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[Author] Daniele D. CAVIGLIA(1hit)

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  • A Self-Learning Analog Neural Processor

    Gian Marco BO  Daniele D. CAVIGLIA  Maurizio VALLE  

     
    PAPER-Neural Networks and Bioengineering

      Vol:
    E85-A No:9
      Page(s):
    2149-2158

    In this paper we present the analog architecture and the implementation of an on-chip learning Multi Layer Perceptron network. The learning algorithm is based on Back Propagation but it exhibits increased capabilities due to local learning rate management. A prototype chip (SLANP, Self-Learning Neural Processor) has been designed and fabricated in a CMOS 0.7 µm minimum channel length technology. We report the experimental results that confirm the functionality of the chip and the soundness of the approach. The SLANP performance compare favourably with those reported in the literature.