Lollino, 2006, UNESCO World Heritage sites in Italy affected by geological problems, specifically landslide and flood hazard, Landslides, 3, 311, 10.1007/s10346-006-0059-7
UNESCO, 1972. Recommendation concerning the Protection at National Level, of the Cultural and Natural Heritage,”.
Spizzichino, 2016, PROTHEGO Deliverable D.01.01: UNESCO Cultural Heritage vs Natural hazards at European scale, Version 1.0. JPI-CH Heritage Plus PROTHEGO project, Open Rep., 30
Howard, 2013, Managing global heritage in the face of future climate change: the importance of understanding geological and geomorphological processes and hazards, Int. J. Herit. Stud., 19, 632, 10.1080/13527258.2012.681680
Figueiredo, 2020, Flood risk assessment of cultural heritage at large spatial scales: framework and application to mainland Portugal, J. Cult. Herit., 43, 163, 10.1016/j.culher.2019.11.007
Hadjimitsis, 2013, Exploring natural and anthropogenic risk for cultural heritage in Cyprus using remote sensing and GIS, Int. J. Digit. Earth, 6, 115, 10.1080/17538947.2011.602119
Lombardo, 2020, Spatial modeling of multi-hazard threat to cultural heritage sites, Eng. Geol., 277, 10.1016/j.enggeo.2020.105776
Sevieri, 2020, A multi-hazard risk prioritisation framework for cultural heritage assets, Natural Hazard. Earth Syst. Sci., 20, 1391, 10.5194/nhess-20-1391-2020
Valagussa, 2021, Multi-risk analysis on European cultural and natural UNESCO heritage sites, Natural Hazard., 105, 2659, 10.1007/s11069-020-04417-7
Reimann, 2018, Mediterranean UNESCO World Heritage at risk from coastal flooding and erosion due to sea-level rise, Nat. Commun., 9, 1, 10.1038/s41467-018-06645-9
Guerriero, 2020, Flood hazard mapping incorporating multiple probabiliy models, J. Hydrol. (Amst.), 587, 10.1016/j.jhydrol.2020.125020
Guerriero, 2020, 12, 2405
Di Napoli, 2020, Machine learning ensemble modelling as a tool to improve landslide susceptibility mapping reliability, Landslides, 17, 1897, 10.1007/s10346-020-01392-9
Novellino, 2021, Slow-moving landslide risk assessment combining Machine Learning and InSAR techniques, Catena, 203, 10.1016/j.catena.2021.105317
Gill, 2014, Reviewing and visualizing the interactions of natural hazards, Rev. Geophisic., 52, 680, 10.1002/2013RG000445
Pescaroli, 2018, Understanding compound, interconnected, interacting, and cascading risks: a holistic framework, Risk Anal., 38, 2245, 10.1111/risa.13128
Terzi, 2019, Multi-risk assessment in mountain regions: a review of modelling approaches for climate change adaptation, J. Environ. Manage., 232, 759, 10.1016/j.jenvman.2018.11.100
Gill, 2016, Hazard interactions and interaction networks (cascades) within multi-hazard methodologies, Earth Syst. Dyn., 7, 659, 10.5194/esd-7-659-2016
Kappes, 2012, Challenges of analyzing multi-hazard risk: a review, Natural Hazard., 64, 1925, 10.1007/s11069-012-0294-2
Hewitt, 1971
1992
Tilloy, 2019, A review of quantification methodologies for multi-hazard interrelationships, Earth-Science Reviews, 196, 10.1016/j.earscirev.2019.102881
Romão, 2016, A framework for the simplified risk analysis of cultural heritage assets, J. Cult. Herit., 20, 696, 10.1016/j.culher.2016.05.007
Harrison, 2018, Local scale investigation and advanced modelling of the geo-hazards affecting the Derwent Valley Mills World Heritage. Case Study Site, version 1.0., Nottingham, UK, British Geological Survey, 51
Cigna, 2016, Understanding geohazards in the UNESCO WHL site of the Derwent Valley Mills (UK) using geological and remote sensing data, 9688
2020
2010
2017, User Guide for the British Geological Survey GeoSure dataset. Version 8. Nottingham, UK, British Geol. Surv., 14
Skilodimou, 2019, Multi-hazard assessment modeling via multi-criteria analysis and GIS: a case study, Environ. Earth Sci., 78, 47, 10.1007/s12665-018-8003-4
Aksha, 2020, A geospatial analysis of multi-hazard risk in Dharan, Nepal. Geomatics, Natural Hazard. Risk, 11, 88, 10.1080/19475705.2019.1710580
Saaty, 1977, A scaling method for priorities in hierarchical structures, J. Math. Psychol., 15, 234, 10.1016/0022-2496(77)90033-5
Saaty, 2006, Rank from comparisons and from ratings in the analytic hierarchy/network processes, Eur. J. Oper. Res., 168, 557, 10.1016/j.ejor.2004.04.032
Saaty, 1990, How to make a decision: the analytic hierarchy process, Eur. J. Oper. Res., 48, 9, 10.1016/0377-2217(90)90057-I
Howard, 2016, Assessing riverine threats to heritage assets posed by future climate change through a geomorphological approach and predictive modelling in the Derwent Valley Mills WHS, UK, J. Cultur. Heritage, 19, 387, 10.1016/j.culher.2015.11.007
Cigna, 2018, Geological hazards in the UNESCO World Heritage sites of the UK: from the global to the local scale perspective, Earth-Sci. Rev., 176, 166, 10.1016/j.earscirev.2017.09.016
Olson, 1988, Opportunities and limitations of AHP in multiobjective programming, Math. Comput. Model., 11, 206, 10.1016/0895-7177(88)90481-5
Pourghasemi, 2019, Multi-hazard probability assessment and mapping in Iran, Sci. Total Environ., 692, 556, 10.1016/j.scitotenv.2019.07.203
Pourghasemi, 2020, Assessing and mapping multi-hazard risk susceptibility using a machine learning technique, Sci. Rep., 10, 3203, 10.1038/s41598-020-60191-3
Rusk, 2022, Multi-hazard susceptibility and exposure assessment of the Hindu Kush Himalaya, Sci. Total Environ., 804, 10.1016/j.scitotenv.2021.150039