| [1] | 林先智, 胡思敏, 刘胜,  等, 2018. 传统测序与高通量测序在稚鱼食性分析中的比较[J]. 应用生态学报, 29(9): 3093-3101. | 
																													
																							|  | LIN XIANZHI, HU SIMIN, LIU SHENG,  et al, 2018. Comparison between traditional sequencing and high-throughput sequencing on the dietary analysis of juvenile fish[J]. Chinese Journal of Applied Ecology, 29(9): 3093-3101 (in Chinese with English abstract).  doi: 10.13287/j.1001-9332.201809.005
 | 
																													
																							| [2] | 张琛, 胡思敏, 林先智,  等, 2022. 南沙珊瑚礁区波纹钩鳞鲀(Balistapus undulatus)食性和营养级分析[J]. 热带海洋学报, 41(1): 7-14.  doi: 10.11978/2021008
 | 
																													
																							|  | ZHANG CHEN, HU SIMIN, LIN XIANZHI,  et al, 2022. Diet and trophic level analysis of triggerfish (Balistapus undulatuse) in coral reefs of Nansha[J]. Journal of Tropical Oceanography, 41(1): 7-14 (in Chinese with English abstract).  doi: 10.11978/2021008
 | 
																													
																							| [3] | 周天成, 胡思敏, 林先智,  等, 2020. 基于18S rDNA条形码技术的珊瑚礁区塔形马蹄螺(Tectus pyramis)食性分析[J]. 海洋科学, 44(2): 99-107. | 
																													
																							|  | ZHOU TIANCHENG, HU SIMIN, LIN XIANZHI,  et al, 2020. Study on the feeding habits of Tectus pyramis in the coral reef ecosystem based on 18S rDNA barcoding[J]. Marine Sciences, 44(2): 99-107. (in Chinese with English abstract). | 
																													
																							| [4] | ADAM T C, KELLEY M, RUTTENBERG B I,  et al, 2015. Resource partitioning along multiple niche axes drives functional diversity in parrotfishes on Caribbean coral reefs[J]. Oecologia, 179(4): 1173-1185.  doi: 10.1007/s00442-015-3406-3
																																					pmid: 26245147
 | 
																													
																							| [5] | AFEWORKI Y, BRUGGEMANN J H, VIDELER J J, 2011. Limited flexibility in resource use in a coral reef grazer foraging on seasonally changing algal communities[J]. Coral Reefs, 30(1): 109-122. | 
																													
																							| [6] | ALWANY M A, THALER E, STACHOWITSCH M, 2009. Parrotfish bioerosion on Egyptian Red Sea reefs[J]. Journal of Experimental Marine Biology and Ecology, 371(2): 170-176. | 
																													
																							| [7] | BELLWOOD D R, HUGHES T P, FOLKE C,  et al, 2004. Confronting the coral reef crisis[J]. Nature, 429(6994): 827-833. | 
																													
																							| [8] | BONALDO R M, BELLWOOD D R, 2008. Size-dependent variation in the functional role of the parrotfish Scarus rivulatus on the Great Barrier Reef, Australia[J]. Marine Ecology Progress Series, 360: 237-244. | 
																													
																							| [9] | BONALDO R M, KRAJEWSKI J P, BELLWOOD D R, 2011. Relative impact of parrotfish grazing scars on massive Porites corals at Lizard Island, Great Barrier Reef[J]. Marine Ecology Progress Series, 423: 223-233. | 
																													
																							| [10] | BONALDO R M, HOEY A S, BELLWOOD D R, 2014. The Ecosystem roles of parrotfishes on tropical reefs[M]//  HUGHESR N, HUGHESD J, SMITHI P, Oceanography and marine biology: An annual review. Boca Raton: CRC Press: 81-132. | 
																													
																							| [11] | BRUGGEMANN J H, KUYPER M W M, BREEMAN A M, 1994a. Comparative-analysis of foraging and habitat use by the sympatric Caribbean parrotfish Scarus vetula and Sparisoma viride (Scaridae)[J]. Marine Ecology Progress Series, 112: 51-66. | 
																													
																							| [12] | BRUGGEMANN J H, VAN OPPEN M J H, BREEMAN A M, 1994b. Foraging by the stoplight-parrotfish Sparisoma-viride. I. food selection in different, socially determined habitats[J]. Marine Ecology Progress Series, 106: 41-55. | 
																													
																							| [13] | BRUGGEMANN J H, VAN KESSEL A M, VAN ROOIJ J M,  et al, 1996. Bioerosion and sediment ingestion by the Caribbean parrotfish Scarus vetula and Sparisoma viride: Implications of fish size, feeding mode and habitat use[J]. Marine Ecology Progress Series, 134(1-3): 59-71. | 
																													
																							| [14] | BURKEPILE D E, HAY M E, 2008. Herbivore species richness and feeding complementarity affect community structure and function on a coral reef[J]. Proceedings of the National Academy of Sciences of the United States of America, 105(42): 16201-16206.  doi: 10.1073/pnas.0801946105
																																					pmid: 18845686
 | 
																													
																							| [15] | CHOAT J H, CLEMENTS K D, ROBBINS W D, 2002. The trophic status of herbivorous fishes on coral reefs - I: Dietary analyses[J]. Marine Biology, 140(3): 613-623. | 
																													
																							| [16] | CLEMENTS K D, GERMAN D P, PICHE J,  et al, 2017. Integrating ecological roles and trophic diversification on coral reefs: multiple lines of evidence identify parrotfishes as microphages[J]. Biological Journal of the Linnean Society, 120(4): 729-751. | 
																													
																							| [17] | CNUDDE C, MOENS T, WERBROUCK E,  et al, 2015. Trophodynamics of estuarine intertidal harpacticoid copepods based on stable isotope composition and fatty acid profiles[J]. Marine Ecology Progress Series, 524: 225-239. | 
																													
																							| [18] | COMEROS-RAYNAL M T, CHOAT J H, POLIDORO B A,  et al, 2012. The likelihood of extinction of iconic and dominant herbivores and detritivores of coral reefs: The Parrotfishes and Surgeonfishes[J]. PLoS One, 7(7): e39825. | 
																													
																							| [19] | CROSSMAN D J, CHOAT J H, CLEMENTS K D, 2005. Nutritional ecology of nominally herbivorous fishes on coral reefs[J]. Marine Ecology Progress Series, 296: 129-142. | 
																													
																							| [20] | GORDON S E, GOATLEY C H R, BELLWOOD D R, 2016. Low-quality sediments deter grazing by the parrotfish Scarus rivulatus on inner-shelf reefs[J]. Coral Reefs, 35(1): 285-291. | 
																													
																							| [21] | HANMER J, WHITE J W, PAWLIK J R, 2017. Application of diet theory reveals context-dependent foraging preferences in an herbivorous coral reef fish[J]. Oecologia, 184(1): 127-137.  doi: 10.1007/s00442-017-3855-y
																																					pmid: 28337605
 | 
																													
																							| [22] | HATCHER B G, 1988. Coral reef primary productivity: a beggar’s banquet[J]. Trends in Ecology & Evolution, 3(5): 106-111. | 
																													
																							| [23] | HOEY A S, BELLWOOD D R, 2008. Cross-shelf variation in the role of parrotfishes on the Great Barrier Reef[J]. Coral Reefs, 27(1): 37-47. | 
																													
																							| [24] | HUANG H, ZHOU G W, YANG J H,  et al, 2013. Diversity of free-living and symbiotic Symbiodinium in the coral reefs of Sanya, South China Sea[J]. Marine Biology Research, 9(2): 117-128. | 
																													
																							| [25] | HUGHES T P, RODRIGUES M J, BELLWOOD D R,  et al, 2007. Phase shifts, herbivory, and the resilience of coral reefs to climate change[J]. Current Biology, 17(4): 360-365.  doi: 10.1016/j.cub.2006.12.049
																																					pmid: 17291763
 | 
																													
																							| [26] | KOHLER S T, KOHLER C C, 1992. Dead bleached coral provides new surfaces for dinoflagellates implicated in ciguatera fish poisonings[J]. Environmental Biology of Fishes, 35(4): 413-416. | 
																													
																							| [27] | KRAMER M J, BELLWOOD O, BELLWOOD D R, 2013. The trophic importance of algal turfs for coral reef fishes: the crustacean link[J]. Coral Reefs, 32(2): 575-583. | 
																													
																							| [28] | LIN X Z, HU S M, LIU S,  et al, 2018. Unexpected prey of juvenile spotted scat (Scatophagus argus) near a wharf: The prevalence of fouling organisms in stomach contents[J]. Ecology and Evolution, 8(16): 8547-8554. | 
																													
																							| [29] | MUMBY P J, 2006. The impact of exploiting grazers (scaridae) on the dynamics of Caribbean coral reefs[J]. Ecological Applications, 16(2): 747-769.  pmid: 16711060
 | 
																													
																							| [30] | MUMBY P J, 2009. Herbivory versus corallivory: are parrotfish good or bad for Caribbean coral reefs?[J]. Coral Reefs, 28(3): 683-690. | 
																													
																							| [31] | MUSCATINE L, MCCLOSKEY L R, MARIAN R E, 1981. Estimating the daily contribution of carbon from zooxanthellae to coral animal respiration[J]. Limnology and Oceanography, 26(4): 601-611. | 
																													
																							| [32] | NANAMI A, 2016. Parrotfish grazing ability: interspecific differences in relation to jaw-lever mechanics and relative weight of adductor mandibulae on an Okinawan coral reef[J]. PeerJ, 4(9):e2425. | 
																													
																							| [33] | NICHOLSON G M, CLEMENTS K D, 2020. Resolving resource partitioning in parrotfishes (Scarini) using microhistology of feeding substrata[J]. Coral Reefs, 39(5): 1313-1327. | 
																													
																							| [34] | PICHÉ J, IVERSON S J, PARRISH F A,  et al, 2010. Characterization of forage fish and invertebrates in the Northwestern Hawaiian Islands using fatty acid signatures: species and ecological groups[J]. Marine Ecology Progress, 41: 81-15. | 
																													
																							| [35] | POMPANON F, DEAGLE B E, SYMONDSON W O C,  et al, 2012. Who is eating what: diet assessment using next generation sequencing[J]. Molecular Ecology, 21(8): 1931-1950.  doi: 10.1111/j.1365-294X.2011.05403.x
																																					pmid: 22171763
 | 
																													
																							| [36] | PURCELL S W, BELLWOOD D R, 2001. Spatial patterns of epilithic algal and detrital resources on a windward coral reef[J]. Coral Reefs, 20(2): 117-125. | 
																													
																							| [37] | SAKKA A, LEGENDRE L, GOSSELIN M,  et al, 2000. Structure of the oligotrophic planktonic food web under low grazing of heterotrophic bacteria: Takapoto Atoll, French Polynesia[J]. Marine Ecology Progress Series, 197: 1-17. | 
																													
																							| [38] | STOECK T, BASS D, NEBEL M,  et al, 2010. Multiple marker parallel tag environmental DNA sequencing reveals a highly complex eukaryotic community in marine anoxic water[J]. Molecular Ecology, 19(S1): 21-31. | 
																													
																							| [39] | TEBBETT S B, BELLWOOD D R, 2019. Algal turf sediments on coral reefs: what's known and what's next[J]. Marine Pollution Bulletin, 149: 110542. | 
																													
																							| [40] | WILLIAMS I D, POLUNIN N V C, HENDRICK V J, 2001. Limits to grazing by herbivorous fishes and the impact of low coral cover on macroalgal abundance on a coral reef in Belize[J]. Marine Ecology Progress Series, 222: 187-196. | 
																													
																							| [41] | WILSON S K, BELLWOOD D R, CHOAT J H,  et al, 2003. Detritus in the epilithic algal matrix and its use by coral reef fishes[M]//  GIBSONR N, ATKINSONR J A, Oceanography and marine biology:an annual review. London: Taylor & Francis: 279-309. | 
																													
																							| [42] | YANG D, NAM S, HWANG S J,  et al, 2016. Fatty acid biomarkers to verify cyanobacteria feeding abilities of herbivorous consumers[J]. Journal of Freshwater Ecology, 31(1): 77-91. |