• DocumentCode
    2011232
  • Title

    High sensitivity test signatures for unconventional analog circuit test paradigms

  • Author

    Sindia, S. ; Agrawal, Vishwani D.

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Auburn Univ., Auburn, AL, USA
  • fYear
    2013
  • fDate
    6-13 Sept. 2013
  • Firstpage
    1
  • Lastpage
    10
  • Abstract
    A method of testing for parametric faults in analog circuits based on a polynomial representation of fault-free function of the circuit is presented. The response of the circuit under test (CUT) is estimated as a polynomial in the root mean square (RMS) magnitude of the applied input voltage at a relevant frequency or DC. The test then classifies the CUT as fault-free or faulty based upon a comparison of the estimated polynomial coefficients with those of the fault-free circuit. The test application needs very little augmentation of the circuit to make it testable as only output parameters are used for classification. The method is validated on an active elliptic filter and is shown to uncover parametric faults causing deviations as small as 5% from nominal values. Fault diagnosis based upon sensitivity of polynomial coefficients at relevant frequencies is discussed. Another type of circuit signatures in the form of probability moments of the output when test input is random noise are also proposed. It is shown that the sensitivity of either signature can be enhanced by a newly proposed nonlinear V-transform. Finally, an adaptive test framework leveraging from these signatures and the transform technique is shown to improve defect level and yield loss.
  • Keywords
    active filters; analogue circuits; circuit reliability; circuit testing; elliptic filters; fault diagnosis; polynomials; random noise; transforms; CUT; RMS magnitude; active elliptic filter; adaptive test framework; circuit signatures; circuit under test; defect level; fault diagnosis; fault-free circuit; fault-free function; high sensitivity test signatures; nonlinear V-transform; parametric faults; polynomial coefficients; polynomial representation; probability moments; random noise; root mean square magnitude; transform technique; unconventional analog circuit test paradigms; yield loss; Circuit faults; Fault diagnosis; Hypercubes; Mathematical model; Polynomials; Sensitivity; Transfer functions;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Test Conference (ITC), 2013 IEEE International
  • Conference_Location
    Anaheim, CA
  • ISSN
    1089-3539
  • Type

    conf

  • DOI
    10.1109/TEST.2013.6651884
  • Filename
    6651884