[1] Hartley RJL, Jayathunga S, Morgenroth J, et al. Tree branch characterization from Point Clouds: A comprehensive review. Current Forestry Reports, 2024, 10: 360-385 [2] 刘兆刚, 刘继明, 李凤日, 等. 樟子松人工林树冠结构的分形分析. 植物研究, 2005, 25(4): 465-470 [3] Niklas KJ, Spatz HC. Wind-induced stresses in cherry trees: Evidence against the hypothesis of constant stress levels. Trees, 2000, 14: 230-237 [4] 孙栋元, 赵成义, 王丽娟, 等. 荒漠植物构型研究进展. 水土保持研究, 2011, 18(5): 281-287 [5] 蒋少伟, 周多多, 吴桂林, 等. 不同地下水埋深下胡杨枝条水力导度及其季节变化. 干旱区研究, 2017, 34(3): 648-654 [6] Gleason SM, Stephens AEA, Tozer WC, et al. Shoot growth of woody trees and shrubs is predicted by maximum plant height and associated traits. Functional Eco-logy, 2018, 32: 247-259 [7] Kramer RD, Sillett SC, Pelt VR, et al. Quantifying aboveground components of Picea sitchensis for allometric comparisons among tall conifers in North American rainforests. Forest Ecology and Management, 2018, 430: 59-77 [8] 吴毓涵, 汪沛, 李雅新, 等. 基于实际和模型树木的TreeQSM建模估计树木参数性能分析. 中国激光, 2023, 50(22): 165-174 [9] Dorji Y, Schuldt B, Neudam L, et al. Three-dimensional quantification of tree architecture from mobile laser scanning and geometry analysis. Trees, 2021, 35: 1385-1398 [10] 王帆, 贾炜玮, 李凤日, 等. 基于地基激光扫描量化间伐强度对长白落叶松人工林竞争关系的影响. 应用生态学报, 2025, 36(5): 1309-1318 [11] Malhi Y, Jackson T, Bentley LP, et al. New perspectives on the ecology of tree structure and tree communities through terrestrial laser scanning. Interface Focus, 2018, 8: 20170052 [12] Muumbe TP, Singh J, Baade J, et al. Individual tree-scale aboveground biomass estimation of woody vegetation in a semi-arid savanna using 3D data. Remote Sen-sing, 2024, 16: 399 [13] Luck L, Hutley LB, Calders K, et al. Exploring the variability of tropical savanna tree structural allometry with terrestrial laser scanning. Remote Sensing, 2020, 12: 3893 [14] Dai JL, Liu Y, Guo Q, et al. Drought-modulated allometric patterns of trees in semi-arid forests. Communications Biology, 2020, 3: 405 [15] Owen H, Flynn W, Lines E, et al. Competitive drivers of interspecific deviations of crown morphology from theoretical predictions measured with terrestrial laser scanning. Journal of Ecology, 2021, 109: 2612-2628 [16] 塔依尔江·艾山, 姚诗雨, 王慧娟, 等. 不同配置城市防护绿地中胡杨构型特征. 干旱区资源与环境, 2010, 24(6): 178-183 [17] 于秀立, 吕新华, 刘红玲, 等. 塔里木河中游胡杨树干CH4、CO2和N2O通量及其影响因素. 生态学杂志, 2025, 44(12) : 4008-4018 [18] 热依拉·木民, 塔依尔江·艾山, 玉米提·哈力克. 塔里木河下游胡杨空心特征. 应用生态学报, 2020, 31(6): 1933-1940 [19] Halik Ü, Aishan T, Betz F, et al. Effectiveness and challenges of ecological engineering for desert riparian forest restoration along China’s largest inland river. Ecological Engineering, 2019, 127: 11-22 [20] Raumonen P, Kaasalainen M, Åkerblom M, et al. Fast automatic precision tree models from terrestrial laser scanner data. Remote Sensing, 2013, 5: 491-520 [21] Yusup A, Hu XM, Halik Ü, et al. Developing new allometric models for estimating aboveground woody biomass and volume of Populus euphratica using terrestrial laser scanning. Journal of Remote Sensing, 2025, 5: 0697 [22] Shinozaki K, Yoda K, Hozumi K, et al. A quantitative analysis of plant form: The pipe model theory. I. Basic analyses. Japanese Journal of Ecology, 1964, 14: 97-105 [23] West GB, Brown HJ, Enquist JB, et al. A general model for the origin of allometric scaling laws in biology. Science, 1997, 276: 122-126 [24] Hein S, Weiskittel AR, Kohnle U, et al. Branch characteristics of widely spaced Douglas-fir in south-western Germany: Comparisons of modelling approaches and geographic regions. Forest Ecology and Management, 2008, 256: 1064-1079 [25] Gaaliche B, Mezghani A, Trad M, et al. Shoot architecture and morphology of different branch orders in fig tree (Ficus carica L.). International Journal of Fruit Science, 2016, 16: 378-394 [26] 倪铭岐, 高慧淋, 刘家腾, 等. 辽东山区日本落叶松一级枝条数量及密度预估模型. 应用生态学报, 2024, 35(8): 2082-2090 [27] 张丹, 黄文娟, 李志军, 等. 濒危荒漠植物灰叶胡杨分枝格局及其分形特征. 江苏农业科学, 2016, 44(7): 209-212 [28] 翟军团, 陈向向, 李秀, 等. 胡杨(Populus euphratica)枝叶异速生长关系随发育阶段及冠层高度变化的性别差异. 中国沙漠, 2023, 43(1): 116-127 [29] 何明珠, 张景光, 王辉. 荒漠植物枝系构型影响因素分析. 中国沙漠, 2006(4): 625-630 [30] 张肖, 吕瑞恒, 梁继业, 等. 胡杨生殖构件空间分布特征及其养分动态分析. 干旱区研究, 2017, 34(1): 95-103 [31] 于秀立, 田中平, 李桂芳, 等. 荒漠植物胡杨不同发育阶段的枝系构型可塑性研究. 新疆农业科学, 2015, 52(11): 2076-2084 [32] Beyer MR, Basler D, Raumonen P, et al. Do trees have constant branch divergence angles? Journal of Theoretical Biology, 2021, 512: 110567 [33] Osada N. Height-dependent changes in shoot structure and tree allometry in relation to maximum height in four deciduous tree species. Functional Ecology, 2011, 25: 777-786 [34] 郑玉, 张化永, 邹恒超, 等. 冀西北山地森林不同生境下白桦分枝结构特征. 科学技术与工程, 2024, 24(3): 970-979 [35] Gao HL, Liu QF, Song Y, et al. Modeling primary branch diameter and length for planted Pinus koraiensis by incorporating neighbor competition in northeast China. Forests, 2022, 13: 912 [36] 李加好, 刘帅飞, 李志军, 等. 胡杨枝、叶和花芽形态数量变化与个体发育阶段的关系. 生态学杂志, 2015, 34(4): 941-946 [37] Purves DW, Lichstein JW, Pacala SW, et al. Crown plasticity and competition for canopy space: A new spatially implicit model parameterized for 250 North American tree species. PLoS One, 2007, 2(9): e870 |