• DocumentCode
    2795345
  • Title

    Power-constrained hybrid BIST test scheduling in an abort-on-first-fail test environment

  • Author

    He, Zhiyuan ; Jervan, Gert ; Peng, Zebo ; Eles, Petru

  • Author_Institution
    Embedded Syst. Lab., Linkoping Univ., Sweden
  • fYear
    2005
  • fDate
    30 Aug.-3 Sept. 2005
  • Firstpage
    83
  • Lastpage
    86
  • Abstract
    This paper presents a method for power-constrained system-on-chip test scheduling in an abort-on-first-fail environment where the test is terminated as soon as a fault is detected. We employ the defect probabilities of individual cores to guide the scheduling, such that the expected total test time is minimized and the peak power constraint is satisfied. Based on a hybrid BIST architecture where a combination of deterministic and pseudorandom test sequences is used, the power-constrained test scheduling problem can be formulated as an extension of the two-dimensional rectangular packing problem and a heuristic has been proposed to calculate the near optimal order of different test sequences. The method is also generalized for both test-per-clock and test-per-scan approaches. Experimental results have shown that the proposed heuristic is efficient to find a near optimal test schedule with a low computation overhead.
  • Keywords
    built-in self test; logic testing; random sequences; system-on-chip; abort-on-first-fail test environment; peak power constraint; power-constrained hybrid BIST test scheduling; pseudorandom test sequences; rectangular packing problem; system-on-chip test scheduling; test-per-clock approach; test-per-scan approach; Automatic testing; Built-in self-test; Circuit faults; Circuit testing; Costs; Fault detection; Production; Scheduling; System testing; System-on-a-chip;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Digital System Design, 2005. Proceedings. 8th Euromicro Conference on
  • Print_ISBN
    0-7695-2433-8
  • Type

    conf

  • DOI
    10.1109/DSD.2005.63
  • Filename
    1559782