PM2.5 Estimation and Spatial-Temporal Pattern Analysis Based on the Modified Support Vector Regression Model and the 1 km Resolution MAIAC AOD in Hubei, China

被引:14
作者
Chen, Nengcheng [1 ,2 ]
Yang, Meijuan [1 ]
Du, Wenying [1 ]
Huang, Min [1 ]
机构
[1] Wuhan Univ, State Key Lab Informat Engn Surveying Mapping & R, Wuhan 430072, Peoples R China
[2] Wuhan Univ, Collaborat Innovat Ctr Geospatial Technol, Wuhan 430079, Peoples R China
基金
中国博士后科学基金;
关键词
PM2; 5; MAIAC 1 km AOD; MODIS; modified support vector regression; meteorological data; AEROSOL OPTICAL DEPTH; GROUND-LEVEL PM2.5; INFLUENTIAL FACTORS; PM1; CONCENTRATIONS; MODIS; IMPACT; VARIABILITY; RETRIEVALS; HIMAWARI-8; ALGORITHM;
D O I
10.3390/ijgi10010031
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The satellite-retrieved Aerosol Optical Depth (AOD) is widely used to estimate the concentrations and analyze the spatiotemporal pattern of Particulate Matter that is less than or equal to 2.5 microns (PM2.5), also providing a way for the related research of air pollution. Many studies generated PM2.5 concentration networks with resolutions of 3 km or 10 km. However, the relatively coarse resolution of the satellite AOD products make it difficult to determine the fine-scale characteristics of PM2.5 distributions that are important for urban air quality analysis. In addition, the composition and chemical properties of PM2.5 are relatively complex and might be affected by many factors, such as meteorological and land cover type factors. In this paper, an AOD product with a 1 km spatial resolution derived from the Multi-Angle Implementation of Atmospheric Correction (MAIAC) algorithm, the PM2.5 measurements from ground sites and the meteorological data as the auxiliary variable, are integrated into the Modified Support Vector Regression (MSVR) model that proposed in this paper to estimate the PM2.5 concentrations and analyze the spatiotemporal pattern of PM2.5. Considering the relatively small dataset and the somewhat complex relationship between the variables, we propose a Modified Support Vector Regression (MSVR) model that based on SVR to fit and estimate the PM2.5 concentrations in Hubei province of China. In this paper, we obtained Cross Correlation Coefficient (R-2) of 0.74 for the regression of independent and dependent variables, and the conventional SVR model obtained R-2 of 0.60 as comparison. We think our MSVR model obtained relatively good performance in spite of many complex factors that might impact the accuracy. We then utilized the optimal MSVR model to perform the PM2.5 estimating, analyze their spatiotemporal patterns, and try to explain the possible reasons for these patterns. The results showed that the PM2.5 estimations retrieved from 1 km MAIAC AOD could reflect more detailed spatial distribution characteristics of PM2.5 and have higher accuracy than that from 3 km MODIS AOD. Therefore, the proposed MSVR model can be a better method for PM2.5 estimating, especially when the dataset is relatively small.
引用
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页数:18
相关论文
共 61 条
[31]   Comparison and evaluation of MODIS Multi-angle Implementation of Atmospheric Correction (MAIAC) aerosol product over South Asia [J].
Mhawish, Alaa ;
Banerjee, Tirthankar ;
Sorek-Hamer, Meytar ;
Lyapustin, Alexei ;
Broday, David M. ;
Chatfield, Robert .
REMOTE SENSING OF ENVIRONMENT, 2019, 224 :12-28
[32]   What is a support vector machine? [J].
Noble, William S. .
NATURE BIOTECHNOLOGY, 2006, 24 (12) :1565-1567
[33]   AOD-PM2.5 Association: Paciorek and Liu Respond [J].
Paciorek, Christopher J. ;
Liu, Yang .
ENVIRONMENTAL HEALTH PERSPECTIVES, 2010, 118 (03) :A110-A111
[34]   Satellite-measured atmospheric aerosol content in Korea: anthropogenic signals from decadal records [J].
Park, Sunyurp ;
Choi, Jinmu .
GISCIENCE & REMOTE SENSING, 2016, 53 (05) :634-650
[35]   Assessing the impact of PM2.5 on respiratory disease using artificial neural networks [J].
Polezer, Gabriela ;
Tadano, Yara S. ;
Siqueira, Hugo V. ;
Godoi, Ana F. L. ;
Yamamoto, Carlos I. ;
de Andre, Paulo A. ;
Pauliquevis, Theotonio ;
Andrade, Maria de Fatima ;
Oliveira, Andrea ;
Saldiva, Paulo H. N. ;
Taylor, Philip E. ;
Godoi, Ricardo H. M. .
ENVIRONMENTAL POLLUTION, 2018, 235 :394-403
[36]   Support vector regression based metamodel by sequential adaptive sampling for reliability analysis of structures [J].
Roy, Atin ;
Chakraborty, Subrata .
RELIABILITY ENGINEERING & SYSTEM SAFETY, 2020, 200
[37]   A tutorial on support vector regression [J].
Smola, AJ ;
Schölkopf, B .
STATISTICS AND COMPUTING, 2004, 14 (03) :199-222
[38]   An intercomparison of AOD-converted PM2.5 concentrations using different approaches for estimating aerosol vertical distribution [J].
Su, Tianning ;
Li, Jing ;
Li, Chengcai ;
Lau, Alexis Kai-Hon ;
Yang, Dongwei ;
Shen, Chuanyang .
ATMOSPHERIC ENVIRONMENT, 2017, 166 :531-542
[39]   Impact of data quality and surface-to-column representativeness on the PM2.5/satellite AOD relationship for the contiguous United States [J].
Toth, T. D. ;
Zhang, J. ;
Campbell, J. R. ;
Hyer, E. J. ;
Reid, J. S. ;
Shi, Y. ;
Westphal, D. L. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2014, 14 (12) :6049-6062
[40]  
Trifonova T.A., 1998, MAPP SCI REMOTE SENS, V35, P22, DOI [10.1080/07493878.1998.10642074, DOI 10.1080/07493878.1998.10642074]