Associative Memory in Reaction-Diffusion Chemistry

Stovold, James (2016) Associative Memory in Reaction-Diffusion Chemistry. In: Advances in Unconventional Computing :. Springer. ISBN 978-3-319-33921-4

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Abstract

Unconventional computing paradigms are typically very difficult to program. By implementing efficient parallel control architectures such as artificial neural networks, we show that it is possible to program unconventional paradigms with relative ease. The work presented implements correlation matrix memories (a form of artificial neural network based on associative memory) in reaction-diffusion chemistry, and shows that implementations of such artificial neural networks can be trained and act in a similar way to conventional implementations.

Item Type:
Contribution in Book/Report/Proceedings
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Research Output Funding/no_not_funded
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ID Code:
185529
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Deposited On:
01 Feb 2023 17:00
Refereed?:
No
Published?:
Published
Last Modified:
28 Nov 2023 10:40