博碩士論文 103581005 詳細資訊




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姓名 何宗穎(Chung-Ying Ho)  查詢紙本館藏   畢業系所 電機工程學系
論文名稱 主動噪音控制系統之最佳化設計
(Design and Optimization of Active Noise Control Systems)
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摘要(中) 本論文基於常見的前饋式(Feedforward)、回饋式(Feedback)與混合式(Hybrid)三種基本的主動噪音控制器設計架構,分別提出改良設計與對應之數學分析,以增強現有的主動噪音控制(Active noise control, ANC)系統設計方法。對於前饋式多通道系統,本論文提出兩種簡化系統運算量的設計,以期提升系統性能。第一種是利用分時多工的概念,將多個參考麥克風輸入訊號重組為單一輸入訊號,第二種方法則是設計以類神經網路為架構的分類器,利用參考麥克風訊號大小來判斷噪音源方向,並自動選取適當的參考麥克風作為系統單一輸入訊號。兩種方法皆能簡化多個參考麥克風輸入訊號的運算量,且可自動選取符合最適當的參考麥克風以達噪音控制效果。針對回饋式主動噪音控制系統設計,本論文則同樣提出兩個提升系統效能之設計,消除窄頻(Narrowband)噪音。首先,利用適應性單頻訊號提升器(Adaptive line enhancer, ALE)結合回饋式主動噪音控制系統,改善傳統窄頻主動噪音控制方法與回饋式系統在實際應用中,非聲學感測器的量測誤差與窄頻頻率過近而減緩收斂速度的問題,本文之系統不需額外的非聲學感測器與訊號產生器,可減少硬體成本與增加系統強健性。本論文另提出ㄧ客製化濾波器設計,結合原回饋式主動噪音控制系統架構,應用於助聽器上,使該系統能根據助聽器使用者的聽力曲線,產生必要之反噪音訊號,以消除因為使用開放式(Open-fit)助聽器所導致的洩漏噪音(Noise leakage),提升系統效能。本論文也針對基於方程誤差之適應性無限脈衝響應濾波器(Equation-error adaptive infinite impulse response filter)設計主動噪音控制系統,透過演算法之數學分析與推導,證明其等同於混合式主動噪音控制系統架構。所述改善之設計與方法皆透過電腦模擬或實驗,來驗證其理論與實際增強效果。
摘要(英) This dissertation proposes several designs to improve and optimize the existing active noise control (ANC) methods based on three basic ANC structures, the feedforward, feedback and hybrid control schemes, covering the whole spectrum of ANC systems.
First, this dissertation proposes two designs to simplify the computational complexity of the multiple-reference/multiple-output (MRMO) ANC system. By applying the concept of time-division multiple-access (TDMA) technique, the multiple-reference signals are organized in one input signal vector but still covers sufficient noise information for the multiple-channel ANC system. The other design is using feedforward neural network (FNN) as a classifier to estimate the noise source direction based on the multiple-reference signals power and automatically select the proper reference microphone closed to the source as the single input. Both methods reduce computational complexity of the multiple-reference ANC system. The infant incubator ANC system is applied to verify the proposed designs.
Second, this dissertation proposes two designs to improve the efficiency of conventional feedback ANC (FBANC) to cancel the narrowband noise. The FBANC system integrated with adaptive line enhancers (ALE) overcomes the frequency mismatch problem due to the inappropriate installation or aging of the non-acoustic sensors used in the conventional narrowband ANC (NANC) system. The proposed method avoids using non-acoustic sensor and signal generator, thus reduces the system cost and enhances the robustness. An axial fan is used for the case study. The other design adopts a customized filter for the conventional FBANC system to increase its efficiency for the open-fit hearing aids applications. According to the hearing threshold of the hearing impaired patient, the proposed filter-integrated FBANC system can attenuate the audible noise leakage without generating unnecessary anti-noise.
In the last part, this dissertation develops the ANC algorithm based on the equation-error adaptive infinite impulse response (IIR) filter and performs basic theoretical analysis, also discovers this new algorithm is identical to the hybrid ANC system. These designs are verified through computer simulations and real-time experiments.
關鍵字(中) ★ 主動噪音控制
★ 多通道系統
★ 類神經網路
★ 窄頻噪音
★ 適應性單頻訊號提升器
★ 方程誤差
關鍵字(英) ★ active noise control (ANC)
★ multiple-reference/multiple-output
★ multiple-channel
★ feedforward neural network (FNN)
★ adaptive line enhancer (ALE)
★ equation-error
論文目次 摘要 I
ABSTRACT II
致謝 IV
CONTENTS V
LIST OF FIGURES VII
LIST OF TABLES XIII
CHAPTER 1 INTRODUCTION 1
1.1 Motivation and Background 1
1.2 Review of Previous Works 3
1.3 Contributions of Research 7
1.4 Organization of Dissertation 8
CHAPTER 2 ACTIVE NOISE CONTROL TECHNIQUES 10
2.1 Feedforward Active Noise Control Systems 10
2.1.1 Broadband Noise 11
2.1.2 Narrowband Noise 12
2.2 Feedback Active Noise Control Systems 13
2.3 Hybrid Active Noise Control Systems 15
2.4 Multiple-Channel Active Noise Control Systems 16
2.5 Audio Integration Method 18
2.6 Summary 19
CHAPTER 3 DESIGN AND OPTIMIZATION OF FEEDFORWARD ACTIVE NOISE CONTROL SYSTEMS 21
3.1 Time-Division Multiple-Reference Approach for Multiple-Channel System 21
3.2 Noise Source Direction Classifier for Multiple-Channel System 25
3.3 Simulation and Experimental Results 31
3.3.1 DSP Platform and Its Interface Design 31
3.3.2 Time-Division Multiple-Reference Approach 35
3.3.3 Noise Source Direction Classifier 40
3.4 Summary 53
CHAPTER 4 DESIGN AND OPTIMIZATION OF FEEDBACK ACTIVE NOISE CONTROL SYSTEMS 54
4.1 Adaptive Line Enhancer Approach 54
4.2 Filter-Integrated System Design 63
4.3 Simulations and Experimental Results 69
4.3.1 Adaptive Line Enhancer Approach 69
4.3.2 Filter-Integrated System Design 81
4.4 Summary 89
CHAPTER 5 DESIGN OF EQUATION-ERROR ADAPTIVE IIR FILTER FOR ACTIVE NOISE CONTROL 90
5.1 Active Noise Control Using Equation-Error Adaptive IIR Filter 90
5.2 Theoretical Analysis 93
5.3 Simulation Results 96
5.4 Summary 100
CHAPTER 6 CONCLUSIONS AND FUTURE WORKS 101
6.1 Conclusions 101
6.2 Future Works 103
REFERENCE 104
參考文獻 [1] C. M. Harris, Handbook of Acoustical Measurements and Noise Control, 3rd ed., New York: McGraw-Hill, 1991.
[2] L. L. Beranek and I. L. Ver, Noise and Vibration Control Engineering: Principles and Applications., New York: Wiley, 1992.
[3] L. J. Eriksson, M. C. Allie, C. D. Bremugan and J. A. Gilbert, “Active noise control and specification for fan noise problems,” in Proce. Noise-con, pp. 273-278, 1988.
[4] G. S. Papini, R. L.U.F. Pinto, E. B. Mederios and F. B. G. Coelho, “Hybrid approach to noise control of industrial exhaust system,” Applied Acoust., vol. 125, pp. 102-112, Oct. 2017.
[5] X. Zhang and X. Qiu, “Performance of a snoring noise control system based on an active partition,” Applied Acoust., vol. 116. pp. 289-290, Jan. 2017.
[6] P. Lueg, “Process of silencing sound oscillations”, U.S. Patent 2 043 416, 1936.
[7] P. A. Nelson and S. J. Elliott, Active Control of Sound., San Diego, CA: Academic, 1992.
[8] S. M. Kuo and D. R. Morgan, Active Noise Control Systems-Algorithms and DSP Implementations., New York: Wiley, 1996.
[9] C. R. Fuller, S. J. Elliott, and P. A. Nelson, Active Control of Vibration., San Diego, CA: Academic, 1996.
[10] C. H. Hansen and S. D. Snyder, Active Control of Noise and Vibration., London, U.K.: E&FN Spon, 1997.
[11] G. C. Goodwin and K. S. Sin, Adaptive Filtering Prediction and Control., Englewood Cliffs, NJ: Prentice-Hall, 1984.
[12] B. Widrow and S. D. Stearns, Adaptive Signal Processing., Englewood Cliffs, NJ: Prentice-Hall, 1985.
[13] M. Bellanger, Adaptive Digital Filters and Signal Analysis., New York: Marcel Dekker, 1987.
[14] S. Haykin, Adaptive Filter Theory., 2nd ed. Englewood Cliffs, NJ: Prentice-Hall, 1991.
[15] B. Widrow, D. Shur and S. Shaffer, “On Adaptive inverse control,” in Proce. 15th Asilomar Conf., pp. 185-189, 1981.
[16] J. C. Burgess, “Adaptive sound control in a duct: a computer simulation,” J. Acout. Soc. Am., vol. 70, no. 3, pp. 715-726, 1981.
[17] C. F. Ross, “Active Control of Sound”, PhD thesis, Queen’s College, Cambridge, U.K., July 1980.
[18] S. M. Kuo and C. Chen, Digital Signal Processing Applications with the TMS320 Family., Englewood Cliffs, NJ: Prentice-Hall, 1990.
[19] L. J. Eriksson, “Computer-aided silencing-an emerging technology,” Sound Vib., vol. 24, pp 42-45, Jul. 1990.
[20] L. J. Eriksson, “The continuing evolution of active noise control with special emphasis on ductborne noise,” in Proc. Recent Advances in Active Control of Sound Vib., pp. 237-245, 1991.
[21] S. J. Elliott and T. J. Sutton, “Performance of feedforward and feedback systems for active control,” IEEE Trans. Speech, Audio Process., vol. 4, no. 3, pp. 214-223, May 1996.
[22] S. M. Kuo and D. R. Morgan, “Active noise control: a tutorial review,” Proc. IEEE, vol. 87, no. 6, pp. 943-973, Jun. 1999.
[23] S. J. Elliot and C. C. Boucher, “Interaction between multiple feedforward active control systems,” IEEE Trans. Speech, Audio Process., vol. 2, no. 4, pp. 521-530, Oct. 1994.
[24] Y. Xiao, A. Ikuta, L. Ma and K. Khorasani, “Stochastic analysis of the FXLMS-based narrowband active noise control system,” IEEE Trans. Audio, Speech, Lang. Process., vol. 16, no. 5, pp. 1000-1014, Apr. 2008.
[25] L. Wang and W. S. Gan, “Convergence analysis of narrowband active noise equalizer system under imperfect secondary path estimation,” IEEE Trans. Audio, Speech, Lang. Process., vol. 17, no. 4, pp. 566-571, Mar. 2009.
[26] X. Kong and S. M. Kuo, “Analysis of asymmetric out-of-band overshoot in narrowband active noise control systems,” IEEE Trans. Speech, Audio Process., vol. 7, no. 5, pp. 587-591, Sep. 1999.
[27] W. S. Gan and S. M. Kuo, “An integrated audio and active noise control headset,” IEEE Trans. Consumer Elec., vol. 48, no. 2, pp. 242-247, Aug. 2002.
[28] S. M. Kuo, X. Kong and W. S. Gan, “Applications of adaptive feedback active noise control system,” IEEE Trans. Control Syst. Tech., vol. 11, no. 2, pp. 216-220, Mar. 2003.
[29] S. M. Kuo, S. Mitra and W. S. Gan, “Active noise control system for headphone applications,” IEEE Trans. Control Syst. Tech., vol. 14, no. 2, pp. 331-335, Feb. 2006.
[30] C. Y. Chang and S. T. Li, “Active noise control in headsets by using a low-cost microcontrorller,” IEEE Ind. Electron., vol. 58, no. 5, pp. 1936-1942, Jul. 2010.
[31] K. C. Zangi, “A new two-sensor active noise cancellation algorithm,” IEEE Inter. Conf. Acoust., Speech, Signal Process., pp. 351-354, Apr. 1993.
[32] A. Romero, E. Lopez, M. Nakano-Miyatake and H. Perez-Meana, “A hybrid active noise canceling structure,” J. Circuits, Sys., Signal Process., vol. 2, no. 2, pp. 340-346, 2008.
[33] X. Kong, P. Liu and S. M. Kuo, “Multiple channel hybrid active noise control systems,” IEEE Trans. Control Syst. Tech., vol. 6, no. 6, pp. 719-729, Nov. 1998.
[34] K. K. Shyu and C. Y. Chang, “Modified FIR filter with phase compensation technique to feedforward active noise controller design,” IEEE Trans. Ind. Electron., vol. 47, no. 2, pp. 444-453, Apr. 2000.
[35] M. T. Akhtar, M. Abe and M. Kawamata, “A new structure for feedforward active noise control system with improved online secondary path modeling,” IEEE Trans. Speech, Audio Process., vol. 13, no. 5, pp. 1082-1088, Aug. 2005.
[36] S. M. Kuo and A. B. Puvvala, “Effects of frequency separation in periodic active noise control systems,” IEEE Trans. Audio, Speech, Lang. Process., vol. 14, no. 5, pp. 1857-1866, Aug. 2006.
[37] M. T. Akhtar and W. Mitsuhashi, “Improving performance of hybrid active noise control systems for uncorrelated narrowband disturbances,” IEEE Trans. Audio, Speech, Lang. Process., vol. 19, no. 7, pp. 2058-2066, Sep. 2011.
[38] L. V. Wang, W. S. Gan, A. W. H. Khong and S. M. Kuo, “Convergence analysis of narrowband feedback active noise control system with imperfect secondary path estimation,” IEEE Trans. Audio, Speech, Lang. Process., vol. 21, no. 11, pp. 2403-2411, Aug. 2013.
[39] N. Miyazaki and Y. Kajikawa, “Head-mounted active noise control system with virtual sensing technique,” J. Sound Vib., vol. 339, pp. 65-83, Mar. 2015.
[40] L. Liu, S. Gujjula and S.M. Kuo, “Multi-channel real time active noise control system for infant incubators,” 2009 Ann. Int. Conf. IEEE EMBS, pp. 935-938, Minneapolis, MN, USA, Sep. 2009.
[41] J. Cheer and S.J. Elliott, “Active noise control of a diesel generator in a luxury yacht,” Applied Acoust., vol. 105, pp. 209-214, Apr. 2016.
[42] A. Puri, S.V. Modak and K. Gupta, “Modal filtered-x LMS algorithm for global active noise control in a vibro-acoustic cavity,” Mech. Systems Signal Process., vol. 110, pp. 540-555, Sep. 2018.
[43] K. Mazur, S. Wrona and M. Pawelczyk, “Design and implementation of multichannel global active structural acoustic control for a device casing,” Mech. Systems Signal Process., vol. 98, pp. 877-889, Jan. 2018.
[44] W. Zhang, C. Holfmann, M. Buerger, T.D. Abhayapala and W. Kellermann, “Spatial noise-field control with online secondary path modeling: a wave-domain approach,” IEEE/ACM Trans. Audio Speech Lang. Process., vol. 26, no. 12, pp. 2355-2370, Aug. 2018.
[45] J. Cheer and S.J. Elliott, “Multichannel control systems for the attenuation of interior road noise in vehicles,” Mech. Systems Signal Process., vol. 60-61, pp. 753-769, Aug. 2015.
[46] W. Jung, S.J. Elliott and J. Cheer, Local active control of road noise inside a vehicle,” Mech. Systems Signal Process., vol. 121, pp. 144-157, Nov. 2018.
[47] S. Zhao, X. Qiu, J. Lacey and S. Maisch, “Configuring fixed-coefficient active control systems for traffic noise reduction,” Building Environ., vol. 149, pp. 415-427, Feb. 2019.
[48] T. Murao, M. Nishimura and W. S. Gan, “A hybrid approach to active and passive noise control for open windows,” Applied Acoust., vol. 155, pp. 338-345, Dec. 2019.
[49] A. Gonzalez, A. Albiol and S.J. Elliott, “Minimization of the maximum error signal in active control,” IEEE Trans. Speech Audio Process., vol. 6, no. 3, pp. 268-281, May 1998.
[50] M. D. Diego and A. Gonzalez, “Performance evaluation of multichannel adaptive algorithms for local active noise control,” J. Sound Vib., vol. 244, no. 4, pp. 615-634, Jul. 2001.
[51] T. Murao, C. Shi, W.S. Gan and M. Nishimura, “Mixed-error approach for multi-channel active noise control of open windows,” Applied Acoust., vol. 127, pp. 305-315, Dec. 2017.
[52] C. H. Knapp and G. C. Carter, “The generalized correlation method for estimation of time delay.” IEEE Trans. Acoust., Speech, Signal Process., vol. 24, no. 4, pp. 320-327, Aug. 1976.
[53] J. H. DiBiase, H. F. Silverman, and M. S. Brandstein, “Robust localization in reverberant rooms,” Microphone Arrays, pp. 157-180, 2001.
[54] S. Hase, Y. Kajikawa, L. Liu and S.M. Kuo, “Multi-channel ANC system using optimized reference microphones based on the time difference of arrival,” 2015 EUSIPCO, European Signal Process. Conf., pp. 305-309, Nice, France, Dec. 2015.
[55] L. Liu, Y. Li and S.M. Kuo, “Feed-forward active noise control system using microphone array,” IEEE/CAA J. Automatica Sinica, vol. 5, no. 5, pp. 946-952, Jul. 2018.
[56] X. Kong and S. M. Kuo, “Study of causality constraint on feedforward active noise control systems,” IEEE Trans. Circuits, Sys., II: Analog, Digital Signal Process., vol. 46, no. 2, pp. 183-186, Feb. 1999.
[57] A. Lahav and E. Skoe, “An acoustic gap between the NICU and womb: a potential risk for compromised neuroplasticity of the auditory system in preterm infants,” Front. Neurosci., vol. 8, pp. 1-8, Dec. 2014.
[58] J. Romeu, L. Cotrina, J. Perapoch, and M. Lines, “Assessment of environmental noise and its effect on neonates in a neonatal intensive care unit,” Applied Acoust., vol. 111, pp. 161-169, Oct. 2016.
[59] T. Reeves-Messner, and A. Spilker, “Shh...babies growing: a clinical practice guideline for reducing noise level in the neonatal intensive care unit,” J. Neonatal Nursing, vol. 23, no. 4, pp. 199-203, Aug. 2017.
[60] X. Yu, S. Gujjula, and S. M. Kuo, “Active noise control for infant incubators,” Inter. Conf. IEEE Eng. in Medicine, Biology Society., pp. 2531-2534, Minneapolis, Minnesota, USA Sep. 2009.
[61] K. Beemanpally, K. R. Pottim, and S. M. Kuo, “Multi-channel hybrid active noise control system for infant incubators,” IEEE Inter. Conf. Electro/Infor. Tech., Normal, IL, USA, 2010.
[62] L. Liu, and S. M. Kuo, “Wireless communication integrated active noise control system for infant incubators,” IEEE Inter. Conf. Acoust. Speech, Signal Process., pp. 375-378, Vancouver, BC, Canada, 2013.
[63] A. Cavagnino, S. Saied, and S. Vaschetto, “Experimental identification and reduction of acoustic noise in small brushed DC motors,” IEEE Trans. Ind. Appl., vol. 50, no. 1, pp. 317–326, Jan./Feb. 2014.
[64] I. P. Tsoumas and H. Tischmacher, “Influence of the inverter’s modulation technique on the audible noise of electric motors,” IEEE Trans. Ind. Appl., vol. 50, no. 1, pp. 269-278, Jan. 2014.
[65] S. M. Kuo and A. B. Puvvala, “Effect of frequency separation in periodic active noise control systems,” IEEE Trans. Audio, Speech, Lang. Process., vol. 14, no. 5, pp. 1857–1866, Sep. 2006.
[66] D. P. Pfaff, N. S. Kapsokavathis and N. A. Parks, “Method for actively attenuate engine generated noise,” U.S. Patent 5,146,505, 1992.
[67] C. Y. Chang and S. M. Kuo, “Complete direct/parallel structure for narrowband active noise control systems,” IET Signal Process., vol. 7, no. 6, pp. 477–485, Aug. 2013.
[68] X. Sun and S. M. Kuo, “Active narrowband noise control systems using cascading adaptive filters,” IEEE Trans. Audio, Speech, Lang. Process., vol. 15, no. 2, pp. 586–592, Feb. 2007.
[69] C. Y. Chang and S. M. Kuo, “Complete parallel narrowband active noise control systems,” IEEE Trans. Audio, Speech, Lang. Process., vol. 21, no. 9, pp. 1979–1986, Sep. 2013.
[70] Y. Ma and Y. Xiao, “A new strategy for online secondary-path modeling of narrowband active noise control,” IEEE Trans. Audio, Speech, Lang. Process., vol. 25, no. 2, pp. 420–434, Feb. 2017.
[71] C. Y. Chang, S. M. Kuo, and C. W. Huang, “Secondary path modeling for narrowband active noise control systems,” Applied Acoust., vol. 131, pp. 154–164, Feb. 2018.
[72] J. Liu, X. Chen, L. Yang, J. Gao, and X. Zhang, “Analysis and compensation of reference frequency mismatch in multiple-frequency feedforward active noise and vibration control system,” J. Sound Vib., vol. 409, pp. 145–164, Nov. 2017.
[73] H. J. Jeon, T. G. Chang and S. M. Kuo, “Analysis of frequency mismatch in narrowband active noise control,” IEEE Trans. Audio., Speech, Lang. Process., vol. 18, no. 6, pp. 1632–1642, Aug. 2010.
[74] S. Kim and Y. Park, “On-line fundamental frequency tracking method or harmonic signal and application to ANC,” J. Sound Vib., vol. 241, pp. 681–691, Apr. 2001.
[75] L. Tan and J. Jiang, “Novel adaptive IIR notch filter for frequency estimation and tracking,” IEEE Signal Process. Mag., vol. 26, no. 6, pp. 186–189, Nov. 2009.
[76] H. Wang, H. Sun, Y. Sun, M. Wu, and J. Yang, “A narrowband active noise control system with a frequency estimation algorithm based on parallel adaptive notch filter,” Signal Process., vol. 154, pp. 108–119, Jan. 2019.
[77] J. Taghia and R. Martin, “A frequency-domain adaptive line enhancer with step-size control based on mutual information for harmonic noise reduction,” IEEE Trans. Audio, Speech, Lang. Process., vol. 24, no. 6, pp. 1140–1154, Jun. 2016.
[78] J. W. Kelly, D. P. Siewiorek, A. Smailagic, and W. Wang, “An adaptive filter for the removal of drifting sinusoidal noise without a reference,” IEEE J. Biomed. Health Informat., vol. 20, no. 1, pp. 213–221, Jan. 2016.
[79] H. Dillons, Hearing aids. New York, NY, USA: Thieme Medical, 2012.
[80] R. Serizel, M. Moonen, J. Wouters and S. H. Jensen, “A zone-of-quiet based approach to integrated active noise control and noise reduction for speech enhancement in hearing aids,” IEEE Trans on Audio, Speech, and Lang Process., vol. 20, no. 6, pp. 1685–97, Feb. 2012.
[81] D. Dalga and S. Doclo, “Theoretical performance analysis of ANC-motivated noise reduction algorithm for open-fitting hearing aids,” Inter. Workshop Acoust. Signal Enhancement (IWAENC), Aachen, Germany, Sep. 2012.
[82] K. Kluk and B. C. Moore, “Dead regions in the cochlea and enhancement of frequency discrimination effects of audiogram slope, unilateral versus bilateral loss, and hearing-aid use, “ Hearing Research, vol. 222, no. 1-2, pp. 1-15, Dec. 2006.
[83] U. Arioz, K. Arda and U. Tuncel, “Preliminary results of a novel enhancement method for hhigh-frequency loss,” Comput. Methods Programs Biomed, vol. 102, no. 3, pp. 277-287, Jun. 2011.
[84] S. M. Kuo and J. Tsai, “Residual noise shaping technique for active noise control systems,” J. Acoust. Soc. Am., vol. 95, pp. 1665-1668, Mar. 1994.
[85] J. J. Shynk, “Adaptive IIR filtering,” IEEE ASSP Mag., vol. 6, no. 2, Apr. 1989.
[86] C. E. Davila, “An algorithm for efficient, unbiased, equation-error infinite impulse response adaptive filtering,” IEEE Trans. Signal Process., vol. 42, no. 2, pp. 415-419, Feb. 1994.
[87] L. J. Eriksson, “Development of the filtered-U algorithm for active noise control,” J. Acoust. Soc. Am., vol. 89, no. 1, pp. 257-265, Jan. 1991.
[88] D. D. Falconer, F. Adachi and B. Gudmundson, “Time division multiple access methods for wireless personal communications,” IEEE Commun. Mag., vol. 33, no. 1, pp. 50-57, Jan. 1995.
[89] S. M. Kuo and B. M. Finn, “An integrated audio and active noise control system,” IEEE Inter. Symp. Circuits System, pp. 2529-2532, Chicago, IL, USA, May 1993.
[90] Chung-Ying Ho, Lichuan Liu, Kuo-Kai Shyu, Sen M. Kuo and Cheng-Yuan Chang, “Time-division multiple reference approach for multi-channel active noise control system,” J. Sound Vib., 2020. (In preparation)
[91] I. T. Ardekani and W. H. Abdulla, “Theoretical convergence analysis of FxLMS algorithm,” Signal Process., vol. 90, no. 12, pp. 3046-3055, May 2010.
[92] Chung-Ying Ho, Lichuan Liu, Kuo-Kai Shyu, Sen M. Kuo and Cheng-Yuan Chang, “Noise source direction classifier by using machine learning for feedforward active noise control system,” Applied Acoust., 2020. (In preparation)
[93] C. Y. Ho, K. K. Shyu, C. Y. Chang and Sen M. Kuo, “Efficient narrowband noise cancellation system using adaptive line enhancer,” IEEE/ACM Trans. Audio Speech Lang. Process., vol. 28, pp. 1094-1103, 2020.
[94] D. R. Hush, N. Ahmed, R. David and S. D. Stearns, “An adaptive IIR structure for sinusoidal enhancement, frequency estimation and detection,” IEEE Trans. Acoust., Speech, Signal Process., vol. 34, no. 6, pp. 1380-1390, Dec. 1986.
[95] B. Widrow et al., “Adaptive noise cancelling: Principles and applications,” Proc. IEEE, vol. 63, no. 12, pp. 1692–1716, Dec. 1975.
[96] Chung-Ying Ho, Kuo-Kai Shyu, Cheng-Yuan Chang and Sen M. Kuo , “Integrated active noise control for open-fit hearing aids with customized filter,” Applied Acoust., vol. 137, pp. 1-8, August 2018.
[97] L. Tan and J. Jiang, “Adaptive volterra filter for active control of nonlinear noise processes,” IEEE Trans. Signal Process., vol. 49, no. 8, pp. 1667-1676, Aug. 2001.
[98] Chung-Ying Ho, Kuo-Kai Shyu, Cheng-Yuan Chang and Sen M. Kuo, “Development of equation-error adaptive IIR-filter-based active noise control system,” Applied Acoust., vol. 163, pp. 1-6, June 2020.
[99] I. S. Kim, H. S. Na, K. J. Kim and Y. Park, “Constraint filtered-x and filtered-u least-mean-square algorithms for the active control of noise in ducts,” J. Acoust. Soc. Am., vol. 95, no. 6, pp. 3379-3389, Feb. 1994.
指導教授 徐國鎧 郭森楙(Kuo-Kai Shyu Sen M. Kuo) 審核日期 2020-7-21
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