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April 16, 2026Remote Sensing0 citationsOpen Access

A NIST-Traceable Lab-to-Sky Spectral and Radiometric Calibration for NASA’s High-Altitude Airborne Hyperspectral Pushbroom Imager for Cloud and Aerosol Research and Development (PICARD)

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GHGary HoffmannTETom EllisHSHaiping Su

Key Points

  • The aim is to validate the in-flight performance of the PICARD spectroradiometer for accurate cloud and aerosol measurements.
  • Developed the PICARD hyperspectral imaging spectrometer for high altitudes.
  • Conducted validation flights using the ER-2 aircraft during WDTS and PACE-PAX campaigns.
  • Compared PICARD measurements with high-resolution radiance spectra from the Radiometric Calibration Network.
  • Utilized GLAMR to minimize effects of spectral stray light from the spectrometers.
  • Demonstrated good agreement with reference measurements from multiple data sources.
  • Validated the ability of PICARD to provide accurate imagery for environmental science research.
  • Successfully integrated calibration processes to ensure accurate cloud-top radiance measurements.

Abstract

The Pushbroom Imager for Cloud and Aerosol Research and Development (PICARD) visible through shortwave infrared imaging spectrometer was developed to carry a calibration laboratory environment to high altitudes, while also providing high-dynamic-range bright cloud-top radiance measurements across a field of view just under 50 degrees. The in-flight performance of this new spectroradiometer was validated in comparison to multiple reference data sources and targets using imagery collected aboard NASA’s ER-2 high-altitude aircraft during the Western Diversity Time Series (WDTS) airborne science campaign in April 2023 and the September 2024 Plankton, Aerosol, Cloud, and ocean Ecosystem (PACE) Postlaunch Airborne eXperiment (PACE-PAX), both operating out of southern California. PICARD measurements from flights over Railroad Valley Playa, Nevada, USA, were compared to high-resolution radiance spectra of the dry lakebed provided by the Radiometric Calibration Network (RadCalNet) Working Group. Direct comparison to satellite cloud radiometry was enabled by the ER-2 flying in coordination with simultaneous overpasses of the Terra, Aqua, and NOAA-20 Earth-observing satellites during WDTS and with the PACE observatory during PACE-PAX. To account for large spectral differences between incandescent laboratory sources and solar illumination, PICARD calibration relies on measurements using the Goddard Laser for Absolute Measurements of Radiance (GLAMR) to characterize and minimize spectral stray light from the instrument’s twin Offner grating spectrometers. Good agreement in comparison to reference measurements demonstrates PICARD’s ability to provide imagery for environmental science or for testing new sensor designs and retrieval algorithms for cloud and aerosol research with verified laboratory calibrations at high altitudes.

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Cite This Study

Hoffmann et al. (2026) studied this question.

synapsesocial.com/papers/69e07e582f7e8953b7cbf51dhttps://doi.org/10.3390/rs18081168
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