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Level0 to Level1B processor for MethaneAIR

delete2024-02-29
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OA
AI
E
E. K. Conway *
A
Amir H. Souri
J
Joshua Benmergui
K
Kang Sun
X
Xiong Liu
C
Carly Staebell
C
Christopher Chan Miller
J
Jonathan E. Franklin
J
Jenna Samra
J
Jonas Wilzewski
S
Sébastien Roche
B
Bingkun Luo
A
Apisada Chulakadabba
M
Maryann Sargent
J
Jacob Hohl
B
Bruce C. Daube
I
Iouli E. Gordon
K
K. Chance
S
Steven C. Wofsy
DOI:10.5194/amt-17-1347-2024delete
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摘要

摘要

En 中文
This work presents the development of the MethaneAIR Level0-Level1B processor, which converts raw L0 data to calibrated and georeferenced L1B data. MethaneAIR is the airborne simulator for MethaneSAT, a new satellite under development by MethaneSAT LLC, a subsidiary of the Environmental Defense Fund (EDF). MethaneSAT's goals are to precisely map over 80 % of the production sources of methane from oil and gas fields across the globe to an accuracy of 2-4 ppb on a 2 km 2 scale. Efficient algorithms have been developed to perform dark corrections, estimate the noise, radiometrically calibrate data, and correct stray light. A forward model integrated into the L0-L1B processor is demonstrated to retrieve wavelength shifts during flight accurately. It is also shown to characterize the instrument spectral response function (ISRF) changes occurring at each sampled spatial footprint. We demonstrate fast and accurate orthorectification of MethaneAIR data in a three-step process: (i) initial orthorectification of all observations using aircraft avionics, a simple camera model, and a medium-resolution digital elevation map; (ii) registration of oxygen (O 2 ) channel grayscale images to reference Multispectral Instrument (MSI) band 11 imagery via Accelerated-KAZE (A-KAZE) feature extraction and linear transformation, with similar co-registration of methane (CH 4 ) channel grayscale images to the registered O 2 channel images; and finally (iii) optimization of the aircraft position and attitude to the registered imagery and calculation of viewing geometry. This co-registration technique accurately orthorectifies each channel to the referenced MSI imagery. However, in the pixel domain, radiance data for each channel are offset by almost 150-200 across-track pixels (rows) and need to be aligned for the full-physics or proxy retrievals where both channels are simultaneously used. We leveraged our orthorectification tool to identify tie points with similar geographic locations in both CH 4 and O 2 images in order to produce shift parameters in the across-track and along-track dimensions. These algorithms described in this article will be implemented into the MethaneSAT L0-L1B processor.
Keyword:
SENTINEL-5 PRECURSOR
DIOXIDE OBSERVATIONS
ATMOSPHERIC METHANE
NITROGEN-DIOXIDE
SLIT FUNCTIONS
TRACE-GAS
TROPOMI
CALIBRATION
SPECTROMETER
BAND

期刊

Atmospheric Measurement Techniques 封面图
Atmospheric Measurement Techniques
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3.3
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5.3K
被引数:
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机构

H
Harvard University
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26.5W
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被引数: 28.7W
S
state university of new york (suny) system
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被引数: 65
S
Smithsonian Institution
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被引数: 4.2K
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