Recurrent Neural Networks for Temporal Data Processing
| PUBLISHER | Intechopen (02/09/2011) |
| PRODUCT TYPE | Hardcover (Hardcover) |
Description
The RNNs (Recurrent Neural Networks) are a general case of artificial neural networks where the connections are not feed-forward ones only. In RNNs, connections between units form directed cycles, providing an implicit internal memory. Those RNNs are adapted to problems dealing with signals evolving through time. Their internal memory gives them the ability to naturally take time into account. Valuable approximation results have been obtained for dynamical systems.
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Product Format
Product Details
ISBN-13:
9789533076850
ISBN-10:
9533076852
Binding:
Hardback or Cased Book (Sewn)
Content Language:
English
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Page Count:
116
Carton Quantity:
54
Product Dimensions:
6.69 x 0.31 x 9.61 inches
Weight:
0.86 pound(s)
Country of Origin:
US
Subject Information
BISAC Categories
Computers | Data Science - Neural Networks
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publisher marketing
The RNNs (Recurrent Neural Networks) are a general case of artificial neural networks where the connections are not feed-forward ones only. In RNNs, connections between units form directed cycles, providing an implicit internal memory. Those RNNs are adapted to problems dealing with signals evolving through time. Their internal memory gives them the ability to naturally take time into account. Valuable approximation results have been obtained for dynamical systems.
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