• DocumentCode
    3560798
  • Title

    Synctium: a Near-Threshold Stream Processor for Energy-Constrained Parallel Applications

  • Author

    Krimer, Evgeni ; Pawlowski, Robert ; Erez, Mattan ; Chiang, Patrick

  • Author_Institution
    ECE, UT Austin, Austin, TX, USA
  • Volume
    9
  • Issue
    1
  • fYear
    2010
  • Firstpage
    21
  • Lastpage
    24
  • Abstract
    While Moore´s law scaling continues to double transistor density every technology generation, supply voltage reduction has essentially stopped, increasing both power density and total energy consumed in conventional microprocessors. Therefore, future processors will require an architecture that can: a) take advantage of the massive amount of transistors that will be available; and b) operate these transistors in the near-threshold supply domain, thereby achieving near optimal energy/computation by balancing the leakage and dynamic energy consumption. Unfortunately, this optimality is typically achieved while running at very low frequencies (i.e. 0:1 - 10 MHz) and with only one computation executing per cycle, such that performance is limited. Further, near-threshold designs suffer from severe process variability that can introduce extremely large delay variations. In this paper, we propose a near energy-optimal, stream processor family that relies on massively parallel, near-threshold VLSI circuits and interconnect, incorporating cooperative circuit/architecture techniques to tolerate the expected large delay variations. Initial estimations from circuit simulations show that it is possible to achieve greater than 1 Giga-Operations per second (1GOP/s) with less than 1 mW total power consumption, enabling a new class of energy-constrained, high-throughput computing applications.
  • Keywords
    optimisation; parallel programming; pipeline processing; Moores law; Synctium; VLSI circuits; conventional microprocessors; double transistor density; dynamic energy consumption; energy constrained parallel applications; near threshold stream processor; supply voltage reduction; Low-power design; Mobile processors; Physically aware micro-architecture: power; SIMD processors; etc.; impact of technology trends; thermal;
  • fLanguage
    English
  • Journal_Title
    Computer Architecture Letters
  • Publisher
    ieee
  • Conference_Location
    6/3/2010 12:00:00 AM
  • ISSN
    1556-6056
  • Type

    jour

  • DOI
    10.1109/L-CA.2010.5
  • Filename
    5476384