Quality Assessment of Photogrammetric Methods - A Workflow for Reproducible UAS Orthomosaics
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Sebastian Richter | Thomas Nauss | Agustin Lobo | Marvin Ludwig | Christian M. Runge | Nicolas Friess | Tiziana L. Koch | Simon Seyfried | Luise Wraase | M.-Teresa Sebastià | Christoph Reudenbach | M. Sebastiá | A. Lobo | C. Reudenbach | T. Nauss | Sebastian Richter | Luise Wraase | Nicolas Friess | M. Ludwig | Christian M. Runge | Simon Seyfried | M. Sebastià
[1] Xavier Pons,et al. Comparison of four UAV georeferencing methods for environmental monitoring purposes focusing on the combined use with airborne and satellite remote sensing platforms , 2019, Int. J. Appl. Earth Obs. Geoinformation.
[2] Albert Rango,et al. Multispectral Remote Sensing from Unmanned Aircraft: Image Processing Workflows and Applications for Rangeland Environments , 2011, Remote. Sens..
[3] Birgit Kleinschmit,et al. Challenges in UAS-Based TIR Imagery Processing: Image Alignment and Uncertainty Quantification , 2020, Remote. Sens..
[4] P. Couteron,et al. UAV-based canopy textures assess changes in forest structure from long-term degradation , 2020 .
[5] Giorgos Mallinis,et al. On the Use of Unmanned Aerial Systems for Environmental Monitoring , 2018, Remote. Sens..
[6] Juha Suomalainen,et al. Estimating Plant Traits of Grasslands from UAV-Acquired Hyperspectral Images: A Comparison of Statistical Approaches , 2015, ISPRS Int. J. Geo Inf..
[7] E. Honkavaara,et al. Machine learning estimators for the quantity and quality of grass swards used for silage production using drone-based imaging spectrometry and photogrammetry , 2020 .
[8] Michael Dietze,et al. Short Communication: A simple workflow for robust low-cost UAV-derived change detection without ground control points , 2019, Earth Surface Dynamics.
[9] Carlos Cabo,et al. Structure from Motion Photogrammetry in Forestry: a Review , 2019, Current Forestry Reports.
[10] Michael Förster,et al. UAV data as alternative to field sampling to map woody invasive species based on combined Sentinel-1 and Sentinel-2 data , 2019, Remote Sensing of Environment.
[11] Jan van Aardt,et al. Influence of Drone Altitude, Image Overlap, and Optical Sensor Resolution on Multi-View Reconstruction of Forest Images , 2019, Remote. Sens..
[12] Torsten Prinz,et al. Analysis of Unmanned Aerial System-Based CIR Images in Forestry—A New Perspective to Monitor Pest Infestation Levels , 2015 .
[13] S. Puliti,et al. Tree-Stump Detection, Segmentation, Classification, and Measurement Using Unmanned Aerial Vehicle (UAV) Imagery , 2018 .
[14] Arko Lucieer,et al. Time Series Analysis of Landslide Dynamics Using an Unmanned Aerial Vehicle (UAV) , 2015, Remote. Sens..
[15] Gregory J. McDermid,et al. A Systematic Review of the Factors Influencing the Estimation of Vegetation Aboveground Biomass Using Unmanned Aerial Systems , 2020, Remote. Sens..
[16] S. Goetz,et al. UAV‐derived estimates of forest structure to inform ponderosa pine forest restoration , 2019, Remote Sensing in Ecology and Conservation.
[17] J. Flexas,et al. UAVs challenge to assess water stress for sustainable agriculture , 2015 .
[18] Eija Honkavaara,et al. Estimating Biomass and Nitrogen Amount of Barley and Grass Using UAV and Aircraft Based Spectral and Photogrammetric 3D Features , 2018, Remote. Sens..
[19] Adrien Michez,et al. Upscaling UAS Paradigm to UltraLight Aircrafts: A Low-Cost Multi-Sensors System for Large Scale Aerial Photogrammetry , 2020, Remote. Sens..
[20] C. Silva,et al. Individual tree detection from Unmanned Aerial Vehicle (UAV) derived canopy height model in an open canopy mixed conifer forest , 2017 .
[21] Norman Kerle,et al. Accuracy assessment of real-time kinematics (RTK) measurements on unmanned aerial vehicles (UAV) for direct geo-referencing , 2020, Geo spatial Inf. Sci..
[22] Luigi Fregonese,et al. Planning airborne photogrammetry and remote-sensing missions with modern platforms and sensors , 2018 .
[23] Enoc Sanz-Ablanedo,et al. Accuracy of Unmanned Aerial Vehicle (UAV) and SfM Photogrammetry Survey as a Function of the Number and Location of Ground Control Points Used , 2018, Remote. Sens..
[24] Kyle C. Cavanaugh,et al. Mapping Coastal Wetland Biomass from High Resolution Unmanned Aerial Vehicle (UAV) Imagery , 2019, Remote. Sens..
[25] W. McDowell,et al. The next generation of site-based long-term ecological monitoring: Linking essential biodiversity variables and ecosystem integrity. , 2018, The Science of the total environment.
[26] Yuhong He,et al. Species classification using Unmanned Aerial Vehicle (UAV)-acquired high spatial resolution imagery in a heterogeneous grassland , 2017 .
[27] Anna Barbati,et al. UAV Remote Sensing for Biodiversity Monitoring: Are Forest Canopy Gaps Good Covariates? , 2018, Remote. Sens..
[28] Marc Olano,et al. Optimal Altitude, Overlap, and Weather Conditions for Computer Vision UAV Estimates of Forest Structure , 2015, Remote. Sens..
[29] John Y. Park,et al. Quantifying Leaf Phenology of Individual Trees and Species in a Tropical Forest Using Unmanned Aerial Vehicle (UAV) Images , 2019, Remote. Sens..
[30] Dominic Fawcett,et al. Unmanned aerial vehicle (UAV) derived structure-from-motion photogrammetry point clouds for oil palm (Elaeis guineensis) canopy segmentation and height estimation , 2019, International Journal of Remote Sensing.
[31] Andriamasinoro Lalaina Herinaina Andriamandroso,et al. Mapping and Monitoring of Biomass and Grazing in Pasture with an Unmanned Aerial System , 2019, Remote. Sens..
[32] Chris Brunsdon,et al. Opening practice: supporting reproducibility and critical spatial data science , 2020, Journal of Geographical Systems.
[33] Fernando Carvajal-Ramírez,et al. Assessment of UAV-photogrammetric mapping accuracy based on variation of ground control points , 2018, Int. J. Appl. Earth Obs. Geoinformation.
[34] Lei Tian,et al. Method for automatic georeferencing aerial remote sensing (RS) images from an unmanned aerial vehicle (UAV) platform , 2011 .
[35] Jonathan P. Dash,et al. Taking a closer look at invasive alien plant research: A review of the current state, opportunities, and future directions for UAVs , 2019, Methods in Ecology and Evolution.
[36] Margherita Fiani,et al. Accuracy Assessment of 3D Photogrammetric Models from an Unmanned Aerial Vehicle , 2019, Drones.
[37] M. Tomé,et al. Use of multi-temporal UAV-derived imagery for estimating individual tree growth in Pinus pinea stands , 2017 .
[38] Jonathan P. Dash,et al. Assessing very high resolution UAV imagery for monitoring forest health during a simulated disease outbreak , 2017 .
[39] Raul Gregor,et al. A Review of Existing Evaluation Methods for Point Clouds Quality , 2019, 2019 Workshop on Research, Education and Development of Unmanned Aerial Systems (RED UAS).
[40] T. Corpetti,et al. Monitoring the colonization of alluvial deposits using multitemporal UAV RGB ‐imagery , 2019, Applied Vegetation Science.
[41] Eyal Ben-Dor,et al. Current Practices in UAS-based Environmental Monitoring , 2020, Remote. Sens..
[42] E. Addink,et al. Monitoring height and greenness of non-woody floodplain vegetation with UAV time series , 2018, ISPRS Journal of Photogrammetry and Remote Sensing.
[43] D. Kulhavy,et al. Positional Precision Analysis of Orthomosaics Derived from Drone Captured Aerial Imagery , 2019, Drones.
[44] Jörg Bendix,et al. AGB Estimation in a Tropical Mountain Forest (TMF) by Means of RGB and Multispectral Images Using an Unmanned Aerial Vehicle (UAV) , 2019, Remote. Sens..