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Sort order. Jul 06, Reenie rated it liked it Shelves: non-fiction , science. This didn't impress me as much as the last one that I read from this series Animal Communication , but that can probably be put down to it being much more of a collection of the nitty gritty details of what you might expect from the name, and much less of a collection of different perspectives and ways of approaching a broad theme. Still, if I sit back and let it all percolate through into my brain, I'm sure there'll be a large number of things I've learned from the chapters in here about how fr This didn't impress me as much as the last one that I read from this series Animal Communication , but that can probably be put down to it being much more of a collection of the nitty gritty details of what you might expect from the name, and much less of a collection of different perspectives and ways of approaching a broad theme.

Still, if I sit back and let it all percolate through into my brain, I'm sure there'll be a large number of things I've learned from the chapters in here about how frogs hear things. Which is definitely handy, given that it's kind of important for what I do every day. My life reeks of purpose, I know.. If frog communication is not what you do every day, then there's very little point in reading this book although parts of it might help if you study other animals' communication. But then, if frog communication is not, in fact, what you do with your life, then you won't even be looking at this title, most likely, so whatever.

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Finrod rated it really liked it Sep 13, Pubmed Abstract Pubmed Full Text. Buonomano, D. Decoding temporal information: a model based on short-term synaptic plasticity. Casseday, J. Neural tuning for sound duration: role of inhibitory mechanisms in the inferior colliculus. Science , — Oertel, R. Fay, and A. Condon, C.

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Processing of behaviorally relevant temporal parameters of acoustic stimuli by single neurons in the superior olivary nucleus of the leopard frog. Diekamp, B. Selective phonotaxis to advertisement calls in the grey treefrog Hyla versicolor : behavioral experiments and neurophysiological correlates. Edwards, C. Auditory midbrain neurons that count. Counting on inhibition and rate-dependent excitation in the auditory system. Mechanisms of long-interval selectivity in midbrain auditory neurons: roles of excitation, inhibition, and plasticity.

Interval-integration underlies amplitude modulation band-suppression selectivity in the anuran midbrain.

Behavioral and neural auditory thresholds in a frog | Current Zoology | Oxford Academic

Elliott, T. Temporally selective processing of communication signals by auditory midbrain neurons. Ferster, D. Faure, P. Temporal masking reveals properties of sound-evoked inhibition in duration-tuned neurons of the inferior colliculus. Fuzessery, Z. Sound duration selectivity in the pallid bat inferior colliculus. Geis, H. Intracellular responses to frequency modulated tones in the dorsal cortex of the mouse inferior colliculus.

Neural Circuits Intracellular responses of neurons in the mouse inferior colliculus to sinusoidal amplitude-modulated tones.

Gerhardt, H. Acoustic communication in two groups of closely related treefrogs.


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Study Behav. CrossRef Full Text. Gittelman, J. Mechanisms underlying directional selectivity for frequency-modulated sweeps in the inferior colliculus revealed by in vivo whole-cell recordings. Gooler, D.

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Temporal coding in the frog midbrain: the influence of duration and rise-fall time on the processing of complex amplitude-modulated stimuli. Grothe, B. Interaction of excitation and inhibition in processing of pure tone and amplitude-modulated stimuli in the medial superior olive of the mustached bat. Klump, G. Use of non-arbitrary acoustic criteria in mate choice by female gray tree frogs. Nature , — Leary, C. Midbrain auditory neurons integrate excitation and inhibition to generate duration selectivity: an in-vivo whole-cell patch study in anurans. Macias, S. Duration tuning in the inferior colliculus of the mustached bat.

Megela, A. Response patterns to tone bursts in peripheral auditory system of anurans. Narins, P. Neural adaptations for processing the two-note call of the Puerto Rican treefrog, Eleutherodactylus coqui. Brain Behav. Priebe, N. Direction selectivity of excitation and inhibition in simple cells of the cat primary visual cortex.

Neuron 45, — Rose, G. Temporal selectivity in the central auditory system of the leopard frog Rana pipiens. Sensitivity to amplitude modulated sounds in the anuran auditory nervous system.

Combining pharmacology and whole-cell patch recording from CNS neurons, in vivo. Methods , 99— New techniques for making whole-cell recordings from CNS neurons in vivo. Feng, P. Narins, R. Interval-counting neurons in the anuran auditory midbrain: factors underlying diversity of interval tuning. A , 97— Schul, J. Non-parallel coevolution of sender and receiver in the acoustic communication system of treefrogs. Schwartz, J. Effects of anomalous pulse timing on call discrimination by females of the gray treefrog Hyla versicolor : behavioural correlates of neurobiology.

Tan, M. Comparison of responses of neurons in the mouse inferior colliculus to current injections, tones of different durations, and sinusoidal amplitude-modulated tones. Tucker, M. Parallel changes in mate-attracting calls and female preferences in autotriploid tree frogs. Ward, J.


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