[1] 张风丽,尹球,匡定波,等.草地光谱分类最佳时相选择分析[J].遥感学报,2006,10(4):482-488 [2] 李建龙,黄敬峰,维纳汗.不同类型草地监测与估产遥感指标和光学模型建立的研究[J].中国草地学报,1996,16(6):6-10 [3] 温兴平,胡光道,杨晓峰.基于光谱特征拟合的高光谱遥感影像植被覆盖度提取[J].地理与地理信息科学,2008,24(1):27-30 [4] Michio S,Tsuyosho A. Seasonal visible, near-infrared and mid-infrared spectra of rice canopies in relation to LAI and above-ground dry phytomass[J]. Remote Sensing of Environment,1989,27(2):119-127 [5] 田庆久,宫鹏,赵春江.用光谱反射率诊断小麦水分状况的可行性分析[J].科学通报,2000,45(24):2645-2650 [6] Curran P J, Dungan J L, Gholz H L. Exploring the relationship between reflectance red edge and chlorophyll content in slash pine[J].Tree Physiology,1995,15(3):203-206 [7] Barton C V M, North P R J. Remote sensing of canopy light use efficiency using the photochemical reflectance index: Model and sensitivity analysis[J]. Remote Sensing of Environment,2001,78(3):264-273 [8] Schmidt K S, Skidmore A K. Exploring spectral discrimination of grass species in African rangelands[J]. International Journal of Remote Sensing,2001,22(17):3421-3434 [9] 牟新待,龙瑞军,陈功,等.高山草甸植被光谱反射特征的研究[J].草业学报,1993,2(2):8-10 [10] Yamano H, Chen J, Tamura M. Hyperspectral identification of grassland vegetation in Xilinhot, Inner Mongolia, China[J]. International Journal of Remote Sensing,2001,24(15):3171-3178 [11] 王艳荣,雍世鹏.利用多时相近地面反射波谱特征对不同退化等级草地的鉴别研究[J].植物生态学报,2004,28(3):406-413 [12] Mutanga O, Kumar L. Estimating and mapping grass phosphorus concentration in an African savanna using hyperspectral image data[J]. International Journal of Remote Sensing,2007,28(21):4897-4911 [13] Moses A C, Andrew S, Fabio C, et al. Estimation of green grass/herb biomass from airborne hyperspectral imagery using spectral indices and partial least squares regression[J]. International Journal of Applied Earth Observation and Geoinformation,2007,9(4):414-424 [14] 喻小勇,邵全琴,刘纪远,等. 三江源区不同退化程度的高寒草甸光谱特征分析[J].地球信息科学学报,2012,14(3):398-404 [15] 王艳荣.利用植被近地面反射波谱季节特征对大针茅草原不同利用强度的植物群落的鉴别研究[J].内蒙古大学学报:自然科学版,1997,28(5):117-125 [16] 王艳荣.羊草(Leymus chinensis)草原不同利用强度下植被反射波谱季节变化特征及其与产草量相关性的比较研究[J].内蒙古大学学报:自然科学版,1998,29(1):105-111 [17] Mutanga O, Skidmore A K, Prins H H T. Predicting in situ pasture quality in the Kruger National Park, South Africa using continuum removed absorption features[J]. Remote Sensing of Environment,2004,89(3):393-408 [18] Broge N H, Leblanc E. Comparing prediction power and stability of broadband and hyperspectral vegetation indices for estimation of green leaf area index and canopy chlorophyll density[J]. Remote Sensing of Environment,2001,76(2):156-172 [19] Gamon J A, Peuelas J, Field C B. A narrow-waveband spectral index that tracks diurnal changes in photosynthetic efciency[J]. Remote Sensing of Environment,1992,41(1):35-44 [20] Chappelle E W, Kim M S, McMurtrey J E. Ratio analysis of reflectance spectra (RARS) - an algorithm for the remote estimation of the concentrations of chlorophyll-A, chlorphyll-B, and carotenoids in soybean leaves[J]. Remote Sensing of Environment,1992,39(3):239-247 [21] Huete A, Didan K, Miura T, et al. Overview of the radiometric and biophysical performance of the MODIS vegetation indices[J]. Remote Sensing of Environment,2002,83(1/2):195-213 [22] Kaufman Y J, Tanre D. Atmospherically resistant vegetation index-ARVI for EOS/MODIS[C]. IEEE Transactions on Geoscience and Remote Sensing,1992,30(2):261-270 [23] Huete A R. A soil-adjusted vegetation index (SAVI) [J]. Remote Sensing of Environment,1988,25(3):295-309 |