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Titlebook: Deep Learning Architectures; A Mathematical Appro Ovidiu Calin Textbook 2020 Springer Nature Switzerland AG 2020 neural networks.deep learn

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Sustainability and Discontinuityactivation function used in its neurons (fully-connected layer, convolution layer, pooling layer, etc.) The main part of this chapter will deal with training neural networks using the backpropagation algorithm.
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Introductory Problemsnction. The adjustable parameters are optimized to minimize a certain error function. At the end of the section we shall provide some conclusions, which will pave the path to the definition of the abstract neuron and neural networks.
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Neural Networksactivation function used in its neurons (fully-connected layer, convolution layer, pooling layer, etc.) The main part of this chapter will deal with training neural networks using the backpropagation algorithm.
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Design for Harmonious Experiencewill be random variables carrying forward some subset of the input information, which are described by some sigma-fields. From this point of view, neural networks can be interpreted as information processors.
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Information Representationwill be random variables carrying forward some subset of the input information, which are described by some sigma-fields. From this point of view, neural networks can be interpreted as information processors.
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System Design for Eco-efficiencyity between the prediction of the network and the associated target. This is also known under the equivalent names of ., ., or .. In the following we shall describe some of the most familiar cost functions used in neural networks.
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System Design for Eco-efficiency Since the number of parameters is quite large (they can easily be into thousands), a robust minimization algorithm is needed. This chapter presents a number of minimization algorithms of different flavors, and emphasizes their advantages and disadvantages.
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