- پورمحمدی، محمدرضا؛ یوسفی شهیر، هانیه و حسینزاده دلیر، کریم. (1397). ارزیابی تابآوری کاربریهای حیاتی کلانشهر تبریز در برابر مخاطره طبیعی زلزله. پژوهشهای جغرافیای برنامهریزی شهری، 6 (1)، 55-74. https://doi.org/10.22059/jurbangeo.2018.247162.826
- کریمی قطبآبادی، فضل اله و زنگیآبادی، علی. (1402). تدوین سناریوهای ارتقاء تابآوری سکونتگاههای شهری جدید در برابر خطر زلزله مطالعه موردی: منطقه شهری اصفهان بزرگ. پژوهشهای جغرافیای برنامهریزی شهری، 11(2)، 175-193. https://doi.org/10.22059/jurbangeo.2023.348871.1735
- مرکز ملی آمار ایران (1400). https://amar.thmporg.ir
- مشکینی، ابوالفضل و علیپور، سمیه. (1403). تحلیل تابآوری اجتماعی مسکن محلات شهری در برابر زلزله مطالعه موردی: محلات منطقه ۱۵ شهر تهران. پژوهشهای جغرافیای برنامهریزی شهری، 12(3)، 1-22. http://doi.org/10.22059/jurbangeo.2024.378878.1963
- مهرپویان، مجتبی؛ جامی، محسن؛ خطیب، محمدمهدی؛ سرحدی، نازنین. (1395). گسلش فعال در طول گسل تبریز (شمال غرب ایران). نشریه جغرافیا و آمایش شهری منطقهای، 6 (19)، 201-216.
- Afsari, R., Nadizadeh Shorabeh, S., Bakhshi Lomer, A. R., Homaee, M., & Arsanjani, J. J. (2023). Using Artificial Neural Networks to Assess Earthquake Vulnerability in Urban Blocks of Tehran. Remote Sensing, 15(5), 1248. https://doi.org/10.3390/rs15051248
- Alemdar, K. D. (2025). Seismic risk assessment of transportation networks for the impending Istanbul earthquake with GIS-based MCDM approach. Natural Hazards, 121(9), 10085-10123. https://doi.org/10.1007/s11069-025-07199-y
- Alizadeh, M., Zabihi, H., Rezaie, F., Asadzadeh, A., Wolf, I. D., Langat, P. K., Khosravi, I., Beiranvand Pour, A., Mohammad Nataj, M., & Pradhan, B. (2021). Earthquake Vulnerability Assessment for Urban Areas Using an ANN and Hybrid SWOT-QSPM Model. Remote Sensing, 13(22), 4519. https://doi.org/10.3390/rs13224519
- Allen, R. M., & Melgar, D. (2019). Earthquake early warning: Advances, scientific challenges, and societal needs. Annual Review of Earth and Planetary Sciences, 47(1), 361-388. https://doi.org/10.1146/annurev-earth-053018-060457
- Amador Luna, D., Alonso-Chaves, F. M., & Fernández, C. (2024). Kernel Density Estimation for the Interpretation of Seismic Big Data in Tectonics Using QGIS: The Türkiye–Syria Earthquakes (2023). Remote Sensing, 16(20), 3849. https://doi.org/10.3390/rs16203849
- Azad, S. S., Philip, H., Dominguez, S., Hessami, K., Shahpasandzadeh, M., Foroutan, M., ... & Lamothe, M. (2015). Paleoseismological and morphological evidence of slip rate variations along the North Tabriz fault (NW Iran). Tectonophysics, 640, 20-38. https://doi.org/10.1016/j.tecto.2014.11.010
- Babolhavaegi, H. R. et al. (2023). Assessment of seismic vulnerability in urban and rural health service centers of Hamadan Province using GIS. Health in Emergencies and Disasters Quarterly, 8(3), 201–210. http://dx.doi.org/10.32598/hdq.8.3.494.1
- Cesca, S. (2020). Seiscloud, a tool for density-based seismicity clustering and visualization. Journal of Seismology, 24(3), 443-457.https://doi.org/10.1007/s10950-020-09921-8
- Doğan, A., Başeğmez, M., & Aydın, C. C. (2025). Assessment of the seismic vulnerability in an urban area with the integration of machine learning methods and GIS. Natural Hazards, 121(8), 9613-9652. https://doi.org/10.1007/s11069-025-07185-4
- Fayaz, M., Romshoo, S., Rashid, I., & Chandra, R. (2023). Earthquake Vulnerability Assessment of the Built Environment in Srinagar City, Kashmir Himalaya, Using GIS. Natural Hazards and Earth System Sciences Discussions, 2023, 1-35. https://doi.org/10.5194/nhess-23-1593-2023
- Greco, A., Pluchino, A., Barbarossa, L., Caliò, I., Martinico, F., & Rapisarda, A. (2017). A simplified model based on self-organized criticality framework for the seismic assessment of urban areas. arXiv preprint arXiv:1711.03391. https://doi.org/10.48550/arXiv.1711.03391
- Han, S. W., & Choi, Y. S. (2008). Seismic hazard analysis in low and moderate seismic region-Korean peninsula. Structural Safety, 30(6), 543-558. https://doi.org/10.1016/j.strusafe.2007.10.004
- Hasti, F., Rouhi, H., Pezhooli, N., SalmanMahiny, A., & Rostami, H. (2022). Zoning and spatial vulnerability assessment with emphasis on infrastructure using GIS (case study: Kurdistan Province, Iran). Arabian Journal of Geosciences, 15(115). https://doi.org/10.1007/s12517-021-09383-3
- Hotovec‐Ellis, A. J., Shiro, B. R., Shelly, D. R., Anderson, K. R., Haney, M. M., Thelen, W. A., ... & Johanson, I. A. (2022). Earthquake‐derived seismic velocity changes during the 2018 caldera collapse of Kīlauea volcano. Journal of Geophysical Research: Solid Earth, 127(2), e2021JB023324. https://doi.org/10.1029/2021JB023324
- Karimi Ghotbabadi, F. and zangiabadi, A. (2023). Preparation of scenarios to improve the resilience of new urban habitations against earthquake risk the case study of Isfahan metropolitan. Geographical Urban Planning Research (GUPR), 11(2), 175-193. https://doi.org/10.22059/jurbangeo.2023.348871.1735. [In Persian].
- Karimzadeh, S., Cakir, Z., Osmanoğlu, B., Schmalzle, G., Miyajima, M., Amiraslanzadeh, R., & Djamour, Y. (2013). Interseismic strain accumulation across the North Tabriz Fault (NW Iran) deduced from InSAR time series. Journal of Geodynamics, 66, 53-58. https://doi.org/10.1016/j.jog.2013.02.003
- Kwon, J., Zheng, Y., & Jun, M. (2023). Flexible spatio-temporal Hawkes process models for earthquake occurrences. Spatial Statistics, 54, 100728. https://doi.org/10.1016/j.spasta.2023.100728
- Leggieri, V., Mastrodonato, G., & Uva, G. (2022). GIS multisource data for the seismic vulnerability assessment of buildings at the urban cale. Buildings, 12(5), 523. https://doi.org/10.3390/buildings12050523
- Matin SS, Pradhan B. Earthquake-Induced Building-Damage Mapping Using Explainable AI (XAI). Sensors. (2021); 21(13):4489. https://doi.org/10.3390/s21134489
- Mehrpooyan, M., Jami, M., Khatibi, M.M., & Sarhadi, N. (2016). Active faulting along the Tabriz Fault (Northwest Iran). Geography and Regional Urban Planning Journal, 6(19), 201–216. [In Persian].
- Meshkini, A. and Alipour, S. (2024). Analysis of the social resilience of housing in urban areas against earthquakes: the case study of areas of the 15th district of Tehran. Geographical Urban Planning Research (GUPR), 12(3), 1-22. http://doi.org/10.22059/jurbangeo.2024.378878.1963. [In Persian].
- Mousavi, S. M., Ellsworth, W. L., Zhu, W., Chuang, L. Y., & Beroza, G. C. (2020). Earthquake transformer—an attentive deep-learning model for simultaneous earthquake detection and phase picking. Nature communications, 11(1), 3952. https://doi.org/10.1038/s41467-020-17591-w
- Petersen, M. D., Shumway, A. M., Powers, P. M., Field, E. H., Moschetti, M. P., Jaiswal, K. S., ... & Witter, R. C. (2024). The 2023 US 50-state national seismic hazard model: Overview and implications. Earthquake Spectra, 40(1), 5-88. https://doi.org/10.1177/8755293019878199
- Petersen, M. D., Shumway, A. M., Powers, P. M., Mueller, C. S., Moschetti, M. P., Frankel, A. D., ... & Zeng, Y. (2020). The 2018 update of the US National Seismic Hazard Model: Overview of model and implications. Earthquake Spectra, 36(1), 5-41. https://doi.org/10.1177/87552930231215428
- Poor Mohammadi, M. R., Yousefi Shahir, H. and Hoseinzadeh Dalir, K. (2018). Resilience of Vital Landuses against Earthquake Disaster in Tabriz Metropolis. Geographical Urban Planning Research (GUPR), 6(1), 55-74. https://doi.org/10.22059/jurbangeo.2018.247162.826. [In Persian].
- Rizza, M., Vernant, P., Ritz, J. F., Peyret, M., Nankali, H., Nazari, H., ... & Masson, F. (2013). Morphotectonic and geodetic evidence for a constant slip-rate over the last 45 kyr along the Tabriz fault (Iran). Geophysical Journal International, 193(3), 1083-1094. https://doi.org/10.1093/gji/ggt041
- Sadrykia, M., Delavar, M. R., & Zare, M. (2017). A GIS-based fuzzy decision making model for seismic vulnerability assessment in areas with incomplete data. ISPRS International Journal of Geo-Information, 6(4), 119. https://doi.org/10.3390/ijgi6040119
- Sammartano, G., Avena, M., Fillia, E., & Spanò, A. (2023). Integrated HBIM-GIS Models for Multi-Scale Seismic Vulnerability Assessment of Historical Buildings. Remote Sensing, 15(3), 833. https://doi.org/10.3390/rs15030833
- Sauti, N. S., Daud, M. E., Kaamin, M., & Sahat, S. (2021). GIS spatial modelling for seismic risk assessment based on exposure, resilience, and capacity indicators to seismic hazard: A case study of Pahang, Malaysia. Geomatics, Natural Hazards and Risk, 12(1), 1948-1972. https://doi.org/10.1080/19475705.2021.1947903
- Skurativskyi, S., Mykulyak, S., Semenova, Y., & Skurativska, K. (2025). Cluster and statistical analysis of spatial earthquake patterns in the South Caucasus region. Acta Geophysica, 1-15.
- Statistical Center of Iran. (2022). National population and housing statistics. https://amar.thmporg.ir. [In Persian].
- Talebian, M., & Jackson, J. (2004). A reappraisal of earthquake focal mechanisms and active shortening in the Zagros mountains of Iran. Geophysical Journal International, 156(3), 506–526. https://doi.org/10.1111/j.1365-246X.2004.02092.x
- Tavakoli, B., & Ghafory-Ashtiany, M. (2017). Seismic hazard assessment of Iran. Journal of Seismology, 21(2), 357-371. https://doi.org/10.1007/s10950-016-9619-4
- United States Geological Survey (USGS). (2023). What magnitude does damage begin to occur in an earthquake? U.S. Geological Survey. https://www.usgs.gov/faqs/what-magnitude-does-damage-begin-occur-earthquake
- Wang, Y., & Chen, H. (2019). Geological structures and seismic risk assessment in tectonic zones. Journal of Geophysical Research, 124(6), 567-583. https://doi.org/10.1029/2018JB016472
- Yamagishi, Y., Saito, K., Hirahara, K., & Ueda, N. (2021). Spatio-temporal clustering of earthquakes based on distribution of magnitudes. Applied Network Science, 6(1), 71. https://doi.org/10.1007/s41109-021-00413-3
- Yariyan, P., Ali Abbaspour, R., Chehreghan, A., Karami, M., & Cerdà, A. (2021). GIS-based seismic vulnerability mapping: a comparison of artificial neural networks hybrid models. Geocarto International, 37(15), 4312–4335. https://doi.org/10.1080/10106049.2021.1892208
- Yariyan, P., Avand, M., Soltani, F., Ghorbanzadeh, O., & Blaschke, T. (2020). Earthquake Vulnerability Mapping Using Different Hybrid Models. Symmetry, 12(3), 405. https://doi.org/10.3390/sym12030405
- Zhang, L., Tao, Z., & Wang, G. (2022). Assessment and determination of earthquake casualty gathering area based on building damage state and spatial characteristics analysis. International Journal of Disaster Risk Reduction, 67, 102688. https://doi.org/10.1016/j.ijdrr.2021.102688
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