330 lines
14 KiB
Plaintext
330 lines
14 KiB
Plaintext
\begin{thebibliography}{}
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\newblock The physics of electrosensory worlds.
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\newblock Differential production of chirping behavior evoked by electrical
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\newblock Statistics of the electrosensory input in the freely swimming weakly
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\newblock Synchronous spikes are necessary but not sufficient for a synchrony
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code in populations of spiking neurons.
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\newblock Limits of linear rate coding of dynamic stimuli by electroreceptor
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afferents.
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\newblock Statistics of natural communication signals observed in the wild
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identify important yet neglected stimulus regimes in weakly electric fish.
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\newblock Tracking activity patterns of a multispecies community of gymnotiform
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weakly electric fish in their neotropical habitat without tagging.
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\newblock {\em Journal of Experimental Biology}, 223:jeb206342.
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\newblock Receptive field sizes and neuronal encoding bandwidth are constrained
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by axonal conduction delays.
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\newblock {\em PLoS Computational Biology}, 8(19).
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\newblock Electrocommunication signals in free swimming brown ghost knifefish,
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\textit{Apteronotus leptorhynchus}.
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\newblock {\em Journal of Experimental Biology}, 211:1657--67.
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\newblock Neural processing of amplitude-modulated sounds.
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\newblock Spatial aspects of the electric fields generated by weakly electric
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fish.
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\bibitem[Maler, 2009]{Maler2009a}
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Maler, L. (2009).
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\newblock Receptive field organization across multiple electrosensory maps.
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{I}. columnar organization and estimation of receptive field size.
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Metzen, M.~G., Krahe, R., and Chacron, M.~J. (2016).
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\newblock Burst firing in the electrosensory system of gymnotiform weakly
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electric fish: mechanisms and functional roles.
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\newblock The cellular basis for parallel neural transmission of a
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high-frequency stimulus and its low-frequency envelope.
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\newblock Sensory coding in oscillatory electroreceptors of paddlefish.
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\newblock Prey capture in the weakly electric fish \textit{Apteronotus
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albifrons}: sensory acquisition strategies and electrosensory consequences.
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\newblock Characterization and modeling of {P-type} electrosensory afferent
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responses to amplitude modulations in a wave-type electric fish.
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\newblock Functionals and the random-force method in turbulence theory.
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\newblock Electrophysiological classes of cat primary visual cortical neurons
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in vivo as revealed by quantitative analyses.
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\newblock Parallel processing of sensory input by bursts and isolated spikes.
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\newblock Modeling the heterogeneity of electrosensory afferents in electric
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fish.
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\newblock {\em Unpublished master thesis}, Eberhard Karls Universit\"at
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T\"ubingen.
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of noise.
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Roeber, A. (1834).
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\newblock {Untersuchungen des {H}rn. Scheibler in Crefeld {\"u}ber die
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\newblock The energetics of electric organ discharge generation in gymnotiform
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weakly electric fish.
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\newblock Neural heterogeneities influence envelope and temporal coding at the
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\bibitem[Schlungbaum and Lindner, 2023]{Schlungbaum2023}
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\newblock Detecting a periodic signal by a population of spiking neurons in the
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weakly nonlinear response regime.
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\newblock In vivo conditions induce faithful encoding of stimuli by reducing
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nonlinear synchronization in vestibular sensory neurons.
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\newblock Beyond the {Jamming Avoidance Response}: weakly electric fish respond
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to the envelope of social electrosensory signals.
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Szabo, T. (1965).
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\newblock Sense organs of the lateral line system in some electric fish of the
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{Gymnotidae, Mormyridae and Gymnarchidae}.
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\newblock {\em Journal of Morphology}, 117(2):229--249.
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\newblock Electrosensory interference in naturally occurring aggregates of a
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species of weakly electric fish, \textit{Eigenmannia virescens}.
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\bibitem[Voronenko and Lindner, 2017]{Voronenko2017}
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\newblock Special cutaneous receptor organs of fish: the tuberous organs of
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\textit{Eigenmannia}.
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\newblock Static frequency tuning accounts for changes in neural synchrony
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evoked by transient communication signals.
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\newblock Dendritic control of spontaneous bursting in cerebellar {Purkinje}
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\bibitem[Xu et~al., 1996]{Xu1996}
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Xu, Z., Payne, J.~R., and Nelson, M.~E. (1996).
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\newblock Logarithmic time course of sensory adaptation in electrosensory
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afferent nerve fibers in a weakly electric fish.
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\newblock {\em Journal of Neurophysiology}, 76(3):2020--2032.
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\end{thebibliography}
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