Contributions of electric fish to the understanding sensory processing by reafferent systems
暂无分享,去创建一个
[1] J. Pettigrew,et al. A tactile fovea in the Scolopacidae? , 1985, Brain, behavior and evolution.
[2] R. H. Hamstra,et al. Coding properties of two classes of afferent nerve fibers: high-frequency electroreceptors in the electric fish, Eigenmannia. , 1973, Journal of neurophysiology.
[3] H. W. Lissmann,et al. Continuous Electrical Signals from the Tail of a Fish, Gymnarchus niloticus Cuv. , 1951, Nature.
[4] T. Szabo,et al. Convergence of common and specific sensory afferents to the cerebellar auricle(auricula cerebelli) in the teleost fish Gnathonemus demonstrated by HRP method , 1979, Brain Research.
[5] Robert J Dooling,et al. Perceptual organization of acoustic stimuli by budgerigars (Melopsittacus undulatus): III. Contact calls. , 1988, Journal of comparative psychology.
[6] Angel A Caputi,et al. Electrolocation and electrocommunication in pulse gymnotids: signal carriers, pre-receptor mechanisms and the electrosensory mosaic , 2002, Journal of Physiology-Paris.
[7] S. Soli,et al. Perceptual organization of acoustic stimuli by budgerigars (Melopsittacus undulatus): II. Vocal signals. , 1987, Journal of comparative psychology.
[8] A. Caputi,et al. Electroreception in Gymnotus carapo: pre-receptor processing and the distribution of electroreceptor types. , 2000, The Journal of experimental biology.
[9] K. Grant,et al. Storage of a sensory pattern by anti-Hebbian synaptic plasticity in an electric fish. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[10] K. Grant,et al. The electric image in Gnathonemus petersii , 2002, Journal of Physiology-Paris.
[11] B. Rasnow,et al. Electric organ discharges of the gymnotiform fishes: III. Brachyhypopomus , 1999, Journal of Comparative Physiology A.
[12] V. Bruns,et al. Cochlear innervation in the greater horseshoe bat: demonstration of an acoustic fovea , 1980, Hearing Research.
[13] J Bastian,et al. Plasticity in an electrosensory system. I. General features of a dynamic sensory filter. , 1996, Journal of neurophysiology.
[14] V. Han,et al. Synaptic plasticity in a cerebellum-like structure depends on temporal order , 1997, Nature.
[15] Carl D. Hopkins,et al. Stimulus filtering and electroreception: Tuberous electroreceptors in three species of Gymnotoid fish , 2004, Journal of comparative physiology.
[16] B Rasnow,et al. Electric organ discharges and electric images during electrolocation. , 1999, The Journal of experimental biology.
[17] R. Lindsay,et al. Listening in the Dark , 1958 .
[18] Caputi. The electric organ discharge of pulse gymnotiforms: the transformation of a simple impulse into a complex spatio-temporal electromotor pattern , 1999, The Journal of experimental biology.
[19] K. Grant,et al. Sensory processing and corollary discharge effects in the mormyromast regions of the mormyrid electrosensory lobe. I. Field potentials, cellular activity in associated structures. , 1992, Journal of neurophysiology.
[20] C. Bell,et al. The electric image in weakly electric fish: physical images of resistive objects in Gnathonemus petersii. , 1998, The Journal of experimental biology.
[21] Gerhard von der Emde,et al. Discrimination of objects through electrolocation in the weakly electric fish, Gnathonemus petersii , 1990, Journal of Comparative Physiology A.
[22] A. Caputi,et al. The electric image in weakly electric fish: perception of objects of complex impedance. , 2000, The Journal of experimental biology.
[23] Joseph Bastian,et al. Frequency response characteristics of electroreceptors in the weakly electric fish,Gymnotus carapo , 1979, Journal of comparative physiology.
[24] M Kössl,et al. Basilar membrane resonance in the cochlea of the mustached bat. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[25] C. Bell,et al. Mormyromast electroreceptor organs and their afferent fibers in mormyrid fish. III. Physiological differences between two morphological types of fibers. , 1990, Journal of neurophysiology.
[26] Angel A. Caputi,et al. Physical basis of distance discrimination in weakly electric fish , 2000 .
[27] H. Poincaré. La valeur de la science , 1905 .
[28] William Rowan,et al. The Study of Instinct , 1953 .
[29] C. C. Bell,et al. The electric organ of a mormyrid as a current and voltage source , 1976, Journal of comparative physiology.
[30] W. Harder,et al. Zur Funktion des elektrischen Organs von Gnathonemus petersii (Gthr. 1862) (Mormyriformes, Teleostei) , 1964, Zeitschrift für vergleichende Physiologie.
[31] Charles F. Hockett,et al. A mathematical theory of communication , 1948, MOCO.
[32] H. W. Lissmann. On the Function and Evolution of Electric Organs in Fish , 1958 .
[33] K. E. Machin,et al. The Mechanism of Object Location in Gymnarchus Niloticus and Similar Fish , 1958 .
[34] C. Bell,et al. The generation and subtraction of sensory expectations within cerebellum-like structures. , 1997, Brain, behavior and evolution.
[35] N. Hoshimiya,et al. TheApteronotus EOD field: Waveform and EOD field simulation , 1980, Journal of comparative physiology.
[36] M. A. MacIver,et al. Prey capture in the weakly electric fish Apteronotus albifrons: sensory acquisition strategies and electrosensory consequences. , 1999, The Journal of experimental biology.
[37] C. Bell,et al. Properties of a modifiable efference copy in an electric fish. , 1982, Journal of neurophysiology.
[38] A. Caputi,et al. Electroreception in Gymnotus carapo: differences between self-generated and conspecific-generated signal carriers. , 2001, The Journal of experimental biology.
[39] Theodore H. Bullock,et al. Species Differences in Effect of Electroreceptor Input on Electric Organ Pacemakers and Other Aspects of Behavior in Electric Fish; pp. 102–118 , 1969 .
[40] C. Hopkins,et al. Short-range orientation in electric fish: an experimental study of passive electrolocation. , 1996, The Journal of experimental biology.
[41] J. Kaas,et al. Organization of the somatosensory cortex of the star‐nosed mole , 1995, The Journal of comparative neurology.
[42] Walter Heiligenberg,et al. Neural Nets in Electric Fish , 1991 .
[43] Ruben Budelli,et al. Electric fish measure distance in the dark , 1998, Nature.
[44] D. M. Green,et al. Signal detection theory and psychophysics , 1966 .
[45] Jeffrey M. Camhi,et al. Neuroethology: Nerve Cells and the Natural Behavior of Animals , 1984 .
[46] G. Manley,et al. The basilar papilla of the barn owl Tyto alba: A quantitative morphological SEM analysis , 1988, Hearing Research.
[47] A. L. I︠A︡rbus. Eye Movements and Vision , 1967 .
[48] G. Manley,et al. Spontaneous otoacoustic emissions in the barn owl , 1997, Hearing Research.
[49] G. Manley,et al. Auditory processing in birds , 2000, Current Opinion in Neurobiology.
[50] J. Bastian,et al. Plasticity in an electrosensory system. III. Contrasting properties of spatially segregated dendritic inputs. , 1998, Journal of neurophysiology.
[51] A. Caputi,et al. Probability and amplitude of novelty responses as a function of the change in contrast of the reafferent image in G. carapo , 2003, Journal of Experimental Biology.
[52] J. Bastian,et al. Pyramidal-cell plasticity in weakly electric fish: a mechanism for attenuating responses to reafferent electrosensory inputs , 2004, Journal of Comparative Physiology A.
[53] K. Grant,et al. Physiology and Plasticity of Morphologically Identified Cells in the Mormyrid Electrosensory Lobe , 1997, The Journal of Neuroscience.
[54] J. Freyd. The Facts of Perception. , 1991 .
[55] Claude E. Shannon,et al. A mathematical theory of communication , 1948, MOCO.
[56] O. Trujillo-Cenóz,et al. Some aspects of the structural organization of the spinal cord of Gymnotus carapo (Teleostei, Gymnotiformes). I. The electromotor neurons. , 1986, Journal of ultrastructure and molecular structure research.
[57] S. Palmer. Vision Science : Photons to Phenomenology , 1999 .
[58] J. Kaas,et al. Somatosensory fovea in the star‐nosed mole: Behavioral use of the star in relation to innervation patterns and cortical representation , 1997, The Journal of comparative neurology.
[59] Michael A. Arbib,et al. The metaphorical brain 2 - neural networks and beyond (2. ed.) , 1972 .
[60] M. Nelson,et al. Logarithmic time course of sensory adaptation in electrosensory afferent nerve fibers in a weakly electric fish. , 1996, Journal of neurophysiology.
[61] P. Moller. Electric fishes , 1995 .
[62] F. Fischer. Quantitative TEM analysis of the barn owl basilar papilla , 1994, Hearing Research.
[63] Claude E. Shannon,et al. The Mathematical Theory of Communication , 1950 .
[64] J. Kaas,et al. The mole nose instructs the brain. , 1997, Somatosensory & motor research.
[65] David Bodznick,et al. SUPPRESSION OF COMMON MODE SIGNALS WITHIN THE ELECTROSENSORY SYSTEM OF THE LITTLE SKATE , 1992 .
[66] Theodore H. Bullock,et al. Significance of Findings on Electroreception for General Neurobiology , 1993 .
[67] J Bastian. Plasticity in an electrosensory system. II. Postsynaptic events associated with a dynamic sensory filter. , 1996, Journal of neurophysiology.
[68] J. Bastian,et al. Plasticity of feedback inputs in the apteronotid electrosensory system. , 1999, The Journal of experimental biology.
[69] D. Bodznick,et al. Adaptive mechanisms in the elasmobranch hindbrain , 1999, The Journal of experimental biology.
[70] Pedro A Aguilera,et al. Electroreception in G. carapo: detection of changes in waveform of the electrosensory signals , 2003, Journal of Experimental Biology.
[71] C. Bell. An efference copy which is modified by reafferent input. , 1981, Science.
[72] Marcus Müller,et al. Structure and function of the cochlea in the African mole rat (Cryptomys hottentotus): evidence for a low frequency acoustic fovea , 1992, Journal of Comparative Physiology A.
[73] Ramón y Cajal,et al. Histologie du système nerveux de l'homme & des vertébrés , 1909 .
[74] P. Moller. Electric fishes : history and behavior , 1995 .