[1] 陶玉华. 森林生态系统碳储量研究的意义及国内外研究进展[J]. 现代农业科技, 2012(9): 205 − 212.

TAO Yuhua. Research significance of carbon storage of forest ecosystem and research progress at home and abroad [J]. Modern Agric Sci Technol, 2012(9): 205 − 212.
[2] 王棣, 佘雕, 张帆, 等. 森林生态系统碳储量研究进展[J]. 西北林学院学报, 2014, 29(2): 85 − 91.

WANG Di, SHE Diao, ZHANG Fan, et al. Advances in the researches of carbon storage of forest ecosystems [J]. J Northwest For Univ, 2014, 29(2): 85 − 91.
[3] 秦立厚, 张茂震, 钟世红, 等. 森林生物量估算中模型不确定性分析[J]. 生态学报, 2017, 37(23): 7912 − 7919.

QIN Lihou, ZHANG Maozhen, ZHONG Shihong, et al. Model uncertainty in forest biomass estimation [J]. Acta Ecol Sin, 2017, 37(23): 7912 − 7919.
[4] 符利勇, 雷渊才, 孙伟, 等. 不同林分起源的相容性生物量模型构建[J]. 生态学报, 2014, 34(6): 1461 − 1470.

FU Liyong, LEI Yuancai, SUN Wei, et al. Development of compatible biomass models for trees from different stand origin [J]. Acta Ecol Sin, 2014, 34(6): 1461 − 1470.
[5] 范文义, 张海玉, 于颖, 等. 3种森林生物量估测模型的比较分析[J]. 植物生态学报, 2011, 35(4): 402 − 410.

FAN Wenyi, ZHANG Haiyu, YU Yin, et al. Comparison of three models of forest biomass estimation [J]. Chin J Plant Ecol, 2011, 35(4): 402 − 410.
[6] 陈振雄, 贺东北, 肖前辉, 等. 西藏冷杉立木生物量和材积模型研建[J]. 中南林业科技大学报, 2018, 38(1): 16 − 21.

CHEN Zhenxiong, HE Dongbei, XIAO Qianhui, et al. Establishment of biomass and tree volume equations for Abies in Tibet [J]. J Central South Univ For Technol, 2018, 38(1): 16 − 21.
[7] BASUKI T M, van LAAKE P E, SKIDMORE A K, et al. Allometric equations for estimating the above-ground biomass in tropical lowland dipterocarp forests [J]. For Ecol Manage, 2009, 257(8): 1684 − 1694.
[8] 唐守正, 张会儒, 胥辉. 相容性生物量模型的建立及其估计方法研究[J]. 林业科学, 2000, 36(增刊 1): 19 − 27.

TANG Shouzheng, ZHANG Huiru, XU Hui. Study on establish and estimate method of compatible biomass model [J]. Sci Silv Sin, 2000, 36(suppl 1): 19 − 27.
[9] 董利虎, 张连军, 李凤日. 立木生物量模型的误差结构和可加性[J]. 林业科学, 2015, 51(2): 28 − 36.

DONG Lihu, ZHANG Lianjun, LI Fengri. Error structure and additivity of individual tree biomass model [J]. Sci Silv Sin, 2015, 51(2): 28 − 36.
[10] 符利勇, 雷渊才, 曾伟生. 几种相容性生物量模型及估计方法的比较[J]. 林业科学, 2014, 50(6): 42 − 54.

FU Liyong, LEI Yuancai, ZENG Weisheng. Comparison of several compatible biomass models and estimation approaches [J]. Sci Silv Sin, 2014, 50(6): 42 − 54.
[11] 刘秀红, 姜春前, 徐睿, 等. 相容性单木生物量模型估计方法的比较: 以青冈栎为例[J]. 林业科学, 2020, 56(9): 164 − 73.

LIU Xiuhong, JIANG Chunqian, XU Rui, et al. Comparison of methods to construct compatible individual tree biomass models: a case study of Cyclobalanopsis glauca [J]. Sci Silv Sin, 2020, 56(9): 164 − 73.
[12] 蔡兆炜, 孙玉军, 施鹏程. 基于非线性度量误差的杉木相容性生物量模型[J]. 东北林业大学学报, 2014, 42(9): 28 − 32.

CAI Zhaowei, SUN Yujun, SHI Pengcheng. Compatible tree biomass models for Chinese fir plantations based on nonlinear measurement error [J]. J Northeast For Univ, 2014, 42(9): 28 − 32.
[13] 孙拥康, 汤景明, 臧颢. 鄂西山区日本落叶松林相容性单株生物量模型研究[J]. 西部林业科学, 2019, 48(5): 125 − 130.

SUN Yongkang, TANG Jingming, ZANG Hao. Compatible individual-tree biomass model of Larix kaempferi plantation in western Hubei mountainous area [J]. J West China For Sci, 2019, 48(5): 125 − 130.
[14] 梁森苗, 王耀锋, 刘玉学, 等. 我国杨梅主产地土壤养分状况的分析[J]. 果树学报, 2015, 32(4): 658 − 665.

LIANG Senmiao, WANG Yaofeng, LIU Yuxue, et al. Present situation of soil nutrients in bayberry orchard of China [J]. J Fruit Sci, 2015, 32(4): 658 − 665.
[15] 颜晓捷, 黄坚钦, 邱智敏, 等. 生草栽培对杨梅果园土壤理化性质和果实品质的影响[J]. 浙江农林大学学报, 2011, 28(6): 850 − 854.

YAN Xiaojie, HUANG Jianqin, QIU Zhimin, et al. Soil physical and chemical properties and fruit quality with grass cover in a Myrica rubra orchard [J]. J Zhejiang A&F Univ, 2011, 28(6): 850 − 854.
[16] 叶柳欣, 张勇, 蒋仲龙, 等. 不同林龄杨梅叶片与土壤的碳、氮、磷生态化学计量特征[J]. 安徽农业大学学报, 2019, 46(3): 454 − 459.

YE Liuxin, ZHANG Yong, JIANG Zhonglong, et al. The stoichiometric characteristics of carbon, nitrogen and phosphorus in soil and leaves of different ages of Myrica rubra [J]. J Anhui Agric Univ, 2019, 46(3): 454 − 459.
[17] 吴家森, 蒋仲龙, 吕爱华, 等. 不同年龄杨梅各器官氮、磷、钾化学计量特征[J]. 江西农业大学学报, 2019, 41(3): 447 − 453.

WU Jiasen, JIANG Zhonglong, LÜ Aihua, et al. The ecological stoichiometry of N, P and K in organs of Myrica rubra of different ages [J]. Acta Agric Univ Jiangxi, 2019, 41(3): 447 − 453.
[18] 简盖元, 冯亮明, 王文烂, 等. 森林碳汇价值与农户林业收入增长的分析[J]. 林业经济问题, 2010, 30(4): 304 − 308.

JIAN Gaiyuan, FENG Liangming, WANG Wenlan, et al. The analysis of forest carbon sequestration value and peasant household forestry income growth [J]. Issues For Econ, 2010, 30(4): 304 − 308.
[19] 曾伟生, 唐守正. 利用度量误差模型方法建立相容性立木生物量方程系统[J]. 林业科学研究, 2010, 23(6): 797 − 802.

ZENG Weisheng, TANG Shouzheng. Using measurement error modeling method to establish compatible single-tree biomass equations system [J]. For Res, 2010, 23(6): 797 − 802.
[20] 董利虎, 李凤日, 贾炜玮. 东北林区天然白桦相容性生物量模型[J]. 林业科学, 2013, 49(7): 75 − 85.

DONG Lihu, LI Fengri, JIA Weiwei. Compatible tree biomass models for natural white birch (Betula platyphylla) in northeast China forest area [J]. Sci Silv Sin, 2013, 49(7): 75 − 85.
[21] 唐守正, 郎奎建, 李海奎. 统计和生物数学模型计算( ForStat教程)[M]. 北京: 科学出版社, 2009: 275 − 279.

TANG Shouzheng, LANG Kuijian, LI Haikui. Calculation for Statistics and Biomathematics Mode [M]. Beijing: Science Press, 2009: 275 − 279.
[22] 格日乐图, 吴志民, 杨校生, 等. 广宁茶秆竹地上生物量分布特征研究[J]. 林业科学研究, 2011, 24(1): 127 − 131.

Geriletu, WU Zhimin, YANG Xiaosheng, et al. Study on above-ground biomass allocation characteristics of Pseudosasa amabilis [J]. For Res, 2011, 24(1): 127 − 131.
[23] 尹惠妍, 张志伟, 李海奎. 中国主要乔木树种生物量方程[J]. 中南林业科技大学学报, 2019, 39(5): 63 − 69.

YIN Huiyan, ZHANG Zhiwei, LI Haikui. Biomass equations of primary arbor tree species in China [J]. J Cent South Univ For Technol, 2019, 39(5): 63 − 69.
[24] POUDEL K P, TEMESGEN H. Methods for estimating above ground biomass and its components for Douglas-fir and Lodgepole pine trees [J]. Can J For Res, 2016, 46(1): 77 − 87.
[25] 付甜, 朱建华, 肖文发, 等. 8种亚热带森林类型乔木层地上生物量分配模型[J]. 林业科学, 2014, 50(9): 1 − 9.

FU Tian, ZHU Jianhua, XIAO Wenfa, et al. Above-ground biomass distribution models for arbor layer of eight subtropical forest types [J]. Sci Silv Sin, 2014, 50(9): 1 − 9.
[26] 曹磊, 李海奎. 广东省樟树相容性生物量模型的构建[J]. 森林与环境学报, 2018, 38(4): 458 − 465.

CAO Lei, LI Haikui. Establishment and analysis of compatible biomass model for Cinnamomum camphora in Guangdong Province [J]. J For Environ, 2018, 38(4): 458 − 465.
[27] 方海涛, 黄雄峰, 周丕考, 等. 3种栽培管理措施对东魁杨梅果实品质的影响[J]. 江西农业学报, 2014, 26(3): 8 − 11.

FANG Haitao, HUANG Xiongfeng, ZHOU Pikao, et al. Effects of three cultivation and management measures on fruit quality of Dongkui red bayberry [J]. Acta Agric Jiangxi, 2014, 26(3): 8 − 11.
[28] 黄士文, 戴智慧, 倪穗. 大棚内地温和光照强度对荸荠种杨梅果实品质的影响[J]. 中国野生植物资源, 2016, 35(4): 9 − 13.

HUANG Shiwen, DAI Zhihui, NI Sui. Effect of ground-temperature and light intensity in greenhouse to fruit quality of Myrica rubra ‘Biqizhong’ [J]. Chin Wild Plant Resour, 2016, 35(4): 9 − 13.
[29] 刘恩斌, 施拥军, 李永夫, 等. 基于非空间结构的浙江省毛竹林固碳潜力[J]. 林业科学, 2012, 48(11): 9 − 14.

LIU Enbin, SHI Yongjun, LI Yongfu, et al. Carbon sequestration potential of moso bamboo forest in Zhejiang Province based on the non-spatial structure [J]. Sci Silv Sin, 2012, 48(11): 9 − 14.
[30] 孙成明, 孙政国, 穆少杰, 等. 基于MODIS的植被指数模型及其在草地生态系统中的应用[J]. 中国农学通报, 2011, 27(22): 84 − 88.

SUN Chengming, SUN Zhengguo, MU Shaojie, et al. Vegetation index models based on MODIS and their application in grassland ecosystem [J]. Chin Agric Sci Bull, 2011, 27(22): 84 − 88.
[31] 钱逸凡, 伊力塔, 张超, 等. 浙江省中部地区公益林生物量与碳储量[J]. 林业科学, 2013, 49(5): 17 − 23.

QIAN Yifan, YI Lita, ZHANG Chao, et al. Biomass and carbon storage of public service forests in the central area of Zhejiang Province [J]. Sci Silv Sin, 2013, 49(5): 17 − 23.