A duplex theory of pitch perception.

PubWeight™: 1.92‹?› | Rank: Top 3%

🔗 View Article (PMID 14831572)

Published in Experientia on April 15, 1951

Authors

J C R LICKLIDER

Articles citing this

Correct tonotopic representation is necessary for complex pitch perception. Proc Natl Acad Sci U S A (2004) 2.32

Sparse time-frequency representations. Proc Natl Acad Sci U S A (2006) 1.67

Spatiotemporal representation of the pitch of harmonic complex tones in the auditory nerve. J Neurosci (2010) 1.66

Pitch of complex tones: rate-place and interspike interval representations in the auditory nerve. J Neurophysiol (2005) 1.44

Pitch perception and auditory stream segregation: implications for hearing loss and cochlear implants. Trends Amplif (2008) 1.21

Distinct roles for onset and sustained activity in the neuronal code for temporal periodicity and acoustic envelope shape. J Neurosci (2008) 1.19

Depth electrode recordings show double dissociation between pitch processing in lateral Heschl's gyrus and sound onset processing in medial Heschl's gyrus. Exp Brain Res (2008) 1.07

An autocorrelation model with place dependence to account for the effect of harmonic number on fundamental frequency discrimination. J Acoust Soc Am (2005) 1.07

Pitch representations in the auditory nerve: two concurrent complex tones. J Neurophysiol (2008) 1.06

Understanding pitch perception as a hierarchical process with top-down modulation. PLoS Comput Biol (2009) 1.03

Exploring the function of neural oscillations in early sensory systems. Front Neurosci (2010) 1.02

Computing with neural synchrony. PLoS Comput Biol (2012) 1.02

Perceptual grouping affects pitch judgments across time and frequency. J Exp Psychol Hum Percept Perform (2011) 0.99

Encoding pitch contours using current steering. J Acoust Soc Am (2010) 0.96

Concurrent-vowel and tone recognition by Mandarin-speaking cochlear implant users. Hear Res (2009) 0.94

Cortical encoding of pitch: recent results and open questions. Hear Res (2010) 0.93

Harmonic segregation through mistuning can improve fundamental frequency discrimination. J Acoust Soc Am (2008) 0.93

Abnormal pitch perception produced by cochlear implant stimulation. PLoS One (2014) 0.92

[Acoustic correlation]. Arch Ohren Nasen Kehlkopfheilkd (1961) 0.92

A possible neurophysiological basis of the octave enlargement effect. J Acoust Soc Am (1999) 0.89

An oscillatory correlation model of auditory streaming. Cogn Neurodyn (2008) 0.87

Speech Segregation Using an Auditory Vocoder With Event-Synchronous Enhancements. IEEE Trans Audio Speech Lang Process (2006) 0.87

Gender identification in younger and older adults: use of spectral and temporal cues in noise-vocoded speech. Ear Hear (2012) 0.86

Across-channel timing differences as a potential code for the frequency of pure tones. J Assoc Res Otolaryngol (2011) 0.86

Processing pitch in a nonhuman mammal (Chinchilla laniger). J Comp Psychol (2012) 0.85

Neural mechanisms of interstimulus interval-dependent responses in the primary auditory cortex of awake cats. BMC Neurosci (2009) 0.85

Importance of spike timing in touch: an analogy with hearing? Curr Opin Neurobiol (2016) 0.84

Bats and frogs and animals in between: evidence for a common central timing mechanism to extract periodicity pitch. J Comp Physiol A Neuroethol Sens Neural Behav Physiol (2010) 0.81

Congenital amusia: a cognitive disorder limited to resolved harmonics and with no peripheral basis. Neuropsychologia (2014) 0.81

Pitch strength of regular-interval click trains with different length "runs" of regular intervals. J Acoust Soc Am (2005) 0.80

Responses to diotic, dichotic, and alternating phase harmonic stimuli in the inferior colliculus of guinea pigs. J Assoc Res Otolaryngol (2008) 0.80

Computational model predictions of cues for concurrent vowel identification. J Assoc Res Otolaryngol (2014) 0.79

A Structural Theory of Pitch(1,2,3). eNeuro (2014) 0.79

Statistical analyses of temporal information in auditory brainstem responses to tones in noise: correlation index and spike-distance metric. J Assoc Res Otolaryngol (2008) 0.79

Neural representation of concurrent harmonic sounds in monkey primary auditory cortex: implications for models of auditory scene analysis. J Neurosci (2014) 0.78

Revisiting place and temporal theories of pitch. Acoust Sci Technol (2013) 0.78

The musical environment and auditory plasticity: hearing the pitch of percussion. Front Psychol (2013) 0.77

Processing of auditory midbrain interspike intervals by model neurons. J Comput Neurosci (2001) 0.76

Auditory discrimination of frequency ratios: the octave singularity. J Exp Psychol Hum Percept Perform (2012) 0.76

Roles of the target and masker fundamental frequencies in voice segregation. J Acoust Soc Am (2014) 0.75

Pitch and plasticity: insights from the pitch matching of chords by musicians with absolute and relative pitch. Brain Sci (2013) 0.75

The effect of enhancing temporal periodicity cues on Cantonese tone recognition by cochlear implantees. Int J Audiol (2014) 0.75

Acoustic cues for the recognition of self-voice and other-voice. Front Psychol (2013) 0.75

Complex-Tone Pitch Discrimination in Listeners With Sensorineural Hearing Loss. Trends Hear (2016) 0.75

Temporal binding of sound emerges out of anatomical structure and synaptic dynamics of auditory cortex. Front Comput Neurosci (2013) 0.75

Learning Pitch with STDP: A Computational Model of Place and Temporal Pitch Perception Using Spiking Neural Networks. PLoS Comput Biol (2016) 0.75

Silicon modeling of pitch perception. Proc Natl Acad Sci U S A (1989) 0.75

A New Approach to Model Pitch Perception Using Sparse Coding. PLoS Comput Biol (2017) 0.75