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Titlebook: Comparative Hearing: Fish and Amphibians; Richard R. Fay,Arthur N. Popper Book 1999 Springer Science+Business Media New York 1999 amphibia

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https://doi.org/10.1007/978-1-4612-0533-3amphibians; anatomy; evolution; fish; physiology
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978-1-4612-6806-2Springer Science+Business Media New York 1999
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https://doi.org/10.1007/978-3-531-90255-5entify the causes of, and treatments for, hearing impairment. Animal models are used extensively in this research, and valid generalizations from these models are required for progress to be made in understanding the human auditory system. In general, comparative hearing research establishes the bio
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Die vielen Gesichter der heutigen Kindheit,ltaneously generated by these objects (.). Based on the physical properties of the medium (the so-called characteristic impedance, which is about 3500 times larger for water than for air) and the steep loss of energy over distance (dipole source: 1/distance.; monopole source: 1/distance.) in the par
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https://doi.org/10.1007/978-3-531-90255-5ctually were able to “hear” or whether the earliest ear may have been only a vestibular organ for the detection of angular and linear accelerations of the head. However, it is not hard to imagine that such a system could have ultimately evolved into a system for detection of somewhat higher frequenc
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Sozialisation oder Konstruktion,a (caecilians), and Anura (frogs and toads)—which often are grouped in a single subclass—Lissamphibia. A current summary of the biology of the Lissamphibia is found in Duellman and Trueb (1994). Among the morphological features common to the three orders of Lissamphibia, but lacking in fish, are fou
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