EI / SCOPUS / CSCD 收录

中文核心期刊

NI Jinfu, WANG Renhua. Modeling control mechanism generating rise-fall pattern in F0 contour[J]. ACTA ACUSTICA, 1996, 21(6): 863-871. DOI: 10.15949/j.cnki.0371-0025.1996.06.001
Citation: NI Jinfu, WANG Renhua. Modeling control mechanism generating rise-fall pattern in F0 contour[J]. ACTA ACUSTICA, 1996, 21(6): 863-871. DOI: 10.15949/j.cnki.0371-0025.1996.06.001

Modeling control mechanism generating rise-fall pattern in F0 contour

More Information
  • Received Date: September 22, 1995
  • Revised Date: January 25, 1996
  • Available Online: August 01, 2022
  • This paper studies the stratege of modeling the control mechanism generating F0 contour of speech signal.Based on some hypotheses about dynamic characteristics of vocal cord,the complex laryngeal mechanism relative to the F0 is simplified to be a feasible physical model,furthermore,a functional model for the control mechanism is proposed to generate the RisesFall pattern of F0 contour.With motor commands defined by the proposed model two kinds of basic Rise-Fall feature pattern result.On the logarithmic scale of F0 versus time the local F0 contour is approximated by the sum of these patterns generated by independent commands.Experimental results in analyzing and synthesizing the F0 contour of Chinese utterances indicate that,the real F0 contour can be approximated very closely by the model,good correlation also exist between model parameters and F0 patterns.Therefore,the proposed model will have a contributing to the summarizing of prosodic rules,and lay a foundation for the synthesis of the F0 contour by rule.
  • Related Articles

    [1]ZHANG Yong, MIAO Jinqiang, WANG Yong, LIU Guanshi. Analysis of acoustic propagation models and dissipation mechanisms of saturated sandy sediments based on the Biot theory[J]. ACTA ACUSTICA, 2024, 49(5): 1073-1082. DOI: 10.12395/0371-0025.2023094
    [2]LIU Yongwei, WANG Lu, QIN Qikai, ZHENG Penghui, SHANG Dejiang. Mechanism of the electromagnetic force to control hydrodynamic noise from an airfoil model and its action mode[J]. ACTA ACUSTICA, 2023, 48(6): 1227-1239. DOI: 10.12395/0371-0025.2022041
    [3]LUO Pingzhan, XU Jian, ZHANG Fangjie, LI Xiaodong. Active control of higher-order sound in ducts using boundary-located secondary sources[J]. ACTA ACUSTICA, 2021, 46(6): 1193-1201. DOI: 10.15949/j.cnki.0371-0025.2021.06.039
    [4]HUANG Hao, WANG Jianming, Abudureyimu Halidan, Silamu Wushour. Maximum F1-score acoustic model training for automatic mispronunciation detection[J]. ACTA ACUSTICA, 2013, 38(6): 751-758. DOI: 10.15949/j.cnki.0371-0025.2013.06.010
    [5]WANG Jian, GUAN Tian, YE Datian. Pitch perception of harmonic complex tones based on excitation patterns[J]. ACTA ACUSTICA, 2013, 38(1): 99-104. DOI: 10.15949/j.cnki.0371-0025.2013.01.012
    [6]ZHANG Lu, ZU Yiqing, YAN Runqiang. FO patterns at the boundary of intonational phrases:the interaction of focus,lexical stress and boundary tone[J]. ACTA ACUSTICA, 2012, 37(4): 448-456. DOI: 10.15949/j.cnki.0371-0025.2012.04.003
    [7]HU Wenying, ZU Yiqing, WANG Zhizhong. Predict FO contours prediction on sentence level[J]. ACTA ACUSTICA, 2006, 31(1): 19-27. DOI: 10.15949/j.cnki.0371-0025.2006.01.004
    [8]LONG Zhangcai, QIN Youguo. Modeling the temporal pattern of spontaneous auditory spike chain[J]. ACTA ACUSTICA, 2003, 28(5): 390-394. DOI: 10.15949/j.cnki.0371-0025.2003.05.002
    [9]XU Xu, LIANG Yanchun, SHI Xiaohu. Mechanical modeling of a longitudinally vibration ultrasonic motor[J]. ACTA ACUSTICA, 2003, 28(3): 223-228. DOI: 10.15949/j.cnki.0371-0025.2003.03.006
    [10]GENG Houcai, RAO Zhushi, HAN Zushun, ZHANG Hualiang. Active control mechanism of structure-borne noise in an irregular enclosure[J]. ACTA ACUSTICA, 2001, 26(5): 440-444. DOI: 10.15949/j.cnki.0371-0025.2001.05.011

Catalog

    Article Metrics

    Article views (40) PDF downloads (9) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return