[1] |
Houghton R. Aboveground forest biomass and the global carbon balance[J]. Global Change Biology, 2005,11(6):945-958.
|
[2] |
黄金龙. 基于BEPS模型和遥感的森林地上生物量更新方法研究[D]. 南京:南京大学, 2014: 1-60.
|
[3] |
朱高龙. 帽儿山地区森林冠层叶面积指数的地面观测与遥感反演[J], 2010,21(8):17-24.
|
[4] |
焦桐, 刘荣高, 刘洋, 等. 林下植被遥感反演研究进展[J]. 地球信息科学, 2014,16(4):602-608.
|
[5] |
李登秋. 亚热带森林碳收支变化特征及其成因模拟分析[D]. 南京:南京大学, 2014: 1-83.
|
[6] |
马建德. 基于MODIS数据的森林背景反射率提取方法研究[D]. 南京:南京大学, 2014: 1-45.
|
[7] |
Garrigues S, Lacaze R, Baret F, et al. Validation and intercomparison of global Leaf Area Index products derived from remote sensing data[J]. Journal of Geophysical Research:Biogeosciences, 2008,113(G2):1-20.
|
[8] |
Pisek J, Rautiainen M, Heiskanen J, et al. Retrieval of seasonal dynamics of forest understory reflectance in a Northern European boreal forest from MODIS BRDF data[J]. Remote Sensing of Environment, 2012,117:464-468.
|
[9] |
Pisek J, Chen J M. Mapping forest background reflectivity over North America with Multi-angle Imaging SpectroRadiometer (MISR) data[J]. Remote Sensing of Environment, 2009,113(11):2412-2423.
|
[10] |
NASA. Data[EB/OL]. [2017-07-01]. http://modis.gsfc.nasa.gov/.
|
[11] |
美国地质调查局. USGE[EB/OL]. [2017-07-01]. http://earthexplorer.usgs.gov.
|
[12] |
Chen J, Black T. Measuring leaf area index of plant canopies with branch architecture[J]. Agricultural and Forest Meteorology, 1991,57(1-3):1-12.
|
[13] |
Chen J, Cihlar J. Plant canopy gap-size analysis theory for improving optical measurements of leaf-area index[J]. Applied Optics, 1995,34(27):6211-6222.
doi: 10.1364/AO.34.006211
pmid: 21060464
|
[14] |
Roujean J L, Leroy M, Deschamps P Y. A bidirectional reflectance model of the earth’s surface for the correction of remote sensing data[J]. Journal of Geophysical Research-Atmospheres, 1992,97:55-68.
|
[15] |
Nemani R, Pierce L, Running S, et al. Forest ecosystem processes at the watershed scale:sensitivity to remotely-sensed leaf area index estimates[J]. International Journal of Remote Sensing, 1993,14(13):2519-2534.
|
[16] |
Deng F, Chen J, Plummer S, et al. Algorithm for global leaf area index retrieval using satellite imagery[J]. IEEE, 2006,44(8):2219-2229.
|
[17] |
Pisek J, Chen J, Alikas K, et al. Impacts of including forest understory brightness and foliage clumping information from multiangular measurements on leaf area index mapping over North America[J]. Journal of Geophysical Research, 2010,115:1-13.
|
[18] |
柳艺博, 居为民, 陈镜明, 等. 2000—2010年中国森林叶面积指数时空变化特征[J]. 科学通报, 2012,57(16):1435-1445.
|
[19] |
碳汇林. 全国优势树种(组)异速生长方程[EB/OL]. [2017-06-01] http://www.carbontree.com.cn/NewsShow.asp?Bid=6538.
|
[20] |
Wirth C, Schumacher J, Schulze E-D. Generic biomass functions for Norway spruce in Central Europe—a meta-analysis approach toward prediction and uncertainty estimation[J]. Tree Physiology, 2004,24(2):121-139.
doi: 10.1093/treephys/24.2.121
pmid: 14676030
|
[21] |
罗天祥. 中国主要森林类型生物生产力格局及其数学模型[D]. 北京:中国科学院地理科学与资源研究所, 1996: 1-197.
|
[22] |
Zhang X. Estimating forest biomass in the USA using generalized allometric models and MODIS land products[J]. Geographical Rearch letter, 2006,33(9):1-5.
|
[23] |
毛学刚, 李明泽, 范文义, 等. 近30年来小兴安岭地区生物量变化及地统计分析[J]. 地理研究, 2011,30(6):1110-1120.
|
[24] |
范文义, 李明泽, 杨金明. 长白山林区森林生物量遥感估测模型[J]. 林业科学, 2011,47(10):16-20.
doi: 10.11707/j.1001-7488.20111003
|
[25] |
胡海清, 罗碧珍, 魏书精, 等. 大兴安岭 5 种典型林型森林生物碳储量[J]. 生态学报, 2015,35(17):5745-5760.
doi: 10.5846/stxb201312293051
|