VLDB 2026 Research / reviewers in the wild / expert
Henry E. Revercomb
dblp:89/9912 · also Hank Revercomb
· DBLP profile ↗
13ranked-venue papers
1as first author
5since 2021 · last 2022
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Applied, interdisciplinary, general and emerging computing · 13 · 1 first-author · 5 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2022 | The Big Picture: New IR Science Drivers, Key Observing Physics, and Proven Building Blocks Should Define the Next Generation US Sounding SystemabstractOperational high spectral resolution infrared sounders (AIRS, IASI, CrIS) have had proven success, providing detailed temperature, water vapor, cloud, aerosol, trace gas, and surface property information, and are recognized as one of the most important data sources for global NWP. In the US, NOAA is defining its next generation sounding system. This is a short, big picture vision of what that US LEO and GEO infrared sounding system could be. Henry E. Revercomb |
IGARSS | 1 |
| 2022 | Next Generation Earth Satellite Measurement Opportunities - Lessons Learned from Current Satellite Research ApplicationsabstractNext generation LEO/GEO atmospheric sounding instruments should be capable of providing near-continuous high spatial resolution atmospheric temperature and humidity soundings on both global and regional scales. Global measurements are important for producing extended range forecasts of synoptic scale weather patterns and providing the boundary conditions for regional mesoscale models designed to provide warnings of localized intense storms. Experimental forecast system results indicate that the temperature and moisture measurements should be with high-spatial (2 to 8-km) and temporal (30 to 120 min) resolution to resolve the thermodynamic (i.e., atmospheric stability) and dynamic (i.e., horizontal, and vertical motions) processes responsible for global environmental conditions and localized severe weather. This paper provides a synopsis of expected improvements in global Numerical Weather Prediction (NWP) weather forecasts initialized using vertical atmospheric profiles retrieved from a combination of currently operational polar and geostationary satellite data, which simulate the sounding capabilities of next generation satellite sounding systems. William L. Smith, Qi Zhang 0073, Anthony DiNorscia, Henry E. Revercomb |
IGARSS | 4 |
| 2022 | Reprocessing of Suomi NPP CrIS Sensor Data Records to Improve the Radiometric and Spectral Long-Term Accuracy and StabilityabstractSince early 2012, the cross-track infrared sounder (CrIS) on board the Suomi National Polar-orbiting Partnership (S-NPP) satellite has continually provided the hyperspectral infrared observations for profiling atmospheric temperature, moisture, and greenhouse gases. In this study, the CrIS sensor data record (SDR) data are improved for climate applications with its fine-tuning of calibration coefficients in an NOAA reprocessing project. A specific software system was developed to reprocess the CrIS SDR. This software system was updated with a new calibration algorithm, nonlinearity, and geolocation to improve the SDR data quality and long-term consistency. The calibration coefficients are refined with the latest updates, which were used to calibrate the latest operational SDR products and replace those in the engineering packet (EP) in the raw data record (RDR) data stream. The resampling wavelength was updated based on the metrology laser wavelength and resulted in zero sampling error in the spectral calibration. All the historical SDRs (from February 2012 to March 2017) were generated with the same calibration coefficients and same version of the processing software system, resulting in improved accuracy and stability in terms of spectral and radiometric calibration during the CrIS lifetime mission. The quality of the reprocessed CrIS SDR data at nominal spectral resolution (NSR) is assessed in terms of its radiometric and spectral calibration. Comparisons against the operational SDR data are carried out to demonstrate the improved long-term stability of the reprocessed CrIS SDR data. Overall radiometric biases are found to be small and highly stable over the instrument mission, the FOV-to-FOV differences are less than ~10 mK, and much better than that from the operational SDR data. It is shown that the CrIS metrology laser wavelength varies within 4 ppm as measured by the neon calibration system. The reprocessed SDR data have spectral errors less than 0.5 ppm, which is much better than the operational SDR data with about 4 ppm. This baseline version of the reprocessed SNPP CrIS SDR data is suitable for long-term climate monitoring and model assessments and can provide an infrared reference observation to assess other narrow- or broadband infrared instruments’ calibration accuracy. Yong Chen 0011, Flavio Iturbide-Sanchez, Denis Tremblay, David C. Tobin, Larrabee L. Strow, Likun Wang 0001, Daniel L. Mooney, David Johnson 0008, Joe Predina, Lawrence Suwinski, Henry E. Revercomb, Ninghai Sun, Bin Zhang 0037, Changyong Cao, Satya Kalluri, Lihang Zhou |
IEEE Trans. Geosci. Remote. Sens. | 11 |
| 2022 | Recalibration and Assessment of the SNPP CrIS Instrument: A Successful History of Restoration After Midwave Infrared Band AnomalyabstractThe Suomi National Polar-orbiting Partnership (SNPP) cross-track infrared sounder (CrIS) has provided critical observations for environmental applications for nearly ten years. However, on 26 March 2019, the Joint Polar Satellite System (JPSS) interface data processing segment (IDPS) stopped producing the operational SNPP CrIS sensor data record (SDR) product due to a failure of the midwave infrared (MWIR) band. Following a comprehensive risk assessment, the switch from primary Side-1 to redundant Side-2 electronics was made on 24 June 2019, successfully recovering the full capabilities of the sensor. Comprehensive assessment results demonstrate the high quality of the CrIS SDR product resulting from the sensor recalibration, thus meeting the JPSS Level-1 requirements with margin. The spectral calibration prioritized consistency with the CrIS SDR product prior to the side switch to minimize the impact on users. The results show that the radiometric impact on the CrIS SDR product resulting from the side switch is not significant and is within the calibration radiometric uncertainty. It is demonstrated that after instrument restoration, the SNPP CrIS SDR product recovers the quality needed to be used as radiometric reference for calibration and validation of infrared remote sensing instruments. The recovery of the SNPP CrIS MWIR band is expected to support improvements in numerical weather forecasting by restoring the MWIR band channels sensitive to tropospheric water vapor. This should also help maintain continuity and redundancy of one of the backbone observations of the global observing system. Flavio Iturbide-Sanchez, Larrabee L. Strow, David C. Tobin, Yong Chen 0011, Denis Tremblay, Robert O. Knuteson, David Johnson 0008, Clayton Buttles, Lawrence Suwinski, Bruce P. Thomas, Adhemar R. Rivera, Erin Lynch, Kun Zhang 0014, Zhipeng Wang 0001, Warren Dean Porter, Joe Predina, Reima I. Eresmaa, Andrew Collard, Benjamin C. Ruston, James A. Jung, Christopher D. Barnet, Peter J. Beierle, Banghua Yan, Daniel L. Mooney, Henry E. Revercomb |
IEEE Trans. Geosci. Remote. Sens. | 26 |
| 2022 | Radiometric Noise Assessment of the Cross-Track Infrared Sounder on the NOAA-20 SatelliteabstractThe Cross-track Infrared Sounder (CrIS) is a Michelson-type Fourier Transform Spectrometer. The CrIS flight module 2 instrument was launched into orbit on November 18, 2017, onboard the NOAA-20 satellite as part of the United States (US) Joint Polar Satellite System (JPSS). The CrIS instrument measures the top-of-atmosphere upwelling spectral radiance in the thermal infrared (IR) spectrum. These measurements provide critical information for medium-range weather forecasting, and the retrieval of atmospheric profiles of temperature, water vapor, and other trace gases. The instrument noise equivalent radiance differential (NEdN) estimates are used by the weather forecasting systems, the trace gas atmospheric retrieval algorithms, and for trending the health and stability of the instrument over time. The current operational NEdN estimate is calculated using instrument observations from the deep space (DS) view and the internal calibration target (ICT). Two alternative methodologies are described here based on the principal component analysis (PCA) of an ensemble of calibrated Earth scene (ES) spectra. The NEdN calculation methods show that the instrument meets the specifications with a margin for all 27 detectors with an exception of one midwave IR (MWIR) field-of-view (FOV) 9, which is borderline. The PCA analysis shows that warmer ES spectra have higher noise, known as scene shot, for the short-wave IR (SWIR) band. Using the PCA analysis, the NEdN for the long-wave IR FOV 5 is 30% higher than the NEdN calculated by the operational algorithm. Correlated noise is also found due to the effect of the instrument self-apodization correction. Denis Tremblay, Flavio Iturbide-Sanchez, Yong Chen 0011, Lori Borg, Joe Predina, David C. Tobin, Larrabee L. Strow, Daniel L. Mooney, David Johnson 0008, Lawrence Suwinski, Henry E. Revercomb |
IEEE Trans. Geosci. Remote. Sens. | 12 |
| 2020 | Expeditious Implementation of a Hyperspectral Imaging Infrared Sounder (HIIS) in geostationary orbitabstractTo reduce societal impacts from severe weather, the USA should expeditiously implement a Hyperspectral Imaging Infrared Sounder (HIIS) in Geostationary (GEO) orbit. Observations from a GEO HIIS would contain unique information that is crucial for giving the populace more time to react to ensuing severe weather, a key lifesaving capability for a Weather Ready Nation. The GEO HIIS will provide frequent hyperspectral infrared radiance observations for understanding storm scale atmospheric processes and improving weather hazard predictions. These observations will provide the unique ability to detect rapid changes in atmospheric stability and the moisture flux convergence that serves both as a triggering mechanism for initial storm development and a fuel source for continued storm growth. Joe K. Taylor, Henry E. Revercomb, William L. Smith, Robert O. Knuteson, David C. Tobin, Fred A. Best, P. Jonathan Gero, Ronald Glumb |
IGARSS | 2 |
| 2020 | The Next Generation US Leo Hyperspectral Infrared SounderabstractToday's state-of-the-art infrared hyperspectral sounders in Low Earth Orbit have demonstrated very high performance in several basic, but very critical, performance characteristics. Because of this, and the high information content of the infrared hyperspectral radiance spectra, the data has proven valuable for a range of applications including 1) radiance data assimilation for medium range numerical weather forecasting, 2) atmospheric soundings for various meteorological applications, 3) trace gases studies, 4) reference inter-calibration, and 5) climate process studies and radiance trending. This paper will discuss the desirable characteristics of the next generation of the US infrared hyperspectral sounder, envisioned to continue the hyperspectral data record after the JPSS series ends in the late 2030s, in order to maintain very high value and return on investment, and even improve the quality of the available data over the current generation. David C. Tobin, Fred A. Best, Robert O. Knuteson, Henry E. Revercomb, William L. Smith, Joe K. Taylor |
IGARSS | 4 |
| 2019 | Performance of the SNPP and NOAA-20 CrIS Sensor Data Record ProductsabstractIn this work, the current performance of the calibrated Joint Polar Satellite System (JPSS) Cross-track Infrared Sensor (CrIS) observations is reported. The CrIS instrument is currently on-board the Suomi National Polar-orbiting Partnership (SNPP) and NOAA-20 spacecraft, and planned for the JPSS-2, -3 and -4 satellites. Presently, calibrated and validated CrIS observations, in the form of sensor data record (SDR) products, are being assimilated by operational NWP models and atmospheric retrieval systems. CrIS measurements from SNPP and NOAA-20 are expected to improve our understanding of the dynamics of the atmosphere due to the higher temporal and spatial coverage resulting from optimally blending the hyperspectral Earth observations. This work also reports recent improvements performed on the CrIS SDR products, including: 1) the implementation of the polarization correction, 2) the optimization of the spike detection and correction algorithm, and 3) the optimization of the lunar intrusion algorithm. Flavio Iturbide-Sanchez, Joe K. Taylor, Mark Esplin, Banghua Yan, Changyong Cao, Satya Kalluri, Yong Chen 0011, Denis Tremblay, David C. Tobin, Henry E. Revercomb, Larrabee L. Strow, David Johnson 0008, Joe Predina |
IGARSS | 11 |
| 2014 | TIR Spectral Radiance Calibration of the GOSAT Satellite Borne TANSO-FTS With the Aircraft-Based S-HIS and the Ground-Based S-AERI at the Railroad Valley Desert PlayaabstractThe thermal infrared (TIR) band of Thermal and Near-Infrared Sensor for carbon Observations Fourier Transform Spectrometer (TANSO-FTS) on the Greenhouse gases Observing SATellite (GOSAT) measures a wide range of scene temperatures using a single detector band with broad spectral coverage. This work describes the vicarious radiometric calibration over a large footprint (10.5 km) and high temperature surface using well-calibrated ground-based and airborne FTS sensors. The vicarious calibration campaign of GOSAT was conducted at Railroad Valley, NV in June 2011. During the campaign, the Scanning High-resolution Interferometer Sounder (S-HIS) mounted on the high-altitude NASA ER-2 aircraft observed upwelling radiation and the ground-based Surface-Atmospheric Emitted Radiance Interferometer (S-AERI) observed infrared thermal emission from the atmosphere and the surface at the same location and time as the GOSAT TANSO-FTS. We validated TANSO-FTS TIR radiance with S-HIS radiance using double difference method, which reduces the effect of differences in the observation geometry. In this paper, we estimated the TANSO-FTS Instantaneous Field of View average temperature and emissivity by the coincident S-AERI and S-HIS observed radiance. The double difference between TANSO-FTS and S-HIS result in a difference of 0.5 K at atmospheric window channels (800 ~ 900 cm-1) and CO2warm brightness temperature channels (700 ~ 750 cm-1), 0.1 K at ozone channels (980 ~ 1080 cm-1), and more than 2 K at CO2cool brightness temperature channels (650 ~ 700 cm-1). The main reason of remaining errors is attributed to a calibration error in the TANSO-FTS Level 1B product version under evaluation. Fumie Kataoka, Robert O. Knuteson, Akihiko Kuze, Hiroshi Suto, Kei Shiomi, Masatomo Harada, Elise M. Garms, Jacola A. Roman, David C. Tobin, Joe K. Taylor, Henry E. Revercomb, Nami Sekio, Riko Higuchi, Yasushi Mitomi |
IEEE Trans. Geosci. Remote. Sens. | 11 |
| 2007 | Geosynchronous imaging Fourier transform spectrometer (GIFTS): Imaging and tracking capabilityabstractThe geosynchronous-imaging Fourier transform spectrometer (GIFTS) engineering demonstration unit (EDU) is an imaging infrared spectrometer designed for atmospheric soundings. It measures the infrared spectrum in two spectral bands (14.6 to 8.8 mum, 6.0 to 4.4 mum) using two 128times128 detector arrays with a spectral resolution of 0.57 cm-1with a scan duration of ~11 seconds. From a geosynchronous orbit, the instrument will have the capability of taking successive measurements of such data to scan desired regions of the globe, from which atmospheric status, cloud parameters, wind field profiles, and other derived products can be retrieved. The GIFTS EDU provides a flexible and accurate testbed for the new challenges of the emerging hyperspectral era. The EDU ground-based measurement experiment, held in Logan, Utah during September 2006, demonstrated its extensive capabilities and potential for geosynchronous and other applications (e.g., earth observing environmental measurements). This paper addresses the experiment objectives and overall performance of the sensor system with a focus on the GIFTS EDU imaging capability and proof of the GIFTS measurement concept. Daniel K. Zhou, Allen M. Larar, Xu Liu 0018, Robert A. Reisse, Gail Bingham, Lorin J. Zollinger, Joe J. Tansock, William L. Smith, Henry E. Revercomb, Ron J. Huppi |
IGARSS | 9 |
| 2003 | AIRS/AMSU/HSB on the Aqua mission: design, science objectives, data products, and processing systemsabstractThe Atmospheric Infrared Sounder (AIRS), the Advanced Microwave Sounding Unit (AMSU), and the Humidity Sounder for Brazil (HSB) form an integrated cross-track scanning temperature and humidity sounding system on the Aqua satellite of the Earth Observing System (EOS). AIRS is an infrared spectrometer/radiometer that covers the 3.7-15.4-/spl mu/m spectral range with 2378 spectral channels. AMSU is a 15-channel microwave radiometer operating between 23 and 89 GHz. HSB is a four-channel microwave radiometer that makes measurements between 150 and 190 GHz. In addition to supporting the National Aeronautics and Space Administration's interest in process study and climate research, AIRS is the first hyperspectral infrared radiometer designed to support the operational requirements for medium-range weather forecasting of the National Ocean and Atmospheric Administration's National Centers for Environmental Prediction (NCEP) and other numerical weather forecasting centers. AIRS, together with the AMSU and HSB microwave radiometers, will achieve global retrieval accuracy of better than 1 K in the lower troposphere under clear and partly cloudy conditions. This paper presents an overview of the science objectives, AIRS/AMSU/HSB data products, retrieval algorithms, and the ground-data processing concepts. The EOS Aqua was launched on May 4, 2002 from Vandenberg AFB, CA, into a 705-km-high, sun-synchronous orbit. Based on the excellent radiometric and spectral performance demonstrated by AIRS during prelaunch testing, which has by now been verified during on-orbit testing, we expect the assimilation of AIRS data into the numerical weather forecast to result in significant forecast range and reliability improvements. Hartmut Aumann, Moustafa T. Chahine, Catherine Gautier, Mitchell D. Goldberg, Eugenia Kalnay, Larry M. McMillin, Henry E. Revercomb, Philip W. Rosenkranz, William L. Smith, David H. Staelin, Larrabee L. Strow, Joel Susskind |
IEEE Trans. Geosci. Remote. Sens. | 7 |
| 2003 | AIRS/AMSU/HSB validationabstractThe Atmospheric Infrared Sounder/Advanced Microwave Sounding Unit/Humidity Sounder for Brazil (AIRS/AMSU/HSB) instrument suite onboard Aqua observes infrared and microwave radiances twice daily over most of the planet. AIRS offers unprecedented radiometric accuracy and signal to noise throughout the thermal infrared. Observations from the combined suite of AIRS, AMSU, and HSB are processed into retrievals of atmospheric parameters such as temperature, water vapor, and trace gases under all but the cloudiest conditions. A more limited retrieval set based on the microwave radiances is obtained under heavy cloud cover. Before measurements and retrievals from AIRS/AMSU/HSB instruments can be fully utilized they must be compared with the best possible in situ and other ancillary "truth" observations. Validation is the process of estimating the measurement and retrieval uncertainties through comparison with a set of correlative data of known uncertainties. The ultimate goal of the validation effort is retrieved product uncertainties constrained to those of radiosondes: tropospheric rms uncertainties of 1.0 degC over a 1-km layer for temperature, and 10% over 2-km layers for water vapor. This paper describes the data sources and approaches to be used for validation of the AIRS/AMSU/HSB instrument suite, including validation of the forward models necessary for calculating observed radiances, validation of the observed radiances themselves, and validation of products retrieved from the observed radiances. Constraint of the AIRS product uncertainties to within the claimed specification of 1 K/1 km over well-instrumented regions is feasible within 12 months of launch, but global validation of all AIRS/AMSU/HSB products may require considerably more time due to the novelty and complexity of this dataset and the sparsity of some types of correlative observations. Eric J. Fetzer, Larry M. McMillin, David C. Tobin, Hartmut Aumann, Michael R. Gunson, W. Wallace McMillan, Denise Hagan, Mark D. Hofstadter, James Yoe, David N. Whiteman, John E. Barnes, Ralf Bennartz, Holger Vömel, Von Walden, Michael Newchurch, Peter J. Minnett, Robert Atlas, Francis Schmidlin, Edward Olsen, Mitchell D. Goldberg, Sisong Zhou, HanJung Ding, William L. Smith, Henry E. Revercomb |
IEEE Trans. Geosci. Remote. Sens. | 24 |
| 2002 | GIFTS - the precursor geostationary satellite component of the future Earth Observing SystemabstractThe Geosynchronous Imaging Fourier Transform Spectrometer (GIFTS) combines advanced technologies to observe surface thermal properties and atmospheric weather and chemistry variables in four dimensions. Large area format Focal Plane detector Arrays (LFPAs) provide near instantaneous large area coverage with high horizontal resolution. A Fourier Transform Spectrometer (FTS) enables atmospheric radiance spectra to be observed simultaneously for all LFPA detector elements thereby providing high vertical resolution temperature and moisture sounding information. The fourth dimension, time, is provided by the geosynchronous satellite platform, which enables near continuous imaging of the atmosphere's three-dimensional structure. The key advances that GIFTS achieves beyond current geosynchronous capabilities are: (1) the water-vapor winds will be altitude-resolved throughout the troposphere, (2) surface temperature and atmospheric soundings will be achieved with high spatial and temporal resolution, and (3) the transport of tropospheric pollutant gases (i.e. CO and O/sub 3/) will be observed. GIFTS will be launched in 2005 as NASA's third New Millennium Program (NMP) Earth Observing (EO-3) satellite mission, and will serve as the prototype of sounding systems to fly on future operational geosynchronous satellites. After a one-year validation period in view of North America, the GIFTS will be repositioned to become the Navy's Indian Ocean METOC Imager (IOMI). We describe the GIFTS technology and provide examples of the GIFTS remote sensing capabilities using aircraft interferometer data. The GIFTS is an important step in implementing the NASA Earth Science Enterprise vision of a sensor web for future Earth observations. William L. Smith, F. Wallace Harrison, D. E. Hinton, Henry E. Revercomb, Gail Bingham, R. Petersen, J. C. Dodge |
IGARSS | 4 |