Joseph Santanello

dblp:330/0000 · DBLP profile ↗
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6ranked-venue papers
0as first author
6since 2021 · last 2025
0000-0002-0807-6590ORCID · reported

Domains — the database's venue-derived domains; a paper can count in several

Applied, interdisciplinary, general and emerging computing · 6 · 6 since 2021
YearPublicationVenuePosition
2025 Improved Planetary Boundary Layer Sounding Using Hyperspectral Microwave and Backscatter Lidar Data Fusion
abstract
This study presents a first-of-its-kind comprehensive data fusion approach combining hyperspectral microwave (HMW) with backscatter lidar (BSL) measurements for improved atmospheric thermodynamic sounding, with particular emphasis on the Earth’s Planetary Boundary Layer (PBL). This is a simulation-based trade study to demonstrate the enhancement of HMW over traditional microwave (MW) only measurements and the additional benefits of incorporating BSL with both approaches. This pioneering HMW+BSL fusion methodology represents a major advancement, achieving superior performance compared to traditional thermodynamic remote sensing approaches. Specifically, this configuration demonstrates significant enhancement in PBL temperature bias vertical stability and reduces standard deviation error (SDV) by 30% compared to traditional MW-only performance. Water vapor retrievals show similar improvements, with SDV reductions of 50% in the PBL and bias values consistently maintained below the 10% requirement threshold of the PBL DSI program, compared to PoR errors exceeding 30% bias in challenging cloudy regimes. Case studies across diverse oceanic regions reveal particular advantages of this data fusion approach in complex atmospheric conditions, especially in regions dominated by marine stratocumulus clouds and strong temperature inversions where conventional passive-only retrievals are challenging. Beyond thermodynamic profile improvements, our analysis demonstrates remarkable advances in the detection of PBL height (PBLH), with the HMW+BSL configuration achieving mean absolute errors within the 100 meter requirement threshold of the PBL DSI program, representing a step-change improvement over passive-only approaches. This work directly addresses observational gaps identified in the 2017 Earth Science Decadal Survey, positioning our integrated sensing approach as both a near-term enhancement to existing Earth observation capabilities and a pathfinder for future PBL mission architectures.
Antonia Gambacorta, Alexander Kotsakis, Dave Gershman, Narges Shahroudi, Robert Rosenberg, John M. Blaisdell, Edward P. Nowottnick, Kenneth E. Christian, Jordan A. Caraballo-Vega, James MacKinnon, Patrick Stegmann, Stephen Nicholls, Joseph Santanello, William G. Blumberg
IEEE Trans. Geosci. Remote. Sens.13
2023 Advancing Earth's Planetary Boundary Layer Sounding from Space Using Hyperspectral Microwave Measurements
abstract
We present a comprehensive Earth Planetary Boundary Layer temperature and water vapor retrieval improvement demonstration by the use of hyperspectral microwave measurements. Our results indicate that the use of a hyperspectral sampling in the oxygen and water vapor sounding lines alone provides significant improvements in the lower and free tropospheric thermodynamic fields (up to 40%), when compared against the program of record (i.e., the Advanced Technology Microwave Sounder, ATMS). Our experiments also demonstrate the essential role played by extending the coverage in the so called spectral window regions, leading to an overall PBL temperature and water vapor improvement of up to 50%.
Antonia Gambacorta, Jeffrey Piepmeier, Joseph Santanello, Mark Stephen, Isaac Moradi, Rachael Kroodsma, John M. Blaisdell, Alexander Kotsakis, Robert Rosenberg, James MacKinnon, Edward P. Nowottnick, Meloe Kacenelenbogen, Kenneth E. Christian, Fabrizio Gambini, Priscilla N. Mohammed, Paul Racette, Ian S. Adams
IGARSS3
2023 Hyperspectral Microwave Measurement Demonstrations of Improved Thermodynamic Sounding from Space
abstract
Characterizing the complex three-dimensional (3D) thermodynamic structure of the Planetary Boundary Layer (PBL) from a global perspective remains a challenge. As identified by the 2017 Decadal Survey and the NASA PBL Incubation Study Team Report (STR), enhanced horizontal and vertical resolution in PBL thermodynamic structure and PBL height from space-based sensors will facilitate major advances in Earth System science across a wide array of disciplines. Current Program of Record (POR) space-borne passive sounders (infrared, microwave) were not designed with a specific PBL focus. Consequently, current operational retrieval methods have limitations that preclude them from profiling PBL temperature and water vapor with the requirements expressed in the NASA PBL Incubation Study Team Report (STR). To that end, the report highlights the need for investing in optimal combinations of different remote sensing approaches and technologies spanning the active and passive field. In this framework, the study lists hyperspectral microwave sensors as an "Essential Component" of the future global PBL observing system, to provide accurate PBL and free tropospheric 3D temperature and water vapor structure context to active measurements (e.g., lidars and radars) and in combination with other passive sensors (e.g., infrared and radio occultation).
Alexander Kotsakis, Antonia Gambacorta, James MacKinnon, Jeffrey Piepmeier, Rachael Kroodsma, Joseph Santanello, Greg Blumberg, John M. Blaisdell, Isaac Moradi, Ian Stuart Adams
IGARSS6
2023 Deep Neural Networks For Evaluating Future Satellite-Based Hyperspectral Microwave Sensor Designs
abstract
We have developed a process for evaluating future satellite-based hyperspectral microwave sensor designs using deep neural networks (DNN). Our approach combines a sophisticated simulated data product with a hierarchical deep neural network capable of comparing the relative performance of a variety of different microwave sounder configurations. These configurations include both spectral band coverage and resolution which allows for a thorough investigation of the solution space. The relative performance between these configurations as tested on the prediction of the planetary boundary layer height (PBLH) is used to perform the evaluation. We plan to extend this method to the prediction of entire temperature and water profiles to further refine this process.
James MacKinnon, Antonia Gambacorta, Jeffrey Piepmeier, Mark Stephen, Rachael Kroodsma, Joseph Santanello, Greg Blumberg, John M. Blaisdell, Isaac Moradi, Alexander Kotsakis, Ian Stuart Adams
IGARSS6
2022 The Hyperspectral Microwave Photonic Instrument (HYMPI) - Advancing our Understanding of the Earth's Planetary Boundary Layer from Space
abstract
This paper presents an overview of the Hyperspectral Microwave Photonic Instrument (HyMPI), a 2021 NASA Instrument Incubation Proposal funded project aimed at developing the very first hyperspectral microwave sensor to augment thermodynamic sounding capability from space, with a focus on the Earth's Planetary Boundary Layer. This research responds to the recommendation expressed in the 2018 National Academies of Sciences decadal survey to accelerate the readiness of high-priority PBL observables not feasible for cost-effective spaceflight in 2017–2027. This paper provides an overview on HyMPI's design, configured as the objective instrument concept needed to fly in the future PBL mission and presents preliminary trade studies aim at demonstrating HyMPI's enhanced thermodynamic sounding skill in the Earth's Planetary Boundary Layer over conventional microwave sounders from the current Program of Record.
Antonia Gambacorta, Mark Stephen, Fabrizio Gambini, Joseph Santanello, Priscilla N. Mohammed, Dan Sullivan, John M. Blaisdell, Robert Rosenberg, William Blumberg, Isaac Moradi, Yanqiu Zhu, Will McCarty, Joel Susskind, Paul Racette, Jeffrey Piepmeier
IGARSS4
2022 The Hyperspectral Microwave Photonic Instrument (HYMPI)
abstract
We present an overview of the Hyperspectral Microwave Photonic Instrument (HyMPI), a NASA Instrument Incubation Proposal funded research project aimed at developing a hyperspectral microwave instrument intended for enhanced remote sensing of atmospheric temperature and water vapor from space. This paper provides preliminary results on HyMPI's spectral and noise characteristics and a preliminary demonstration of its enhanced water vapor sensitivity and vertical resolution, with a particular focus on the Earth's Planetary Boundary Layer.
Antonia Gambacorta, Mark Stephen, Fabrizio Gambini, Joseph Santanello, Priscilla N. Mohammed, Dan Sullivan, John M. Blaisdell, William Blumberg, Isaac Moradi, Yanqiu Zhu, Will McCarty, Paul Racette, Jeffrey Piepmeier
IGARSS4