alexa Influence of the Training Set Value on the Quality of the Neural Network to Identify Selected Moulding Sand Properties
Engineering

Engineering

Advances in Automobile Engineering

Author(s): J Jakubski, St M Dobosz

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Artificial neural networks are one of the modern methods of the production optimisation. An attempt to apply neural networks for controlling the quality of bentonite moulding sands is presented in this paper. This is the assessment method of sands suitability by means of detecting correlations between their individual parameters. This paper presents the next part of the study on usefulness of artificial neural networks to support rebonding of green moulding sand, using chosen properties of moulding sands, which can be determined fast. The effect of changes in the training set quantity on the quality of the network is presented in this article. It has been shown that a small change in the data set would change the quality of the network, and may also make it necessary to change the type of network in order to obtain good results.

This article was published in de Gruyter and referenced in Advances in Automobile Engineering

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