A novel electrode-area-weighted method of implementing wavelet transform processor with surface acoustic wave device

被引:8
|
作者
Lu, Wenke [1 ]
Gao, Lili [1 ]
Zhang, Jingduan [1 ]
机构
[1] Donghua Univ, Sch Informat Sci & Technol, Shanghai 201620, Peoples R China
基金
中国国家自然科学基金;
关键词
electrode-area-weighted (EAW); wavelet transform processor (WTP); surface acoustic wave (SAW); envelope areas; electrode areas; RECONSTRUCTION PROCESSOR; ARCHITECTURE; DESIGN; CIRCUITS; SCHEME; MSC;
D O I
10.1002/cta.2217
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The objective of this research was to investigate the possibility of a novel electrode-area-weighted (EAW) method of implementing wavelet transform processor (WTP) with surface acoustic wave (SAW) device. The motivation for this work was prompted by a diffraction problem of the WTP using SAW device. In this paper, we propose a novel EAW method in order to solve the diffraction problem. When the electrode areas of the EAW wavelet interdigital transducer (IDT) (i.e. the input IDT) are designed according to the envelope areas of the wavelet function, the impulse-response function of the EAW wavelet IDT is equal to the wavelet function, so that the novel EAW WTP using SAW device can be fabricated. In this study, we also present the diffraction problem, the substrate material, and the electrode number of the output IDT as three key problems, and the solutions to the three key problems are implemented. Copyright (c) 2016 John Wiley & Sons, Ltd.
引用
收藏
页码:2134 / 2146
页数:13
相关论文
共 50 条
  • [41] PATTERNED MICROSTRUCTURE ARRAY FABRICATION BY USING A NOVEL STANDING SURFACE ACOUSTIC WAVE DEVICE
    Wang, Yancheng
    Xue, Dai
    Deng, Zhaoxin
    Mei, Deqing
    PROCEEDINGS OF THE ASME 12TH INTERNATIONAL MANUFACTURING SCIENCE AND ENGINEERING CONFERENCE - 2017, VOL 4, 2017,
  • [42] A novel high frequency surface acoustic wave device based on piezoelectric interdigital transducers
    Kumar, AKS
    Paruch, P
    Marré, D
    Pellegrino, L
    Tybell, T
    Ballandras, S
    Triscone, JM
    INTEGRATED FERROELECTRICS, 2004, 63 : 55 - 62
  • [43] Patterned Microstructure Array Fabrication by Using a Novel Standing Surface Acoustic Wave Device
    Wang, Yancheng
    Xue, Dai
    Mei, Deqing
    JOURNAL OF MICRO AND NANO-MANUFACTURING, 2018, 6 (02):
  • [44] DEVELOPMENT OF NOVEL ACOUSTIC EMISSION SOURCE LOCATION METHOD UTILIZING WAVELET TRANSFORM AND AKAIKE INFORMATION CRITERION
    Suzuki, Yoshito
    Matsuo, Takuma
    e-Journal of Nondestructive Testing, 2023, 28 (01):
  • [45] Quasi-field Method for Calculation of Surface Acoustic Wave Device's Characteristics
    Yankin, Sergey S.
    Suchkov, Sergey G.
    Nikolaevtsev, Victor A.
    Suchkov, Dmitry S.
    Pavlova, Anastasia Yu.
    Talbi, Abdelkrim
    Nikitov, Sergey A.
    Proceedings of the 2015 ICU International Congress on Ultrasonics, 2015, 70 : 884 - 887
  • [46] Novel surface acoustic wave-interdigitated array electrode gas sensor for dissolved ammonia
    Chen, K
    Xu, YJ
    Zhang, H
    Nie, LH
    Yao, SZ
    FRESENIUS JOURNAL OF ANALYTICAL CHEMISTRY, 1997, 357 (04): : 379 - 383
  • [47] Novel surface acoustic wave-interdigitated array electrode gas sensor for dissolved ammonia
    Kang Chen
    Yuanjin Xu
    Hong Zhang
    Lihua Nie
    Shouzhuo Yao
    Fresenius' Journal of Analytical Chemistry, 1997, 357 : 379 - 383
  • [48] Cell enrichment method based on zinc oxide thin film surface acoustic wave device
    Li Y.
    Zhou W.
    Peng B.
    Zhang C.
    Quan H.
    Meng L.
    Shengxue Xuebao/Acta Acustica, 2024, 49 (03): : 398 - 402
  • [49] Development and experimental verification of a finite element method for accurate analysis of a surface acoustic wave device
    Kabir, K. M. Mohibul
    Matthews, Glenn I.
    Sabri, Ylias M.
    Russo, Salvy P.
    Ippolito, Samuel J.
    Bhargava, Suresh K.
    SMART MATERIALS AND STRUCTURES, 2016, 25 (03)
  • [50] ANALYSIS OF SURFACE ACOUSTIC-WAVE TRANSDUCERS WITH CAPACITIVELY WEIGHTED ELECTRODES BY THE METHOD OF EQUIVALENT-CIRCUITS
    NIKITIN, IP
    RADIOTEKHNIKA I ELEKTRONIKA, 1985, 30 (04): : 671 - 677