• DocumentCode
    1492857
  • Title

    Linear-Phase Delay Filters for Ultra-Low-Power Signal Processing in Neural Recording Implants

  • Author

    Gosselin, B. ; Sawan, M. ; Kerherve, E.

  • Author_Institution
    Electr. Eng. Dept., Polystim Neurotechnologies Lab., Montreal, QC, Canada
  • Volume
    4
  • Issue
    3
  • fYear
    2010
  • fDate
    6/1/2010 12:00:00 AM
  • Firstpage
    171
  • Lastpage
    180
  • Abstract
    We present the design and implementation of linear-phase delay filters for ultra-low-power signal processing in neural recording implants. We use these filters as low-distortion delay elements along with an automatic biopotential detector to perform integral waveform extraction and efficient power management. The presented delay elements are realized employing continuous-time OTA-C filters featuring 9th-order equiripple transfer functions with constant group delay. Such analog delay enables processing neural waveforms with reduced overhead compared to a digital delay since it does not requires sampling and digitization. It uses an allpass transfer function for achieving wider constant-delay bandwidth than all-pole does. Two filters realizations are compared for implementing the delay element: the Cascaded structure and the Inverse follow-the-leader feedback filter. Their respective strengths and drawbacks are assessed by modeling parasitics and non-idealities of OTAs, and by transistor-level simulations. A budget of 200 nA is used in both filters. Experimental measurements with the chosen filter topology are presented and discussed.
  • Keywords
    biomedical electronics; linear phase filters; low-power electronics; medical signal processing; neurophysiology; operational amplifiers; prosthetics; 9th-order equiripple transfer functions; all-pass transfer function; automatic biopotential detector; cascaded structure; constant group delay; continuous-time OTA-C filters; filter topology; integral waveform extraction; inverse follow-the-leader feedback filter; linear-phase delay filters; low-distortion delay elements; neural recording implants; power management; transistor-level simulation; ultra-low-power signal processing; Biomedical signal processing; Delay lines; Detectors; Energy management; Filters; Implants; Propagation delay; Signal design; Signal processing; Transfer functions; Cascaded filter; inverse follow-the-leader feedback filter; linear-phase delay filter; neural signal processing; neuroprostheses; ultra-low-power OTA-C filters;
  • fLanguage
    English
  • Journal_Title
    Biomedical Circuits and Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1932-4545
  • Type

    jour

  • DOI
    10.1109/TBCAS.2010.2045756
  • Filename
    5466058