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Vanuatu: Mt. Ambae: Volcano, risk areas, infrastructure and settlements data from ProVention Consortium, 2003
United Nations Office for the Coordination of Humanitarian Affairs Asia and the Pacific (UN OCHA-ROAP) Information Management Unit. (2005). Vanuatu: Mt. Ambae Volcano, risk areas, infrastructure and settlements. UN OCHA-ROAP ROAP-VUT001-v1

Figure in a journal article
VEI 4 Magmatic fallout scenario, VEI 4 phreatomagmatic fallout scenario, VEI 4 concentrated PDC scenario, VEI 4 dilute PDC scenario
Figure 5 in: Mastrolorenzo, G., & Pappalardo, L. (2010). Hazard assessment of explosive volcanism at Somma‐Vesuvius. Journal of Geophysical Research: Solid Earth, 115(B12). https://doi.org/10.1029/2009JB006871

Figure in a journal article
VEI 5 Magmatic fallout scenario, VEI 5 phreatomagmatic fallout scenario, VEI 5 concentrated PDC scenario, VEI 5 dilute PDC scenario
Figure 6 in: Mastrolorenzo, G., & Pappalardo, L. (2010). Hazard assessment of explosive volcanism at Somma‐Vesuvius. Journal of Geophysical Research: Solid Earth, 115(B12). https://doi.org/10.1029/2009JB006871

Figure in a journal article
Velocity hazard maps for the case studies using HEC-RAS outputs from the 100-year peak flow for water velocity and depth
Figure 6 in: Mazer, K. E., Tomasek, A. A., Daneshvar, F., Bowling, L. C., Frankenberger, J. R., McMillan, S. K., Novoa, H.M., & Zeballos‐Velarde, C. (2021). Integrated hydrologic and hydraulic analysis of torrential flood hazard in Arequipa, Peru. Journal of Contemporary Water Research & Education, 171(1), 93-110. https://doi.org/10.1111/j.1936-704X.2020.3347.x

Figure in a journal article
Vent density for (a) regional mafic vents (b) LVC vents
Figure 7 in: Connor, C. B., Connor, L. J., Germa, A., Richardson, J. A., Bebbington, M. S., Gallant, E., & Saballos, A. (2019). How to use kernel density estimation as a diagnostic and forecasting tool for distributed volcanic vents. Statistics in Volcanology, 4 (3). p. 1-25. http://dx.doi.org/10.5038/2163-338X.4.3

Figure in a journal article
Vent distribution map for MC. Vent density map generated using a search radius of 2.5 km
Figure 4 in: Bonne, K., Kervyn, M., Cascone, L., Njome, S., Van Ranst, E., Suh, E., Ayonghe, S., & Ernst, G. (2008). A new approach to assess long‐term lava flow hazard and risk using GIS and low‐cost remote sensing: the case of Mount Cameroon, West Africa. International Journal of Remote Sensing, 29(22), 6539-6564. https://doi.org/10.1080/01431160802167873

Figure in a journal article
Vent equiprobability fatal impact maps representing how many times an area can be hit by pyroclastic density currents for VEI=3 eruptions and for VEI=4 eruptions
Figure 7 in: Alberico, I., Lirer, L., Petrosino, P., & Scandone, R. (2002). A methodology for the evaluation of long-term volcanic risk from pyroclastic flows in Campi Flegrei (Italy). Journal of Volcanology and Geothermal Research, 116(1-2), p. 63-78. https://doi.org/10.1016/S0377-0273(02)00211-1

Figure in a journal article
Vent Opening Probability map for Ischia island
Figure 6 in: Alberico, I., Lirer, L., Petrosino, P., & Scandone, R. (2008). Volcanic hazard and risk assessment from pyroclastic flows at Ischia island (southern Italy). Journal of volcanology and geothermal research, 171(1-2), 118-136.

Figure in a journal article
Vent opening probability maps - Model 1 (kernel denisty estimator)
Figure 7 in: Bevilacqua, A., Bursik, M., Patra, A., Pitman, E. B., & Till, R. (2017). Bayesian construction of a long-term vent opening probability map in the Long Valley volcanic region (CA, USA). Statistics in Volcanology, 3(1), 1. http://dx.doi.org/10.5038/2163-338X.3.1

Figure in a journal article
Vent opening probability maps - Model 2 (Bayesian update of fault map)
Figure 9 in: Bevilacqua, A., Bursik, M., Patra, A., Pitman, E. B., & Till, R. (2017). Bayesian construction of a long-term vent opening probability map in the Long Valley volcanic region (CA, USA). Statistics in Volcanology, 3(1), 1. http://dx.doi.org/10.5038/2163-338X.3.1