Artificial Neural Networks (ANNs) are often used (trained) to find a general solution in problems where a pattern needs to be extracted, such as data classification. Feedforward (FFNN) is one of the ANN architectures and multilayer perceptron (MLP) is a type of FFNN. Based on gradient descent, backpropagation (BP) is one of the most used algorithms for MLP training. Evolutionary algorithms can be also used to train MLPs, including Differential Evolution (DE) algorithm. In this paper, BP and DE are used to train MLPs and they are both compared in four different approaches: (a) backpropagation, (b) DE with fixed parameter values, (c) DE with adaptive parameter values and (d) a hybrid alternative using both DE+BP algorithms. © 2013 IEEE
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In data mining, multilayer feed-forwardnetworks are one of the most used neural networksin various d...
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The architecture of Artificial Neural Network laid the foundation as a powerful technique in handlin...
This paper investigates the effectiveness and efficiency of two competitive (predator-prey) evolutio...
Main point of this thesis is to find and compare posibilities of cooperation between evolutionary al...
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