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Articles

Multi-temporal UAV based repeat monitoring of rivers sensitive to flood

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Pages 163-170 | Received 01 Jul 2020, Accepted 03 Sep 2020, Published online: 24 Sep 2020

References

  • Akay, E. , Uysal, Ş , Poisson, A. , Cravatte, J. , & Müller, C. (1985). Antalya Neojen havzasının stratigrafisi. Türkiye Jeoloji Kurultayi Bülteni , 28 (2), 105–121. Ankara (in Turkish).
  • Boulton, S. J. , & Stokes, M. (2018). Which DEM is best for analyzing fluvial landscape development in mountainous terrains? Geomorphology , 310 , 168–187. https://doi.org/10.1016/j.geomorph.2018.03.002
  • Carrera-Hernández, J. J. , Levresse, G. , & Lacan, P. (2020). Is UAV-SfM surveying ready to replace traditional surveying techniques? International Journal of Remote Sensing , 41 (12), 4818–4835. https://doi.org/10.1080/01431161.2020.1727049
  • Chiba, T. , Kaneta, S.-I. , & Suzuki, Y. (2008). Red relief image map: New visualization method for three-dimensional data. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences , 37 (B2), 1071–1076. https://doi.org/10.11212/jjca1963.45.27
  • Clapuyt, F. , Vanacker, V. , & Van Oost, K. (2016). Reproducibility of UAV-based earth topography reconstructions based on structure-from-motion algorithms. Geomorphology , 260 , 4–15. https://doi.org/10.1016/j.geomorph.2015.05.011
  • Cook, K. L. (2017). An evaluation of the effectiveness of low-cost UAVs and structure from motion for geomorphic change detection. Geomorphology , 278 , 195–208. https://doi.org/10.1016/j.geomorph.2016.11.009
  • Dipova, N. (2020). Investigation of relationship between Boğaçay (antalya) sediment transport and Konyaalti coastline via image processing techniques. International Journal of Engineering, Design and Technology , 2 (1), 010–023.
  • DLR . (2016). TanDEM-X ground segment DEM products specification document TD-GS-PS-0021 v.3.1. DLR. (46 pp).
  • DSHW . (2018). General directorate of state hydraulic works, water chamber of geological enginners (Bogacay Project Evaluation Report). Antalya, Turkey, pp. 112. (in Turkish).
  • Dyer, J. L. , Moorhead, R. J. , & Hathcock, L. (2020). Identification and analysis of microscale hydrologic flood impacts using unmanned aerial systems. Remote Sensing , 12 (10), 1549. https://doi.org/10.3390/rs12101549
  • Flener, C. (2013). Calibrating deep water radiance in shallow water: Adapting optical bathymetry modeling to shallow river environments. Boreal Environmental Research , 18 , 488–502.
  • Gafurov, A. M. (2018). Small catchments DEM creation using unmanned aerial vehicles. IOP Conference Series: Earth and Environmental Science , 107 , 012005. https://doi.org/10.1088/1755-1315/107/1/012005
  • Gómez-Heras, M. , Ortega-Becerril, J. , Garrote, J. , Fort, R. , & López-González, L. (2019). Morphometric measurements of bedrock rivers at different spatial scales and applications to geomorphologic heritage research. Prog Earth Planet Sc , 6 (1), 29. https://doi.org/10.1186/s40645-019-0275-0
  • Hicks, D. M. (2012). Remotely sensed topographic change in gravel riverbeds with flowing channels. In M. Church , P. Biron , & A. Roy (Eds.), Gravel-bed rivers: Processes, tools, environments . Wiley-Blackwell. https://doi.org/10.1002/9781119952497.ch23
  • Javernick, L. , Brasington, J. , & Caruso, B. (2014). Modeling the topography of shallow braided rivers using structure – from – motion photogrammetry. Geomorphology , 213 , 166–182. https://doi.org/10.1016/j.geomorph.2014.01.006
  • Llena, M. , Smith, M. W. , Wheaton, J. M. , & Vericat, D. (2020). Geomorphic process signatures reshaping sub-humid Mediterranean badlands: 2. Application to 5-year dataset. Earth Surface Processes and Landforms , 45 (5), 1292–1310. https://doi.org/10.1002/esp.4822
  • Maidment, D. R. (2002). Arc hydro: GIS for water resources [EB/OL] . ESRI press.
  • Micheletti, N. , Chandler, J. H. , & Lane, S. N. (2015). Structure from motion (SfM) photogrammetry: British society for geomorphology geomorphological techniques, chap. 2, sec. 2.2.
  • Oğuz, H. (2001). Boğaçay Havzasında Yapılan Faaliyetler So- nucu Antalya Körfezine Taşınan Kirlilik Yüklerinin Tespitive Çözüm Önerileri, Yüksek Lisans Tezi, Akdeniz Üniversitesi Fen Bilimleri Enstitüsü Çevre Bilimleri ABD (in Turkish).
  • Ozcan, O. (2019). Performance evaluation of bridges under scour by UAS based measurements. Journal of Polytechnic , 22 (2), 385–391. https://doi.org/10.2339/politeknik.450288
  • Ozcan, O. , & Ozcan, O. (2018). Multi-hazard assessment of RC bridges using unmanned aerial vehicle-based measurements. Baltic Journal of Road and Bridge Engineering , 13 (3), 192–208. https://doi.org/10.7250/bjrbe.2018-13.412
  • Ozcan, O. , & Ozcan, O. (2019). Effect of hydrogeomorphological changes in flood plain on bridge multi-hazard performance. Fresenius Environmental Bulletin , 28 (2), 956–962.
  • Ozcan, O. , & Ozcan, O. (2020). Unmanned aerial vehicle-based automated bridge multi-hazard assessment system. IGARSS 2020 (to be held in Sept. 2020).
  • Pajares, G. (2015). Overview and current status of remote sensing applications based on unmanned aerial vehicles (UAVs). Photogrammetric Engineering & Remote Sensing , 81 (4), 281–330. https://doi.org/10.14358/PERS.81.4.281
  • Rusnák, M. , Sládek, J. , Kidová, A. , & Lehotský, M. (2018). Template for high-resolution river landscape mapping using UAV technology. Measurement , 115 , 139–151. https://doi.org/10.1016/j.measurement.2017.10.023
  • Tamminga, A. D. , Eaton, B. C. , & Hugenholtz, C. H. (2015). UAS-based remote sensing of fluvial change following an extreme flood event. Earth Surface Processes and Landforms , 40 (11), 1464–1476. https://doi.org/10.1002/esp.3728
  • Vericat, D. , Wheaton, J. , & Brasington, J. (2017). Revisiting the morphological approach: Opportunities and challenges with repeat high-resolution topography. In D. T. Tsutsumi & J. B. Laronne (Eds.), Gravel-bed rivers: Processes and disasters (pp. 121–158). Wiley.
  • Wheaton, J. M. , Brasington, J. , Darby, S. E. , & Sear, D. A. (2010). Accounting for uncertainty in DEMs from repeat topographic surveys: Improved sediment budgets. Earth Surface Processes Landforms , 35 , 136–156. https://doi.org/10.1002/esp.1886
  • Williams, R. (2012). DEMs of difference. Geomorphological Techniques , 2 , 1–17.
  • Woodget, A. S. , Carbonneau, P. E. , Visser, F. , & Maddock, I. P. (2014). Quantifying submerged fluvial topography using hyperspatial resolution UAS imagery and structure from motion photogrammetry. Earth Surface Processes and Landforms , 40 (1), 47–64. https://doi.org/10.1002/esp.3613