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[Author] Nobuyasu TAKEMURA(5hit)

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  • Fourier Transform Optical Beamformer Employing Spatial Light Modulator

    Tomohiro AKIYAMA  Nobuyasu TAKEMURA  Hideyuki OH-HASHI  Syuhei YAMAMOTO  Masahito SATO  Tsutomu NAGATSUKA  Yoshihito HIRANO  Shusou WADAKA  

     
    PAPER

      Vol:
    E90-C No:2
      Page(s):
    465-473

    Optically controlled beam forming techniques are effective for phased-array antenna control. We have developed the Fourier transform optical beamformer (FT-OBF). The antenna radiation pattern inputted into an amplitude spatial light modulator (A-SLM) is optically Fourier transformed to a specific phase-front light beam equivalent to an antenna excitation in the FT-OBF. Optical signal processing, used the Fourier transform optics, is effective to large-scale, two-dimensional, and high-speed signal processing. To implement a flexible and finer antenna beam pattern control, we use an A-SLM as input image formation of the FT optics. And, to realize a small-size FT-OBF, we use symmetric triplet lenses with convex, concave and convex lens. The total optical system becomes below 1/5 length compared with the length using single lens. Finally, we evaluated the developed FT-OBF with the generated amplitude and phase distributions, which excitation signal of an array antenna. We measured an antenna radiation beam pattern, beam steering and beam width control, in the C-band. Measurement results agreed with theoretical calculated results. These results show the feasibility of the spatial light modulator based FT-OBF.

  • Channel Estimation Method Using Arbitrary Amplitude and Phase Modulation Schemes for MIMO Sensor

    Tsubasa TASHIRO  Kentaro NISHIMORI  Tsutomu MITSUI  Nobuyasu TAKEMURA  

     
    PAPER

      Vol:
    E97-B No:10
      Page(s):
    2102-2109

    We have proposed an intruder detection method by using multiple-input multiple-output (MIMO) channels. Although the channel capacity for MIMO transmission is severely degraded in time-variant channels, we can take advantage of this feature in MIMO sensor applications. For MIMO sensors, the accurate estimation of channel state information (CSI) is essential. Moreover, the transceiver should be simplified from the viewpoint of saving power. Narrowband signals such as minimum shift keying (MSK) and offset quaternary phase shift keying signals are effective and are used in sensor network systems. However, because the timing and carrier offsets between the transmitter and receiver are relatively large compared to the symbol rate, accurate CSI estimation is impossible given the severe constraints imposed by the timing and carrier offsets. To solve this issue, a signal synchronization method for the CSI estimation using a narrowband MSK signal has been proposed. In this paper, we propose a new CSI estimation method for arbitrary amplitude and phase modulation schemes for the MIMO sensor. The key point of the proposed method is that control signals (unique words) are mapped so as not to pass through the origin of the complex I/Q plane. The estimation accuracy of the proposed method is evaluated via a computer simulation. Moreover, the basic performance by the proposed CSI estimation method is verified when considering intruder detection by MIMO sensor.

  • Wave Analysis of the Aperture Field Distribution in Probe-Fed Radial Line Planar Antennas

    Nobuyasu TAKEMURA  Hiroaki MIYASHITA  Shigeru MAKINO  

     
    PAPER-Antennas and Propagation

      Vol:
    E89-B No:9
      Page(s):
    2580-2587

    We propose a wave analysis method for probe-fed Radial Line Planar Antennas (RLPAs) which yields an approximate solution for the aperture field distribution and scattering by loaded probes. Damping of electric power in the radial line due to radiation by antenna elements is included. The method can accommodate the effect of all conductors, including the terminating wall, by introducing the concept of equivalent posts. We have found good correspondence between the measured and calculated values of the aperture field distribution. The proposed method is effective for general geometries of probe-fed RLPAs.

  • Self-Complementary Inverted-FL Antenna Using Electromagnetic Coupling Feed for Mobile Phone

    Nobuyasu TAKEMURA  

     
    PAPER-Antennas and Propagation

      Vol:
    E95-B No:4
      Page(s):
    1329-1337

    In this paper, the author proposes an electromagnetic coupling fed inverted-FL antenna design. The inverted-FL antenna with a self-complementary structure has been reported as a way to achieve a constant impedance of 188 ohms without the need for a matching load, since the axially symmetric self-complementary antenna has constant impedance, even though it has a finite structure. This design has been realized by integrating an inverted-F antenna with a self-complementary structure for achieving a broadband characteristic and an inverted-L element for operation on a frequency lower than the minimum frequency of the antenna. The proposed antenna realizes a broadband characteristic without attaching the matching load and the impedance transformer to match 50 ohms. The impedance transformer necessary for the inverted-FL antenna with a self-complementary structure is removed by using an electromagnetic coupling feed structure. This antenna, which has a volume of 101045 mm3, obtained broadband and multi-band characteristics covering the GSM850/GSM900/DCS/PCS/UMTS2100/UMTS2600 bands and the 2.5 G/3.5 G bands for Mobile-WiMAX in simulation and measurement.

  • Estimating Living-Body Location Using Bistatic MIMO Radar in Multi-Path Environment

    Keita KONNO  Naoki HONMA  Dai SASAKAWA  Kentaro NISHIMORI  Nobuyasu TAKEMURA  Tsutomu MITSUI  Yoshitaka TSUNEKAWA  

     
    PAPER-Antennas and Propagation

      Vol:
    E98-B No:11
      Page(s):
    2314-2321

    This paper proposes a method that uses bistatic Multiple-Input Multiple-Output (MIMO) radar to locate living-bodies. In this method, directions of living-bodies are estimated by the MUltiple SIgnal Classification (MUSIC) method at the transmitter and receiver, where the Fourier transformed virtual Single-Input Multiple-Output (SIMO) channel matrix is used. Body location is taken as the intersection of the two directions. The proposal uses a single frequency and so has a great advantage over conventional methods that need a wide frequency band. Also, this method can be used in multipath-rich environments such as indoors. An experiment is performed in an indoor environment, and the MIMO channels yielded by various subject numbers and positions are measured. The result indicates that the proposed method can estimate multiple living-body locations with high accuracy, even in multipath environments.