Adapting constant multipliers in a neural network implementation

Philip B. James-Roxby, B.A. Blodget · 2002

The use of dynamic reconfiguration appears extremely attractive for implementing adaptive processing algorithms. Often, the adaption involves updating look-up tables based on a parameter which can only be determined at run-time. For reasons of efficiency, these look-up tables are read-only to the rest of the circuitry. This paper compares the use of run-time reconfiguration and read-only look-up tables, with a similar implementation using writable memories. The application under consideration is the multilayer perceptron neural network.

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