• DocumentCode
    1565624
  • Title

    Pipeline damping: a microarchitectural technique to reduce inductive noise in supply voltage

  • Author

    Powell, Michael D. ; Vijaykumar, T.N.

  • Author_Institution
    Sch. of Electr. & Comput. Eng., Purdue Univ., West Lafayette, IN, USA
  • fYear
    2003
  • Firstpage
    72
  • Lastpage
    83
  • Abstract
    Scaling of CMOS technology causes the power supply voltages to fall and supply currents to rise at the same time as operating speeds are increasing. Falling supply voltages cause noise margins to decrease, while increasing current and frequency makes supply noise injection larger, especially noise caused by inductance in the supply lines. Creating power distribution systems is one of the key challenges in modern chip design. Decoupling capacitance helps reduce inductance effects, but there is often a peak in the supply impedance that occurs at a resonant frequency caused roughly by the package inductance and the chip decoupling capacitors. This frequency is on the order of 100MHz, which is much lower than the operating frequency of the processor. We propose pipeline damping, an architectural technique which controls instruction issue to guarantee bounds on current variation around the frequency of the supply resonance, thus reducing the resulting supply noise. Damping is a cheaper alternative to expensive, circuit-based noise-reduction techniques. We make the fundamental observation that limiting the current flow change (di) within resonant time period (dt) controls di/dt without large performance loss. Damping guarantees bounds on current variation while allowing processor current to increase or decrease to the magnitude required to maintain performance. Our results show that a damped processor guarantees a 33% reduction in the worst-case current variation with an average performance degradation of 7% and average energy delay of 1.09 compared to an undamped processor.
  • Keywords
    current limiters; damping; integrated circuit noise; interference suppression; parallel architectures; performance evaluation; pipeline processing; CMOS technology; current variation; inductive noise; microarchitectural technique; noise margin; pipeline damping; power distribution system; power supply voltage; resonant frequency; CMOS technology; Circuit noise; Damping; Frequency; Inductance; Microarchitecture; Noise reduction; Pipelines; Resonance; Voltage;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Computer Architecture, 2003. Proceedings. 30th Annual International Symposium on
  • ISSN
    1063-6897
  • Print_ISBN
    0-7695-1945-8
  • Type

    conf

  • DOI
    10.1109/ISCA.2003.1206990
  • Filename
    1206990