( v t j 3 f a 4 5 q m 1 e a n 4 5 v v ff c z 5 5 ) ) / r e f e r e n c e /
ReferencesPapers.aspx?ReferenceID=1527818
Cooley Paul, M., & Barber David, G. (2003). Remote sensing of
the coastal zone of tropical lakes using synthetic aperture
radar and optical data. Journal of Great Lakes Research, 29
(2), 62–75. https://doi.org/10.1016/S0380-1330(03)70539-5
Cracknell Arthur, P. (2018). The development of remote
sensing in the last 40 years. International Journal of
Remote Sensing, 39(23), 8387–8427. https://doi.org/10.
1080/01431161.2018.1550919
Da Guia Albuquerque, M., Espinoza, J., Teixeira, P.,
Oliveira, A., Correa, I., & Calliari, L. (2013). Erosion or
coastal variability: An evaluation of the DSAS and the
change polygon methods for the determination of erosive
processes on sandy beaches. Journal of Coastal Research,
65(sp2), 1710–1714. https://doi.org/10.2112/SI65-289.1
Davidson, M. A., Lewis, R. P., & Turner, I. L. (2010).
Forecasting seasonal to multi-year shoreline change.
Coastal Engineering, 57(6), 620–629. https://doi.org/10.
1016/j.coastaleng.2010.02.001
Davidson Mark, A., Turner Ian, L., Kristen Splinter, D., &
Harley Mitchel, D. (2017). Annual prediction of shoreline
erosion and subsequent recovery. Coastal Engineering, 130,
14–25. https://doi.org/10.1016/j.coastaleng.2017.09.008
Del Río, L., Javier, G. F., & Benavente, J. (2013). Shoreline
change patterns in sandy coasts. A Case Study in SW
Spain, Geomorphology, 196, 252–266. https://doi.org/10.
1016/j.geomorph.2012.07.027
Di, K., Wang, J., Ma, R., & Li, R. (2003) Automatic shoreline
extraction from high-resolution Ikonos satellite imagery.
In Proceeding of the Annual ASPRS Conference,
Anchorage, Alaska.
Do, A. T., De Vries, S., & Stive, M. J. (2018). The estimation and
evaluation of shoreline locations, shoreline-change rates, and
coastal volume changes derived from Landsat images. J.
Coast. Res, 35(1), 56–71. https://www.researchgate.net/pub
lication/329913044_The_Estimation_and_Evaluation_of_
Shoreline_Locations_Shoreline-Change_Rates_and_
Coastal_Volume_Changes_Derived_from_Landsat_Images
Dolan, R., Hayden, B. P., May, P., & May, S. (1980). The
reliability of shoreline change measurements from aerial
photographs. Shore and Beach, 48, 22–29. https://www.
s c o p u s . c o m / r e c o r d / d i s p l a y . u r i ? e i d = 2 - s 2 . 0 -
0 0 1 9 0 6 8 2 3 3 & o r i g i n = i n w a r d & t x G i d =
62a249f9ca7c146f6a3631d12138fde9
Duarte, C. R., De Miranda, F. P., Landau, L., Souto, M. V. S.,
Sabadia, J. A. B., Claudio Ângelo Da Silva, N., Linara Ivina
De Castro, R., & Damasceno, A. M. (2018). Short-time
analysis of shoreline based on RapidEye satellite images in
the terminal area of Pecém Port, Ceará, Brazil. International
Journal of Remote Sensing, 39(13), 4376–4389. https://doi.
org/10.1080/01431161.2018.1457229
El-Asmar, H. M., & Hereher, M. E. (2011). Change detection
of the coastal zone east of the Nile Delta using remote
sensing. Environ Earth Sci, 62(4), 769. https://doi.org/10.
1007/s12665-010-0564-9
Elizabeth, B. H., & Ian, T. L. (2005). Shoreline Definition
and Detection: A Review. Journal of Coastal Research,
2005 (214), 688–703. 1 July 2005. https://doi.org/10.
2112/03-0071.1 .
Faik, S., Fevzi, K., Ismail, C., & Nihat, A. (2008). Monitoring the
changing position of coastlines using aerial and satellite
image data: An example from the eastern coast of Trabzon,
Turkey. Environmental Monitoring and Assessment, 153(1–
4), 391–403. https://doi.org/10.1007/s10661-008-0366-7
Fatima, S., Mohammed, H., Lech-Hab, H., Ahmed, R., &
Abdelkrim, A. (2018). Application of a geomatics
approach for the diachronic study of the Mediterranean
coastline case of Tangier Bay. International Journal of
Geosciences, 09(6), 320–336. https://doi.org/10.4236/ijg.
2018.96020
Fenster, M. S., & Dolan, R. (1999). Mapping erosion hazard
areas in the city of Virginia Beach: Journal of Coastal
Research. Special Issue, 28, 58–68. https://www.jstor.org/
stable/25736186?seq=1
Ferdinando, N., Andrea, B., Maurizio, M., Guido, B., & Di
Luccio, D. (2018) Shoreline erosion of microtidal beaches
examined with UAV and remote sensing techniques. IEEE
International Workshop on Metrology for the Sea; Learning to
Measure Sea Health Parameters (MetroSea), Bari, Italy 162–
166. https://doi.org/10.1109/MetroSea.2018.8657843
Ford Murray, R., & Kench Paul, S. (2015). Multi-decadal
shoreline changes in response to sea level rise in the
Marshall Islands. Anthropocene, 11, 14–24. https://doi.
org/10.1016/j.ancene.2015.11.002
Francesca, B. M., Gianluca, M. M., Michele, M., Raffaele, N.,
Alberto, M., & Maria, C. (2016). Coastal observation
through Cosmo-SkyMed high-resolution SAR images.
Journal of Coastal Research. 75 (sp1), Part, 2, 795–799.
https://doi.org/10.2112/SI75-160.1
Fromard, F., Vega, C., & Proisy, C. (2004). Half a century of
dynamic coastal change affecting mangrove shorelines of
French Guiana. A Case Study Based on Remote Sensing
Data Analyses and Field Surveys, Marine Geology, 208 (24). 265-280.https://doi.org/10.1016/j.margeo.2004.04.018
Fugara, A., A’Kif, B. L., & Biswajeet, P. (2011). Semi-automated procedures for shoreline extraction using single
RADARSAT-1 SAR image. Estuarine, Coastal and Shelf
Science Journal, 95(4). 10.1016/j.ecss.2011.10.009
Ganasri, B. P., & Ramesh, H. (2016). Assessment of soil
erosion by RUSLE model using remote sensing and GIS
- A case study of Nethravathi Basin. Geoscience Frontiers,
7(6), 953–961. https://doi.org/10.1016/j.gsf.2015.10.007
Ganzorig, M., Amarsaikhan, D., Batbayar, G., Bulgan, G., &
Munkherdene, A. (2006) The investigation of land surface features using optical and SAR images. Asian
Conference on Remote Sensing ACRS http://www.aarsacrs.org/acrs/proceeding/ACRS2006/Papers/I-1_I4.pdf
Gens, R. (2010). Remote sensing of coastlines: Detection,
extraction and monitoring. International Journal of
Remote Sensing, 31(7), 1819–1836. https://doi.org/10.
1080/01431160902926673
George, P. P., Dionissios, K. P., Hywel, G. M., & Paraskevi,
D. P. (2015). Remote sensing and GIS analysis for mapping spatio-temporal changes of erosion and deposition
of two Mediterranean river deltas: The case of the Axios
and Aliakmonas rivers, Greece. International Journal of
Applied Earth Observation and Geoinformation, 35(part
Β), 217–228. https://doi.org/10.1016/j.jag.2014.08.004
Gil, G., Sara, S., Diogo, D., & José, S. (2019). Monitoring
Local Shoreline Changes by Integrating UASs, Airborne
LiDAR, Historical Images and Orthophotos. Heraklion,
Crete, Greece. https://doi:10.5220/0007744101260134
Gudina Feyisa, L., Henrik, M., Rasmus, F., & Proud Simon,
R. (2014). Automated water extraction index: A new
technique for surface water mapping using Landsat imagery. Remote Sensing of Environment, 140, 23–35. https://
doi.org/10.1016/j.rse.2013.08.029
Hashmi, G. M. D., & Sajid, A. (2018). GIS-based analysis and
modeling of coastline erosion and accretion along the Coast
of Sindh Pakistan. Journal of Coastal Zone Management, 21
(1). https://doi:21.10.4172/2473-3350.1000455
Herold, N. D., Haack, B. N., & Solomon, E. (2004). An
evaluation of radar texture for land use/cover extraction
EUROPEAN JOURNAL OF REMOTE SENSING
261
Précédent

- 23/27

Suivant