Monitoring erosion in tropical savannas from C-band radar coherence
暂无分享,去创建一个
[1] James S. Daley,et al. Direct Rain Splash and Downwearing of Internal Surfaces as an Important Erosion Process in Alluvial Gully Development , 2023, SSRN Electronic Journal.
[2] G. M. Kondolf,et al. Save the Mekong Delta from drowning , 2022, Science.
[3] A. Castelletti,et al. A Dynamic, Network Scale Sediment (Dis)Connectivity Model to Reconstruct Historical Sediment Transfer and River Reach Sediment Budgets , 2022, Water Resources Research.
[4] R. Bartley,et al. Application of Multi Temporal Lidar Dems for Tracking Gully Rehabilitation Efforts in Highly Erosive Landscapes of the Burdekin Catchment, Queensland, Australia , 2022, SSRN Electronic Journal.
[5] W. Featherstone,et al. Land uplift linked to managed aquifer recharge in the Perth Basin, Australia , 2021, Int. J. Appl. Earth Obs. Geoinformation.
[6] T. Pietsch,et al. What type of gully is that? The need for a classification of gullies , 2021, Earth Surface Processes and Landforms.
[7] Scott N. Wilkinson,et al. Applying a Hand-Held Laser Scanner to Monitoring Gully Erosion: Workflow and Evaluation , 2021, Remote. Sens..
[8] R. Bartley,et al. Pre-development denudation rates for the Great Barrier Reef catchments derived using 10Be. , 2021, Marine pollution bulletin.
[9] S. Lewis,et al. Measuring sediment grain size across the catchment to reef continuum: Improved methods and environmental insights. , 2021, Marine pollution bulletin.
[10] W. Schmid,et al. Interpreting C-band InSAR ground deformation data for large-scale groundwater management in Australia , 2021 .
[11] R. Bartley,et al. Land use change in the river basins of the Great Barrier Reef, 1860 to 2019: A foundation for understanding environmental history across the catchment to reef continuum. , 2021, Marine pollution bulletin.
[12] D. Waters,et al. Modelled estimates of fine sediment and particulate nutrients delivered from the Great Barrier Reef catchments. , 2021, Marine pollution bulletin.
[13] Nicholas Goodwin,et al. Rehabilitation effects on gully sediment yields and vegetation in a savanna rangeland , 2021, Earth Surface Processes and Landforms.
[14] J. Phillips. Observing landscape evolution , 2021 .
[15] Shih-Yuan Lin,et al. The Use of InSAR Phase Coherence Analyses for the Monitoring of Aeolian Erosion , 2021, Remote. Sens..
[16] Yunsoo Choi,et al. Reconstructed Aeolian Surface Erosion in Southern Mongolia by Multi-Temporal InSAR Phase Coherence Analyses , 2020, Frontiers in Earth Science.
[17] W. Featherstone,et al. Disruptive influences of residual noise, network configuration and data gaps on InSAR-derived land motion rates using the SBAS technique , 2020 .
[18] P. Hairsine,et al. A multi-resolution method to map and identify locations of future gully and channel incision , 2020 .
[19] S. Carretier,et al. Mapping rainstorm erosion associated with an individual storm from InSAR coherence loss validated by field evidence for the Atacama Desert , 2020, Earth Surface Processes and Landforms.
[20] B. Bookhagen,et al. Applications of SAR Interferometric Coherence Time Series: Spatiotemporal Dynamics of Geomorphic Transitions in the South‐Central Andes , 2020, Journal of Geophysical Research: Earth Surface.
[21] R. Amundson,et al. Surface materials and landforms as controls on InSAR permanent and transient responses to precipitation events in a hyperarid desert, Chile , 2020 .
[22] S. Dufour,et al. Remotely sensed rivers in the Anthropocene: state of the art and prospects , 2020, Earth Surface Processes and Landforms.
[23] Omar Ghattas,et al. Exposed soil and mineral map of the Australian continent revealing the land at its barest , 2019, Nature Communications.
[24] Julie B. Zimmerman,et al. Flexibility and intensity of global water use , 2019, Nature Sustainability.
[25] Z. Bainbridge,et al. Fine sediment and particulate organic matter: A review and case study on ridge-to-reef transport, transformations, fates, and impacts on marine ecosystems. , 2018, Marine pollution bulletin.
[26] R. Bartley,et al. Grazing impacts on gully dynamics indicate approaches for gully erosion control in northeast Australia , 2018 .
[27] R. Bartley,et al. Insights into the history and timing of post-European land use disturbance on sedimentation rates in catchments draining to the Great Barrier Reef. , 2018, Marine pollution bulletin.
[28] M. Kummu,et al. Changing sediment budget of the Mekong: Cumulative threats and management strategies for a large river basin. , 2018, The Science of the total environment.
[29] A. Castelletti,et al. Stochastic Modeling of Sediment Connectivity for Reconstructing Sand Fluxes and Origins in the Unmonitored Se Kong, Se San, and Sre Pok Tributaries of the Mekong River , 2018 .
[30] Ben Jarihani,et al. Assessment of UAV and Ground-Based Structure from Motion with Multi-View Stereo Photogrammetry in a Gullied Savanna Catchment , 2017, ISPRS Int. J. Geo Inf..
[31] R. Lohman,et al. InSAR constraints on soil moisture evolution after the March 2015 extreme precipitation event in Chile , 2017, Scientific Reports.
[32] Nicholas Goodwin,et al. Monitoring gully change: A comparison of airborne and terrestrial laser scanning using a case study from Aratula, Queensland , 2017 .
[33] A. Castelletti,et al. Tracking multiple sediment cascades at the river network scale identifies controls and emerging patterns of sediment connectivity , 2016 .
[34] P. Kuhnert,et al. Combining contemporary and long-term erosion rates to target erosion hot-spots in the Great Barrier Reef, Australia , 2015 .
[35] E. Rotigliano,et al. Using topographical attributes to evaluate gully erosion proneness (susceptibility) in two mediterranean basins: advantages and limitations , 2015, Natural Hazards.
[36] J. Poesen,et al. A review of topographic threshold conditions for gully head development in different environments , 2014 .
[37] D. M. Silburn,et al. Relating sediment impacts on coral reefs to watershed sources, processes and management: a review. , 2014, The Science of the total environment.
[38] P. Bates,et al. Integrating the LISFLOOD‐FP 2D hydrodynamic model with the CAESAR model: implications for modelling landscape evolution , 2013 .
[39] Scott N. Wilkinson,et al. Using sediment tracing to assess processes and spatial patterns of erosion in grazed rangelands, Burdekin River basin, Australia , 2013 .
[40] W. Dietrich,et al. Geomorphic transport laws for predicting landscape form and dynamics , 2013 .
[41] Tim J. Wright,et al. Evidence for flash floods over deserts from loss of coherence in InSAR imagery , 2012 .
[42] A. Brooks,et al. Land-use change from indigenous management to cattle grazing initiates the gullying of alluvial soils in northern Australia , 2010 .
[43] A. Vrieling. Satellite remote sensing for water erosion assessment: A review , 2006 .
[44] W. Dietrich,et al. The search for a topographic signature of life , 2006, Nature.
[45] J. Poesen,et al. Gully erosion: Impacts, factors and control , 2005 .
[46] Philippa J. Mason,et al. Detection of Rapid Erosion in SE Spain , 2004 .
[47] Iain H. Woodhouse,et al. Change detection across the Nasca pampa using spaceborne SAR interferometry , 2004 .
[48] Gianfranco Fornaro,et al. A new algorithm for surface deformation monitoring based on small baseline differential SAR interferograms , 2002, IEEE Trans. Geosci. Remote. Sens..
[49] J. M. Moore,et al. Land surface change detection in a desert area in Algeria using multi-temporal ERS SAR coherence images , 2001 .
[50] C. Vörösmarty,et al. Global water resources: vulnerability from climate change and population growth. , 2000, Science.
[51] Urs Wegmüller,et al. Arid land surface characterization with repeat-pass SAR interferometry , 2000, IEEE Trans. Geosci. Remote. Sens..
[52] Laurence C. Smith,et al. Estimation of erosion, deposition, and net volumetric change caused by the 1996 Skeiðarársandur jökulhlaup, Iceland, from Synthetic Aperture Radar Interferometry , 2000 .
[53] Jianguo Liu,et al. Detection of rapid erosion in SE Spain using ERS SAR interferometric coherence imagery , 1999, Remote Sensing.
[54] G. Kondolf. PROFILE: Hungry Water: Effects of Dams and Gravel Mining on River Channels , 1997, Environmental management.
[55] Howard A. Zebker,et al. Decorrelation in interferometric radar echoes , 1992, IEEE Trans. Geosci. Remote. Sens..