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Published byJoella Underwood Modified over 8 years ago
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1 Introduction to Neural Networks Recurrent Neural Networks
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2 Recurrent neural networks are neural networks with feedback loops. Why recurrent neural networks? –A new approach to problem solving (via neurodynamics). –A better way for long-term prediction (e.g., financial forecasting).
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3 Hopfield Neural Networks (RNNs with fixed-points)
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4 Hopfield Network Architecture
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5 Hopfield Network Formulation
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6 Hopfield Network for Pattern Associative Memory
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7 Stability analysis
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8 Trend of change in energy due to the change in state x k :
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9 Recurrent Multilayer Perceptron
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10 Recurrent Multilayer Perceptron Network Architecture
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11 Formulation and Learning Algorithm
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12 Main Applications of Hopfield Networks Pattern Association Optimisation Time-series modelling and prediction, with better performance than feedforward MLP.
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