186 research outputs found
Response of an Excitatory-Inhibitory Neural Network to External Stimulation: An Application to Image Segmentation
Neural network models comprising elements which have exclusively excitatory
or inhibitory synapses are capable of a wide range of dynamic behavior,
including chaos. In this paper, a simple excitatory-inhibitory neural pair,
which forms the building block of larger networks, is subjected to external
stimulation. The response shows transition between various types of dynamics,
depending upon the magnitude of the stimulus. Coupling such pairs over a local
neighborhood in a two-dimensional plane, the resultant network can achieve a
satisfactory segmentation of an image into ``object'' and ``background''.
Results for synthetic and and ``real-life'' images are given.Comment: 8 pages, latex, 5 figure
Using Boltzmann machines for probability estimation: A general framework for neural network learning
Contains fulltext :
112742.pdf (preprint version ) (Open Access
Machines - now with intelligence
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98076.pdf (publisher's version ) (Open Access)4 p
Intelligente machines
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26958_intema.pdf (publisher's version ) (Open Access)23 p
Neurale netwerken, fuzzy rules en artificiele intelligentie
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112746.pdf (publisher's version ) (Open Access
Error potentials for self-organization
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101008.pdf (publisher's version ) (Open Access)IEEE International Conference on Neural Networks, March 28 - April 1,199
Second order approximations for probability models
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112694.pdf (preprint version ) (Open Access
Integrating tempo tracking and quantization using particle filtering
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62178.pdf (author's version ) (Open Access
Emerging phenomena in neural networks with dynamic synapses and their computational implications
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111332.pdf (preprint version ) (Open Access
Path integral control and state-dependent feedback
Contains fulltext :
144515.pdf (publisher's version ) (Open Access
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