Distance and shape: perception of the 3-dimensional world by weakly electric fish
Tài liệu tham khảo
Bastian, 1986, Electrolocation: behavior, anatomy, and physiology, 577
Bell, 1986, Electroreception in mormyrid fish. Central physiology, 423
Bell, 1997, Physiology and plasticity of morphologically identified cells in the mormyrid electrosensory lobe, J. Neurosci, 17, 6409, 10.1523/JNEUROSCI.17-16-06409.1997
Beusmans, 1998, Optic flow and the metric of the visual ground plane, Vision Res, 38, 1153, 10.1016/S0042-6989(97)00285-X
Biederman, 1991, Evidence for complete translational and reflectional invariance in visual object priming, Perception, 20, 585, 10.1068/p200585
Biederman, 1993, Recognizing depth-rotated objects: evidence and conditions for three-dimensional viewpoint invariance, J. Exp. Psychol.: Human Percept. Perform, 19, 1162, 10.1037/0096-1523.19.6.1162
Blauert, 1997
Brenner, 1999, Perceived distance, shape and size, Vision Res, 39, 975, 10.1016/S0042-6989(98)00162-X
Caputi, 1998, The electric image in weakly electric fish: physical images of resistive objects in Gnathonemus petersii, J. Exp. Biol, 201, 2115, 10.1242/jeb.201.14.2115
Cialo, 1997, Spectral sensitivity of the weakly discharging electric fish Gnathonemus petersii using its electric organ discharges as the response measure, J. Fish Biol, 50, 1074
Collett, 1977, Stereopsis in toads, Nature, 267, 349, 10.1038/267349a0
Collett, 1982, Depth vision in animals, 111
D. Davis, G. von der Emde, The weakly electric fish Gnathonemus petersii can recognize the shape of objects during active electrolocation, in: 39th Annual Meeting of the Animal Behavior Society, Indiana University, Bloomington, IN, 2002
Dawkins, 2000, Pattern recognition and active vision in chickens, Nature, 403, 652, 10.1038/35001064
DeAngelis, 1998, Cortical area MT and the perception of stereoscopic depth, Nature, 394, 677, 10.1038/29299
Fiser, 1995, Size invariance in visual object priming of gray-scale images, Perception, 24, 741, 10.1068/p240741
Gellermann, 1933, Chance orders of alternating stimuli in visual discrimination experiments, J. Genet. Psychol, 42, 206
Harkness, 1977, Chameleons use accommodation cues to judge distance, Nature, 267, 346, 10.1038/267346a0
Heiligenberg, 1973, Electrolocation of objects in the electric fish Eigenmannia (Rhamphichthyidae, Gymnotoidei), J. Comp. Physiol, 87, 137, 10.1007/BF01352158
Hopkins, 1981, Temporal coding of species recognition signals in an electric fish, Science, 212, 85, 10.1126/science.7209524
Howard, 1995
Kontsevich, 1998, Defaults in stereoscopic and kinetic depth perception, Proc. R. Soc. Lond. B, 265, 1615, 10.1098/rspb.1998.0479
Kral, 1997, Motion parallax as a source of distance information in locusts and mantids, J. Insect Behav, 10, 145, 10.1007/BF02765480
Lehrer, 1993, Object detection by honeybees: why do they land on edges?, J. Comp. Physiol, 10.1007/BF00209615
Lehrer, 1988, Motion cues provide the bees visual world with a third dimension, Nature, 332, 356, 10.1038/332356a0
Lewis, 2002, Blurring of the senses. Common cues for distance perception in diverse sensory systems, Neuroscience, 114, 19, 10.1016/S0306-4522(02)00220-8
Lissmann, 1958, The mechanism of object location in Gymnarchus niloticus and similar fish, J. Exp. Biol, 35, 451, 10.1242/jeb.35.2.451
Mather, 1997, The use of image blur as a depth cue, Perception, 26, 1147, 10.1068/p261147
Moller, 1995
Moller, 1979, Notes on the ethology and ecology of the Swashi river mormyrids (Lake Kainji, Nigeria), Behav. Ecol. Sociobiol, 4, 357, 10.1007/BF00303242
Moore, 1999, Auditory perception: the near and far sound localization, Curr. Biol, 9, R361, 10.1016/S0960-9822(99)80227-9
Nelson, 1999, Prey capture in the weakly electric fish Apteronotus albifrons: sensory acquisition strategies and electrosensory consequences, J. Exp. Biol, 202, 1195, 10.1242/jeb.202.10.1195
Ohzawa, 1997, The neural coding of stereoscopic depth, NeuroReport, 8
O'Shea, 1997, Blur and contrast as pictorial depth cues, Perception, 26, 599, 10.1068/p260599
Poteser, 1995, Visual distance discrimination between stationary targets in praying mantis: an index of the use of motion parallax, J. Exp. Biol, 198, 2127, 10.1242/jeb.198.10.2127
Rasnow, 1996, The effects of simple objects on the electric field of Apteronotus, J. Comp. Physiol. A, 178, 397, 10.1007/BF00193977
Regan, 1993, Depth from motion and motion-in-depth, vol. 4, 137
Riesenhuber, 2000, Models of object recognition, Nat. Neurosci, 3, 1199, 10.1038/81479
Rothblat, 1991, Object recognition memory in the rat: the role of the hippocampus, Behav. Brain Res, 42, 25, 10.1016/S0166-4328(05)80036-1
Schwan, 1963, Determination of biological impedances, vol. VI, 323
S. Schwarz, Gnathonemus petersii: Three-dimensional object shape detection and the geometry of the self-produced electric field, Ph.D. thesis, Zoological Institute, University of Bonn, Bonn, 2000
Schwarz, 2001, Distance discrimination during active electrolocation in the weakly electric fish Gnathonemus petersii, J. Comp. Physiol. A, 186, 1185, 10.1007/s003590000170
S. Schwarz, G. von der Emde, Object classification by the weakly electric fish, Gnathonemus petersii, in: N. Elsner, U. Eysel (Eds.), Göttingen Neurobiology Report 1999. 27th Göttingen Neurobiology Conference, Vol. II, Thieme, Stuttgart, 1999, pp. 332
Tanaka, 1993, Neuronal mechanisms of object recognition, Science, 262, 685, 10.1126/science.8235589
Timney, 1999, Local and global stereopsis in the horse, Vision Res, 39, 1861, 10.1016/S0042-6989(98)00276-4
Turnbull, 1995, Object recognition without knowledge of object orientation, Cortex, 31, 378, 10.1016/S0010-9452(13)80371-1
van der Willigen, 1998, Stereoscopic depth perception in the owl, NeuroReport, 9, 1233, 10.1097/00001756-199804200-00050
von der Emde, 1990, Discrimination of objects through electrolocation in the weakly electric fish, Gnathonemus petersii, J. Comp. Physiol. A, 167, 413, 10.1007/BF00192576
von der Emde, 2003, Active electrolocation and its neural processing in mormyrid electric fish, 92
von der Emde, 1992, Differential responses of two types of electroreceptive afferents to signal distortions may permit capacitance measurement in a weakly electric fish, Gnathonemus petersii, J. Comp. Physiol. A, 171, 683, 10.1007/BF00194116
von der Emde, 1994, Perception of electric properties of objects in electrolocating weakly electric fish: two-dimensional similarity scaling reveals a City-Block metric, J. Comp. Physiol. A, 175, 801, 10.1007/BF00191852
von der Emde, 2001, How the electric fish brain controls the production and analysis of electric signals during active electrolocation, Zoology, 103, 112
von der Emde, 1998, Electric fish measure distance in the dark, Nature, 395, 890, 10.1038/27655
Zakon, 1987, The electroreceptors: diversity in structure and function, 813
Ziegler, 1998, Large scale stereopsis and optic flow: depth enhanced by speed and opponent-motion, Vision Res, 38, 1199, 10.1016/S0042-6989(97)00281-2