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基于小波分析的大豆叶绿素a含量高光谱反演模型 被引量:32

SOYBEAN CHLOROPHYLL A CONCENTRATION ESTIMATION MODELS BASED ON WAVELET-TRANSFORMED,IN SITU COLLECTED,CANOPY HYPERSPECTRAL DATA
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摘要 2003和2004年分别在长春市良种场和中国科学院海伦黑土生态实验站实测了大田耕作与水肥耦合作用下大豆(Glycine max)冠层高光谱反射率与叶绿素a含量数据,对光谱反射率、微分光谱与叶绿素a含量进行了相关分析;采用归一化植被指数(Normalized difference vegetation index,NDVI)、土壤调和植被指数(Soil-adjusted vegetation index,SAVI)、再归一植被指数(Renormalized difference vegetation index,RDVI)、第二修正比值植被指数(Modified secondratio index,MSRI)等建立了大豆叶绿素a反演模型;应用小波分析对采集的光谱反射率数据进行了能量系数提取,并以小波能量系数作为自变量进行了单变量与多变量回归分析,对大豆叶绿素a进行了估算。研究结果表明,大豆叶绿素a与可见光光谱反射率相关性较好,并在红光波段取得最大值(R2>0.70),但在红边处,微分光谱与大豆叶绿素a的相关性较反射率好得多,在其它波段则相反;由NDVI、SAVI、RDVI、MSRI等植被指数建立的估算模型可以提高大豆叶绿素a的估算精度(R2>0.75);小波能量系数回归模型可以进一步提高大豆叶绿素a含量的估算水平,以一个特定小波能量系数作为自变量的回归模型,大豆叶绿素a回归决定系数R2高达0.78;多变量回归分析结果表明,大豆叶绿素a实测值与预测值的线性回归决定系数R2均高达0.85。以上结果表明,小波分析可以对高光谱进行特征变量提取,并可在一定程度上提高大豆生理参数反演精度。 Aims A growing number of studies have focused on evaluating spectral indices in terms of their sensitivity to vegetation biophysical parameters. We use a regression model, based on wavelet-transformed reflectance, and vegetation indices (Ⅵ) to estimate a wide range of soybean ( Glycine max) canopy reflectances to study the sensitivity of wavelet-transformed reflectance and vegetation indices to soybean chlorophyll a concentration. We modify some Ⅵ to enhance their sensitivity to variations in chlorophyll a concentration. Methods We collected soybean canopy hyperspectral reflectance and chlorophyll a concentration data in 2003 and 2004 at two sites in the black soil belt of China. We correlated reflectance, derivative reflectance and soybean chlorophyll a concentration and regressed vegetation indices ( NDVI, SAVI, RDVI and MSRI) and soybean chlorophyll a concentration. We transformed soybean canopy reflectance with wavelet analysis and applied extracted wavelet energy coefficient in a regression model for estimation of chlorophyll a concentration. Important findings Soybean canopy reflectance shows a negative correlation with chlorophyll a concentration in the visible spectral region, while it shows a positive correlation with soybean chlorophyll a concentration in the near-infrared region. Reflectance derivative has a strong relationship with soybean chlorophyll a concentration in the blue, green and red edge spectral region, with maximum correlation coefficient in the red-edge region. Four vegetation indices have strong correlations with soybean chlorophyll a concentration, with R^2 〉 0.75. The single variable regression model based upon wavelet-extracted reflectance energy can accurately estimate soybean chlorophyll a concentration, with R^2 about 0.75, while R^2 was 0.85 with the multivariate regression model. Our study indicated that wavelet analysis can be applied to in-situ collected hyperspectral data for soybean chlorophyll a concentration estimation with accurate prediction and in the future wavelet analysis methods should be applied to hyperspectral data for estimation of other vegetation biophysical and biochemical parameters.
出处 《植物生态学报》 CAS CSCD 北大核心 2008年第1期152-160,共9页 Chinese Journal of Plant Ecology
基金 中国科学院知识创新工程重点项目(KZCX3-SW-356) 中国科学院长春净月潭遥感站网络台站基金项目
关键词 大豆 高光谱 叶绿素A含量 植被指数 小波能量系数 soybean ( Glycine max), hyperspectral, chlorophyll a concentration, vegetation index, wavelet energy coefficient
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参考文献21

  • 1Adams ML, Norvell WA, Peverly JH, Philpot WD (1993), Fluoreseence and reflectance characteristics of Manganese deficient soybean leaves: effects of leaf age and choice of leaflet. Plant and Soil, 155/156,235- 238.
  • 2Bannari A, Morin D, Bonn F, Huete AR (1995). A review of vegetation indices. Remote Sensing Review, 13, 95 - 120.
  • 3Blackburn GA (1998), Spectral indices for estimating photosynthetic pigment concentrations: a test using senescent tree leaves. International Journol of Remote Sensing, 19, 657 - 675.
  • 4Bruce LM, Li J (2001). Wavelet for eomputationally efficient hyperspectral derivative analysis. IEEE Transactions on Geosciences and Remote Sensing, 39, 1540 - 1546.
  • 5Bruce LM, Koger CH, Li J (2002). Dimensionality reduction of hyperspectral data using discrete transform feature extraction. IEEE Transactions on Geosciences and Remote Sensing, 40, 2331 - 2338.
  • 6Chen J, Cihlar J (1996). Retrieving leaf area index of boreal conifer forests using Landsat TM images. Remote Sensing of Environment, 55, 153- 162.
  • 7Gupta RK, Woolley JT (1971). Spectral properties of soybean leaves. Agronomy Journal, 63, 123- 126.
  • 8黄文江,王纪华,刘良云,赵春江,宋晓宇,马智宏.小麦品质指标与冠层光谱特征的相关性的初步研究[J].农业工程学报,2004,20(4):203-207. 被引量:31
  • 9Huete AR (1988). A soil vegetation adjusted index (SAVI). Remote Sensing of Environment, 25,295 - 309.
  • 10Jacquemoud S, Bacour C, Poilve H, Frangi JP (2000). Comparison of four radiative transfer models to simulate plant canopies reflectance: direct and inverse mode. Remote Sensing of Environment, 74,417- 481.

二级参考文献39

  • 1ZHAO Chun-Jiang, HUANG Wen-Jiang, WANG Ji-hua, YANG Min-hua and XUE Xu-zhang( National Engineering Center for Information Technology in Agriculture , Beijing 100089 , P. R . China).The Red Edge Parameters of Different Wheat Varieties Under Different Fertilization and Irrigation Treatments[J].Agricultural Sciences in China,2002,1(7):745-751. 被引量:16
  • 2浦瑞良,宫鹏,约翰R.米勤.美国西部黄松叶面积指数与高光谱分辨率CASI数据的相关分析[J].环境遥感,1993,8(2):112-125. 被引量:30
  • 3梁宗锁,李新有,康绍忠.节水灌溉条件下夏玉米气孔导度与光合速度的关系[J].干旱地区农业研究,1996,14(1):101-105. 被引量:26
  • 4张宪政 陈凤玉.植物生理学实验技术[M].沈阳:辽宁科学技术出版社,1994.20-21.
  • 5卢振民 牛文元 等.土壤水分含量对冬小麦气孔开启程度的影响[J].植物学报,1986,28(4):419-426.
  • 6许大全.田间小麦叶片光合作用“午睡”现象的研究[J].植物生理学报,1984,10(3):269-275.
  • 7Brogea N H, Mortensen J V. Deriving green crop areaindex and canopy chlorophyll density of winter wheat from spectral reflectance data [J]. Remote Sensing of Environment, 2002,81: 45- 57.
  • 8Chen J M, Cihlar J. Retrieving leaf area index of boreal conifer forests using Landsat TM images [J]. Remote Sensing of Environment, 1996,55 : 153- 162.
  • 9Chason J W, Balsocchi D D, et al. A comparion of direct and indirect methods for estimating forest canopy leaf area [J]. Agricultural and Forest Meterology, 1991,57: 107- 128.
  • 10Gitelson A A, Merzlyak M N. Signature analysis of leaf reflectance spectra: algorithm development for remote sensing of chlorophyll[J]. J Plant Physical, 1996,148:494-500.

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