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首页> 外文期刊>Fibers and Polymers >Predicting the unevenness of polyester/viscose blended open-end rotor spun yarns using artificial neural network and statistical models
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Predicting the unevenness of polyester/viscose blended open-end rotor spun yarns using artificial neural network and statistical models

机译:使用人工神经网络和统计模型预测聚酯/粘胶混纺开口纺转子的不均匀度

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摘要

In this study, an artificial neural network (ANN) and a statistical model are developed to predict the unevenness of polyester/viscose blended open-end rotor spun yarns. Seven different blend ratios of polyester/viscose slivers are produced and these slivers are manufactured with four different rotor speed and four different yarn counts in rotor spinning machine. A back propagation multi layer perceptron (MLP) network and a mixture process crossed regression model (simplex lattice design) with two mixture components (polyester and viscose blend ratios) and two process variables (yarn count and rotor speed) are developed to predict the unevenness of polyester/viscose blended open-end rotor spun yarns. Both ANN and simplex lattice design have given satisfactory predictions, however, the predictions of statistical models gave more reliable results than ANN.
机译:在这项研究中,建立了一个人工神经网络(ANN)和一个统计模型来预测聚酯/粘胶混纺开口纺转子纺纱的不均匀性。生产了七种不同的聚酯/粘胶条混纺比,并在转杯纺纱机中以四种不同的转杯速度和四种不同的支数生产了这些条。开发了反向传播多层感知器(MLP)网络和具有两个混合成分(聚酯和粘胶混合比)和两个过程变量(纱线数量和转子速度)的混合过程交叉回归模型(简单晶格设计),以预测不均匀性涤/粘胶混纺开口纺短纤纱。 ANN和单纯形晶格设计都给出了令人满意的预测,但是,统计模型的预测比ANN提供了更可靠的结果。

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