Year |
Citation |
Score |
2019 |
Carter W, Shrestha R, Fernandez-Diaz J. Estimating Ancient Populations by Aerial Survey American Scientist. 107: 30. DOI: 10.1511/2019.107.1.30 |
0.64 |
|
2018 |
Canuto MA, Estrada-Belli F, Garrison TG, Houston SD, Acuña MJ, Kováč M, Marken D, Nondédéo P, Auld-Thomas L, Castanet C, Chatelain D, Chiriboga CR, Drápela T, Lieskovský T, Tokovinine A, ... ... Shrestha R, et al. Ancient lowland Maya complexity as revealed by airborne laser scanning of northern Guatemala. Science (New York, N.Y.). 361. PMID 30262469 DOI: 10.1126/Science.Aau0137 |
0.723 |
|
2018 |
Cao N, Lee H, Zaugg E, Shrestha R, Carter WE, Glennie C, Lu Z, Yu H. Estimation of Residual Motion Errors in Airborne SAR Interferometry Based on Time-Domain Backprojection and Multisquint Techniques Ieee Transactions On Geoscience and Remote Sensing. 56: 2397-2407. DOI: 10.1109/Tgrs.2017.2779852 |
0.324 |
|
2017 |
Fountain AG, Fernandez-Diaz JC, Obryk M, Levy J, Gooseff M, Van Horn DJ, Morin P, Shrestha R. High-resolution elevation mapping of the McMurdo Dry Valleys, Antarctica, and surrounding regions Earth System Science Data. 9: 435-443. DOI: 10.5194/Essd-9-435-2017 |
0.712 |
|
2017 |
Cao N, Lee H, Zaugg E, Shrestha R, Carter W, Glennie C, Wang G, Lu Z, Fernandez-Diaz JC. Airborne DInSAR Results Using Time-Domain Backprojection Algorithm: A Case Study Over the Slumgullion Landslide in Colorado With Validation Using Spaceborne SAR, Airborne LiDAR, and Ground-Based Observations Ieee Journal of Selected Topics in Applied Earth Observations and Remote Sensing. 10: 4987-5000. DOI: 10.1109/Jstars.2017.2737362 |
0.697 |
|
2016 |
Fisher CT, Fernández-Diaz JC, Cohen AS, Neil Cruz O, Gonzáles AM, Leisz SJ, Pezzutti F, Shrestha R, Carter W. Identifying Ancient Settlement Patterns through LiDAR in the Mosquitia Region of Honduras. Plos One. 11: e0159890. PMID 27560962 DOI: 10.1371/Journal.Pone.0159890 |
0.678 |
|
2016 |
Loughlin ML, Pool CA, Fernandez-Diaz JC, Shrestha RL. Mapping the Tres Zapotes Polity: The Effectiveness of Lidar in Tropical Alluvial Settings Advances in Archaeological Practice. 4: 301-313. DOI: 10.7183/2326-3768.4.3.301 |
0.727 |
|
2016 |
Fernandez-Diaz J, Carter W, Glennie C, Shrestha R, Pan Z, Ekhtari N, Singhania A, Hauser D, Sartori M. Capability Assessment and Performance Metrics for the Titan Multispectral Mapping Lidar Remote Sensing. 8: 936. DOI: 10.3390/Rs8110936 |
0.719 |
|
2016 |
Fernandez-Diaz J, Shrestha R. Archaeology from the Air American Scientist. 104: 28. DOI: 10.1511/2016.118.28 |
0.627 |
|
2016 |
Fernandez-Diaz J, Carter W, Shrestha R, Glennie C. Multicolor Terrain Mapping Documents Critical Environments Eos. 97. DOI: 10.1029/2016Eo053489 |
0.693 |
|
2014 |
Fernandez-Diaz J, Carter W, Shrestha R, Glennie C. Now You See It… Now You Don’t: Understanding Airborne Mapping LiDAR Collection and Data Product Generation for Archaeological Research in Mesoamerica Remote Sensing. 6: 9951-10001. DOI: 10.3390/Rs6109951 |
0.679 |
|
2014 |
Chase AF, Chase DZ, Awe JJ, Weishampel JF, Iannone G, Moyes H, Yaeger J, Brown K, Shrestha RL, Carter WE, Diaz JF. Ancient Maya regional settlement and inter-site analysis: The 2013 West-central Belize LiDAR survey Remote Sensing. 6: 8671-8695. DOI: 10.3390/Rs6098671 |
0.383 |
|
2014 |
Fernandez-Diaz JC, Glennie CL, Carter WE, Shrestha RL, Sartori MP, Singhania A, Legleiter CJ, Overstreet BT. Early results of simultaneous terrain and shallow water bathymetry mapping using a single-wavelength airborne LiDAR sensor Ieee Journal of Selected Topics in Applied Earth Observations and Remote Sensing. 7: 623-635. DOI: 10.1109/Jstars.2013.2265255 |
0.691 |
|
2013 |
Glennie CL, Carter WE, Shrestha RL, Dietrich WE. Geodetic imaging with airborne LiDAR: the Earth's surface revealed. Reports On Progress in Physics. Physical Society (Great Britain). 76: 086801. PMID 23828665 DOI: 10.1088/0034-4885/76/8/086801 |
0.446 |
|
2013 |
Wang G, Joyce J, Phillips D, Shrestha R, Carter W. Delineating and defining the boundaries of an active landslide in the rainforest of Puerto Rico using a combination of airborne and terrestrial LIDAR data Landslides. 10: 503-513. DOI: 10.1007/S10346-013-0400-X |
0.446 |
|
2012 |
Carter WE, Shrestha RL, Fisher C, Leisz S. Geodetic imaging: A new tool for Mesoamerican archaeology Eos, Transactions American Geophysical Union. 93: 413-415. DOI: 10.1029/2012Eo420002 |
0.412 |
|
2011 |
Chase AF, Chase DZ, Weishampel JF, Drake JB, Shrestha RL, Slatton KC, Awe JJ, Carter WE. Airborne LiDAR, archaeology, and the ancient Maya landscape at Caracol, Belize Journal of Archaeological Science. 38: 387-398. DOI: 10.1016/J.Jas.2010.09.018 |
0.425 |
|
2011 |
Kumari P, Carter WE, Shrestha RL. Adjustment of systematic errors in ALS data through surface matching Advances in Space Research. 47: 1851-1864. DOI: 10.1016/J.Asr.2010.12.015 |
0.588 |
|
2007 |
Slatton KC, Carter WE, Shrestha RL, Dietrich W. Airborne Laser Swath Mapping: Achieving the resolution and accuracy required for geosurficial research Geophysical Research Letters. 34. DOI: 10.1029/2007Gl031939 |
0.358 |
|
2005 |
Shrestha RL, Carter WE, Sartori M, Luzum BJ, Slatton KC. Airborne Laser Swath Mapping: Quantifying changes in sandy beaches over time scales of weeks to years Isprs Journal of Photogrammetry and Remote Sensing. 59: 222-232. DOI: 10.1016/j.isprsjprs.2005.02.009 |
0.332 |
|
2001 |
Carter W, Shrestha R, Tuell G, Bloomquist D, Sartori M. Airborne laser swath mapping shines new light on earth's topography Eos. 82. DOI: 10.1029/01Eo00321 |
0.323 |
|
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