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The application of neural networks to the papermaking industry

机译:神经网络在造纸工业中的应用

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摘要

This paper describes the application of neural network techniques to the papermaking industry, particularly for the prediction of paper "curl". Paper curl is an important quality measure that can only be measured reliably off-line after manufacture, making it difficult to control. Here, we predict, before paper manufacture from characteristics of the current reel, whether the paper curl will be acceptable and the level of curl. For both issues the case of predicting the probability that paper will be "out-of-specification" and that of predicting the level of curl, we include confidence intervals indicating to the machine operator whether the predictions should be trusted. The results and the associated discussion describe a successful application of neural networks to a difficult, but important, real-world task taken from the papermaking industry. In addition the techniques described are widely applicable to industry where direct prediction of a quality measure and its acceptability are desirable.
机译:本文介绍了神经网络技术在造纸工业中的应用,特别是在预测纸张“卷曲”方面。纸张卷曲是一项重要的质量指标,只能在制造后离线可靠地进行测量,因此很难控制。在此,我们将根据当前卷轴的特性在造纸之前预测纸张的卷曲度和卷曲程度是否可以接受。对于这两个问题,都需要预测纸张“不合规格”的可能性以及预测卷曲程度的情况,我们包括置信区间,该置信区间向机器操作员指示是否应该信任这些预测。结果和相关的讨论描述了神经网络在造纸行业中一项困难但重要的现实任务中的成功应用。此外,所描述的技术可广泛应用于需要直接预测质量度量及其可接受性的行业。

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