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The ddeq Python library for point source quantification from remote sensing images (version 1.0)

delete2024-06-18
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OA
AI
G
Gerrit Kuhlmann *
E
Erik Koene
S
Sandro Meier
D
Diego Santaren
G
Grégoire Broquet
F
Frédéric Chevallier
J
Janne Hakkarainen
J
Janne Nurmela
L
Laia Amorós
J
Johanna Tamminen
D
Dominik Brunner
DOI:10.5194/gmd-17-4773-2024delete
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Abstract

Abstract

En 中文
Atmospheric emissions from anthropogenic hotspots, i.e., cities, power plants and industrial facilities, can be determined from remote sensing images obtained from airborne and space-based imaging spectrometers. In this paper, we present a Python library for data-driven emission quantification (ddeq) that implements various computationally light methods such as the Gaussian plume inversion, cross-sectional flux method, integrated mass enhancement method and divergence method. The library provides a shared interface for data input and output and tools for pre- and post-processing of data. The shared interface makes it possible to easily compare and benchmark the different methods. The paper describes the theoretical basis of the different emission quantification methods and their implementation in the ddeq library. The application of the methods is demonstrated using Jupyter notebooks included in the library, for example, for NO( 2 )images from the Sentinel-5P/TROPOMI satellite and for synthetic CO (2 ) and NO (2 ) images from the Copernicus CO (2 ) Monitoring (CO2M) satellite constellation. The library can be easily extended for new datasets and methods, providing a powerful community tool for users and developers interested in emission monitoring using remote sensing images.
Keywords:
CO2 EMISSIONS
SATELLITE-OBSERVATIONS
CARBON-DIOXIDE
POWER-PLANTS
METHANE
CITIES
NO2
PLUMES
LIFETIMES
MISSION

Journal

Geoscientific Model Development cover
Geoscientific Model Development
IF:
4.9
Papers:
4.0K
Citations:
2.4W

Organization

C
CEA
Scholars:
3.5W
Papers: 2.3W
Citations: 62
U
university of zurich
Scholars:
5.0W
Papers: 4.0W
Citations: 65
S
swiss federal institutes of technology domain
Scholars:
9.0W
Papers: 8.0W
Citations: 163
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