Conceptual Design of a Flood-Adjusted Land Value Index (FALVI) Methodology for Urban Areas: A Study Case at Bandung City, Indonesia
DOI:
https://doi.org/10.30564/jees.v7i1.7250Abstract
Addressing these water management challenges requires a comprehensive and integrated approach. Floods and other water-related challenges in urban areas can have an impact on land values. However, the lack of studies has developed a comprehensive index methodology related to examining floods and land value relationships for urban areas. Therefore, the main purpose of this study is to develop a comprehensive index methodology related to examining floods and land value relationships for urban areas that is called a Flood-Adjusted Land Value Index (FALVI) Methodology. This paper illustrates the importance of the proposed FALVI methodology to determine the relationship between flood events and land value. Important variables within three main aspects—environmental, socio, and historical flood variables—would be elaborated and measured by GIS-based analysis. It provides a more accurate and thorough assessment of property values by taking flood risk variables into account throughout the valuation process. This methodology is also regarded as an essential methodology for examining floods and land value links in metropolitan areas. FALVI can help guide government strategies on flood management, land use planning, and catastrophe risk reduction. By identifying high-risk locations, governments can prioritize flood mitigation measures and enact restrictions that prevent development in susceptible areas. Urban areas in certain watershed systems can be kept viable for the long term by carefully reviewing this methodology and implementing suitable land management strategies.
Keywords:
Bandung (Indonesia); Flood; Geographical Information System (GIS); Land Value; MethodologyReferences
[1] Lestari, I., Herdiansyah, H., 2024. Water governance: Urban water conservation as a response to climate change. International Journal of Conservation Science. 15(1), 627–644. DOI: https://doi.org/10.36868/ijcs.2024.01.17
[2] Vashishat, A., 2023. Water pollution, big problem: A research. International Journal of Science and Research (IJSR). 12(11), 575–577. DOI: https://doi.org/10.21275/es231105141235
[3] Michaels, S., 2023. Differentiating between urban flood risk as a unitary problem and as a strand in a braided problem set: Implications for administrative coordination. PLOS Water. 2(3), e0000090. DOI: https://doi.org/10.1371/journal.pwat.0000090
[4] Zhang, C.-Y., Oki, T., 2023. Water pricing reform for sustainable water resources management in China's agricultural sector. Agricultural Water Management. 275, 108045. DOI: https://doi.org/10.1016/j.agwat.2022.108045
[5] Ungalov, A., 2023. Water resources modeling under climate change. The American Journal of Interdisciplinary Innovations and Research. 5(12), 29–35. https://doi.org/10.37547/tajiir/volume05issue12-07
[6] Koutsoyiannis, D., 2021. Rethinking climate, climate change, and their relationship with water. Water. 13(6), 849. DOI: https://doi.org/10.3390/w13060849
[7] Judeh, T., Shahrour, I., 2021. Rainwater harvesting to address current and forecasted domestic water scarcity: Application to arid and semi-arid areas. Water. 13(24), 3583. DOI: https://doi.org/10.3390/w13243583
[8] Sinha, S.K., 2023. Water quality and water borne diseases in urban area of Patna (Bihar) India. Pollution Research. 42(04), 471–472. DOI: https://doi.org/10.53550/Pr.2023.V42i04.010
[9] Niu, S., Xia, Y., Yang, C., et al., 2023. Impacts of the steel industry on sediment pollution by heavy metals in urban water system. Environmental Pollution. 335, 122364. DOI: https://doi.org/10.1016/j.envpol.2023.122364
[10] Somma, R., Kumar, V., Barco, J., 2023. Surface water, groundwater, and soil pollution: Sustainable water and soils resources management and human health risk assessment and ecology. Chemosphere. 337, 139295. DOI: https://doi.org/10.1016/j.chemosphere.2023.139295
[11] Babuji, P., Thirumalaisamy, S., Duraisamy, K., et al., 2023. Human health risks due to exposure to water pollution: A review. Water. 15(14), 2532. DOI: https://doi.org/10.3390/w15142532
[12] Balakrishnan, V., 2024. Health impacts of ambient air and water pollution. Public Health Open Access. 8(1), 1–14. DOI: https://doi.org/10.23880/phoa-16000266
[13] Mourad, K.A., 2020. A water compact for sustainable water management. Sustainability. 12(18), 7339. DOI: https://doi.org/10.3390/su12187339
[14] Tsakiris, G.P., Loucks, D.P., 2023. Adaptive water resources management under climate change: An introduction. Water Resources Management. 37(6–7), 2221–2233. DOI: https://doi.org/10.1007/s11269-023-03518-9
[15] Asif, Z., Chen, Z., Sadiq, R., et al., 2023. Climate change impacts on water resources and sustainable water management strategies in North America. Water Resources Management. 37(6–7), 2771–2786. DOI: https://doi.org/10.1007/s11269-023-03474-4
[16] Iaquinto, B.L., 2017. Attaining urban water sustainability in Hong Kong: Three suggestions. Area. 50(3), 430–432. DOI: https://doi.org/10.1111/area.12405
[17] Mello, K., Randhir, T., 2017. Diagnosis of water crises in the metropolitan area of São Paulo: Policy opportunities for sustainability. Urban Water Journal. 15(1), 53–60. DOI: https://doi.org/10.1080/1573062x.2017.1395895
[18] Tallar, R.Y., Mauregar, G.G., Hirose, E., 2024. Spatiotemporal analysis of land-use change and its impact on surface runoff in Tsushima Island, Japan. Frontiers in Environmental Science. 12, 1-8. DOI: https://doi.org/10.3389/fenvs.2024.1448542
[19] Zhang, Y., Yang, P., Liu, J., et al., 2023. Sustainable agricultural water management in the Yellow River Basin, China. Agricultural Water Management. 288, 108473. DOI: https://doi.org/10.1016/j.agwat.2023.108473
[20] Wei, F., Zhao, L., 2022. The effect of flood risk on residential land prices. Land. 11(10), 1612. DOI: https://doi.org/10.3390/land11101612
[21] Osberghaus, D., Achtnicht, M., Alimov, N., 2022. The demand for public flood protection under a compulsory private flood insurance scheme. Land Economics. 99(3), 380–396. DOI: https://doi.org/10.3368/le.99.3.022422-0017r
[22] Handayani, W., Chigbu, U.E., Rudiarto, I., et al., 2020. Urbanization and increasing flood risk in the northern coast of Central Java—Indonesia: An assessment towards better land use policy and flood management. Land. 9(10), 343. DOI: https://doi.org/10.3390/land9100343
[23] Hennighausen, H., Suter, J.F., 2020. Flood risk perception in the housing market and the impact of a major flood event. Land Economics. 96(3), 366–383. DOI: https://doi.org/10.3368/le.96.3.366
[24] Chiang Hsieh, L.-H., 2021. Is it the flood, or the disclosure? An inquiry to the impact of flood risk on residential housing prices. Land Use Policy. 106, 105443. DOI: https://doi.org/10.1016/j.landusepol.2021.105443
[25] Deshpande, S., Gurav, R.S., 2023. Change Detection of Land Use and Land Cover Over Ghataprabha River Basin. International Journal of Science and Research (IJSR). 12(10), 71–78. https://doi.org/10.21275/sr23930164256
[26] Zhang, Y., Jiang, X., Zhang, F., 2024. Urban flood resilience assessment of zhengzhou considering social equity and human awareness. Land. 13(1), 53. DOI: https://doi.org/10.3390/land13010053
[27] Machac, J., Hartmann, T., Jilkova, J., 2017. Negotiating land for flood risk management : Upstream‐downstream in the light of economic game theory. Journal of Flood Risk Management. 11(1), 66–75. DOI: https://doi.org/10.1111/jfr3.12317
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Copyright © 2025 Maya Malinda, Robby Yussac Tallar, Olga Chaterina Pattipawaej, Golan Geldoffer Mauregar
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