Dara Entekhabi
Vassar College
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Publication
Featured researches published by Dara Entekhabi.
international geoscience and remote sensing symposium | 2017
Thomas Jagdhuber; Martin Baur; Moritz Link; Maria Piles; Dara Entekhabi; Carsten Montzka; Jaakko Seppänen; Oleg Antropov; Jaan Praks; Alexander Löw
Vegetation optical depth and scattering albedo are crucial parameters within the widely used τ-ω model for passive microwave remote sensing of vegetation and soil. A multi-sensor data integration approach using ICESat lidar vegetation heights and SMAP radar as well as radiometer data enables a direct retrieval of the two parameters on a physics-derived basis. The crucial step within the retrieval methodology is the calculus of the vegetation scattering coefficient KS, where one exact and three approximated solutions are provided. It is shown that, when using the assumption of a randomly oriented volume, the backscatter measurements of the radar provide a sufficient first order estimate and subsequently lead to effective estimates of vegetation optical depth and scattering albedo acquired with the novel multi-sensor approach.
international geoscience and remote sensing symposium | 2017
Martin Baur; Thomas Jagdhuber; Moritz Link; Maria Piles; Dara Entekhabi; Anita Fink
In this study the framework of the τ — ω model is used to derive vegetation loss coefficients and canopy penetration depths from SMAP multi-temporal retrievals of vegetation optical depth, single scattering albedo and ICESat lidar vegetation heights. The vegetation loss coefficients serve as a global indicator of how strong absorption and scattering processes attenuate L-band microwave radiation. By inverting the vegetation loss coefficients, penetration depths into the canopy can be obtained, which are displayed for the global forest reservoirs. A simple penetration index is formed combining vegetation heights and penetration depth estimates. The distribution and level of this index reveal that for densely forested areas in the tropics the soil signal is attenuated considerably, and this attenuation must be carefully accounted for in soil moisture retrieval algorithms.
IEEE | 2010
Peggy E. O'Neill; Dara Entekhabi; Eni G. Njoku; Kent H. Kellogg
Archive | 2016
Thomas Jagdhuber; Dara Entekhabi; Narendra N. Das; Martin Baur; Seung-Bum Kim; Simon H. Yueh; Moritz Link
Archive | 2016
Thomas Jagdhuber; Narendra N. Das; Dara Entekhabi; Martin Baur; Moritz Link; Maria Piles; Ruzbeh Akbar; Alexandra G. Konings; Kaighin A. McColl; Seyed Hamed Alemohammad; Carsten Montzka; Harald Kunstmann
Archive | 2016
Maria Piles; Dara Entekhabi; Alexandra G. Konings; Ruzbeh Akbar; Thomas Jagdhuber; David Chaparro; Narendra N. Das
Archive | 2016
Jeffrey R. Piepmeier; Priscilla N. Mohammed; Giovanni De Amici; Edward J. Kim; Jinzheng Peng; Christopher S. Ruf; Maher Hanna; Simon H. Yueh; Dara Entekhabi
IEEE | 2010
M. Susan Moran; Peggy E. O'Neill; Dara Entekhabi
Archive | 2018
Thomas Jagdhuber; Dara Entekhabi; Alexandra G. Konings; Kaighin A. McColl; Seyed Hamed Alemohammad; Narendra N. Das; Carsten Montzka; Moritz Link; Ruzbeh Akbar
Archive | 2018
Dara Entekhabi; Simon H. Yueh; Peggy E. O'Neill; Jared K. Entin; Tung-Han D. You