• DocumentCode
    2059454
  • Title

    Information-theoretic synthesis of nanocomputers

  • Author

    Lyshevski, Lydia

  • Author_Institution
    Purdue Sch. of Sci., Indianapolis, IN, USA
  • Volume
    2
  • fYear
    2003
  • fDate
    12-14 Aug. 2003
  • Firstpage
    659
  • Abstract
    In this paper we approach and study different paradigms in the design and analysis of nanocomputers and their subsystems. In particular, we examine affordable high-performance architectures, research advanced organizations, and synthesize 3D topologies. In order to attain our objectives, an information-theoretic method is reported for nanocomputer synthesis and design. This approach allows us to design 3D multi-level networked topologies similar to complex 3D neuron bionetworks. It is demonstrated that the problems of information propagation, entropy analysis, and robust data correction in adaptive fault-tolerant nanocomputers can be resolved using the documented information, propagation and modeling approaches. This paper examines the integration of data processing and computing subsystems in nanocomputers. The design of high-performance nanocomputers is performed through evolutionary gate-level networking strategies. Using mathematical models which integrate nanocomputer states and parameters, analysis is performed. The reported methods are demonstrated through illustrative examples, and the effectiveness of the procedures proposed is demonstrated.
  • Keywords
    biocomputers; nanotechnology; neural nets; 3D multilevel network topologies; 3D neuron bionetworks; computing subsystems; data processing; entropy analysis; gate level networking strategies; information propagation; mathematical models; nanocomputer synthesis; robust data correction; Data analysis; Data processing; Entropy; Fault tolerance; Information analysis; Mathematical model; Network synthesis; Network topology; Neurons; Robustness;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nanotechnology, 2003. IEEE-NANO 2003. 2003 Third IEEE Conference on
  • Print_ISBN
    0-7803-7976-4
  • Type

    conf

  • DOI
    10.1109/NANO.2003.1230998
  • Filename
    1230998