Articles | Volume 20, issue 10
https://doi.org/10.5194/nhess-20-2585-2020
© Author(s) 2020. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
Special issue:
https://doi.org/10.5194/nhess-20-2585-2020
© Author(s) 2020. This work is distributed under
the Creative Commons Attribution 4.0 License.
the Creative Commons Attribution 4.0 License.
Preface: Landslide–transport network interactions
Department of Geography, King's College London, 40 Aldwych, London,
WC2B 4BG, United Kingdom
Paolo Tarolli
Department of Land, Environment, Agriculture and Forestry, University of Padua, viale dell'Università 16, 35020 Legnaro, Italy
Bruce D. Malamud
Department of Geography, King's College London, 40 Aldwych, London,
WC2B 4BG, United Kingdom
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Cited articles
Ali, S., Biermanns, P., Haider, R., and Reicherter, K.: Landslide susceptibility mapping by using a geographic information system (GIS) along
the China–Pakistan Economic Corridor (Karakoram Highway), Pakistan, Nat.
Hazards Earth Syst. Sci. 19, 999–1022, https://doi.org/10.5194/nhess-19-999-2019, 2019.
Bordoni, M., Persichillo, M. G., Meisina, C., Crema, S., Cavalli, M., Bartelletti, C., Galanti, Y., Barsanti, M., Giannecchini, R., and D'Amato Avanzi, G.: Estimation of the susceptibility of a road network to shallow landslides with the integration of the sediment connectivity, Nat. Hazards Earth Syst. Sci., 18, 1735–1758, https://doi.org/10.5194/nhess-18-1735-2018, 2018.
Brenning, A., Schwinn, M., Ruiz-Páez, A. P., and Muenchow, J.: Landslide
susceptibility near highways is increased by 1 order of magnitude in the Andes of southern Ecuador, Loja province, Nat. Hazards Earth Syst. Sci., 15,
45–57, https://doi.org/10.5194/nhess-15-45-2015, 2015.
Chen, Z. W., He, F., and Wang, J. J.: Revises of Terrain Factors of Roadbed Side Slope in Universal Soil Loss Equation, Highway, 12, 180–185, 2010.
Donnini, M., Napolitano, E., Salvati, P., Ardizzone, F., Bucci, F., Fiorucci, F., Santangelo, M., Cardinali, M., and Guzzetti, F.: Impact of event landslides on road networks: a statistical analysis of two Italian case studies, Landslides, 14, 1521–1535, 2017.
Ferrigno, F., Gigli, G., Fanti, R., Intrieri, E., and Casagli, N.: GB-InSAR
monitoring and observational method for landslide emergency management: the
Montaguto earthflow (AV, Italy), Nat. Hazards Earth Syst. Sci., 17, 845–860,
https://doi.org/10.5194/nhess-17-845-2017, 2017.
Fowze, J. S. M., Bergado, D. T., Soralump, S., Voottipreux, P., and Dechasakulsom, M.: Rain-triggered landslide hazards and mitigation measures
in Thailand: From research to practice, Geotext. Geomembran., 30, 50–64, 2012.
Froude, M. J. and Petley, D. N.: Global fatal landslide occurrence from 2004 to 2016, Nat. Hazards Earth Syst. Sci., 18, 2161–2181, https://doi.org/10.5194/nhess-18-2161-2018, 2018.
Giordan, D., Hayakawa, Y., Nex, F., Remondino, F., and Tarolli, P.: Review
article: The use of remotely piloted aircraft systems (RPASs) for natural
hazards monitoring and management, Nat. Hazards Earth Syst. Sci., 18, 1079–1096, https://doi.org/10.5194/nhess-18-1079-2018, 2018.
Graziella, D., Ingeborg, K., Monica, S., Nils-Kristian, O., Ragnar, E., Erik, J., and Hervé, C.: Landslide early warning system and web tools for
real-time scenarios and for distribution of warning messages in Norway, in: Engineering Geology for Society and Territory – Volume 2, Springer, Cham, 625–629, 2015.
Guzzetti, F., Mondini, A. C., Cardinali, M., Fiorucci, F., Santangelo, M., and Chang, K. T.: Landslide inventory maps: New tools for an old problem, Earth-Sci. Rev., 112, 42–66, 2012.
Jaiswal, P., van Westen, C. J., and Jetten, V.: Quantitative assessment of
direct and indirect landslide risk along transportation lines in southern India, Nat. Hazards Earth Syst. Sci., 10, 1253–1267, https://doi.org/10.5194/nhess-10-1253-2010, 2010.
Jeon, S.-S., Park, Y.-K., and Eum, K.-Y.: Stability assessment of roadbed
affected by ground subsidence adjacent to urban railways, Nat. Hazards Earth
Syst. Sci., 18, 2261–2271, https://doi.org/10.5194/nhess-18-2261-2018, 2018.
Klose, M., Damm, B., and Terhorst, B.: Landslide cost modeling for
transportation infrastructures: a methodological approach, Landslides, 12, 321–334, 2014.
Klose, M., Damm, B., and Terhorst, B.: Landslide cost modeling for transportation infrastructures: a methodological approach, Landslides, 12, 321–334, 2015.
Klose, M., Maurischat, P., and Damm, B., Landslide impacts in Germany: A
historical and socioeconomic perspective, Landslides, 13, 183–199, 2016.
Kreutzmann, H.: The Karakoram highway as a prime exchange corridor between
Pakistan and China, in: Regional workshop, Integrated tourism concepts to contribute to sustainable development in mountain regions, Gilgit, Pakistan and Kashgar, China, 8–14 October 2008, InWEnt-Internationale Weiterbildung und Entwicklung GmbH, Bonn, Germany, 13–36, 2009.
Lennartz, T.: Constructing roads – constructing risks? Settlement decisions
in view of landslide risk and economic opportunities in Western Nepal, Mount. Res. Dev., 33, 364–371, 2013.
Li, Y., Qi, S., Liang, B., Ma, J., Cheng, B., Ma, C., Qiu, Y., and Chen, Q.:
Dangerous degree forecast of soil loss on highway slopes in mountainous areas of the Yunnan–Guizhou Plateau (China) using the Revised Universal Soil Loss Equation, Nat. Hazards Earth Syst. Sci., 19, 757–774, https://doi.org/10.5194/nhess-19-757-2019, 2019.
Malamud, B. D., Turcotte, D. L., Guzzetti, F., and Reichenbach, P.: Landslide
inventories and their statistical properties, Earth Surf. Proc. Land., 29, 687–711, 2004.
McAdoo, B. G., Quak, M., Gnyawali, K. R., Adhikari, B. R., Devkota, S., Rajbhandari, P. L., and Sudmeier-Rieux, K.: Roads and landslides in Nepal: how development affects environmental risk, Nat. Hazards Earth Syst. Sci., 18, 3203–3210, https://doi.org/10.5194/nhess-18-3203-2018, 2018.
Meneses, B. M., Pereira, S., and Reis, E.: Effects of different land use and
land cover data on the landslide susceptibility zonation of road networks,
Nat. Hazards Earth Syst. Sci., 19, 471–487, https://doi.org/10.5194/nhess-19-471-2019, 2019.
Meyer, N. K., Schwanghart, W., Korup, O., and Nadim, F., Roads at risk:
traffic detours from debris flows in southern Norway, Nat. Hazards Earth Syst. Sci., 15, 985–995, https://doi.org/10.5194/nhess-15-985-2015, 2015.
Mignelli, C., Russo, S. L. and Peila, D.: ROckfall risk MAnagement assessment: the RO. MA. approach, Nat. Hazards, 62, 1109–1123, 2012.
Penna, D., Borga, M., Aronica, G. T., Brigandì, G., and Tarolli, P.: Predictive power of a shallow landslide model in a high-resolution landscape: dissecting the effects of forest roads, Hydrol. Earth Syst. Sci., 18, 2127–2139, https://doi.org/10.5194/hess-18-2127-2014, 2014.
Postance, B., Hillier, J., Dijkstra, T., and Dixon, N.: Extending natural
hazard impacts: an assessment of landslide disruptions on a national road
transportation network, Environ. Res. Lett., 12, 014010, https://doi.org/10.1088/1748-9326/aa5555, 2017.
Reichenbach, P., Rossi, M., Malamud, B. D., Mihir, M., and Guzzetti, F.: A
review of statistically-based landslide susceptibility models, Earth-Sci. Rev., 180, 60–91, 2018.
Santangelo, M., Cardinali, M., Rossi, M., Mondini, A. C., and Guzzetti, F.: Remote landslide mapping using a laser rangefinder binocular and GPS, Nat. Hazards Earth Syst. Sci., 10, 2539–2546, https://doi.org/10.5194/nhess-10-2539-2010, 2010.
Santangelo, M., Alvioli, M., Baldo, M., Cardinali, M., Giordan, D., Guzzetti, F., Marchesini, I., and Reichenbach, P.: Brief communication: Remotely piloted aircraft systems for rapid emergency response: road exposure to rockfall in Villanova di Accumoli (central Italy), Nat. Hazards Earth Syst. Sci., 19, 325–335, https://doi.org/10.5194/nhess-19-325-2019, 2019.
Schlögl, M. and Matulla, C.: Potential future exposure of European land
transport infrastructure to rainfall-induced landslides throughout the 21st
century , Nat. Hazards Earth Syst. Sci., 18, 1121–1132, https://doi.org/10.5194/nhess-18-1121-2018, 2018.
Schlögl, M., Richter, G., Avian, M., Thaler, T., Heiss, G., Lenz, G., and Fuchs, S.: On the nexus between landslide susceptibility and transport infrastructure – an agent-based approach, Nat. Hazards Earth Syst. Sci., 19, 201–219, https://doi.org/10.5194/nhess-19-201-2019, 2019.
Sidle, R. C. and Ziegler, A. D.: The dilemma of mountain roads, Nat. Publ.
Group, 5, 437–438, https://doi.org/10.1038/ngeo1512, 2012.
Sidle, R. C., Ghestem, M., and Stokes, A.: Epic landslide erosion from
mountain roads in Yunnan, China – challenges for sustainable development,
Nat. Hazards Earth Syst. Sci., 14, 3093–3104,
doi10.5194/nhess-14-3093-2014, 2014.
doi10.5194/nhess-14-3093-2014, 2014.
Sudmeier-Rieux, K., McAdoo, B. G., Devkota, S., Rajbhandari, P. C. L., Howell, J., and Sharma, S.: Invited perspectives: Mountain roads in Nepal at a new crossroads , Nat. Hazards Earth Syst. Sci., 19, 655–660, https://doi.org/10.5194/nhess-19-655-2019, 2019.
Tarolli, P. and Sofia G.: Human topographic signatures and derived geomorphic
processes across landscapes, Geomorphology, 255, 140–161,
https://doi.org/10.1016/j.geomorph.2015.12.007, 2016.
Taylor, F. E., Malamud, B. D., Freeborough, K., and Demeritt, D.: Enriching
Great Britain's national landslide database by searching newspaper archives, Geomorphology, 249, 52–68, 2015.
Tseng, C.-M., Chen, Y.-R., and Wu, S.-M.: Scale and spatial distribution assessment of rainfall-induced landslides in a catchment with mountain roads, Nat. Hazards Earth Syst. Sci., 18, 687–708, https://doi.org/10.5194/nhess-18-687-2018, 2018.
Uzielli, M., Rianna, G., Ciervo, F., Mercogliano, P., and Eidsvig, U. K.: Temporal evolution of flow-like landslide hazard for a road infrastructure
in the municipality of Nocera Inferiore (southern Italy) under the effect of
climate change, Nat. Hazards Earth Syst. Sci., 18, 3019–3035, https://doi.org/10.5194/nhess-18-3019-2018, 2018.
Voumard, J., Derron, M.-H., and Jaboyedoff, M.: Natural hazard events affecting transportation networks in Switzerland from 2012 to 2016, Nat.
Hazards Earth Syst. Sci. 18, 2093–2109, https://doi.org/10.5194/nhess-18-2093-2018, 2018.
Wang, C. J.: Regional Impaction and Evolution of Express Way Networks in China, Prog. Geogr., 25, 126–137, 2006.
Winter, M. G., Shearer, B., Palmer, D., Peeling, D., Harmer, C., and Sharpe,
J: The economic impact of landslides and floods on the road network, Proced. Eng., 143, 1425–1434, 2016.
Wood, J. L., Harrison, S., Reinhardt, L., and Taylor, F. E.: Landslide databases for climate change detection and attribution, Geomorphology, 355, 107061, https://doi.org/10.1016/j.geomorph.2020.107061, 2020.
World Bank: Decline of Global Extreme Poverty Continues but Has Slowed,
World Bank, available at: https://www.worldbank.org/en/news/press-release/2018/09/19/decline-of-global-extreme-poverty-continues-but-has-slowed,
last access: 27 August 2020.
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