[1]

Bianco G, Raj Pant S., Wu X, Åkesson S. 2025. Nocturnal but not diurnal threats shape stopover strategy in a migrating songbird. Journal of Animal Ecology 94(7):1372−1382

doi: 10.1111/1365-2656.70059
[2]

No S, Yang HM, Sherratt TN, Kang C. 2024. Flash behaviors protect prey from avian predators. Behavioral Ecology 35(6):arae076

doi: 10.5061/dryad.2v6wwpzxg
[3]

Sun Y, Fu C, Zhao Y, Ding Z, Lai M, et al. 2025. Phylogenetic relatedness overshadows acoustic similarity to regulate responses toward unfamiliar mobbing calls in Masked Laughingthrushes. Avian Research 16(4):100299

doi: 10.1016/j.avrs.2025.100299
[4]

Yu F, Yu C, Guo S, Wang X, Li J, et al. 2025. The risk perception and response of Azure-winged magpies: On the aspect of feeding behaviour and alarm calls. Journal of Animal Ecology 94(5):1101−1110

doi: 10.1111/1365-2656.70044
[5]

Flower TP, Gribble M, Ridley AR. 2014. Deception by flexible alarm mimicry in an African bird. Science 344:513−516

doi: 10.1126/science.1249723
[6]

Coye C, Dutour M. 2025. Mobbing sequences of American wrens elicit mobbing responses in European tits. Animal Behaviour 221:123050

doi: 10.1016/j.anbehav.2024.12.006
[7]

Dutour M, Lena JP, Lengagne T. 2016. Mobbing behaviour varies according to predator dangerousness and occurrence. Animal Behaviour 119:119−124

doi: 10.1016/j.anbehav.2016.06.024
[8]

Fang WH, Hsu YH, Lin WL, Yen SC. 2020. The function of avian mobbing: an experimental test of 'attract the mightier' hypothesis. Animal Behaviour 170:229−233

doi: 10.1016/j.anbehav.2020.10.013
[9]

Krams I, Krama T. 2002. Interspecific reciprocity explains mobbing behaviour of the breeding chaffinches, Fringilla coelebs. Proceedings of the Royal Society B: Biological Sciences 269(1507):2345−2350

doi: 10.1098/rspb.2002.2155
[10]

Bai J, Freeberg TM, Lucas JR, Sieving KE. 2021. A community context for aggression? Multi-species audience effects on territorial aggression in two species of Paridae. Ecology and Evolution 11(10):5305−5319

doi: 10.1002/ece3.7421
[11]

Pigot AL, Sheard C, Miller ET, Bregman TP, Freeman BG, et al. 2020. Macroevolutionary convergence connects morphological form to ecological function in birds. Nature Ecology & Evolution 4(2):230−239

doi: 10.1038/s41559-019-1070-4
[12]

Jiang D, Hua F, Goodale E. 2023. Functional traits including interspecific sociality affect mobbing behaviour in a bird community of southern China. Behaviour 160:559−575

doi: 10.1163/1568539X-bja10220
[13]

Hua F, Li DL, Janra MN, Fitri LM, Prawiradilaga D, et al. 2016. Functional traits determine heterospecific use of risk-related social information in forest birds of tropical South-East Asia. Ecology and Evolution 6:8485−8494

doi: 10.1002/ece3.2545
[14]

Jiang D, Sieving KE, Meaux E, Goodale E. 2020. Seasonal changes in mixed‐species bird flocks and antipredator information. Ecology and Evolution 10:5368−5382

doi: 10.1002/ece3.6280
[15]

Dutour M, Cordonnier M, Léna JP, Lengagne T. 2019. Seasonal variation in mobbing behaviour of passerine birds. Journal of Ornithology 160(2):509−514

doi: 10.1007/s10336-019-01630-5
[16]

Dagan U, Izhaki I. 2019. The effect of pine forest structure on bird-mobbing behavior: from individual response to community composition. Forests 10(9):762

doi: 10.3390/f10090762
[17]

Cordonnier M, Ridley AR, Lengagne T, Dutour M. 2023. The impact of high temperatures on bird responses to alarm calls. Behavioral Ecology and Sociobiology 77(7):82

doi: 10.1007/s00265-023-03354-2
[18]

Bibi N, Yuan Q, Chen C, Chen S, Duan Y, et al. 2024. Three cases of collared owlet depredation on the green-backed tit within nest boxes. Ecology and Evolution 14(3):e11083

doi: 10.1002/ece3.11083
[19]

Haase I, Liu Z, Zhang S, Dong Z, Cheng Y, et al. 2023. Altitudinal migration behavior patterns of birds on the eastern slope of Mt. Gongga, China. Avian Research 14:100114

doi: 10.1016/j.avrs.2023.100114
[20]

Zhao L, Zhang F, Liu J, Liang W. 2026. Vocal complexity constrains the dear enemy effect: a comparative study of coal tits and green-backed tits. Ecology and Evolution 16:e72918

doi: 10.1002/ece3.72918
[21]

Mennill DJ, Doucet SM, Newman AEM, Williams H, Moran IG, et al. 2018. Wild birds learn songs from experimental vocal tutors. Current Biology 28(20):3273−3278.e4

doi: 10.1016/j.cub.2018.08.011
[22]

Gwee CY, Eaton JA, Ng EYX, Rheindt FE. 2019. Species delimitation within the Glaucidium brodiei owlet complex using bioacoustic tools. Avian Research 10(1):36

doi: 10.1186/s40657-019-0175-4
[23]

Kroodsma DE, Byers BE, Goodale E, Johnson S, Liu WC. 2001. Pseudoreplication in playback experiments, revisited a decade later. Animal Behaviour 61(5):1029−1033

doi: 10.1006/anbe.2000.1676
[24]

Wang Y, Song Y, Zhong Y, Chen C, Zhao Y, et al. 2021. A dataset on the life-history and ecological traits of Chinese birds. Biodiversity Science 29(9):1149−1153

doi: 10.17520/biods.2021201
[25]

Sheard C, Neate-Clegg MHC, Alioravainen N, Jones SEI, Vincent C, et al. 2020. Ecological drivers of global gradients in avian dispersal inferred from wing morphology. Nature Communications 11(1):2463

doi: 10.1038/s41467-020-16313-6
[26]

Tobias JA, Sheard C, Pigot AL, Devenish AJM, Yang J, et al. 2022. AVONET: morphological, ecological and geographical data for all birds. Ecology Letters 25(3):581−597

doi: 10.1111/ele.13898
[27]

Wilman H, Belmaker J, Simpson J, de la Rosa C, Rivadeneira MM, et al. 2014. EltonTraits 1.0: species-level foraging attributes of the world's birds and mammals. Ecology 95(7):2027

doi: 10.1890/13-1917.1
[28]

Zheng GM. 2023. A Checklist on the Classification and Distribution of the Birds of China (4th Edition). Beijing: Science Press. www.hceis.com/home/book_view.aspx?id=10805

[29]

da Cunha FCR, Fontenelle JCR, Griesser M. 2017. Predation risk drives the expression of mobbing across bird species. Behavioral Ecology 28(6):1517−1523

doi: 10.1093/beheco/arx111
[30]

Jetz W, Thomas GH, Joy JB, Hartmann K, Mooers AO. 2012. The global diversity of birds in space and time. Nature 491(7424):444−448

doi: 10.1038/nature11631
[31]

Jetz W, Thomas GH, Joy JB, Redding DW, Hartmann K, et al. 2014. Global distribution and conservation of evolutionary distinctness in birds. Current Biology 24(9):919−930

doi: 10.1016/j.cub.2014.03.011
[32]

He X, DuBay S, Zhang S, Cheng Y, Liu Z, et al. 2022. Seasonal elevational patterns and the underlying mechanisms of avian diversity and community structure on the eastern slope of Mt. Gongga. Diversity and Distributions 28(12):2459−2474

doi: 10.1111/ddi.13475
[33]

Blomberg SP, Garland T Jr, Ives AR. 2003. Testing for phylogenetic signal in comparative data: behavioral traits are more labile. Evolution; International Journal of Organic Evolution 57(4):717−745

doi: 10.1111/j.0014-3820.2003.tb00285.x
[34]

Kembel SW, Cowan PD, Helmus MR, Cornwell WK, Morlon H, et al. 2010. Picante: R tools for integrating phylogenies and ecology. Bioinformatics 26(11):1463−1464

doi: 10.1093/bioinformatics/btq166
[35]

R Core Team. 2024. R: A language and environment for statistical computing. R foundation for statistical computing. Scientific Research Publishing, USA. www.scirp.org/reference/referencespapers?referenceid=3887298

[36]

Liu Y. 2021. The CNG Field Guide to the Birds of China. Changsha: Hunan Science and Technology Press. www.nhbs.com/the-cng-field-guide-to-the-birds-of-china-chinese-book

[37]

Sagar HSSC, Anand A, Persche ME, Pidgeon AM, Zuckerberg B, et al. 2024. Global analysis of acoustic frequency characteristics in birds. Proceedings of the Royal Society B: Biological Sciences 291(2034):20241908

doi: 10.1098/rspb.2024.1908
[38]

Billings AC. 2018. The low-frequency acoustic structure of mobbing calls differs across habitat types in three passerine families. Animal Behaviour 138:39−49

doi: 10.1016/j.anbehav.2018.02.001
[39]

Lima SL. 1998. Nonlethal effects in the ecology of predator-prey interactions: what are the ecological effects of anti-predator decision-making? BioScience 48(1):25−34

doi: 10.2307/1313225
[40]

Cheng Y, Wen Z, He X, Dong Z, Zhang S, et al. 2022. Ecological traits affect the seasonal migration patterns of breeding birds along a subtropical altitudinal gradient. Avian Research 13:100066

doi: 10.1016/j.avrs.2022.100066
[41]

Jarčuška B. 2023. Large-scale spatial pattern of bird responses to a potential predator suggests that predator-specific mobbing is a plastic trait. Journal of Ethology 41(2):153−162

doi: 10.1007/s10164-023-00781-6
[42]

Morand-Ferron J, Quinn JL. 2011. Larger groups of passerines are more efficient problem solvers in the wild. Proceedings of the National Academy of Sciences of the United States of America 108(38):15898−15903

doi: 10.1073/pnas.1111560108
[43]

Dutour M. 2022. Season does not influence the response of great tits (Parus major) to allopatric mobbing calls. Journal of Ethology 40(3):233−236

doi: 10.1007/s10164-022-00752-3
[44]

Kalb N, Anger F, Randler C. 2019. Subtle variations in mobbing calls are predator-specific in great tits (Parus major). Scientific Reports 9(1):6572

doi: 10.1038/s41598-019-43087-9
[45]

Kalb N, Randler C. 2019. Behavioral responses to conspecific mobbing calls are predator‐specific in great tits (Parus major). Ecology and Evolution 9(16):9207−9213

doi: 10.1002/ece3.5467
[46]

Liao CC, Chen CC, Magrath RD. 2024. Asymmetric information in mixed-species mobbing flocks: why are leader species special? Animal Behaviour 210:383−393

doi: 10.1016/j.anbehav.2024.01.014
[47]

Zhou L, Peabotuwage I, Luo K, Quan RC, Goodale E. 2021. Using playback to test leadership in mixed-species flocks and compare flocking with mobbing. Animal Behaviour 180:151−166

doi: 10.1016/j.anbehav.2021.08.012
[48]

Templeton CN, Greene E, Davis K. 2005. Allometry of alarm calls: black-capped chickadees encode information about predator size. Science 308(5730):1934−1937

doi: 10.1126/science.1108841
[49]

Pawlak P, Kwieciński Z, Hušek J. 2019. Mobbing of the top predator: a correlation between avian community richness and the number of mobbing species. Journal of Ornithology 160(3):665−672

doi: 10.1007/s10336-019-01662-x
[50]

Coomes CM, Danner RM, Derryberry EP. 2019. Elevated temperatures reduce discrimination between conspecific and heterospecific sexual signals. Animal Behaviour 147:9−15

doi: 10.1016/j.anbehav.2018.10.024
[51]

Coomes JR, McIvor GE, Thornton A. 2019. Evidence for individual discrimination and numerical assessment in collective antipredator behaviour in wild jackdaws (Corvus monedula). Biology Letters 15(10):20190380

doi: 10.1098/rsbl.2019.0380
[52]

du Plessis KL, Martin RO, Hockey PAR, Cunningham SJ, Ridley AR. 2012. The costs of keeping cool in a warming world: implications of high temperatures for foraging, thermoregulation and body condition of an arid-zone bird. Global Change Biology 18(10):3063−3070

doi: 10.1111/j.1365-2486.2012.02778.x
[53]

Grubb TC. 1987. Changes in the flocking behaviour of wintering English titmice with time, weather and supplementary food. Animal Behaviour 35(3):794−806

doi: 10.1016/S0003-3472(87)80116-1
[54]

Mangini GG, Areta JI. 2018. Bird mixed-species flock formation is driven by low temperatures between and within seasons in a Subtropical Andean-foothill forest. Biotropica 50(5):816−825

doi: 10.1111/btp.12551