Quantifying forest above ground carbon content using LiDAR remote sensing
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Ahern, 1991, A quantitative relationship between forest growth-rates and thematic mapper reflectance measurements, International Journal of Remote Sensing, 12, 387, 10.1080/01431169108929660
Ajtay, 1979, Terrestrial primary production and phytomass, 129
Axelsson, 1999, Processing of laser scanner data-algorithms and applications, ISPRS Journal of Photogrammetry and Remote Sensing, 54, 138, 10.1016/S0924-2716(99)00008-8
Birdsley, 1990, Potential changes in carbon storage through conversion of lands to plantation forests
Blair, 1999, The Laser Vegetation Imaging Sensor: A medium-altitude, digitisation-only, airborne laser altimeter for mapping vegetation and topography, ISPRS Journal of Photogrammetry and Remote Sensing, 54, 115, 10.1016/S0924-2716(99)00002-7
Bousquet, 2000, Regional changes in carbon dioxide fluxes of land and oceans since 1980, Science, 290, 1342, 10.1126/science.290.5495.1342
Crockford, K. J. (1987). An evaluation of British woodlands for fuelwood and timber production. Ph. D. Thesis, Department of Plant Sciences, University of Oxford. 219 p.
Dewar, 1992, Carbon sequestration in the trees, products and soils of forest plantations: An analysis using UK examples, Tree Physiology, 11, 49, 10.1093/treephys/11.1.49
Dobson, 1995, Estimation of forest biophysical characteristics in Northern Michigan with Sir-C/X-Sar, IEEE Transactions on Geoscience and Remote Sensing, 33, 877, 10.1109/36.406674
Drake, 2002, Estimation of tropical forest structural characteristics using large-footprint LiDAR, Remote Sensing of Environment, 79, 305, 10.1016/S0034-4257(01)00281-4
Edwards, 1981, Yield models for forest management, vol. 48
Flood M., Gutelius B. (1997). Commercial implications of topographic terrain mapping using scanning airborne laser radar. Photogrammetric Engineering and Remote Sensing. 63:327-29,363-66.
Franklin, 1986, Coniferous forest classification and inventory using landsat and digital terrain data, IEEE Transactions on Geoscience and Remote Sensing, 24, 139, 10.1109/TGRS.1986.289543
Fransson, 1999, Estimation of stem volume in boreal forests using ERS-1 C- and JERS-1 L-band SAR data, International Journal of Remote Sensing, 20, 123, 10.1080/014311699213640
Gaveau, 2003, Quantifying canopy height underestimation by laser pulse penetration in small-footprint airborne laser scanning data, Canadian Journal of Remote Sensing, 29, 650, 10.5589/m03-023
Hamilton, 1975, Forest mensuration handbook, vol. 39
Hill, 2003, Ecological applications of airborne laser scanner data: Woodland bird habitat modelling, 78
Holmgren, 1998, Satellite remote sensing for forestry planning—a review, Scandinavian Journal of Forest Research, 13, 90, 10.1080/02827589809382966
2001
Hyyppa, 2000, Forest inventory based on laser scanning and aerial photography, 106
Hyyppa, 2001, A segmentation-based method to retrieve stem volume estimates from 3-D tree height models produced by laser scanners, IEEE Transactions on Geoscience and Remote Sensing, 39, 969, 10.1109/36.921414
Imhoff, 1995, Radar backscatter and biomass saturation-ramifications for global biomass inventory, IEEE Transactions on Geoscience and Remote Sensing, 33, 511, 10.1109/36.377953
Kilian, 1996, Capture and evaluation of airborne laser scanner data, International Archives of Photogrammetry and Remote Sensing, 53, 193
Lefsky, 1999, LiDAR remote sensing of the canopy structure and biophysical properties of Douglas-fir western hemlock forests, Remote Sensing of Environment, 70, 339, 10.1016/S0034-4257(99)00052-8
Lefsky, 1997, LiDAR remote sensing of forest canopy structure and related biochemical parameters at the H.J. Andrews experimental forest, Oregon, USA, 79
Lefsky, 2002, LiDAR remote sensing for ecosystem studies, Bioscience, 52, 19, 10.1641/0006-3568(2002)052[0019:LRSFES]2.0.CO;2
Lefsky, 1999, Surface LiDAR remote sensing of basal area and biomass in deciduous forests of eastern Maryland, USA, Remote Sensing of Environment, 67, 83, 10.1016/S0034-4257(98)00071-6
Lim, 2003, LiDAR remote sensing of forest structure, Progress in Physical Geography, 27, 88, 10.1191/0309133303pp360ra
Magnussen, 1998, Derivations of stand heights from airborne laser scanner data with canopy-based quantile estimators, Canadian Journal of Forest Research-Revue Canadienne de Recherche Forestière, 28, 1016, 10.1139/x98-078
Magnussen, 1999, Recovering tree heights from airborne laser scanner data, Forest Science, 45, 407
Matthews, 1993, The carbon content of trees, vol. 4
Means, 2000, Predicting forest stand characteristics with airborne scanning LiDAR, Photogrammetric Engineering and Remote Sensing, 66, 1367
Means, 1999, Use of large-footprint scanning airborne LiDAR to estimate forest stand characteristics in the Western Cascades of Oregon, Remote Sensing of Environment, 67, 298, 10.1016/S0034-4257(98)00091-1
Milne, 1998, The effect of geographical variation of planting rate on the uptake of carbon by new forests of Great Britain, Forestry, 71, 297, 10.1093/forestry/71.4.297
Naesset, 1997, Determination of mean tree height of forest stands using airborne laser scanner data, ISPRS Journal of Photogrammetry and Remote Sensing, 52, 49, 10.1016/S0924-2716(97)83000-6
Naesset, 1997, Estimating timber volume of forest stands using airborne laser scanner data, Remote Sensing of Environment, 61, 246, 10.1016/S0034-4257(97)00041-2
Naesset, 2002, Predicting forest stand characteristics with airborne scanning laser using a practical two-stage procedure and field data, Remote Sensing of Environment, 80, 88, 10.1016/S0034-4257(01)00290-5
Naesset, 2002, Estimating tree height and tree crown properties using airborne scanning laser in a boreal nature reserve, Remote Sensing of Environment, 79, 105, 10.1016/S0034-4257(01)00243-7
Nelson, 1988, Estimating forest biomass and volume using airborne laser data, Remote Sensing of Environment, 24, 247, 10.1016/0034-4257(88)90028-4
Nelson, 2003, A multiple resource inventory of Delaware using airborne laser data, Bioscience, 53, 981, 10.1641/0006-3568(2003)053[0981:AMRIOD]2.0.CO;2
Nilsson, 1996, Estimation of tree heights and stand volume using an airborne LiDAR system, Remote Sensing of Environment, 56, 1, 10.1016/0034-4257(95)00224-3
Omasa, 2003, Accurate estimation of forest carbon stocks by 3-D remote sensing of individual trees, Environmental Science and Technology, 37, 1198, 10.1021/es0259887
Patenaude, 2003, The carbon pool in a British semi-natural woodland, Forestry, 76, 109, 10.1093/forestry/76.1.109
Ranson, 1995, Boreal forest ecosystem characterization with Sir-C/X Sar, IEEE Transactions on Geoscience and Remote Sensing, 33, 867, 10.1109/36.406673
Rayner, 1999, Reconstructing the recent carbon cycle from atmospheric CO2, delta C-13 and O-2/N-2 observations, Tellus Series B-Chemical and Physical Meteorology, 51, 213, 10.1034/j.1600-0889.1999.t01-1-00008.x
Ripple, 1991, A preliminary comparison of Landsat Thematic Mapper and Spot-1 HRV multispectral data for estimating coniferous forest volume, International Journal of Remote Sensing, 12, 1971, 10.1080/01431169108955230
Ruppert, 2000, Adaptive multiresolution algorithm for high precision forest floor DTM generation, 97
Salway, A. G., Murrells, T. P., Milne, R., & Ellis, S. (2001). UK Greenhouse Gas Inventory. 1990 to 1999 Annual Report for submission under Framework Convention on Climate Change. National Environmental Technology Centre, AEA Technology Centre.
Satchell, 1971, Feasibility study of an energy budget for Meathop Wood, 619
Snedecor, 1980, 507
1973, 337
UNFCCC. (1997). Kyoto Protocol to the United Nation Framework Convention on Climate Change. http://unfccc.int/
Vogt, 1991, Carbon budgets of temperate forest ecosystems, Tree Physiology, 9, 69, 10.1093/treephys/9.1-2.69