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the Owl Tracks Its Prey; American Scientist; Vol. 100; No. 6;
494-503; 10.1511/2012.99.494
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of Interaural Time Difference in the Owl’s Coincidence Detector
Neurons; Journal of Neuroscience; Vol. 31; No. 43; 15245-15256;
PMCID PMC6703530; 10.1523/JNEUROSCI.2127-11.2011
- Konishi, Masakazu (2010) From
central pattern generator to sensory template in the evolution of
birdsong; Brain and Language; Vol. 115; No. 1; 18-20; 10.1016/j.bandl.2010.05.001
- Akutagawa, Eugene and Konishi, Masakazu (2010) New
brain pathways found in the vocal control system of a songbird;
Journal of Comparative Neurology; Vol. 518; No. 15; 3086-3100; 10.1002/cne.22383
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Reduction in Interaural Time Difference Tuning in the Barn Owl;
Journal of Neurophysiology; Vol. 100; No. 2; 708-715; PMCID PMC2525730;
10.1152/jn.90358.2008
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of Multiplicative Auditory Responses in the Midbrain of the Barn
Owl; Journal of Neurophysiology; Vol. 98; No. 3; 1181-1193; PMCID
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Soma Facilitates Submillisecond Coincidence Detection in the Owl’s
Auditory System; Journal of Neurophysiology; Vol. 97; No. 3;
2267-2282; 10.1152/jn.00399.2006
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guides for sensory neurophysiology; Journal of Comparative
Physiology A; Vol. 192; No. 6; 671-676; 10.1007/s00359-006-0097-6
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of thalamic modulatory centers to the vocal control system of the zebra
finch; Proceedings of the National Academy of Sciences of the United
States of America; Vol. 102; No. 39; 14086-14091; PMCID PMC1236583; 10.1073/pnas.0506774102
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Auditory Selectivity Develops in Parallel with Song; Journal of
Neurobiology; Vol. 62; No. 4; 469-481; 10.1002/neu.20115
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Song Preference during Vocal Learning in the Zebra Finch Depends on Age
and State; Journal of Neurobiology; Vol. 62; No. 2; 231-242; 10.1002/neu.20087
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of Multiplicative Processes in Auditory Spatial Tuning; Journal of
Neuroscience; Vol. 24; No. 40; 8907-8910; PMCID PMC6729967; 10.1523/JNEUROSCI.2924-04.2004
- Konishi, Masakazu (2004) The
Role of Auditory Feedback in Birdsong; Annals of the New York
Academy of Sciences; Vol. 1016; No. 1; 463-475; 10.1196/annals.1298.010
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of behaviour; Current Opinion in Neurobiology; Vol. 13; No. 6;
707-709; 10.1016/j.conb.2003.11.003
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Memory in Song Learning by Zebra Finches; Journal of Neuroscience;
Vol. 23; No. 17; 6928-6935; PMCID PMC6740713; 10.1523/JNEUROSCI.23-17-06928.2003
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versus Whaling”: Whose Errors of Judgment?; Bioscience; Vol. 53;
No. 3; 202-203; 10.1641/0006-3568(2003)053[0202:SVWWEO]2.0.CO;2
- Konishi, Masakazu (2003) Coding of
auditory space; Annual Review of Neuroscience; Vol. 26; 31-55; 10.1146/annurev.neuro.26.041002.131123
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Postsynaptic Potentials to Spikes in the Genesis of Auditory Spatial
Receptive Fields; Journal of Neuroscience; Vol. 22; No. 13;
5652-5658; PMCID PMC6758218; 10.1523/jneurosci.22-13-05652.2002
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of inhibition in the owl’s nucleus laminaris and its effects on optic
tectum neurons; Neuroscience; Vol. 111; No. 2; 373-378; 10.1016/S0306-4522(02)00010-6
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of Large Interaural Delays and Its Implication for Models of Binaural
Interaction; Journal of the Association for Research in
Otolaryngology; Vol. 3; No. 1; 80-88; PMCID PMC3202365; 10.1007/s101620020006
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and Neural Delays for Coincidence Detection in Owls; Journal of
Neuroscience; Vol. 21; No. 23; 9455-9459; PMCID PMC6763915; 10.1523/JNEUROSCI.21-23-09455.2001
- Nick, Teresa A. and Konishi, Masakazu (2001) Dynamic
control of auditory activity during sleep: Correlation between song
response and EEG; Proceedings of the National Academy of Sciences of
the United States of America; Vol. 98; No. 24; 14012-14016; PMCID
PMC61158; 10.1073/pnas.251525298
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Monoclonal Antibody Specific to a Song System Nuclear Antigen in
Estrildine Finches; Neuron; Vol. 31; No. 4; 545-556; 10.1016/S0896-6273(01)00388-9
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Spatial Receptive Fields Created by Multiplication; Science; Vol.
292; No. 5515; 249-252; 10.1126/science.1059201
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neuroscience: Development, transduction and integration; Proceedings
of the National Academy of Sciences of the United States of America;
Vol. 97; No. 22; 11690-11691; PMCID PMC34336; 10.1073/pnas.97.22.11690
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mechanisms for resolving phase ambiguity in the owl’s inferior
colliculus; Proceedings of the National Academy of Sciences of the
United States of America; Vol. 97; No. 22; 11787-11792; PMCID PMC34350;
10.1073/pnas.97.22.11787
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processing in birds; Current Opinion in Neurobiology; Vol. 10;
No. 4; 474-481; 10.1016/S0959-4388(00)00110-0
- Konishi, Masakazu (2000) Study
of sound localization by owls and its relevance to humans;
Comparative Biochemistry and Physiology Part A; Vol. 126; No. 4;
459-469; 10.1016/S1095-6433(00)00232-4
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bases of an auditory illusion and its elimination in owls; Nature
Neuroscience; Vol. 2; No. 7; 656-659; 10.1038/10212
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of adult birdsong by perturbation of auditory feedback; Nature; Vol.
399; No. 6735; 466-470; 10.1038/20933
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of Interaural Decorrelation on Neural and Behavioral Detection of
Spatial Cues; Neuron; Vol. 21; No. 4; 789-798; 10.1016/S0896-6273(00)80595-4
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of auditory responses in the vocal control system of awake
songbirds; Nature Neuroscience; Vol. 1; No. 6; 513-518; 10.1038/2232
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expression and transport of brain-derived neurotrophic factor in the
male zebra finch’s song system during vocal development; Proceedings
of the National Academy of Sciences of the United States of America;
Vol. 95; No. 19; 11429-11434; PMCID PMC21659
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localize interaurally phase-ambiguous signals?; Proceedings of the
National Academy of Sciences of the United States of America; Vol. 95;
No. 11; 6465-6468; PMCID PMC27804
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of sound localization cues in the auditory thalamus of the barn owl;
Proceedings of the National Academy of Sciences of the United States of
America; Vol. 94; No. 19; 10421-10425; PMCID PMC27804
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of Interaural Intensity Difference on the Processing of Interaural Time
Difference in the Owl’s Nucleus Laminaris; Journal of Neuroscience;
Vol. 17; No. 5; 1815-1824; PMCID PMC6573383; 10.1523/JNEUROSCI.17-05-01815.1997
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to Sound Intensity of Binaural Coincidence Detection in the Nucleus
Laminaris of the Owl; Journal of Neuroscience; Vol. 16; No. 21;
7046-7054; PMCID PMC6579264; 10.1523/JNEUROSCI.16-21-07046.1996
- Konishi, Masakazu (1996) Neuroethology
of Orientation and Navigation: Introduction; Biological Bulletin;
Vol. 191; No. 1; 101-102
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of Neurons in the Auditory Pathway of the Barn Owl to Partially
Correlated Binaural Signals; Journal of Neurophysiology; Vol. 74;
No. 4; 1689-1700
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underlying the sensitivity of songbird forebrain neurons to temporal
order; Proceedings of the National Academy of Sciences of the United
States of America; Vol. 92; No. 12; 5582-5586; PMCID PMC41740
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Separate Areas of the Brain Differentially Guide the Development of a
Song Control Nucleus in the Zebra Finch; Proceedings of the National
Academy of Sciences of the United States of America; Vol. 91; No. 26;
12413-12417; PMCID PMC45448
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generation in birdsong; Current Opinion in Neurobiology; Vol. 4;
No. 6; 827-831; 10.1016/0959-4388(94)90130-9
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Outline of Recent Advances in Birdsong Neurobiology; Brain, Behavior
and Evolution; Vol. 44; No. 4-5; 279-285; 10.1159/000113582
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of sound localization in the owl; Journal of Comparative Physiology
A; Vol. 173; No. 1; 3-7; 10.1007/BF00209613
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with Two Ears; Scientific American; No. 4; 66-73
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auditory circuits in the vocal control system of the zebra finch;
Proceedings of the National Academy of Sciences of the United States of
America; Vol. 88; No. 24; 11339-11343; PMCID PMC53130; 10.1073/pnas.88.24.11339
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suboscine bird (eastern phoebe, Sayornis phoebe) develops normal song
without auditory feedback; Animal Behaviour; Vol. 42; No. 3;
477-487; 10.1016/S0003-3472(05)80047-8
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distinct inputs to an avian song nucleus activate different glutamate
receptor subtypes on individual neurons; Proceedings of the National
Academy of Sciences of the United States of America; Vol. 88; No. 10;
4075-4079; PMCID PMC51600
- Konishi, Masakazu (1991) Deciphering
the brain’s codes; Neural Computation; Vol. 3; No. 1; 1-18; 10.1162/neco.1991.3.1.1
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Role of GABAergic Inhibition in Processing of lnteraural Time Difference
in the Owl’s Auditory System; Journal of Neuroscience; Vol. 11;
No. 3; 722-739; PMCID PMC6575350; 10.1523/jneurosci.11-03-00722.1991
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Circuit for Detection of Interaural Time Differences in the Brain Stem
of the Barn Owl; Journal of Neuroscience; Vol. 10; No. 10;
3227-3246; PMCID PMC6570189; 10.1523/JNEUROSCI.10-10-03227.1990
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intercalation and cleavage of an antitumor antibiotic dynemicin that
contains anthracycline and enediyne cores; Proceedings of the
National Academy of Sciences of the United States of America; Vol. 87;
No. 10; 3831-3835; PMCID PMC53997
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atrophy of neurons labeled at their birth in a song nucleus of the zebra
finch; Proceedings of the National Academy of Sciences of the United
States of America; Vol. 87; No. 9; 3538-3541; PMCID PMC53937
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Physiology of Sound Localization in Four Species of Owls (Part 1 of
2); Brain, Behavior and Evolution; Vol. 36; No. 4; 196-215; 10.1159/000115307
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Algorithms in Different Sensory Systems and Animals; Cold Spring
Harbor Symposia on Quantitative Biology; Vol. 55; 575-584; 10.1101/SQB.1990.055.01.055
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for neurobiologists; Neuron; Vol. 3; No. 5; 541-549; 10.1016/0896-6273(89)90264-X
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of Bird Studies to Biology; Science; Vol. 246; No. 4929; 465-472; 10.1126/science.2683069
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Selectivity and Binaural Responses in the Inferior Colliculus of the
Great Horned Owl; Journal of Neuroscience; Vol. 9; No. 9; 3083-3096;
PMCID PMC6569655; 10.1523/JNEUROSCI.09-09-03083.1989
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of GABAergic neurons and terminals in the auditory system of the barn
owl; Journal of Comparative Neurology; Vol. 286; No. 2; 190-207; 10.1002/cne.902860205
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of commissural projections in the representation of bilateral auditory
space in the barn owl’s inferior colliculus; Journal of Comparative
Neurology; Vol. 281; No. 4; 545-554; 10.1002/cne.902810405
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Delay Lines for Time Measurement in the Owl’s Brainstem; Proceedings
of the National Academy of Sciences of the United States of America;
Vol. 85; No. 21; 8311-8315; PMCID PMC282419
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changes in estrogen-sensitive neurons in the forebrain of the zebra
finch; Proceedings of the National Academy of Sciences of the United
States of America; Vol. 85; No. 19; 7380-7383; PMCID PMC282190
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period for estrogen action on neurons of the song control system in the
zebra finch; Proceedings of the National Academy of Sciences of the
United States of America; Vol. 85; No. 18; 7006-7007; PMCID
PMC282108
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of nucleus angularis and nucleus laminaris to the lateral lemniscal
nuclear complex of the barn owl; Journal of Comparative Neurology;
Vol. 274; No. 2; 212-238; 10.1002/cne.902740207
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of the cochlear nuclei and nucleus laminaris to the inferior colliculus
of the barn owl; Journal of Comparative Neurology; Vol. 274; No. 2;
190-211; 10.1002/cne.902740206
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Neural Map of Interaural Intensity Differences in the Brain Stem of the
Barn Owl; Journal of Neuroscience; Vol. 8; No. 8; 2665-2676; PMCID
PMC6569385; 10.1523/jneurosci.08-08-02665.1988
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of interaural time difference in the central nucleus of the barn owl’s
inferior colliculus; Journal of Neuroscience; Vol. 7; No. 10;
3105-3116; PMCID PMC6569176; 10.1523/jneurosci.07-10-03105.1987
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of lnteraural Time Difference in the Central Nucleus of the Barn Owl’s
Inferior Colliculus; Journal of Neuroscience; Vol. 7; No. 10;
3105-3116; PMCID PMC6569176; 10.1523/jneurosci.07-10-03105.1987
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Binding Protein-Like Immunoreactivity Labels the Terminal Field of
Nucleus Laminaris of the Barn Owl; Journal of Neuroscience; Vol. 7;
No. 6; 1843-1856; PMCID PMC6568887; 10.1523/jneurosci.07-06-01843.1987
- Coles, Roger B.; Konishi, Masukazu; et el. (1987) Hearing
and Echolocation in the Australian Grey Swiftlet, Collocalia
Spodiopygia; Journal of Experimental Biology; Vol. 129; 365-371
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for lnteraural Time Difference in the Owl’s Midbrain; Journal of
Neuroscience; Vol. 6; No. 12; 3413-3422; PMCID PMC6568656; 10.1523/jneurosci.06-12-03413.1986
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of interaural phase difference in the owl’s brainstem; Proceedings
of the National Academy of Sciences of the United States of America;
Vol. 83; No. 21; 8400-8404; PMCID PMC386936
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and estrogen receptors in adult zebra finch brain; Journal of
Neuroscience Research; Vol. 16; No. 4; 617-628; 10.1002/jnr.490160404/abstract
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synthesized maps of sensory space; Trends in Neurosciences; Vol. 9;
163-168; 10.1016/0166-2236(86)90053-6
- Margoliash, Daniel and Konishi, Masakazu (1985) Auditory
representation of autogenous song in the song system of white-crowned
sparrows; Proceedings of the National Academy of Sciences of the
United States of America; Vol. 82; No. 17; 5997-6000; PMCID
PMC390681
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owl’s cochlear nuclei process different sound localization cues;
Journal of the Acoustical Society of America; Vol. 78; No. 1; 360-364;
10.1121/1.392499
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growth, atrophy and death in a sexually dimorphic song nucleus in the
zebra finch brain; Nature; Vol. 315; No. 6015; 145-147; 10.1038/315145a0
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From Behavior to Neuron; Annual Review of Neuroscience; Vol. 8;
125-170; 10.1146/annurev.ne.08.030185.001013
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of the Barn Owl’s (Tyto alba) inner ear; Hearing Research; Vol. 17;
No. 3; 237-247; 10.1016/0378-5955(85)90068-1
- Takahashi, T.; Moiseff, A.; et el. (1984) Time
and intensity cues are processed independently in the auditory system of
the owl; Journal of Neuroscience; Vol. 4; No. 7; 1781-1786; PMCID
PMC6564890; 10.1523/jneurosci.04-07-01781.1984
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of stimulus phase and intensity coding in the cochlear nucleus of the
barn owl; Journal of Neuroscience; Vol. 4; No. 7; 1787-1799; PMCID
PMC6564872; 10.1523/jneurosci.04-07-01787.1984
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characteristics of units in the owl’s brainstem auditory pathway:
precursors of restricted spatial receptive fields; Journal of
Neuroscience; Vol. 3; No. 12; 2553-2562; PMCID PMC6564646; 10.1523/jneurosci.03-12-02553.1983
- Konishi, Masakazu (1983) Night
Owls Are Good Listeners; Natural History; Vol. 92; No. 9; 56-59
- Konishi, Masakazu and Gurney, Mark E. (1982) Sexual
differentiation of brain and behaviour; Trends in Neurosciences;
Vol. 5; 20-23; 10.1016/0166-2236(82)90011-X
- McCasland, James S. and Konishi, Masakazu (1981) Interaction
between Auditory and Motor Activities in an Avian Song Control
Nucleus; Proceedings of the National Academy of Sciences of the
United States of America; Vol. 78; No. 12; 7815-7819; PMCID
PMC349362
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increases protein synthesis within the avian brain vocal control
system; Brain Research; Vol. 222; No. 2; 442-446; 10.1016/0006-8993(81)91052-0
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owl’s interaural pathway is not involved in sound localization;
Journal of Comparative Physiology A; Vol. 144; No. 3; 299-304; 10.1007/BF00612561
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and behavioral sensitivity to binaural time differences in the owl;
Journal of Neuroscience; Vol. 1; No. 1; 40-48; PMCID PMC6564159; 10.1523/jneurosci.01-01-00040.1981
- Knudsen, Eric I. and Konishi, Masakazu (1980) Monaural
Occlusion Shifts Receptive-Field Locations of Auditory Midbrain Units in
the Owl; Journal of Neurophysiology; Vol. 44; No. 4; 687-695
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Sexual Differentiation of Brain and Behavior in Zebra Finches;
Science; Vol. 208; No. 4450; 1380-1383; 10.1126/science.208.4450.1380
- Konishi, Masakazu and Knudsen, Eric I. (1979) The
oilbird: hearing and echolocation; Science; Vol. 204; No. 4391;
425-427; 10.1126/science.441731
- Knudsen, Eric I. and Konishi, Masakazu (1979) Mechanisms
of sound localization in the barn owl (Tyto alba); Journal of
Comparative Physiology A; Vol. 133; No. 1; 13-21; 10.1007/BF00663106
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localization by the barn owl (Tyto alba) measured with the search coil
technique; Journal of Comparative Physiology; Vol. 133; No. 1; 1-11;
10.1007/BF00663105
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organization of auditory receptive fields in the owl; Science; Vol.
202; No. 4369; 778-780; 10.1126/science.715444
- Knudsen, Eric I. and Konishi, Masakazu (1978) Space
and Frequency Are Represented Separately in Auditory Midbrain of the
Owl; Journal of Neurophysiology; Vol. 41; No. 4; 870-884
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neural map of auditory space in the owl; Science; Vol. 200;
No. 4343; 795-797; 10.1126/science.644324
- Bentley, David and Konishi, Masakazu (1978) Neural
Control of Behavior; Annual Review of Neuroscience; Vol. 1; 35-59;
10.1146/annurev.ne.01.030178.000343
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fields of auditory neurons in the owl; Science; Vol. 198; No. 4323;
1278-1280; 10.1126/science.929202
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of monocular deprivation on binocular neurones in the owl’s visual
Wulst; Nature; Vol. 264; No. 5588; 753-754; 10.1038/264753a0
- Pettigrew, John D. and Konishi, Masakazu (1976) Neurons
selective for orientation and binocular disparity in the visual Wulst of
the barn owl (Tyto alba); Science; Vol. 193; No. 4254; 675-678; 10.1126/science.948741
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selective for orientation and binocular disparity in the visual Wulst of
the barn owl (Tyto alba); Science; Vol. 193; No. 4254; 675-678; 10.1126/science.948741
- Zaretsky, Malcolm D. and Konishi, Masakazu (1976) Tonotopic
organization in the avian telencephalon; Brain Research; Vol. 111;
No. 1; 167-171; 10.1016/0006-8993(76)91058-1
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Pattern Shifts in Singing Birds: A Critique; Science; Vol. 190;
No. 4211; 292-292; 10.1126/science.190.4211.292-a
- Konishi, Masakazu and Kenuk, A. Stephen (1975) Discrimination
of noise spectra by memory in the barn owl; Journal of Comparative
Physiology; Vol. 97; No. 1; 55-58; 10.1007/BF00635648
- Quine, Douglas B. and Konishi, Masakazu (1974) Absolute
frequency discrimination in the barn owl; Journal of Comparative
Physiology A; Vol. 93; No. 4; 347-360; 10.1007/BF00606802
- Konishi, Masakazu (1973) Locatable
and Nonlocatable Acoustic Signals for Barn Owls; American
Naturalist; Vol. 107; No. 958; 775-785
- Konishi, Masakazu; Komisaruk, Barry R.; et el. (1973) Genital
Sensory Field; Science; Vol. 181; No. 4097; 365-366; 10.1126/science.181.4097.365
- Konishi, Masakazu (1973) How
the Owl Tracks Its Prey: Experiments with trained barn owls reveal how
their acute sense of hearing enables them to catch prey in the dark;
American Scientist; Vol. 61; No. 4; 414-424
- Konishi, Masakazu (1973) Development
of auditory neuronal responses in avian embryos; Proceedings of the
National Academy of Sciences of the United States of America; Vol. 70;
No. 6; 1795-1798; PMCID PMC433599; 10.1073/pnas.70.6.1795
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continuous noise on avian hearing and vocal development; Proceedings
of the National Academy of Sciences of the United States of America;
Vol. 70; No. 5; 1393-1396; PMCID PMC433504; 10.1073/pnas.70.5.1393
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