[1] Burne R V, Moore L S. Microbialites: Organosedimentary deposits of benthic microbial communities[J]. PALAIOS, 1987, 2(3): 241-254.
[2] 刘树根,宋金民,罗平,等. 四川盆地深层微生物碳酸盐岩储层特征及其油气勘探前景[J]. 成都理工大学学报(自然科学版),2016,43(2):129-152.

Liu Shugen, Song Jinmin, Luo Ping, et al. Characteristics of microbial carbonate reservoir and its hydrocarbon exploring outlook in the Sichuan Basin, China[J]. Journal of Chengdu University of Technology (Science & Technology Edition), 2016, 43(2): 129-152.
[3] 罗平,王石,李朋威,等. 微生物碳酸盐岩油气储层研究现状与展望[J]. 沉积学报,2013,31(5):807-823.

Luo Ping, Wang Shi, Li Pengwei, et al. Review and prospectives of microbial carbonate reservoirs[J]. Acta Sedimentologica Sinica, 2013, 31(5): 807-823.
[4] 王龙, Latif K, Riaz M,等. 微生物碳酸盐岩的成因、分类以及问题与展望:来自华北地台寒武系微生物碳酸盐岩研究的启示[J]. 地球科学进展,2018,33(10):1005-1023.

Wang Long, Latif K, Riaz M, et al. The genesis, classification, problems and prospects of microbial carbonates: Implications from the Cambrian carbonate of North China Platform[J]. Advances in Earth Science, 2018, 33(10): 1005-1023.
[5] Riding R. Structure and composition of organic reefs and carbonate mud mounds: Concepts and categories[J]. Earth-Science Reviews, 2002, 58(1/2): 163-231.
[6] Chen J T, Lee J H. Current progress on the geological record of microbialites and microbial carbonates[J]. Acta Geologica Sinica (English Edition), 2014, 88(1): 260-275.
[7] 韩作振,陈吉涛,迟乃杰,等. 微生物碳酸盐岩研究:回顾与展望[J]. 海洋地质与第四纪地质,2009,29(4):29-38.

Han Zuozhen, Chen Jitao, Chi Naijie, et al. Microbial carbonates: A review and perspectives[J]. Marine Geology & Quaternary Geology, 2009, 29(4): 29-38.
[8] 梅冥相. 微生物碳酸盐岩分类体系的修订:对灰岩成因结构分类体系的补充[J]. 地学前缘,2007,14(5):222-234.

Mei Mingxiang. Revised classification of microbial carbonates: Complementing the classification of limestones[J]. Earth Science Frontiers, 2007, 14(5): 222-234.
[9] 吴亚生,姜红霞,虞功亮,等. 微生物岩的概念和重庆老龙洞剖面P-T界线地层微生物岩成因[J]. 古地理学报,2018,20(5):737-775.

Wu Yasheng, Jiang Hongxia, Yu Gongliang, et al. Conceptions of microbialites and origin of the Permian-Triassic boundary microbialites from Laolongdong, Chongqing, China[J]. Journal of Palaeogeography (Chinese Edition), 2018, 20(5): 737-775.
[10] Shapiro R S. A comment on the systematic confusion of thrombolites[J]. PALAIOS, 2000, 15(2): 166-169.
[11] 齐永安,王艳鹏,代明月,等. 豫西登封寒武系第三统张夏组凝块石灰岩及其控制因素[J]. 微体古生物学报,2014,31(3):243-255.

Qi Yong’an, Wang Yanpeng, Dai Mingyue, et al. Thrombolites and controlling factors from the Zhangxia Formation of Cambrian series 3 in Dengfeng, western Henan province[J]. Acta Micropalaeontologica Sinica, 2014, 31(3): 243-255.
[12] 徐欣,胡明毅,高达. 磨溪—高石梯地区灯影组四段微生物岩沉积特征及主控因素[J]. 中国海上油气,2018,30(2):25-34.

Xu Xin, Hu Mingyi, Gao Da. Sedimentary characteristics and main control factors for microbialite of the Fourth member of Dengying Formation in Moxi-Gaoshiti area, central Sichuan Basin[J]. China Offshore Oil and Gas, 2018, 30(2): 25-34.
[13] 徐哲航,兰才俊,郝芳,等. 四川盆地震旦系灯影组不同古地理环境下丘滩储集体的差异性[J]. 古地理学报,2020,22(2):235-250.

Xu Zhehang, Lan Caijun, Hao Fang, et al. Difference of mound-bank complex reservoir under different palaeogeographic environment of the Sinian Dengying Formation in Sichuan Basin[J]. Journal of Palaeogeography (Chinese Edition), 2020, 22(2): 235-250.
[14] 付坤荣,黄理力,祝怡,等. 塔中地区晚奥陶世碳酸盐台缘与台内沉积差异:定性和定量的碳酸盐岩微相综合分析[J]. 沉积学报,2018,36(1):101-109.

Fu Kunrong, Huang Lili, Zhu Yi, et al. The depositional diversity between platform margin and platform interior on the Late Ordovician carbonate rimmed-platform of Tazhong area: A case study of qualitative and quantitative integrated microfacies analysis[J]. Acta Sedimentologica Sinica, 2018, 36(1): 101-109.
[15] 高达,林畅松,杨海军,等. 塔中地区良里塔格组沉积微相及其对有利储层的控制[J]. 地球科学:中国地质大学学报,2013,38(4):819-831.

Gao Da, Lin Changsong, Yang Haijun, et al. Microfacies of Late Ordovician Lianglitage Formation and their control on favorable reservoir in Tazhong area[J]. Earth Science: Journal of China University of Geosciences, 2013, 38(4): 819-831.
[16] 乔占峰,沈安江,倪新锋,等. 塔里木盆地下寒武统肖尔布拉克组丘滩体系类型及其勘探意义[J]. 石油与天然气地质,2019,40(2):392-402.

Qiao Zhanfeng, Shen Anjiang, Ni Xinfeng, et al. Types of mound-shoal complex of the Lower Cambrian Xiaoerbulake Formation in Tarim Basin, northwest China, and its implications for exploration[J]. Oil & Gas Geology, 2019, 40(2): 392-402.
[17] 王鑫,辛勇光,田瀚,等. 四川盆地中三叠统雷口坡组沉积储层研究进展[J]. 海相油气地质,2020,25(3):210-222.

Wang Xin, Xin Yongguang, Tian Han, et al. Research progress on sedimentation and reservoir of Leikoupo Formation of Middle Triassic in Sichuan Basin[J]. Marine Origin Petroleum Geology, 2020, 25(3): 210-222.
[18] 杨威,魏国齐,谢武仁,等. 四川盆地绵竹—长宁克拉通内裂陷东侧震旦系灯影组四段台缘丘滩体成藏特征与勘探前景[J]. 石油勘探与开发,2020,47(6):1174-1184.

Yang Wei, Wei Guoqi, Xie Wuren, et al. Hydrocarbon accumulation and exploration prospect of mound-shoal complexes on the platform margin of the Fourth member of Sinian Dengying Formation in the east of Mianzhu-Changning intracratonic rift, Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2020, 47(6): 1174-1184.
[19] 魏柳斌,包洪平,严婷,等. 鄂尔多斯盆地东部奥陶系马家沟组五段5亚段微生物碳酸盐岩发育特征及储集意义[J]. 石油学报,2021,42(8):1015-1025.

Wei Liubin, Bao Hongping, Yan Ting, et al. Development characteristics and significance of microbial carbonate reservoirs in the Fifth submember of member 5 of Ordovician Majiagou Formation in the eastern Ordos Basin[J]. Acta Petrolei Sinica, 2021, 42(8): 1015-1025.
[20] 李凌,谭秀成,曾伟,等. 四川盆地震旦系灯影组灰泥丘发育特征及储集意义[J]. 石油勘探与开发,2013,40(6):666-673.

Li Ling, Tan Xiucheng, Zeng Wei, et al. Development and reservoir significance of mud mounds in Sinian Dengying Formation, Sichuan Basin[J]. Petroleum Exploration and Development, 2013, 40(6): 666-673.
[21] 翟秀芬,汪泽成,罗平,等. 四川盆地高石梯东部地区震旦系灯影组微生物白云岩储层特征及成因[J]. 天然气地球科学,2017,28(8):1199-1210.

Zhai Xiufen, Wang Zecheng, Luo Ping, et al. Characteristics and origin of microbial dolomite reservoirs in Upper Sinian Deingying Formation, eastern Gaoshiti area, Sichuan Basin, SW China[J]. Natural Gas Geoscience, 2017, 28(8): 1199-1210.
[22] 郭恒玮,伏美燕,宋荣彩,等. 川中高石梯地区灯四段藻丘类型与沉积模式[J]. 沉积学报,2022,40(1):217-228.

Guo Hengwei, Fu Meiyan, Song Rongcai, et al. Algal type and sedimentary model of the 4th member, Dengying Formation in the Gaoshiti area of Chuanzhong[J]. Acta Sedimentologica Sinica,2022,40(1):217-228.
[23] 王文之,杨跃明,文龙,等. 微生物碳酸盐岩沉积特征研究:以四川盆地高磨地区灯影组为例[J]. 中国地质,2016,43(1):306-318.

Wang Wenzhi, Yang Yueming, Wen Long, et al. A study of sedimentary characteristics of microbial carbonate: A case study of the Sinian Dengying Formation in Gaomo area, Sichuan Basin[J]. Geology in China, 2016, 43(1): 306-318.
[24] 文龙,王文之,张健,等. 川中高石梯—磨溪地区震旦系灯影组碳酸盐岩岩石类型及分布规律[J]. 岩石学报,2017,33(4):1285-1294.

Wen Long, Wang Wenzhi, Zhang Jian, et al. Classification of Sinian Dengying Formation and sedimentary evolution mechanism of Gaoshiti-Moxi area in central Sichuan Basin[J]. Acta Petrologica Sinica, 2017, 33(4): 1285-1294.
[25] 胡安平,沈安江,郑剑锋,等. 微生物碳酸盐岩分类、沉积环境与沉积模式[J]. 海相油气地质,2021,26(1):1-15.

Hu Anping, Shen Anjiang, Zheng Jianfeng, et al. The classification, facies and sedimentary models of microbialites[J]. Marine Origin Petroleum Geology, 2021, 26(1): 1-15.
[26] 田兴旺,彭瀚霖,王云龙,等. 川中安岳气田震旦系灯影组四段台缘—台内区储层差异及控制因素[J]. 天然气地球科学,2020,31(9):1225-1238.

Tian Xingwang, Peng Hanlin, Wang Yunlong, et al. Analysis of reservoir difference and controlling factors between the platform margin and the inner area of the Fourth member of Sinian Dengying Formation in Anyue gas field, central Sichuan[J]. Natural Gas Geoscience, 2020, 31(9): 1225-1238.
[27] 赵文智,魏国齐,杨威,等. 四川盆地万源—达州克拉通内裂陷的发现及勘探意义[J]. 石油勘探与开发,2017,44(5):659-669.

Zhao Wenzhi, Wei Guoqi, Yang Wei, et al. Discovery of Wanyuan-Dazhou intracratonic rift and its exploration significance in the Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2017, 44(5): 659-669.
[28] 魏国齐,杨威,杜金虎,等. 四川盆地高石梯—磨溪古隆起构造特征及对特大型气田形成的控制作用[J]. 石油勘探与开发,2015,42(3):257-265.

Wei Guoqi, Yang Wei, Du Jinhu, et al. Tectonic features of Gaoshiti-Moxi paleo-uplift and its controls on the formation of a giant gas field, Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2015, 42(3): 257-265.
[29] Browne K M. Modern marine stromatolitic structures: The sediment dilemma[M]//Tewari V, Seckbach J. STROMATOLITES: Interaction of microbes with sediments. Dordrecht: Springer, 2011: 291-312.
[30] Suarez-Gonzalez P, Benito M I, Quijada I E, et al. ‘Trapping and binding’: A review of the factors controlling the development of fossil agglutinated microbialites and their distribution in space and time[J]. Earth-Science Reviews, 2019, 194: 182-215.
[31] 王建功,杨少勇,李翔,等. 柴达木盆地西部地区咸化湖泊微生物岩特征与差异分布[J]. 中国矿业大学学报,2020,49(6):1111-1127.

Wang Jiangong, Yang Shaoyong, Li Xiang, et al. The characteristics and differential distribution of microbial carbonates of saline lacustrine in the western Qaidam Basin[J]. Journal of China University of Mining & Technology, 2020, 49(6): 1111-1127.
[32] 朱正平,罗文军,潘仁芳,等. 川中高石梯—磨溪地区灯四段古地貌恢复及其对储层的控制作用[J]. 中国石油勘探,2019,24(6):730-738.

Zhu Zhengping, Luo Wenjun, Pan Renfang, et al. The paleogeomorphology restoration of Sinian Deng 4 member and its control on reservoir formation in the Gaoshiti-Moxi area in central Sichuan Basin[J]. China Petroleum Exploration, 2019, 24(6): 730-738.
[33] 梅冥相. 从凝块石概念的演变论微生物碳酸盐岩的研究进展[J]. 地质科技情报,2007,26(6):1-9.

Mei Mingxiang. Discussion on advances of microbial carbonates from the terminological change of thrombolites[J]. Geological Science and Technology Information, 2007, 26(6): 1-9.
[34] Braga J C, Martin J M, Riding R. Controls on microbial dome fabric development along a carbonate-Siliciclastic shelf-basin transect, Miocene, SE Spain[J]. PALAIOS, 1995, 10(4): 347-361.
[35] Ehrlich H L. Geomicrobiology: Its significance for geology[J]. Earth-Science Reviews, 1998, 45(1/2): 45-60.
[36] Rasmussen K A, Macintyre I G, Prufert L. Modern stromatolite reefs fringing a brackish coastline, Chetumal Bay, Belize[J]. Geology, 1993, 21(3): 199-202.