Необъятный мир: Как животные ощущают скрытую от нас реальность
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Gentle, M. J., and Breward, J. (1986) The bill tip organ of the chicken (Gallus gallus var. domesticus), Journal of Anatomy, 145, 79–85.
Ghose, K., Moss, C. F., and Horiuchi, T. K. (2007) Flying big brown bats emit a beam with two lobes in the vertical plane, Journal of the Acoustical Society of America, 122(6), 3717–3724.
Gil, D., et al. (2015) Birds living near airports advance their dawn chorus and reduce overlap with aircraft noise, Behavioral Ecology, 26(2), 435–443.
Gill, A. B., et al. (2014) Marine renewable energy, electromagnetic (EM) fields and EM-sensitive animals, in Shields, M. A., and Payne, A. I. L. (eds), Marine renewable energy technology and environmental interactions, 61–79. Dordrecht: Springer.
Glaser, N., and Kroger, R. H. H. (2017) Variation in rhinarium temperature indicates sensory specializations in placental mammals, Journal of Thermal Biology, 67, 30–34.
Godfrey-Smith, P. (2016) Other minds: The octopus, the sea, and the deep origins of consciousness. New York: Farrar, Straus and Giroux.
Goerlitz, H. R., et al. (2010) An aerial-hawking bat uses stealth echolocation to counter moth hearing, Current Biology, 20(17), 1568–1572.
Goldberg, Y. P., et al. (2012) Human Mendelian pain disorders: A key to discovery and validation of novel analgesics, Clinical Genetics, 82(4), 367–373.
Goldbogen, J. A., et al. (2019) Extreme bradycardia and tachycardia in the world's largest animal, Proceedings of the National Academy of Sciences, 116(50), 25329–25332.
Gol'din, P. (2014) "Antlers inside": Are the skull structures of beaked whales (Cetacea: Ziphiidae) used for echoic imaging and visual display? Biological Journal of the Linnean Society, 113(2), 510–515.
Goldsmith, T. H. (1980) Hummingbirds see near ultraviolet light, Science, 207(4432), 786–788.
Gonzalez-Bellido, P. T., Wardill, T. J., and Juusola, M. (2011) Compound eyes and retinal information processing in miniature dipteran species match their specific ecological demands, Proceedings of the National Academy of Sciences, 108(10), 4224–4229.
Gopfert, M. C., and Hennig, R. M. (2016) Hearing in insects, Annual Review of Entomology, 61, 257–276.
Gopfert, M. C., Surlykke, A., and Wasserthal, L. T. (2002) Tympanal and atympanal "mouth-ears" in hawkmoths (Sphingidae), Proceedings of the Royal Academy B: Biological Sciences, 269(1486), 89–95.
Gordon, T. A. C., et al. (2018) Habitat degradation negatively affects auditory settlement behavior of coral reef fishes, Proceedings of the National Academy of Sciences, 115(20), 5193–5198.
Gordon, T. A. C., et al. (2019) Acoustic enrichment can enhance fish community development on degraded coral reef habitat, Nature Communications, 10(1), 5414.
Gorham, P. W. (2013) Ballooning spiders: The case for electrostatic flight, arXiv:1309.4731.
Goris, R. C. (2011) Infrared organs of snakes: An integral part of vision, Journal of Herpetology, 45(1), 2–14.
Gote, J. T., et al. (2019) Growing tiny eyes: How juvenile jumping spiders retain high visual performance in the face of size limitations and developmental constraints, Vision Research, 160, 24–36.
Gould, E. (1965) Evidence for echolocation in the Tenrecidae of Madagascar, Proceedings of the American Philosophical Society, 109(6), 352–360.
Goutte, S., et al. (2017) Evidence of auditory insensitivity to vocalization frequencies in two frogs, Scientific Reports, 7(1), 12121.
Gracheva, E. O., et al. (2010) Molecular basis of infrared detection by snakes, Nature, 464(7291), 1006–1011.
Gracheva, E. O., et al. (2011) Ganglion-specific splicing of TRPV1 underlies infrared sensation in vampire bats, Nature, 476(7358), 88–91.
Gracheva, E. O., and Bagriantsev, S. N. (2015) Evolutionary adaptation to thermosensation, Current Opinion in Neurobiology, 34, 67–73.
Granger, J., et al. (2020) Gray whales strand more often on days with increased levels of atmospheric radio-frequency noise, Current Biology, 30(4), R155–R156.
Grant, R. A., Breakell, V., and Prescott, T. J. (2018) Whisker touch sensing guides locomotion in small, quadrupedal mammals, Proceedings of the Royal Society B: Biological Sciences, 285(1880), 20180592.
Grant, R. A., Sperber, A. L., and Prescott, T. J. (2012) The role of orienting in vibrissal touch sensing, Frontiers in Behavioral Neuroscience, 6, 39.
Grasso, F. W. (2014) The octopus with two brains: How are distributed and central representations integrated in the octopus central nervous system? in Darmaillacq, A.-S., Dickel, L., and Mather, J. (eds), Cephalopod cognition, 94–122. Cambridge: Cambridge University Press.
Graziadei, P. P., and Gagne, H. T. (1976) Sensory innervation in the rim of the octopus sucker, Journal of Morphology, 150(3), 639–679.
Greenwood, V. (2012) The humans with super human vision, Discover Magazine. Available at: www.discovermagazine.com/mind/the-humans-with-super-human-vision.
Gregory, J. E., et al. (1989) Responses of electroreceptors in the snout of the echidna, Journal of Physiology, 414, 521–538.
Greif, S., et al. (2017) Acoustic mirrors as sensory traps for bats, Science, 357(6355), 1045–1047.
Griffin, D. R. (1944a) Echolocation by blind men, bats and radar, Science, 100(2609), 589–590.
Griffin, D. R. (1944b) The sensory basis of bird navigation, The Quarterly Review of Biology, 19(1), 15–31.
Griffin, D. R. (1953) Bat sounds under natural conditions, with evidence for echolocation of insect prey, Journal of Experimental Zoology, 123(3), 435–465.
Griffin, D. R. (1974) Listening in the dark: The acoustic orientation of bats and men. New York: Dover Publications.
Griffin, D. R. (2001) Return to the magic well: Echolocation behavior of bats and responses of insect prey, BioScience, 51(7), 555–556.