• DocumentCode
    466421
  • Title

    Thermal-aware high-level synthesis based on network flow method

  • Author

    Kim, Taewhan ; Lim, Pilok

  • Author_Institution
    Seoul Nat. Univ., Seoul
  • fYear
    2006
  • fDate
    22-25 Oct. 2006
  • Firstpage
    124
  • Lastpage
    129
  • Abstract
    Lowering down the chip temperature is becoming one of the important design considerations, since temperature adversely and seriously affects many of design qualities, such as reliability, performance and leakage power of chip, and also increases the packaging cost. In this work, we address a new problem of thermal-aware module binding in high-level synthesis, in which the objective is to minimize the peak temperature of the chip. The two key contributions are (1) to solve the binding problem with the primary objective of minimizing the ´peak´ switched capacitance of modules and the secondary objective of minimizing the ´total´ switched capacitance of modules and (2) to control the switched capacitances with respect to the floorplan of modules in a way to minimize the ´peak´ heat diffusion between modules. For (1), our proposed thermal-aware binding algorithm, called TA-b, formulates the thermal-aware binding problem into a problem of repeated utilization of network flow method, and solve it effectively. For (2), TA-b is extended, called TA-bf, to take into account a floorplan information, if exists, of modules to be practically effective. From experiments using a set of benchmarks, it is shown that TA-bf is able to use 10.1degC and 11.8degC lower peak temperature on the average, compared to that of the conventional low-power and thermal- aware methods, which target to minimizing total switched capacitance only ([18]) and to minimizing peak switched capacitance only ([16]), respectively.
  • Keywords
    diffusion; logic design; microprocessor chips; modules; thermal properties; chip temperature; network flow method; peak heat diffusion; switched capacitance; thermal-aware high-level synthesis; thermal-aware module binding; Capacitance; Computer network reliability; Computer science; Costs; Energy consumption; Equations; High level synthesis; Iterative algorithms; Packaging; Temperature measurement; binding; power consumption; temperature;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Hardware/Software Codesign and System Synthesis, 2006. CODES+ISSS '06. Proceedings of the 4th International Conference
  • Conference_Location
    Seoul
  • Print_ISBN
    1-59593-370-0
  • Electronic_ISBN
    1-59593-370-0
  • Type

    conf

  • DOI
    10.1145/1176254.1176285
  • Filename
    4278502