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Crayfish Recognize the Faces of Fight Opponents

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Journal PLoS One
Date 2008 Feb 29
PMID 18305823
Citations 15
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Abstract

The capacity to associate stimuli underlies many cognitive abilities, including recognition, in humans and other animals. Vertebrates process different categories of information separately and then reassemble the distilled information for unique identification, storage and recall. Invertebrates have fewer neural networks and fewer neural processing options so study of their behavior may reveal underlying mechanisms still not fully understood for any animal. Some invertebrates form complex social colonies and are capable of visual memory-bees and wasps, for example. This ability would not be predicted in species that interact in random pairs without strong social cohesion; for example, crayfish. They have chemical memory but the extent to which they remember visual features is unknown. Here we demonstrate that the crayfish Cherax destructor is capable of visual recognition of individuals. The simplicity of their interactions allowed us to examine the behavior and some characteristics of the visual features involved. We showed that facial features are learned during face-to-face fights, that highly variable cues are used, that the type of variability is important, and that the learning is context-dependent. We also tested whether it is possible to engineer false identifications and for animals to distinguish between twin opponents.

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References
1.
Griffiths S, Brockmark S, Hojesjo J, Johnsson J . Coping with divided attention: the advantage of familiarity. Proc Biol Sci. 2004; 271(1540):695-9. PMC: 1691656. DOI: 10.1098/rspb.2003.2648. View

2.
Dyer A, Neumeyer C, Chittka L . Honeybee (Apis mellifera) vision can discriminate between and recognise images of human faces. J Exp Biol. 2005; 208(Pt 24):4709-14. DOI: 10.1242/jeb.01929. View

3.
Hazlett B . "Individual" recognition and agonistic behaviour in Pagurus bernhardus. Nature. 1969; 222(5190):268-9. DOI: 10.1038/222268a0. View

4.
Herath P, Kinomura S, Roland P . Visual recognition: evidence for two distinctive mechanisms from a PET study. Hum Brain Mapp. 2001; 12(2):110-9. PMC: 6871813. DOI: 10.1002/1097-0193(200102)12:2<110::aid-hbm1008>3.0.co;2-0. View

5.
Tibbetts E, Dale J . A socially enforced signal of quality in a paper wasp. Nature. 2004; 432(7014):218-22. DOI: 10.1038/nature02949. View