• DocumentCode
    1247613
  • Title

    Use of modulated excitation signals in medical ultrasound. Part II: design and performance for medical imaging applications

  • Author

    Misaridis, Thanassis ; Jensen, Jørgen Arendt

  • Author_Institution
    Nat. Tech. Univ. of Athens, Greece
  • Volume
    52
  • Issue
    2
  • fYear
    2005
  • Firstpage
    192
  • Lastpage
    207
  • Abstract
    For pt.I, see ibid., vol.52, no.2, p.177-91 (2005). In the first paper, the superiority of linear FM signals was shown in terms of signal-to-noise ratio and robustness to tissue attenuation. This second paper in the series of three papers on the application of coded excitation signals in medical ultrasound presents design methods of linear FM signals and mismatched filters, in order to meet the higher demands on resolution in ultrasound imaging. It is shown that for the small time-bandwidth (TB) products available in ultrasound, the rectangular spectrum approximation is not valid, which reduces the effectiveness of weighting. Additionally, the distant range sidelobes are associated with the ripples of the spectrum amplitude and, thus, cannot be removed by weighting. Ripple reduction is achieved through amplitude or phase predistortion of the transmitted signals. Mismatched filters are designed to efficiently use the available bandwidth and at the same time to be insensitive to the transducer´s impulse response. With these techniques, temporal sidelobes are kept below 60 to 100 dB, image contrast is improved by reducing the energy within the sidelobe region, and axial resolution is preserved. The method is evaluated first for resolution performance and axial sidelobes through simulations with the program Field II. A coded excitation ultrasound imaging system based on a commercial scanner and a 4 MHz probe driven by coded sequences is presented and used for the clinical evaluation of the coded excitation/compression scheme. The clinical images show a significant improvement in penetration depth and contrast, while they preserve both axial and lateral resolution. At the maximum acquisition depth of 15 cm, there is an improvement of more than 10 dB in the signal-to-noise ratio of the images. The paper also presents acquired images, using complementary Golay codes, that show the deleterious effects of attenuation on binary codes when processed with a matched filter, als- - o confirmed by the presented simulated images.
  • Keywords
    Golay codes; acoustic tomography; biomedical ultrasonics; frequency modulation; image coding; matched filters; medical image processing; tissue engineering; ultrasonic absorption; ultrasonic imaging; clinical evaluation; clinical images; coded compression; coded excitation; coded excitation signals; complementary Golay codes; distant range sidelobes; image contrast; linear FM signals; medical imaging applications; medical ultrasound; mismatched filters; modulated excitation signals; penetration depth; phase predistortion; rectangular spectrum approximation; ripple reduction; robustness; signal transmission; signal-noise ratio; temporal sidelobes; tissue attenuation; ultrasound imaging; Attenuation; Biomedical imaging; Design methodology; Energy resolution; Filters; Image resolution; Robustness; Signal resolution; Signal to noise ratio; Ultrasonic imaging; Computer Simulation; Mathematics; Signal Processing, Computer-Assisted; Ultrasonography;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2005.1406546
  • Filename
    1406546