journal article Aug 04, 2015

Vision in two cyprinid fish: implications for collective behavior

PeerJ Vol. 3 pp. e1113 · PeerJ
View at Publisher Save 10.7717/peerj.1113
Topics

No keywords indexed for this article. Browse by subject →

References
92
[1]
Aoki "An analysis of the schooling behavior of fish: internal organization and process" Bulletin of the Ocean Research Institute, University of Tokyo (1980)
[2]
Barbaro "Modelling and simulations of the migration of pelagic fish" ICES Journal of Marine Science (2009) 10.1093/icesjms/fsp067
[3]
Bianco "Prey capture behavior evoked by simple visual stimuli in larval zebrafish" Frontiers in Systems Neuroscience (2011) 10.3389/fnsys.2011.00101
[4]
Bone "Sensory systems, and communication" (2008) 10.1201/9781134186310-14
[5]
Brierley "Shapes of krill swarms and fish schools emerge as aggregation members avoid predators and access oxygen" Current Biology (2010) 10.1016/j.cub.2010.08.041
[6]
Burgess "Effects of acoustico-lateralis denervation in a facultative schooling fish: a nearest-neighbor matrix analysis" Behavioral and Neural Biology (1981) 10.1016/s0163-1047(81)91869-0
[7]
Butler "European starlings recognize the location of robotic conspecific attention" Biology Letters (2014) 10.1098/rsbl.2014.0665
[8]
Cameron "The optokinetic response as a quantitative measure of visual acuity in zebrafish" Journal of Visualized Experiments (2013)
[9]
Collin "Behavioural ecology and retinal cell topography" (1999) 10.1007/978-94-017-0619-3_17
[10]
Collin "The visual system of the Florida Garfish, Lepisosteus platyrhincus (Ginglymodi)" Brain, Behavior and Evolution (1995) 10.1159/000113384
[11]
Collin "Retinal ganglion cell topography in teleosts: a comparison between Nissl-stained material and retrograde labelling from the optic nerve" The Journal of Comparative Neurology (1988) 10.1002/cne.902760306
[12]
Collin "Quantitative comparison of the limits on visual spatial resolution set by the. ganglion cell layer in twelve species of reef teleosts" Brain, Behavior and Evolution (1989) 10.1159/000116504
[13]
Collin "Retinal sampling and the visual field in fishes" (2003) 10.1007/978-0-387-22628-6_8
[14]
Couzin "Self-organization and collective behavior in vertebrates" Advances in the Study of Behavior (2003) 10.1016/s0065-3454(03)01001-5
[15]
Collective Memory and Spatial Sorting in Animal Groups

IAIN D. COUZIN, JENS KRAUSE, Richard James et al.

Journal of Theoretical Biology 2002 10.1006/jtbi.2002.3065
[16]
Dall "Information and its use by animals in evolutionary ecology" Trends in Ecology & Evolution (2005) 10.1016/j.tree.2005.01.010
[17]
Easter "Horizontal compensatory eye movements in goldfish (Carassius auratus)" Journal of Comparative Physiology (1974) 10.1007/bf00696525
[18]
Ehrlich "Regional specialization of the chick retina as revealed by the size and density of neurons in the ganglion cell layer" The Journal of Comparative Neurology (1981) 10.1002/cne.901950408
[19]
Fernández-Juricic "The visual fields of two ground-foraging birds, House Finches and House Sparrows, allow for simultaneous foraging and anti-predator vigilance" Ibis (2008) 10.1111/j.1474-919x.2008.00860.x
[20]
Fernández-Juricic "Where does a flock end from an information perspective? A comparative experiment with live and robotic birds" Behavioral Ecology (2011) 10.1093/beheco/arr132
[21]
Garza-Gisholt "A comparison of spatial analysis methods for the construction of topographic maps of retinal cell density" PLoS ONE (2014) 10.1371/journal.pone.0093485
[22]
Glaser "The coefficient of error of optical fractionator population size estimates: a computer simulation comparing three estimators" Journal of Microscopy (1998) 10.1046/j.1365-2818.1998.00417.x
[23]
Guillemain "Feeding methods, visual fields and vigilance in dabbling ducks (Anatidae)" Functional Ecology (2002) 10.1046/j.1365-2435.2002.00652.x
[24]
Guthrie "Role of vision in fish behaviour" (1993) 10.1007/978-94-011-1578-0_4
[25]
Hall "Predator evasion in a fish school: test of a model for the fountain effect" Marine Biology (1986) 10.1007/bf00397579
[26]
Harpaz "Receptive-field like models accurately predict individual zebrafish behavior in a group" Journal of Molecular Neuroscience (2014)
[27]
Hemelrijk "Schools of fish and flocks of birds: their shape and internal structure by self-organization" Interface Focus (2012) 10.1098/rsfs.2012.0025
[28]
Herbert-Read "Inferring the rules of interaction of shoaling fish" Proceedings of the National Academy of Sciences of the United States of America (2011) 10.1073/pnas.1109355108
[29]
Heuschele "Environment-dependent use of mate choice cues in sticklebacks" Behavioral Ecology (2009) 10.1093/beheco/arp123
[30]
Hobson "Interactions between piscivorous fishes and their prey" (1979)
[31]
Hogan "Indirect information transfer: three-spined sticklebacks use visual alarm cues from frightened conspecifics about an unseen predator" Ethology (2013) 10.1111/eth.12143
[32]
Hossain "Life-history traits of the freshwater garfish Xenentodon cancila (Hamilton 1822) (Belonidae) in the Ganges river, Northwestern Bangladesh" Sains Malaysiana (2013)
[33]
Hughes "A quantitative analysis of the cat retinal ganglion cell topography" The Journal of Comparative Neurology (1975) 10.1002/cne.901630107
[34]
Hughes "The topography of vision in mammals of contrasting life style: comparative optics and retinal organization" (1977) 10.1007/978-3-642-66468-7_11
[35]
Kajiura "Pupil dilation and visual field in the piked dogfish, Squalus acanthias" Environmental Biology of Fishes (2010) 10.1007/s10641-010-9623-z
[36]
Katz "Inferring the structure and dynamics of interactions in schooling fish" Proceedings of the National Academy of Sciences of the United States of America (2011) 10.1073/pnas.1107583108
[37]
Keast "Space use and feeding patterns of an offshore fish assemblage in a shallow mesotrophic lake" Environmental Biology of Fishes (1992) 10.1007/bf00002391
[38]
Krause "Phenotypic variability within and between fish shoals" Ecology (1996) 10.2307/2265553
[41]
Lemasson "Collective motion in animal groups from a neurobiological perspective: the adaptive benefits of dynamic sensory loads and selective attention" Journal of Theoretical Biology (2009) 10.1016/j.jtbi.2009.08.013
[42]
From behavioural analyses to models of collective motion in fish schools

Ugo Lopez, Jacques Gautrais, IAIN D. COUZIN et al.

Interface Focus 2012 10.1098/rsfs.2012.0033
[43]
Luca "In search of optimal fear inducing stimuli: differential behavioral responses to computer animated images in zebrafish" Behavioural Brain Research (2012) 10.1016/j.bbr.2011.09.001
[44]
Lythgoe "Visual pigments and the acquisition of visual information" The Journal of Experimental Biology (1989) 10.1242/jeb.146.1.1
[45]
Mangrum "A morphological classification of ganglion cells in the zebrafish retina" Visual Neuroscience (2002) 10.1017/s0952523802196076
[46]
Martin "The visual fields of the tawny owl, Strix aluco L" Vision Research (1984) 10.1016/0042-6989(84)90005-1
[47]
Martin "The eye of a passeriform bird, the European starling (Sturnus vulgaris): eye movement amplitude, visual fields and schematic optics" Journal of Comparative Physiology A (1986) 10.1007/bf00604174
[48]
Martin "Visual fields and their functions in birds" Journal of Ornithology (2007) 10.1007/s10336-007-0213-6
[49]
Martin "The subtlety of simple eyes: the tuning of visual fields to perceptual challenges in birds" Philosophical Transactions of the Royal Society of London. Series B, Biological sciences (2014) 10.1098/rstb.2013.0040
[50]
Martin "Visual fields in short-toed Eagles, Circaetus gallicus (Accipitridae), and the function of binocularity in birds" Brain, Behavior and Evolution (1999) 10.1159/000006582

Showing 50 of 92 references

Metrics
64
Citations
92
References
Details
Published
Aug 04, 2015
Vol/Issue
3
Pages
e1113
Cite This Article
Diana Pita, Bret A. Moore, Luke P. Tyrrell, et al. (2015). Vision in two cyprinid fish: implications for collective behavior. PeerJ, 3, e1113. https://doi.org/10.7717/peerj.1113
Related

You May Also Like