• DocumentCode
    1138123
  • Title

    Evaluation of a pulse coding technique for spacial structure characterization

  • Author

    Rao, N. A H K ; Aubry, M.

  • Author_Institution
    Center for Imaging Sci., Rochester Inst. of Technol., NY, USA
  • Volume
    41
  • Issue
    5
  • fYear
    1994
  • Firstpage
    660
  • Lastpage
    663
  • Abstract
    Pulse coding techniques have been used in the past primarily to improve signal to (electronic) noise ratio. However, the flexibility inherent in pulse coding can be exploited to solve several problems in medical imaging and nondestructive testing. We have experimentally examined its potential for spacial structure characterization of a scattering medium on a scale below the resolution of the imaging system. The ability to change the point spread function and the spectral content of the interrogating pulse with frequency modulated (FM) pulse coding has been utilized. Water filled sponge with pore size much smaller than the resolution cell volume was used as the scattering medium. A nonfocused transducer was driven with FM coded pulses. The pulse compression processing was carried out digitally on a computer. FM pulses with 143 different combinations of center frequency f/sub 0/ and 6 dB bandwidth /spl Delta/f were used. Amplitude signal to noise ratio (SNR/sub A/) was calculated on the envelope detected signal for spacial structure characterization. SNR/sub A/ showed significant increase from its Rayleigh limit value of 1.91 at certain specific frequencies. Both simulation and theoretical considerations are used to show that this resonance effect is a signature of the underlying semiperiodic scattering structure of the medium.<>
  • Keywords
    acoustic imaging; acoustic signal processing; acoustic wave scattering; frequency modulation; pulse-code modulation; ultrasonic scattering; Rayleigh limit; amplitude signal to noise ratio; envelope detected signal; frequency modulated pulse coding; imaging system; medical imaging; nondestructive testing; nonfocused transducer; point spread function; pore size; pulse compression processing; semiperiodic scattering structure; simulation; spacial structure; spectral content; water filled sponge; Biomedical imaging; Frequency modulation; Image resolution; Modulation coding; Nondestructive testing; Pulse modulation; Rayleigh scattering; Signal resolution; Signal to noise ratio; Transducers;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/58.308501
  • Filename
    308501