Performance Evaluation for China’s Planned CO2-IPDA

Active remote sensing of atmospheric XCO2 has several advantages over existing passive remote sensors, including global coverage, a smaller footprint, improved penetration of aerosols, and night observation capabilities. China is planning to launch a multi-functional atmospheric observation satellit...

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Main Authors: Ge Han, Xin Ma, Ailin Liang, Tianhao Zhang, Yannan Zhao, Miao Zhang, Wei Gong
Format: Article
Language:English
Published: MDPI AG 2017-07-01
Series:Remote Sensing
Subjects:
Online Access:https://www.mdpi.com/2072-4292/9/8/768
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spelling doaj-ad14dbb03fef4e4d9b5ce39c6f2b10622020-11-24T21:08:45ZengMDPI AGRemote Sensing2072-42922017-07-019876810.3390/rs9080768rs9080768Performance Evaluation for China’s Planned CO2-IPDAGe Han0Xin Ma1Ailin Liang2Tianhao Zhang3Yannan Zhao4Miao Zhang5Wei Gong6International School of Software, Wuhan University, Wuhan 430079, ChinaElectronic Information School, Wuhan University, Wuhan 430079, ChinaState Key Laboratory of Information Engineering in Surveying, Mapping and Remote Sensing, Wuhan University, Wuhan 430079, ChinaState Key Laboratory of Information Engineering in Surveying, Mapping and Remote Sensing, Wuhan University, Wuhan 430079, ChinaKey Laboratory of Earthquake Geodesy, Institute of Seismology, China Earthquake Administration, Wuhan 430071, ChinaSchool of Environmental Science and Tourism, Nanyang Normal University, Wolong Road 1638, Nan Yang 473061, ChinaState Key Laboratory of Information Engineering in Surveying, Mapping and Remote Sensing, Wuhan University, Wuhan 430079, ChinaActive remote sensing of atmospheric XCO2 has several advantages over existing passive remote sensors, including global coverage, a smaller footprint, improved penetration of aerosols, and night observation capabilities. China is planning to launch a multi-functional atmospheric observation satellite equipped with a CO2-IPDA (integrated path differential absorption Lidar) to measure columnar concentrations of atmospheric CO2 globally. As space and power are limited on the satellite, compromises have been made to accommodate other passive sensors. In this study, we evaluated the sensitivity of the system’s retrieval accuracy and precision to some critical parameters to determine whether the current configuration is adequate to obtain the desired results and whether any further compromises are possible. We then mapped the distribution of random errors across China and surrounding regions using pseudo-observations to explore the performance of the planned CO2-IPDA over these regions. We found that random errors of less than 0.3% can be expected for most regions of our study area, which will allow the provision of valuable data that will help researchers gain a deeper insight into carbon cycle processes and accurately estimate carbon uptake and emissions. However, in the areas where major anthropogenic carbon sources are located, and in coastal seas, random errors as high as 0.5% are predicted. This is predominantly due to the high concentrations of aerosols, which cause serious attenuation of returned signals. Novel retrieving methods must, therefore, be developed in the future to suppress interference from low surface reflectance and high aerosol loading.https://www.mdpi.com/2072-4292/9/8/768IPDAatmospheric CO2performance evaluationremote sensing satellite
collection DOAJ
language English
format Article
sources DOAJ
author Ge Han
Xin Ma
Ailin Liang
Tianhao Zhang
Yannan Zhao
Miao Zhang
Wei Gong
spellingShingle Ge Han
Xin Ma
Ailin Liang
Tianhao Zhang
Yannan Zhao
Miao Zhang
Wei Gong
Performance Evaluation for China’s Planned CO2-IPDA
Remote Sensing
IPDA
atmospheric CO2
performance evaluation
remote sensing satellite
author_facet Ge Han
Xin Ma
Ailin Liang
Tianhao Zhang
Yannan Zhao
Miao Zhang
Wei Gong
author_sort Ge Han
title Performance Evaluation for China’s Planned CO2-IPDA
title_short Performance Evaluation for China’s Planned CO2-IPDA
title_full Performance Evaluation for China’s Planned CO2-IPDA
title_fullStr Performance Evaluation for China’s Planned CO2-IPDA
title_full_unstemmed Performance Evaluation for China’s Planned CO2-IPDA
title_sort performance evaluation for china’s planned co2-ipda
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2017-07-01
description Active remote sensing of atmospheric XCO2 has several advantages over existing passive remote sensors, including global coverage, a smaller footprint, improved penetration of aerosols, and night observation capabilities. China is planning to launch a multi-functional atmospheric observation satellite equipped with a CO2-IPDA (integrated path differential absorption Lidar) to measure columnar concentrations of atmospheric CO2 globally. As space and power are limited on the satellite, compromises have been made to accommodate other passive sensors. In this study, we evaluated the sensitivity of the system’s retrieval accuracy and precision to some critical parameters to determine whether the current configuration is adequate to obtain the desired results and whether any further compromises are possible. We then mapped the distribution of random errors across China and surrounding regions using pseudo-observations to explore the performance of the planned CO2-IPDA over these regions. We found that random errors of less than 0.3% can be expected for most regions of our study area, which will allow the provision of valuable data that will help researchers gain a deeper insight into carbon cycle processes and accurately estimate carbon uptake and emissions. However, in the areas where major anthropogenic carbon sources are located, and in coastal seas, random errors as high as 0.5% are predicted. This is predominantly due to the high concentrations of aerosols, which cause serious attenuation of returned signals. Novel retrieving methods must, therefore, be developed in the future to suppress interference from low surface reflectance and high aerosol loading.
topic IPDA
atmospheric CO2
performance evaluation
remote sensing satellite
url https://www.mdpi.com/2072-4292/9/8/768
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AT yannanzhao performanceevaluationforchinasplannedco2ipda
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