Behavioural and neurobiological implications of linear and non-linear features in larynx phonations of horseshoe bats
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Jiang Feng | Shuyi Zhang | Kohta I. Kobayasi | Walter Metzner | Steffen R. Hage | W. Metzner | S. Berquist | Jiang Feng | Shuyi Zhang | Sean Berquist
[1] N Suga,et al. Analysis of acoustic elements and syntax in communication sounds emitted by mustached bats. , 1994, The Journal of the Acoustical Society of America.
[2] Ingo R. Titze,et al. Role of the thyroarytenoid muscle in regulation of fundamental frequency , 1989 .
[3] H. Schweizer,et al. Elsevier/North-Holland Biomedical Press LOCALIZATION OF BRAIN STEM MOTONEURONS INNERVATING THE LARYNGEAL MUSCLES IN THE RUFOUS HORSESHOE BAT, , 2002 .
[4] O. Henson,et al. Respiratory muscle activity in relation to vocalization in flying bats. , 1995, The Journal of experimental biology.
[5] Vocal tract motor patterns and resonance during constant frequency song: the white-throated sparrow , 2009, Journal of Comparative Physiology A.
[6] Laryngeal nerve activity during pulse emission in the CF-FM bat,Rhinolophus ferrumequinum , 2004, Journal of comparative physiology.
[7] A. Perlman,et al. Comparative study of the physiological properties of the vocalis and cricothyroid muscles. , 1988, Acta oto-laryngologica.
[8] Bijan Pesaran,et al. The role of nonlinear dynamics of the syrinx in the vocalizations of a songbird , 1998, Nature.
[9] Franz Goller,et al. Smooth Operator: Avoidance of Subharmonic Bifurcations through Mechanical Mechanisms Simplifies Song Motor Control in Adult Zebra Finches , 2010, The Journal of Neuroscience.
[10] I. Titze,et al. Active and passive characteristics of the canine cricothyroid muscles. , 1999, Journal of voice : official journal of the Voice Foundation.
[11] Shuyi Zhang,et al. Vocal communication in adult greater horseshoe bats, Rhinolophus ferrumequinum , 2006, Journal of Comparative Physiology A.
[12] L. Rome,et al. Superfast Vocal Muscles Control Song Production in Songbirds , 2008, PloS one.
[13] Gareth Jones,et al. The evolution of echolocation in bats. , 2006, Trends in ecology & evolution.
[14] G. Schuller,et al. Laryngeal nerve activity during pulse emission in the CF-FM bat,Rhinolophus ferrumequinum , 2004, Journal of comparative physiology.
[15] Charles R. Larson,et al. Effects of electrical stimulation of cricothyroid and thyroarytenoid muscles on voice fundamental frequency , 1988 .
[16] D. Griffin,et al. Laryngeal mechanisms in bats for the production of orientation sounds. , 1961, The Journal of experimental zoology.
[17] H. Schnitzler,et al. Die Ultraschall-Ortungslaute der Hufeisen-Fledermäuse (Chiroptera-Rhinolophidae) in verschiedenen Orientierungssituationen , 1968, Zeitschrift für vergleichende Physiologie.
[18] D. Berry,et al. Bifurcations in excised larynx experiments , 1996 .
[19] M. Smotherman,et al. Fine control of call frequency by horseshoe bats , 2003, Journal of Comparative Physiology A.
[20] A. Feng,et al. Voices of the dead: Complex nonlinear vocal signals from the larynx of an ultrasonic frog , 2006 .
[21] G. Schuller,et al. Vocal control in echolocating bats , 2010 .
[22] U. Jürgens,et al. The neural control of vocalization in mammals: a review. , 2009, Journal of voice : official journal of the Voice Foundation.
[23] N. Isshiki,et al. Cricothyroid Distance and Vocal Pitch: Experimental Surgical Study to Elevate the Vocal Pitch , 1979, The Annals of otology, rhinology, and laryngology.
[24] R. Suthers,et al. Selective laryngeal neurotomy and the control of phonation by the echolocating bat,Eptesicus , 1982, Journal of comparative physiology.
[25] Robert C. Wolpert,et al. A Review of the , 1985 .
[26] I. Tokuda,et al. Subglottal pressure and fundamental frequency control in contact calls of juvenile Alligator mississippiensis , 2011, Journal of Experimental Biology.
[27] Jack J Jiang,et al. Nonlinear dynamics of phonations in excised larynx experiments. , 2003, The Journal of the Acoustical Society of America.
[28] T. Riede. Subglottal pressure, tracheal airflow, and intrinsic laryngeal muscle activity during rat ultrasound vocalization. , 2011, Journal of neurophysiology.
[29] H. Herzel,et al. SUBHARMONICS, BIPHONATION, AND DETERMINISTIC CHAOS IN MAMMAL VOCALIZATION , 1998 .
[30] James M. Fattu,et al. Subglottic pressure and the control of phonation by the echolocating bat,Eptesicus , 1981, Journal of comparative physiology.
[31] F. Alipour,et al. On pressure-frequency relations in the excised larynx. , 2007, The Journal of the Acoustical Society of America.
[32] N. Suga,et al. Laryngeal mechanisms for the emission of CF-FM sounds in the Doppler-shift compensating bat,Rhinolophus ferrumequinum , 2004, Journal of comparative physiology.
[33] I R Titze,et al. On the relation between subglottal pressure and fundamental frequency in phonation. , 1989, The Journal of the Acoustical Society of America.
[34] Kate E. Jones,et al. Handbook of Mammalian Vocalization , 2009 .
[35] H. K. Schutte,et al. On pitch jumps between chest and falsetto registers in voice: data from living and excised human larynges. , 1999, The Journal of the Acoustical Society of America.
[36] D. Hartley,et al. The acoustic role of tracheal chambers and nasal cavities in the production of sonar pulses by the horseshoe bat,Rhinolophus hildebrandti , 1988, Journal of Comparative Physiology A.
[37] Michael Smotherman,et al. Doppler-shift compensation behavior in horseshoe bats revisited: auditory feedback controls both a decrease and an increase in call frequency. , 2002, The Journal of experimental biology.
[38] M. Betz,et al. Control of echolocation pulses by neurons of the nucleus ambiguus in the rufous horseshoe bat,Rhinolophus rouxi , 1986, Journal of Comparative Physiology A.
[39] W. Metzner,et al. An audio-vocal interface in echolocating horseshoe bats , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[40] Kohta I. Kobayasi,et al. A Mechanism for Vocal-Respiratory Coupling in the Mammalian Parabrachial Nucleus , 2006, The Journal of Neuroscience.
[41] D. Hartley,et al. The acoustics of the vocal tract in the horseshoe bat, Rhinolophus hildebrandti , 1988 .
[42] H. Schnitzler,et al. Response to frequency shifted artificial echoes in the batRhinolophus ferrumequinum , 2004, Journal of comparative physiology.
[43] J. Švec,et al. Bifurcations and chaos in register transitions of excised larynx experiments. , 2008, Chaos.