| [1] | JIN W, CAO X J, MA X Y, et al.  Chromosome-level genome assembly of the freshwater snail Bellamya purificata (Caenogastropoda)[J]. Zoological research, 2022, 43(4):683-686. | 
																													
																						| [2] | 陈翔, 沈钦一, 顾宪明, 等. 不同生物活饵提取物对鱼类诱食效果的研究[J]. 农业科学与技术(英文版), 2014, 15(6):942-946. | 
																													
																						| [3] | 梁琍, 王艳艳, 姚俊杰, 等. 锦江河3种淡水螺的营养成分分析与评价[J]. 贵州农业科学, 2013(12):131-133. | 
																													
																						| [4] | 闻海波, 金武, 徐跑, 等. 我国主要淡水经济贝类养殖研究进展(下)[J]. 科学养鱼, 2021(2):26-27. | 
																													
																						| [5] | 宋烨佳, 李威锋, 文衍红, 等. 柳州淡水螺产业现状及发展对策[J]. 养殖与饲料, 2020(5):136-140. | 
																													
																						| [6] | 闫宝荣, 花保祯. 几何形态测量学及其在昆虫分类学和系统发育中的应用[J]. 昆虫分类学报, 2010, 32(4):313-320. | 
																													
																						| [7] | 葛德燕, 夏霖, 吕雪霏, 等. 几何形态学方法及其在动物发育与系统进化研究中的应用[J]. 动物分类学报, 2012, 37(2):296-304. | 
																													
																						| [8] | 陈新军, 方舟, 苏杭, 等. 几何形态测量学在水生动物中的应用及其进展[J]. 水产学报, 2013, 37(12):1873-1885. | 
																													
																						| [9] | 郑朝臣, 姜涛, 骆仁军, 等. 不同产地中华绒螯蟹形态差异的地标点法分析[J]. 水产学报, 2017, 41(12):1896-1907. | 
																													
																						| [10] | 姜晓东, 成永旭, 潘建林, 等. 基于地标点几何形态测量法区分不同水系野生中华绒螯蟹[J]. 中国水产科学, 2019, 26(6):1116-1125. | 
																													
																						| [11] | 王旭, 徐衡, 邹莉, 等. 3个单齿螺地理群体形态差异分析[J]. 南方水产科学, 2013, 9(4):22-27. | 
																													
																						| [12] | 舒予, 史令, 赖思琦, 等. 不同水深养殖栉孔扇贝的形态测量学研究和比较[J]. 水生生物学报, 2021, 4(1):132-139. | 
																													
																						| [13] | 牛泓博, 聂鸿涛, 赵力强, 等. 辽宁沿海菲律宾蛤仔不同地理群体形态差异研究[J]. 海洋科学, 2015, 39(11):54-60. | 
																													
																						| [14] | 杜莉. 中国钻头螺总科(Subulinoidea)的比较形态学与分类[D]. 南京: 南京大学, 2015. | 
																													
																						| [15] | 刘月英, 张文珍, 王跃先, 等. 中国经济动物志·淡水软体动物[M]. 北京: 科学出版社, 1979. | 
																													
																						| [16] | VOGLER R E, BELTRAMINO A A, GUTIÉRREZ-GREGORIC D E, et al.  Threatened Neotropical mollusks: analysis of shape differences in three endemic snails from High Paraná River by geometric morphometrics[J]. Revista Mexicana de Biodiversidad, 2012, 83:1045-1052. | 
																													
																						| [17] | 周权. 基于几何形态测量法的子午沙鼠头骨形态地理变异研究[D]. 兰州: 兰州大学, 2019. | 
																													
																						| [18] | R CORE TEAM. R: A language and environment for statistical computing[Z]. Austria: Vienna, 2013. | 
																													
																						| [19] | GUNZ P, MITTEROECKER P, NEUBAUER S, et al.  Principles for the virtual reconstruction of hominin crania[J]. Journal of human evolution, 2009, 57(1):48-62.  doi: 10.1016/j.jhevol.2009.04.004    
																																																	pmid: 19482335
 | 
																													
																						| [20] | ADAMS D C, OTÁROLA-CASTILLO E. Geomorph: An R package for the collection and analysis of geometric morphometric shape data[J]. Methods in ecology and evolution, 2013, 4(4):393-399.  doi: 10.1111/mee3.2013.4.issue-4    
																																					URL
 | 
																													
																						| [21] | ROHLF F J, SLICE D. Extensions of the Procrustes method for the optimal superimposition of landmarks[J]. Systematic biology, 1990, 39(1):40-59. | 
																													
																						| [22] | COLLYER M L, ADAMS D C. RRPP: An R package for fitting linear models to high-dimensional data using residual randomization[J]. Methods in ecology and evolution, 2018, 9(7):1772-1779.  doi: 10.1111/mee3.2018.9.issue-7    
																																					URL
 | 
																													
																						| [23] | SCHLAGER S. Statistical shape and deformation analysis[M]. London: Academic Press, 2017. | 
																													
																						| [24] | ADAMS D C, ROHLF F J, SLICE D E. Geometric morphometrics: Ten years of progress following the ‘revolution’[J]. Italian Journal of Zoology, 2004, 71(1):5-16.  doi: 10.1080/11250000409356545    
																																					URL
 | 
																													
																						| [25] | YOUSIF M. Warped Ideas: Geometric morphometrics as a complementary technique for studying gastropod shell morphology[D]. Hamilton: McMaster University, 2012. | 
																													
																						| [26] | MACLEOD N. Automated taxon identification in systematics: Theory, approaches and applications[M]. Boca Raton: CRC Press, 2007. | 
																													
																						| [27] | 顾钱洪. 中国不同地理种群环棱螺遗传多样性和分类阶元的研究[D]. 武汉: 华中农业大学, 2013. | 
																													
																						| [28] | 李宗礼, 李原园, 王中根, 等. 河湖水系连通研究:概念框架[J]. 自然资源学报, 2011, 26(3):513-522. | 
																													
																						| [29] | MADEIRA C, ALVES M J, MESQUITA N, et al.  Tracing geographical patterns of population differentiation in a widespread mangrove gastropod: genetic and geometric morphometrics surveys along the eastern African coast[J]. Biological journal of the Linnean society, 2012, 107(3):647-663.  doi: 10.1111/bij.2012.107.issue-3    
																																					URL
 | 
																													
																						| [30] | HOLLANDER J, ADAMS D C, JOHANNESSON K. Evolution of adaptation through allometric shifts in a marine snail[J]. Evolution, 2006, 60(12):2490-2497.  pmid: 17263111
 | 
																													
																						| [31] | CARO A, GÓMEZ-MOLINER B J, MADEIRA M J. Integrating multilocus DNA data and 3D geometric morphometrics to elucidate species boundaries in the case of Pyrenaearia (Pulmonata: Hygromiidae)[J]. Molecular phylogenetics and evolution, 2019, 132:194-206.  doi: 10.1016/j.ympev.2018.12.007    
																																					URL
 | 
																													
																						| [32] | NIETO-VILELA R A, VRDOLJAK J, GIULIANELLI S, et al.  Geometric morphometrics reveal complex shape variation patterns at different geographic scales in the patagonian gastropod Trophon geversianus[J]. Evolutionary ecology, 2021, 35(5):705-721.  doi: 10.1007/s10682-021-10125-w
 |