Smart pixel-based wavelet transformation for wideband radar and sonar signal processing

被引:1
|
作者
Shoop, BL
Sayles, AH
Dudevoir, GP
Hall, DA
Litynski, DM
Das, PK
机构
来源
WAVELET APPLICATIONS IV | 1997年 / 3078卷
关键词
wavelet transform; smart pixel technology; wideband signal processing correlator; convolution;
D O I
10.1117/12.271733
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
Recently, there has been a great deal of interest in the application of wavelet transforms to signal processing applications. As an example, to obtain the source density function for a wideband radar or sonar signal from the measurement of scattered signals it is desirable to first perform the wavelet transform of the received signal before processing it. The use of the wavelet transform allows the selection of basis functions which are matched to the transmitted signal. Fundamentally, the wavelet transform of a signal is the correlation of the signal with a basis function derived from a mother wavelet and its scaled versions called daughter wavelets. Thus any real-time correlator can be used for the implementation of the wavelet transform. Since a one-dimensional input signal produces a two-dimensional wavelet transform, optical correlators provide a natural advantage over conventional electronic implementations. The VanderLugt correlator, the joint transform correlator and its derivative, the quasi-Fourier transform joint transform correlator can all be used to implement the wavelet transform, provided a spatial light modulator is used to convert the electrical input signal into an appropriate optical signal. The concept of the smart pixel is to integrate both electronic processing and individual optical devices on a common device to take advantage of the complexity of electronic processing circuits and the speed of optical devices. Arrays of these smart pixels would then bring with them the advantage of parallelism that optics could provide. Smart pixels can function as spatial light modulators providing additional electronic processing features. They are naturally well-suited to realizing wavelet transforms.
引用
收藏
页码:415 / 423
页数:9
相关论文
共 50 条
  • [21] Application of Wavelet Transformation in Vortex Flowmeter Signal Processing
    Lin Xiaolin
    Wang Yutian
    Yang Ni
    PROCEEDINGS OF THE SECOND INTERNATIONAL SYMPOSIUM ON TEST AUTOMATION & INSTRUMENTATION, VOLS 1-2, 2008, : 812 - 815
  • [22] The application of wavelet transform on signal processing of the Pulse Laser Radar
    Dai, YJ
    Xiao, Q
    Zhao, Y
    Wang, XO
    ELECTRONIC IMAGING AND MULTIMEDIA SYSTEMS II, 1998, 3561 : 351 - 355
  • [24] BENJAMIN,R - MODULATION RESOLUTION AND SIGNAL PROCESSING IN RADAR SONAR AND RELATED SYSTEMS
    HOWARD, DD
    ELECTRONICS, 1967, 40 (10): : 212 - &
  • [25] BENJAMIN,R - MODULATION RESOLUTION AND SIGNAL PROCESSING IN RADAR SONAR AND RELATED SYSTEMS
    RAO, VN
    JOURNAL OF SCIENTIFIC & INDUSTRIAL RESEARCH, 1967, 26 (08): : 355 - &
  • [26] BENJAMIN,R - MODULATION RESOLUTION AND SIGNAL PROCESSING IN RADAR SONAR AND RELATED SYSTEMS
    GAZEY, BK
    ELECTRONIC ENGINEERING, 1966, 38 (466): : 812 - &
  • [27] Pixel-Based Image Processing for CIE Standard Sky Classification through ANN
    Granados-Lopez, D.
    Garcia-Rodriguez, A.
    Garcia-Rodriguez, S.
    Suarez-Garcia, A.
    Diez-Mediavilla, M.
    Alonso-Tristan, C.
    COMPLEXITY, 2021, 2021
  • [28] Acoustic signal processing based on wavelet
    Tang, HF
    Li, HJ
    Zhang, H
    ICEMI'2001: FIFTH INTERNATIONAL CONFERENCE ON ELECTRONIC MEASUREMENT AND INSTRUMENTS, VOL 1, CONFERENCE PROCEEDINGS, 2001, : 720 - 723
  • [29] Design and Processing of a Novel Chaos-Based Stepped Frequency Synthesized Wideband Radar Signal
    Zeng, Tao
    Chang, Shaoqiang
    Fan, Huayu
    Liu, Quanhua
    SENSORS, 2018, 18 (04)
  • [30] Graphene pixel-based polarization-insensitive metasurface for almost perfect and wideband terahertz absorption
    Kumar, Pankaj
    Lakhtakia, Akhlesh
    Jain, Pradip K.
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2019, 36 (08) : F84 - F88