Exploring ASIC design space at system level with a neural network estimator

Peeter Ellervee, Axel Jantsch, Johnny Öberg, Ahmed Hemani, Hannu Tenhunen · 2002

Estimators are critical tools in carrying out architectural level exploration of the design space. We present a novel approach to estimation based on the multilayer perceptron which builds the estimation function during the learning process and thus allows the description of arbitrary complex functions. We also describe how the control data flow graph is encoded for the neural network input and present results of the first experiments made with realistic design examples.>

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