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What is Back propagation Algorithm

Encyclopedia of Artificial Intelligence
Learning algorithm of ANNs, based on minimizing the error obtained from the comparison between the outputs that the network gives after the application of a set of network inputs and the outputs it should give (the desired outputs).
Published in Chapter:
Voltage Instability Detection Using Neural Networks
Adnan Khashman (Near East University, Turkey), Kadri Buruncuk (Near East University, Turkey), and Samir Jabr (Near East University, Turkey)
Copyright: © 2009 |Pages: 7
DOI: 10.4018/978-1-59904-849-9.ch234
Abstract
The explosive growth in decision-support systems over the past 30 years has yielded numerous “intelligent” systems that have often produced less-than-stellar results (Michalewicz Z. et al., 2005). The increasing trend in developing intelligent systems based on neural networks is attributed to their capability of learning nonlinear problems offline with selective training, which can lead to sufficiently accurate online response. Artificial neural networks have been used to solve many problems obtaining outstanding results in various application areas such as power systems. Power systems applications can benefit from such intelligent systems; particularly for voltage stabilization, where voltage instability in power distribution systems could lead to voltage collapse and thus power blackouts. This article presents an intelligent system which detects voltage instability and classifies voltage output of an assumed power distribution system (PDS) as: stable, unstable or overload. The novelty of our work is the use of voltage output images as the input patterns to the neural network for training and generalizing purposes, thus providing a faster instability detection system that simulates a trained operator controlling and monitoring the 3-phase voltage output of the simulated PDS.
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More Results
A Hybrid System for Automatic Infant Cry Recognition I
Learning algorithm of ANNs, based on minimising the error obtained from the comparison between the outputs that the network gives after the application of a set of network inputs and the outputs it should give (the desired outputs)
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Stochastic Neural Network Classifiers
A supervised learning algorithm used to train artificial neural networks, where the network learns from many inputs, similar to the way a child learns to identify a bird from examples of birds and birds attributes.
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Neural Networks to Solve Nonlinear Inverse Kinematic Problems
The most famous and reliable algorithm based on the concept of the steepest decent method and can train weights between each neuron in neural networks based on errors. The errors are defined as the quantity between the output of neural network and teaching signal prepared in advance.
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An Efficient Learning of Neural Networks to Acquire Inverse Kinematics Model
Is the most famous and reliable algorithm based on the concept of the steepest decent method and can train weights between each neuron in neural networks based on errors. The errors are defined as the quantity between the output of neural network and teaching signal prepared in advance.
Full Text Chapter Download: US $37.50 Add to Cart
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