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[Keyword] millimeter-wave imaging(2hit)

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  • Millimeter-Wave Single-Pixel Imaging Using Electrically-Switchable Liquid-Crystal Mask Open Access

    Michinori HONMA  Takashi SASE  Ryota ITO  Toshiaki NOSE  

     
    INVITED PAPER

      Pubricized:
    2022/08/23
      Vol:
    E106-C No:2
      Page(s):
    34-40

    In this study, we have proposed a millimeter-wave (MMW) single-pixel imaging (SPI) system with a liquid-crystal (LC) mask cell. The LC cell functions as an electrically switchable mask based on the change in absorption properties, which depend on the orientation of the LC. We investigated the influence of noise on the measured and estimated data (reconstructed image). The proposed system exhibited moderate robustness against random noise (that were added) compared to raster scan-based and Hadamard matrix-based SPI systems. Finally, the results of some demonstrative experiments were introduced to ensure the applicability of the constructed MMW-SPI system, and steps for improving the reconstructed image quality were discussed.

  • Millimeter-Wave Imaging System Using Simultaneous Frequency-Encoding Technique

    Hirokazu KAMODA  Thomas DERHAM  Toru IWASAKI  Takao KUKI  

     
    PAPER-Microwaves, Millimeter-Waves

      Vol:
    E94-C No:2
      Page(s):
    206-214

    We fabricated and evaluated a prototype imaging system using the Simultaneous Frequency-Encoding technique, which is an active imaging technique that is potentially capable of fast frame-frequency imaging using a frequency-scanning antenna with only a single transceiver. The prototype performed simultaneous acquisition of pixels in elevation using Simultaneous Frequency-Encoding and performed a mechanical scan in azimuth. We also studied a ranging technique and incorporated it into the prototype. The ranging technique for Simultaneous Frequency-Encoding must take into account the characteristics of the frequency-scanning antenna, which are fundamental to Simultaneous Frequency-Encoding. We verified that ordinary range processing can be performed before frequency analysis with Simultaneous Frequency-Encoding, giving both range and angular profiles. The prototype was evaluated based on the radiation patterns of a receiver antenna comprising the frequency-scanning antenna and a reflector, on which both the image quality and ranging performance depend. Finally we conducted actual imaging tests and confirmed the capability of through-obstacle imaging. The frame frequency was only 0.1 Hz, which was due to the use of a slow mechanical scan in azimuth. However, assuming electronic beam forming is used instead of the mechanical scan, the frame frequency can be improved to several Hertz.