Some new results on the capabilities of integer weights neural networks in classification problems

نویسنده

  • Sorin Draghici
چکیده

This paper analyzes some aspects of the computational power of neural networks (NN) using integer weights in a very restricted range. Using limited range integer ualues opens the road for eficient VLSI implementations because i ) a limited range for the weights can be translated into reduced storage requirements and ii) integer computation cnn be implemented in a more eficient way than the floating point one. The paper shows that a neural network using integer weights in the range [ -p ,p] (where p i s a small integer value) can classify correctly any set of patterns included in a hypercube of unit side length centered around the origin of Rn, n 2 2, for which the minimum Euclidean distanc etween two patterns of opposite classes is dmin 2 2p . &

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تاریخ انتشار 1999