[1] |
续九如, 宋婉, 邹受益, 等. 榆属树种遗传改良研究现状及思考[J]. 北京林业大学学报, 2000, 22(6):95-99.
|
|
XU J R, SONG W, ZOU S Y, et al. Research status and some consideration in genetic improvement of elm species[J]. J Beijing For Univ, 2000, 22(6):95-99.DOI:10.13332/j.1000-1522.2000.06.023.
|
[2] |
REDFERN D B, SUTTON B C. Canker and dieback of Ulmus glabra caused by Plectophomella concentrica,and its relationship to P. ulmi[J]. Trans Br Mycol Soc, 1981, 77(2):381-390.DOI:10.1016/s0007-1536(81)80041-1.
|
[3] |
YAN D T, CHEN W, LIU L, et al. Change in current and future geographic distributions of Ulmus lamellosa in China[J]. J For Res, 2018, 29(4):1147-1156.DOI:10.1007/s11676-017-0503-7.
|
[4] |
WILLIS K J, BHAGWAT S A. Biodiversity and climate change[J]. Science, 2009, 326(5954):806-807.DOI:10.1126/science.1178838.
|
[5] |
刘想, 龚熹, 陈思斯, 等. 基于MaxEnt和ArcGIS模拟檫木分布格局及其栖息地的变化[J]. 植物科学学报, 2018, 36(3):320-326.
|
|
LIU X, GONG X, CHEN S S, et al. Simulation of the distribution pattern of Sassafras tzumu and changes in habitat based on ArcGIS and MaxEnt[J]. Plant Sci J, 2018, 36(3):320-326.DOI:10.11913/PSJ.2095-0837.2018.30320.
|
[6] |
昭日格. 应用RAPD技术进行白榆种群遗传多样性研究[D]. 呼和浩特: 内蒙古农业大学, 2011.
|
|
ZHAO R G. Study on genetic diversity among different populations of Ulmus pumila using RAPD method[D]. Hohhot: Inner Mongolia Agricultural University, 2011.
|
[7] |
FENG Z T, DENG Y Q, FAN H, et al. Effects of NaCl stress on the growth and photosynthetic characteristics of Ulmus pumila L. seedlings in sand culture[J]. Photosynthetica, 2014, 52(2): 313-320. DOI: 10.1007/s11099-014-0032-y.
|
[8] |
PHILLIPS S J, ANDERSON R P, SCHAPIRE R E. Maximum entropy modeling of species geographic distributions[J]. Ecol Model, 2006, 190(3/4):231-259.DOI:10.1016/j.ecolmodel.2005.03.026.
|
[9] |
PHILLIPS S J, DUDÍK M, SCHAPIRE R E. A maximum entropy approach to species distribution modeling[C]// Twenty-first international conference on machine learning-ICML'04.July 4-8,2004.Banff,Alberta,Canada. New York: ACM Press, 2004:655-662.DOI:10.1145/1015330.1015412.
|
[10] |
闫宇航, 岑云峰, 张鹏岩, 等. 基于MaxEnt模型的中国马尾松分布格局及未来变化[J]. 生态学杂志, 2019, 38(9):2896-2901.
|
|
YAN Y H, CEN Y F, ZHANG P Y, et al. Predicting distribution pattern and future change of Pinus massoniana in China based on MaxEnt model[J]. Chin J Ecol, 2019, 38(9):2896-2901.DOI:10.13292/j.1000-4890.201909.022.
|
[11] |
于海彬, 张镱锂, 李士成, 等. 基于GIS和物种分布模型的高山植物长花马先蒿迁移路线模拟[J]. 应用生态学报, 2014, 25(6):1669-1673.
|
|
YU H B, ZHANG Y L, LI S C, et al. Predicting the dispersal routes of alpine plant Pedicularis longiflora(Orobanchaceae) based on GIS and species distribution models[J]. Chin J Appl Ecol, 2014, 25(6):1669-1673.DOI:10.13287/j.1001-9332.20140415.015.
|
[12] |
田芝平, 姜大膀. 不同分辨率CCSM4对东亚和中国气候模拟能力分析[J]. 大气科学, 2013, 37(1):171-186.
|
|
TIAN Z P, JIANG D B. Evaluation of the performance of low-to high-resolution CCSM4 over east Asia and China[J]. Chin J Atmos Sci, 2013, 37(1):171-186.DOI:10.3878/j.issn.1006-9895.2012.12050.
|
[13] |
程晋昕, 段长春, 闫生杰. 基于MaxEnt模型的薄壳山核桃气候适宜性区划[J]. 应用气象学报, 2020, 31(5):631-640.
|
|
CHENG J X, DUAN C C, YAN S J. Climate suitability regionalization of pecan based on MaxEnt model[J]. J Appl Meteorol Sci, 2020, 31(5):631-640.DOI:10.11898/1001-7313.20200510.
|
[14] |
郭彦龙, 卫海燕, 路春燕, 等. 气候变化下桃儿七潜在地理分布的预测[J]. 植物生态学报, 2014, 38(3):249-261.
|
|
GUO Y L, WEI H Y, LU C Y, et al. Predictions of potential geographical distribution of Sinopodophyllum hexandrum under climate change[J]. Chin J Plant Ecol, 2014, 38(3):249-261.DOI:10.3724/SP.J.1258.2014.00022.
|
[15] |
邱浩杰, 孙杰杰, 徐达, 等. 末次盛冰期以来红豆树在不同气候变化情景下的分布动态[J]. 生态学报, 2020, 40(9):3016-3026.
|
|
QIU H J, SUN J J, XU D, et al. The distribution dynamics of Ormosia hosiei under different climate change scenarios since the Last Glacial Maximum[J]. Chin J Plant Ecol, 2020, 40(9):3016-3026.DOI:10.5846/stxb201904080688.
|
[16] |
陈禹衡, 吕一维, 殷晓洁. 气候变化下西南地区12种常见针叶树种适宜分布区预测[J]. 南京林业大学学报(自然科学版), 2019, 43(6): 113-120.
|
|
CHEN Y H, LÜ Y W, YIN X J. Predicting habitat suitability of 12 coniferous forest tree species in southwest China based on climate change[J]. J Nanjing For Univ (Nat Sci Ed), 2019, 43(6): 113-120.DOI: 10.3969/j.issn.1000-2006.201808045.
|
[17] |
庄鸿飞, 张殷波, 王伟, 等. 基于最大熵模型的不同尺度物种分布概率优化热点分析:以红色木莲为例[J]. 生物多样性, 2018, 26(9):931-940.
|
|
ZHUANG H F, ZHANG Y B, WANG W, et al. Optimized hot spot analysis for probability of species distribution under different spatial scales based on MaxEnt model:Manglietia insignis case[J]. Biodivers Sci, 2018, 26(9):931-940.DOI:10.17520/biods.2018059.
|
[18] |
牛若恺, 高润红, 侯艳青, 等. 气候变化下沙冬青适宜分布区预测[J]. 西北林学院学报, 2021, 36(1):102-107.
|
|
NIU R K, GAO R H, HOU Y Q, et al. Predictionof the geographic distribution of Ammopiptanthus mongolicus under climate change[J]. J Northwest For Univ, 2021, 36(1):102-107.DOI:10.3969/j.issn.1001-7461.2021.01.14.
|
[19] |
赵晓冏, 巩娟霄, 赵莎莎, 等. 样本量及其空间分布对物种分布模型的影响[J]. 兰州大学学报(自然科学版), 2018, 54(2):208-215.
|
|
ZHAO X J, GONG J X, ZHAO S S, et al. Impact of sample size and spatial distribution on species distribution model[J]. J Lanzhou Univ (Nat Sci), 2018, 54(2):208-215.DOI:10.13885/j.issn.0455-2059.2018.02.010.
|
[20] |
ELITH J, PHILLIPS S J, HASTIE T, et al. A statistical explanation of MaxEnt for ecologists[J]. Divers Distributions, 2011, 17(1):43-57.DOI:10.1111/j.1472-4642.2010.00725.x.
|
[21] |
陈新美, 雷渊才, 张雄清, 等. 样本量对MaxEnt模型预测物种分布精度和稳定性的影响[J]. 林业科学, 2012, 48(1):53-59.
|
|
CHEN X M, LEI Y C, ZHANG X Q, et al. Effects of sample sizes on accuracy and stability of maximum entropy model in predicting species distribution[J]. Sci Silvae Sin, 2012, 48(1):53-59.
|
[22] |
赵儒楠, 何倩倩, 褚晓洁, 等. 气候变化下千金榆在我国潜在分布区预测[J]. 应用生态学报, 2019, 30(11):3833-3843.
|
|
ZHAO R N, HE Q Q, CHU X J, et al. Prediction of potential distribution of Carpinus cordata in China under climate change[J]. Chin J Appl Ecol, 2019, 30(11):3833-3843.DOI:10.13287/j.1001-9332.201911.020.
|
[23] |
塞依丁·海米提, 努尔巴依·阿布都沙力克, 许仲林, 等. 基于MaxEnt模型对新疆地区的蒙古沙拐枣潜在分布预测及适生性分析[J]. 西北林学院学报, 2018, 33(4):71-77.
|
|
Saiyiding·Haimit, Nuerdayi·Abudushalige, XU Z L, et al. Analysis of potential distribution and suitable area of Calligonum mongolicum in Xinjiang based on MaxEnt model[J]. J Northwest For Univ, 2018, 33(4):71-77.DOI:10.3969/j.issn.1001-7461.2018.04.11.
|
[24] |
魏博, 马松梅, 宋佳, 等. 新疆贝母潜在分布区域及生态适宜性预测[J]. 生态学报, 2019, 39(1):228-234.
|
|
WEI B, MA S M, SONG J, et al. Prediction of the potential distribution and ecological suitability of Fritillaria walujewii[J]. Chin J Plant Ecol, 2019, 39(1):228-234.DOI:10.5846/stxb20171210222.
|
[25] |
张晓晓. 3个白榆品系耐盐特性比较研究[D]. 泰安: 山东农业大学, 2017.
|
|
ZHANG X X. The comparison of salt tolerance among three strains of Ulmus pumila[D]. Tai’an: Shandong Agricultural University, 2017.
|
[26] |
WENT F W. The experimental control of plant growth[J]. Outlook Agric, 1958, 2(1):45.DOI:10.1177/003072705800200109.
|
[27] |
蔡玉成, 马国骅, 王政琦. 不同地理种源白榆的某些生理特性[J]. 宁夏农林科技, 1990, 31(2):20-23.
|
|
CAI Y C, MA G H, WANG Z Q. Some physiological characteristics of Ulmus pumila from different geographical provenances[J]. Ningxia J Agric For Sci Technol, 1990, 31(2):20-23.
|
[28] |
叶永昌, 周广胜, 殷晓洁. 1961-2010年内蒙古草原植被分布和生产力变化:基于MaxEnt模型和综合模型的模拟分析[J]. 生态学报, 2016, 36(15):4718-4728.
|
|
YE Y C, ZHOU G S, YIN X J. Changes in distribution and productivity of steppe vegetation in Inner Mongolia during 1961 to 2010:analysis based on MaxEnt model and synthetic model[J]. Chin J Plant Ecol, 2016, 36(15):4718-4728.DOI:10.5846/stxb201412302599.
|
[29] |
王爱君, 路东晔, 张国盛, 等. 基于MaxEnt模拟欧亚大陆气候变化下叉子圆柏的潜在分布[J]. 林业科学, 2021, 57(8):43-55.
|
|
WANG A J, LU D Y, ZHANG G S, et al. Potential distribution of Juniperus sabina under climate change in Eurasia continent based on MaxEnt model[J]. Sci Silvae Sin, 2021, 57(8):43-55.DOI:10.11707/j.1001-7488.20210805.
|
[30] |
YAN H Y, FENG L, ZHAO Y F, et al. Prediction of the spatial distribution of Alternanthera philoxeroides in China based on ArcGIS and MaxEnt[J]. Glob Ecol Conserv, 2020, 21:e00856.DOI:10.1016/j.gecco.2019.e00856.
|
[31] |
曹雪萍, 王婧如, 鲁松松, 等. 气候变化情景下基于最大熵模型的青海云杉潜在分布格局模拟[J]. 生态学报, 2019, 39(14):5232-5240.
|
|
CAO X P, WANG J R, LU S S, et al. Simulation of the potential distribution patterns of Picea crassifolia in climate change scenarios based on the maximum entropy (MaxEnt) model[J]. Chin J Plant Ecol, 2019, 39(14):5232-5240.DOI:10.5846/stxb201809151999.
|
[32] |
张梅, 禄彩丽, 魏喜喜, 等. 基于MaxEnt模型新疆枣潜在适生区预测[J]. 经济林研究, 2020, 38(1):152-161.
|
|
ZHANG M, LU C L, WEI X X, et al. Potential suitable area forecast of jujube in Xinjiang based on MaxEnt model[J]. Non Wood For Res, 2020, 38(1):152-161.DOI:10.14067/j.cnki.1003-8981.2020.01.019.
|
[33] |
涂振宇, 勾晓华, 邹松兵. 祁连山北坡青海云杉的潜在分布[J]. 南京林业大学学报(自然科学版), 2022, 46(2): 221-226.
|
|
TU Z Y, GOU X H, ZOU S B. Potential distributions of Picea crassifolia on the north slope of Qilian Mountains[J]. J Nanjing For Univ (Nat Sci Ed), 2022, 46(2): 221-226.DOI: 10.12302/j.issn.1000-2006.202012011.
|