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Ernst Terhardt

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signal. The parameters of this analysis (e.g. the effective length and shape of the analysis window) depend directly on physiology and indirectly on the co-evolution of ear and voice as our human and prehuman ancestors interacted with their social and physical environments. The output of this first stage is called a spectral pitch pattern, when it is determined by psychoacoustic experiments in which listeners make subjective judgments, matching the perceived pitch of a pure reference tone to that of a successively presented complex tone. The spectral pitches differ in perceptual salience since their sound pressure levels differ physically, they lie at different distances above the threshold of hearing, they mask each other (and therefore lie at different distances above the masked threshold), and may or may not lie in a region to which the ear is particularly sensitive (a dominance region of pitch perception). A cornerstone of Terhardt's approach is the idea that because spectral pitches are subjective, we must not jump to conclusions about the relationship between them and their physiological (physical) foundations in the ear and brain.
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of several competing virtual pitches can explain the ambiguity of the pitch of many sounds. Bells with non-harmonic spectra are an obvious example (it is often possible to hear the main virtual pitch as the strike tone at the start of the sound, and the main spectral pitch as a hum tone which becomes directly audible as the sound dies away). But Terhardt and his colleagues also demonstrated that regular harmonic complex tones in speech and music are slightly ambiguous in pitch, which may be the ultimate origin of octave equivalence in music and the perceived tonal affinity of successive tones at octave or fifth intervals. Terhardt claimed that the root of a chord in western music typically corresponds to its most salient virtual pitch, and that the virtual pitch phenomenon is the ultimate origin of the root effect. He also investigated the perception of roughness in music and claimed that musical consonance and dissonance has two main psychoacoustic components, roughness and harmony, harmony being related to the perception of virtual pitch.
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approximately harmonic series of pitches. In this process, the auditory system tolerates a certain degree of mistuning, for two main reasons. First, the partials of complex tones in the environment may be physically mistuned relative to a harmonic series (e.g. piano tones). Second, the frequencies of partials may be known only approximately due to the uncertainty principle: the shorter is the effective time window, the less accurately can the frequency be known. The auditory system is physically unable to determine frequencies accurately in very short sound presentations, or in tones that are changing quickly in fundamental frequency, for example in speech.
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acoustic communication must be carefully separated before we empirically explore the relationships between them. In the physical world, we consider the physics of sound sources such as the voice and musical instruments; auditory environments including reflectors; electroacoustic systems such as microphones and loudspeakers; and the ear and brain, considered as a purely physical system. Sound is a signal that is analysed by the ear; to understand this process, we need foundations of signal processing. To understand auditory perception, we perform psychoacoustic experiments, which are generally about relationships between and among Popper's three worlds.
105:. His Master's thesis (Diplomarbeit) was entitled "Ein Funktionsmodell des Gehörs" (A functional model of hearing). His Dissertation was entitled "Beitrag zur Ermittlung der informationstragenden Merkmale von Schallen mit Hilfe der Hörempfindungen" (literally, "Contribution to determination of information-carrying characteristics of sounds with the help of auditory sensations"). Both projects were supervised by 125:
If only one virtual pitch is perceived in a sound, it is generally the one with the highest salience. The output of Terhardt's algorithm for pitch perception is a series of virtual pitches of differing salience, of which the most salient is the prediction for “the” pitch of the sound. The existence
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In second stage of pitch perception, harmonic patterns among the spectral pitches are spontaneously recognized by the auditory system, in a process analogous to pattern recognition in vision. The output of this stage is a set of virtual pitches that correspond approximately to the fundamentals of
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Terhardt's approach to acoustic communication is based on Karl Popper's theory of three worlds according to which reality is either physical, experiential (perception, sensations, emotions) or abstract (thoughts, knowledge, information, culture). Terhardt maintains that these three aspects of
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According to Terhardt's theory of pitch perception, pitch perception can be divided into two separate stages: auditory spectral analysis and harmonic pitch pattern recognition. In the first stage, the inner ear (cochlea and basilar membrane) performs a running spectral analysis of the incoming
109:, with whom he founded the Institute for Electroacoustics, Technical University of Munich in 1967. Terhardt's Habilitation thesis (1972) was entitled "Ein Funktionsschema der Tonhöhenwahrnehmung von KlÀngen" (A model of pitch perception in complex sounds). 198:
Terhardt, E., Stoll, G., & Seewann, M. (1982). Algorithm for extraction of pitch and pitch salience from complex tonal signals. Journal of the Acoustical Society of America, 71(3), 679-688.
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Parncutt, R. (2014). Thinking outside the box: A tribute to Ernst Terhardt on his 80th birthday. Zeitschrift fĂŒr Audiologie (Audiological Acoustics), 53 (4), 166-169.
93:. He was professor in the area of acoustic communication at the Institute of Electroacoustics, Technical University of Munich, Germany. 179:
Laudatio fĂŒr Prof. Dr. Ing. Ernst Terhardt anlĂ€ĂŸlich der Verleihung der Ehrenmitgliedschaft der Deutschen Gesellschaft fĂŒr Audiologie.
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who made significant contributions in diverse areas of audio communication including pitch perception, music cognition, and
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Terhardt, E. (1974). Pitch, consonance, and harmony. The Journal of the Acoustical Society of America, 55(5), 1061-1069.
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Popper, K. (1972). Objective knowledge: An evolutionary approach. Oxford: Oxford University Press.
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Terhardt, E. (1972). Zur Tonhöhenwahrnehmung von KlÀngen . Acustica, 26, 173-199.
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Terhardt, E. (1998). Akustische Kommunikation. Berlin: Springer-Verlag.
149: 85:(born 11 December 1934) is a German engineer and 16:German engineer and psychoacoustician (born 1934) 233: 101:Terhardt studied electrical engineering at the 129: 234: 112: 13: 14: 288: 262:University of Stuttgart alumni 219: 210: 201: 192: 183: 171: 162: 1: 155: 96: 7: 257:German electrical engineers 252:German acoustical engineers 138: 10: 293: 150:Ernst Terhardt's Homepage 76: 68: 61: 51: 43: 28: 21: 277:Engineers from Stuttgart 103:University of Stuttgart 56:University of Stuttgart 177:Kollmeier, B. (2000). 130:Acoustic communication 91:Fourier transformation 267:Auditory scientists 72:Electrical engineer 63:Engineering career 87:psychoacoustician 80: 79: 284: 226: 223: 217: 214: 208: 205: 199: 196: 190: 187: 181: 175: 169: 166: 113:Pitch perception 107:Eberhard Zwicker 39:11 December 1934 38: 36: 19: 18: 292: 291: 287: 286: 285: 283: 282: 281: 272:Music cognition 232: 231: 230: 229: 224: 220: 215: 211: 206: 202: 197: 193: 188: 184: 176: 172: 167: 163: 158: 141: 132: 115: 99: 34: 32: 24: 17: 12: 11: 5: 290: 280: 279: 274: 269: 264: 259: 254: 249: 244: 228: 227: 218: 209: 200: 191: 182: 170: 160: 159: 157: 154: 153: 152: 147: 140: 137: 131: 128: 114: 111: 98: 95: 83:Ernst Terhardt 78: 77: 74: 73: 70: 66: 65: 59: 58: 53: 49: 48: 45: 41: 40: 30: 26: 25: 23:Ernst Terhardt 22: 15: 9: 6: 4: 3: 2: 289: 278: 275: 273: 270: 268: 265: 263: 260: 258: 255: 253: 250: 248: 247:Living people 245: 243: 240: 239: 237: 222: 213: 204: 195: 186: 180: 174: 165: 161: 151: 148: 146: 145:Virtual pitch 143: 142: 136: 127: 123: 119: 110: 108: 104: 94: 92: 88: 84: 75: 71: 67: 64: 60: 57: 54: 50: 46: 42: 31: 27: 20: 221: 212: 203: 194: 185: 173: 164: 133: 124: 120: 116: 100: 82: 81: 62: 242:1934 births 44:Nationality 236:Categories 156:References 69:Discipline 35:1934-12-11 97:Education 52:Education 139:See also 47:German 29:Born 238:: 37:) 33:(

Index

University of Stuttgart
psychoacoustician
Fourier transformation
University of Stuttgart
Eberhard Zwicker
Virtual pitch
Ernst Terhardt's Homepage
Laudatio fĂŒr Prof. Dr. Ing. Ernst Terhardt anlĂ€ĂŸlich der Verleihung der Ehrenmitgliedschaft der Deutschen Gesellschaft fĂŒr Audiologie.
Categories
1934 births
Living people
German acoustical engineers
German electrical engineers
University of Stuttgart alumni
Auditory scientists
Music cognition
Engineers from Stuttgart

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