• DocumentCode
    233456
  • Title

    Pacman: driving nonuniform clock grid loads for low-skew robust clock network

  • Author

    Zhou, Ning ; Restle, Phillip ; Palumbo, Joseph ; Kozhaya, Joseph ; Haifeng Qian ; Zhou Li ; Alpert, Charles ; Sze, C.

  • Author_Institution
    IBM Syst. & Technol. Group, Austin, TX, USA
  • fYear
    2014
  • fDate
    1-1 June 2014
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    Clock grid is a mainstream clock network methodology for high performance microprocessor and SOC designs. Clock skew, power usage and robustness to PVT (power, voltage, temperature) are all important metrics for a high quality clock grid design. Tree-driven-grid clock network is a typical clock grid clock network. It includes a clock source, a buffered tree, leaf buffers, a mesh clock grid, local clock buffers, and latches as shown in Fig. 1. For such network, one big challenge is how to connect the leaf level buffers of the global tree to the grid with nonuniform loads under tigh slew and skew constrainsts. The choice of tapping points that connect the leaf buffers to the clock grid are critical to the quality of te clock designs. Good tapping points can minimize the clock skew and reduce power. In this paper, we proposed a new algorithm to select the tapping points to build the global tree as regular and symmetric as possible. From our experimental results, the proposed algorithm can efficiently reduce global clock skew, rising slew, maximum overshoot, reduce power, and avoid local skew violation.
  • Keywords
    clocks; PACMAN; PVT; SOC design; buffered tree; latch; leaf level buffer; local clock buffer; low-skew robust clock network methodology; mesh clock grid; microprocessor; nonuniform clock grid load; power voltage temperature; tree-driven-grid clock network;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    System Level Interconnect Prediction (SLIP), 2014 ACM/IEEE International Workshop on
  • Conference_Location
    San Francisco, CA
  • Type

    conf

  • DOI
    10.1145/2633948.2633953
  • Filename
    6896581