020, November). Identification of the Resilience Dimensions and Determination of Their Relationships in Critical Transportation Infrastructure. In Construction Research Congress 2020: Infrastructure Systems and Sustainability (pp. 644-653). Reston, VA: American Society of Civil Engineers.
Pamidimukkala, A., Kermanshachi, S., and Karthick, S. (2020, July). Impact of natural disasters on construction projects: Strategies to prevent cost and schedule overruns in reconstruction projects. In Creative Construction e-Conference 2020 (pp. 49-57). Budapest University of Technology and Economics.
Pamidimukkala, A., Kermanshachi, S., and Safapour, E. (2020, July). Challenges in Post-Disaster Housing Reconstruction: Analysis of Urban vs. Rural Communities. In Creative Construction e-Conference 2020 (pp. 103-110). Budapest University of Technology and Economics.
Panteli, M., and Mancarella, P. (2015). Modeling and evaluating the resilience of critical electrical power infrastructure to extreme weather events. IEEE Systems Journal, 11(3), 1733-1742.
Reggiani, A. (2013). Network resilience for transport security: Some methodological considerations. Transport Policy, 28, 63-68.
Rouhanizadeh, B., and Kermanshachi, S. (2019, June). A Systematic Approach to Analysis and Prioritization of the Socioeconomic Policies and Legal barriers to Rapid Post Disaster Reconstruction. In 7th CSCE International Construction Specialty Conference (ICSC) (pp. 12-15).
Rouhanizadeh, B., and Kermanshachi, S. (2020). Comparative Analysis of Public’s and Decision-Maker’s Perspectives on Socioeconomic Barriers Causing Delay in Post-disaster Recovery Processes. In Proceedings of ASCE Construction Research Congress (CRC) (pp. 8-10).
Rouhanizadeh, B., and Kermanshachi, S. (2020). Post-disaster reconstruction of transportation infrastructures: Lessons learned. Sustainable Cities and Society, 63, 102505.
Rouhanizadeh, B., Kermanshachi, S., and Dhamangaonkar, V. S. (2020, November). Reconstruction of Critical and Interdependent Infrastructure Due to Catastrophic Natural Disasters: Lessons Learned. In Construction Research Congress 2020: Infrastructure Systems and Sustainability (pp. 895-904). Reston, VA: American Society of Civil Engineers.
Rouhanizadeh, B., Kermanshachi, S., and Nipa, T. J. (2020). Exploratory analysis of barriers to effective post-disaster recovery. International Journal of Disaster Risk Reduction, 50, 101735.
Safapour, E., Kermanshachi, S., and Jahan Nipa, T. (2020, July). Analysis of Cost Performance Indicators in Reconstruction Projects: A Comparative Study of Low vs High Level Damages. In Creative Construction e-Conference 2020 (pp. 2-10). Budapest University of Technology and Economics.
Safapour, E., Kermanshachi, S., and Jahan Nipa, T. (2020, July). Schedule Performance Analysis of Infrastructure Reconstruction Projects Due to Extreme Events. In Creative Construction e-Conference 2020 (pp. 39-48). Budapest University of Technology and Economics.
Sun, W., Bocchini, P., and Davison, B. D. (2020). Resilience metrics and measurement methods for transportation infrastructure: the state of the art. Sustainable and Resilient Infrastructure, 5(3), 168-199.
Vugrin, E. D., Warren, D. E., and Ehlen, M. A. (2011). A resilience assessment framework for infrastructure and economic systems: Quantitative and qualitative resilience analysis of petrochemical supply chains to a hurricane. Process Safety Progress, 30(3), 280-290.
Wan, C., Yang, Z., Zhang, D., Yan, X., and Fan, S. (2018). Resilience in transportation systems: a systematic review and future directions. Transport reviews, 38(4), 479-498.
Wang, P., Krishnan, K., Twomey, J., and Yodo, N. (2018). Risk and Failure Resilience of Interdependent Transportation Systems.
Zhang, W., Wang, N., and Nicholson, C. (2017). Resilience-based post-disaster recovery strategies for road-bridge networks. Structure and Infrastructure Engineering, 13(11), 1404-1413.

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International Conference on Transportation and Development 2021
Pages: 302 - 312

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Published online: Jun 4, 2021

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Thahomina Jahan Nipa, S.M.ASCE [email protected]
1Dept. of Civil Engineering, Univ. of Texas at Arlington, Arlington, TX. Email: [email protected]
Sharareh Kermanshachi, Ph.D., M.ASCE [email protected]
2Dept. of Civil Engineering, Univ. of Texas at Arlington, Arlington, TX. Email: [email protected]

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Cited by

  • Development of SEM Model to Measure Resilience in Horizontal Transportation Infrastructure, International Conference on Transportation and Development 2022, 10.1061/9780784484364.008, (83-95), (2022).
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  • Development of Innovative Strategies to Enhance the Resilience of the Critical Infrastructure, Construction Research Congress 2022, 10.1061/9780784483954.012, (111-120), (2022).
  • Analysis of Investment Decision-Making Factors in Resilience Improvement of Transportation Infrastructure, Construction Research Congress 2022, 10.1061/9780784483954.010, (90-100), (2022).
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