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コウサスル シュウハスウ ヘンカオン ノ レンゾク セイ ノ チカク ニツイテ

黒田, 剛士

Faculty of Design, Kyushu University

https://doi.org/10.15017/16819

出版情報:Kyushu University, 2009, 博士(芸術工学), 課程博士 バージョン:

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引用文献

Abeles, M., & Goldstein, M. H. (1972). Responses of single units in the primary auditory cortex of the cat to tones and to tone pairs. Brain Research, 42, 337-352.

Bregman, A. S. (1990). Auditory scene analysis: The perceptual organization of sound. Cambridge, MA: MIT Press.

Bregman, A. S., Ahad, P., Kim, J., & Melnerich, L. (1994). Resetting the pitch-analysis system: 1. Effects of rise times of tones in noise backgrounds or of harmonics in a complex tone. Perception & Psychophysics, 56, 155-162.

Bregman, A. S., Ahad, P. A., & Kim, J. (1994). Resetting the pitch-analysis system.

2. Role of sudden onsets and offsets in the perception of individual components in a cluster of overlapping tones. Journal of the Acoustical Society of America, 96, 2694-2703.

Bregman, A. S., & Campbell, J. (1971). Primary auditory stream segregation and perception of order in rapid sequence of tones. Journal of Experimental Psychology, 89, 244-249.

Bregman, A. S., & Dannenbring, G. L. (1977). Auditory continuity and amplitude edges.

Canadian Journal of Psychology, 31, 151-159.

Bregman, A. S. & Rudnicky, A. I. (1975). Auditory segregation: Stream or streams?

Journal of Experimental Psychology: Human Perception and Performance, 1, 263-267.

Carlyon, R. P. (2004). How the brain separates sound. Trends in Cognitive Sciences, 8, 465-471.

Ciocca, V. (2007). Personal communication. December.

Ciocca, V., & Bregman, A. S. (1987). Perceived continuity of gliding and steady-state tones through interrupting noise. Perception & Psychophysics, 42, 476-484.

Crum, P. A. C., & Bregman, A. S. (2006). Effects of unit formation on the perception of a changing sound. Quarterly Journal of Experimental Psychology, 59, 543-556.

Cusack, R., & Roberts, B. (2000). Effects of differences in timbre on sequential grouping. Perception & Psychophysics, 62, 1112–1120.

Dannenbring, G. L. (1976). Perceived auditory continuity with alternately rising and falling frequency transitions. Canadian Journal of Psychology, 30, 99-114.

Darwin, C. J. (1997). Auditory grouping. Trends in Cognitive Sciences, 1, 327-333.

Darwin, C. J. (2005). Simultaneous grouping and auditory continuity. Perception &

Psychophysics, 67, 1384-1390.

Darwin, C. J. & Bethell-Fox, C. E. (1977). Pitch continuity and speech source attribution. Journal of Experimental Psychology: Human Perception and Performance,

(3)

3, 665-672.

Darwin, C. J., & Sutherland, N. S. (1984). Grouping frequency components of vowels:

When is a harmonic not a harmonic? Quarterly Journal of Experimental Psychology, 36A, 193-208.

Durrant, J. D. & Lovrinic, J. H. (1995). Bases of hearing science (3rd ed.). Baltimore:

Williams & Wilkins.

江口俊太朗. (2009). 交差するグライド音間の音圧レベル差が空隙転移錯覚の生起に及ぼ す影響について. 九州大学芸術工学府芸術工学専攻修士論文 (未公刊).

(Eguchi, S. (2009). Effects of sound pressure level difference between crossing glide tones on the occurrence of the gap transfer illusion. Unpublished master’s thesis. Kyushu University, Fukuoka, Japan.)

Elfner, L. F. (1969). Continuity in alternately sounded tone and noise signals in a free field. Journal of the Acoustical Society of America, 46, 914-917.

Elfner, L. F. (1970). Continuity in alternately sounded tonal signals in a free field.

Journal of the Acoustical Society of America, 49, 447-449.

Elfner, L., & Caskey, W. E. (1965). Continuity effects with alternately sounded noise and tone signals as a function of manner of presentation. Journal of the Acoustical Society of America, 38, 543-547.

Elfner, L., & Homick, J. L. (1966). Some factors affecting the perception of continuity in alternately sounded tone and noise signals. Journal of the Acoustical Society of America, 40, 27-31.

Elfner, L. F., & Homick, J. L. (1967). Auditory continuity effects as a function of the duration and temporal location of the interpolated signal. Journal of the Acoustical Society of America, 42, 576-579.

Glasberg, B. R., & Moore, B. C. J. (1990). Derivation of auditory filter shapes from notched-noise data. Hearing Research, 47, 103-138.

Handel, S. (1989). Listening: An introduction to the perception of auditory events. Cambridge, MA: MIT Press.

Houtgast, T. (1971). Psychophysical evidence for lateral inhibition in hearing.

Journal of the Acoustical Society of America, 51, 1885-1894.

Houtsma, A. J. M., & Fleuren, J. F. M. (1991). Analytic and synthetic pitch of two-tone complexes. Journal of the Acoustical Society of America, 90, 1674-1676.

Iverson, P. (1995). Auditory stream segregation by musical timbre: Effects of static and dynamic acoustic attributes. Journal of Experimental Psychology: Human Perception and Performance, 21, 751-763.

Kanafuka, K., Nakajima, Y., Remijn, G. B., Sasaki, T., & Tanaka, S. (2007).

(4)

Subjectively divided tone components in the gap transfer illusion. Perception &

Psychophysics, 69, 641-653.

Kashino, M., & Warren, R. M. (1996). Binaural release from temporal induction.

Perception & Psychophysics, 58, 899-905.

Kluender, K. R., & Jenison, R. L. (1992). Effects of glide slope, noise intensity, and noise duration on the extrapolation of FM glides through noise. Perception

& Psychophysics, 51, 231-238.

Koffka, K. (1935). Principles of Gestalt psychology. London: Routledge & Kegan Paul.

(コフカ K. 鈴木正彌 (監訳)(1988). ゲシュタルト心理学の原理. 東京: 福村出版.) McAdams, S. (1989). Segregation of concurrent sounds. I: Effects of frequency

modulation coherence. Journal of the Acoustical Society of America, 86, 2148-2159.

McAdams, S., Botte, M., & Drake, C. (1998). Auditory continuity and loudness computation. Journal of the Acoustical Society of America, 103, 1580-1591.

McPherson, L. M. P., Ciocca, V., & Bregman, A. S. (1994). Organization in audition by similarity in rate of change: Evidence from tracking individual frequency glides in mixtures. Perception & Psychophysics, 55, 269-278.

Micheyl, C., Carlyon, R. P., Shtyrov, Y., Hauk, O., Dodson, T., & Pullvermüller, F.

(2003). The neurophysiological basis of the auditory continuity illusion: A mismatch negativity study. Journal of Cognitive Neuroscience, 15, 747-758.

Miller, G. A. (1947). The masking of speech. Psychological Bulletin, 44, 105-129.

Miller, G. A., & Heise, G. A. (1950). The trill threshold. Journal of the Acoustical Society of America, 22, 637-638.

Miller, G. A., & Licklider, J. C. R. (1950). The intelligibility of interrupted speech.

Journal of the Acoustical Society of America, 22, 167-173.

宮坂栄一・境久雄 (1980). 信号断続時におけるクリックの知覚. 日本音響学会誌, 36,

244-252.

(Miyasaka, E., & Sakai, H. (1980). Detectability of switching transients. Journal of the Acoustical Society of Japan, 36, 244-252.)

宮崎亮 (2003). 複合音における空隙転移錯覚. 九州芸術工科大学芸術工学部音響設計学 科卒業論文 (未公刊).

(Miyazaki, R. (2003). The gap transfer illusion in stimulus patterns consisting of complex glides. Unpublished bachelor’s thesis, Kyushu Institute of Design, Fukuoka, Japan.)

Moore, B. C. J., Glasberg, B. R., & Peters, R. W. (1986). Thresholds for hearing mistuned partials as separate tones in harmonic complexes. Journal of the Acoustical Society of America, 80, 479-483.

(5)

中島祥好 (2005). 聴覚研究は今がチャンス: 錯覚を見つけよう. 基礎心理学研究, 24, 63-68.

(Nakajima, Y. (2005). Do not miss the opportunity to find new auditory illusions.

Japanese Journal of Psychonomic Science, 24, 63-68.)

Nakajima, Y. (2006). Auditory Grammar: The event construction model and spoken language [abstract]. Journal of the Acoustical Society of America, 120, 3203-3204.

Nakajima, Y. (2008). Illusions related to auditory grammar: Ten demonstrations in musical contexts [abstract]. In K. Miyazaki, Y. Hiraga, M. Adachi, Y. Nakajima

& M. Tsuzaki (Eds.), The 10th International Conference on Music Perception and Cognition (p. 69). Sapporo: ICMPC10.

中島祥好・佐々木隆之 (1993). 交差する周波数変化音における空隙の知覚について. 信学 技報, SP92-146, 73-80.

(Nakajima, Y., & Sasaki, T. (1993). Perceptual transfer of onsets and offsets between crossing glide tone components. The Technical Report of the Proceedings of the Institute of Electronics, Information and Communication Engineers, SP92-146, 73-80.)

Nakajima, Y., & Sasaki, T. (1996). A simple grammar of auditory stream formation [abstract]. Journal of the Acoustical Society of America, 100, 2681.

Nakajima, Y., Sasaki, T., Kanafuka, K., Miyamoto, A., Remijn, G., & ten Hoopen, G.

(2000). Illusory recouplings of onsets and terminations of glide tone components.

Perception & Psychophysics, 62, 1413-1425.

Petkov, C. I., O’Connor, K. N., & Sutter, M. L. (2007). Encoding of illusory continuity in primary auditory cortex. Neuron, 54, 153-165.

Pickles, J. O. (1988). An introduction to the physiology of hearing (2nd ed.). London:

Academic Press.

Rasch, R. A. (1978). The perception of simultaneous notes such as in polyphonic music.

Acustica, 40, 21-33.

Remijn, G. B. (2003). The perceptual integration of auditory onsets and offsets in stimulus patterns of two partly overlapping frequency glides. Unpublished doctoral dissertation, Kyushu Institute of Design, Fukuoka, Japan.

Remijn, G. B., & Nakajima, Y. (2005). The perceptual integration of auditory stimulus edges: An illusory short tone in stimulus patterns consisting of two partly overlapping glides. Journal of Experimental Psychology: Human Perception and Performance, 31, 183-192.

Riecke, L., van Opstal, A. J., & Formisano, E. (2008). The auditory continuity illusion: A parametric investigation and filter model. Perception & Psychophysics,

(6)

70, 1-12.

力丸裕 (1994). 音響・聴覚系の生理学. 川人光男・行場次朗・藤田一郎・乾敏郎・力丸裕, 視覚と聴覚 (pp. 129-179). 東京: 岩波書店.

Singh, P. G. (1987). Perceptual organization of complex-tone sequences: A tradeoff between pitch and timbre? Journal of the Acoustical Society of America, 82, 886–899.

Snyder, J. S., & Alain, C. (2007). Toward a neurophysiological theory of auditory stream segregation. Psychological Bulletin, 133, 780-799.

Terhardt, von E. (1968). Über die durch amplitudenmodulierten sinustöne hervorgerufene hörempfindung. Acustica, 20, 210-214.

Tougas, Y., & Bregman, A. S. (1985). Crossing of auditory streams. Journal of Experimental Psychology: Human Perception and Performance, 11, 788-798.

Thurlow, W. R. (1957). An auditory figure-ground effect. American Journal of Psychology, 70, 653-654.

Thurlow, W. R. & Elfner, L. F. (1959). Continuity effects with alternately sounding tones. Journal of the Acoustical Society of America, 31, 1337-1339.

綱島慎平 (2003). 交差する周波数変化音の音圧レベル差が空隙転移錯覚におよぼす影響.

九州芸術工科大学大学院芸術工学研究科修士論文 (未公刊).

(Tsunashima, S. (2003). The influence of amplitude differences between crossing frequency glides in the gap transfer illusion. Unpublished master’s thesis, Kyushu Institute of Design, Fukuoka, Japan.)

Tsuzaki, M., Tanaka, M., Kato, H. (2003). Shrinkage in the perceived duration of speech and tone by acoustic replacement. Japanese Psychological Research, 45, 129-139.

Turgeon, M., Bregman, A. S., & Roberts, B. (2005). Rhythmic masking release: Effects of asynchrony, temporal overlap, harmonic relations, and source separation on cross-spectral grouping. Journal of Experimental Psychology: Human Perception and Performance, 31, 939-953.

上田和夫・中島祥好 (2005). 聴覚体制化と聴覚情景分析.聴覚研究会資料, 35, 545-550.

(Ueda, K., & Nakajima, Y. (2005). Auditory organization and auditory scene analysis.

Transactions on Technical Committee of Psychological and Physiological Acoustics, 35, 545-550.)

Ueda, K, & Nakajima, Y. (2008). A consistent clustering of power fluctuations in British English, French, German, and Japanese. Transactions on Technical Committee of Psychological and Physiological Acoustics, 38, 771-776.

van Noorden, L. P. A. S. (1975). Temporal Coherence in the Perception of Tone Sequences. Unpublished doctoral dissertation, Eindhoven University of Technology, Eindhoven,

(7)

the Netherlands.

Vicario, G. (1960). L’effetto tunnel acustico. Rivista di Psicologia, 54, 41-52.

Warren, R. M. (1970). Perceptual restoration of missing speech sounds. Science, 167, 392-393.

Warren, R. M. (1984). Perceptual restoration of obliterated sounds. Psychological Bulletin, 96, 371-383.

Warren, R. M. (2008). Auditory perception: An analysis and synthesis (3rd ed.).

Cambridge: Cambridge University Press.

Warren, R. M., Bashford, J. A., Jr., Healy, E. W., & Brubaker, B. S. (1994). Auditory induction: Reciprocal changes in alternating sounds. Perception & Psychophysics, 55, 313-322.

Warren, R. M., Obusek, C. J., & Ackroff, J. M. (1972). Auditory induction: Perceptual synthesis of absent sounds. Science, 176, 1149-1151.

Warren, R. M., Wrightson, J. M., & Puretz, J. (1988). Illusory continuity of tonal and infratonal periodic sounds. Journal of the Acoustical Society of America, 84, 1338-1342.

Wessel, D. L. (1979). Timbre space as a musical control structure. Computer Music Journal, 3, 45-52.

安武達朗 (2004). 複数の成分からなる周波数変化音を用いた空隙転移錯覚についての研 究. 九州芸術工科大学芸術工学部音響設計学科卒業論文 (未公刊).

(Yasutake, T. (2004). A study on the gap transfer illusion using complex tones. Unpublished bachelor’s thesis, Kyushu Institute of Design, Fukuoka, Japan.) Zwicker, von E. (1952). Die grenzen der hörbarkeit der amplitudenmodulation und der

frequenzmodulation eines tones. Acustica, 2, 125-133.

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