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Estimation of alumina content of anode cover materials using multivariate image analysis techniques

机译:使用多元图像分析技术估算阳极覆盖材料的氧化铝含量

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In this paper, the use of different image analysis techniques is investigated for predicting alumina content of anode cover materials used in primary aluminum smelters. This approach is proposed in to order to allow on-line estimation of alumina content for feedback control purposes, which is not currently possible due to the long time delays and limited number of samples that can be analyzed in the laboratory. Both color and textural features of various anode cover materials are extracted from digital RGB images, and partial least squares (PLS) regression models are developed for predicting alumina content from these features. Most alumina content prediction errors are within +/- 2 sigma of the X-ray fluorescence laboratory measurements. when larger variations are required by operators to make control decisions. Some challenges arising from the use of image analysis techniques for process control are also discussed. (C) 2007 Elsevier Ltd. All rights reserved.
机译:在本文中,研究了使用不同的图像分析技术来预测一次铝冶炼厂所用阳极覆盖材料的氧化铝含量。提出该方法是为了允许在线估算氧化铝含量以进行反馈控制,由于长时间延迟和在实验室中可以分析的样品数量有限,目前尚不可能。从数字RGB图像中提取了各种阳极覆盖材料的颜色和纹理特征,并开发了偏最小二乘(PLS)回归模型以根据这些特征预测氧化铝含量。大多数氧化铝含量的预测误差在X射线荧光实验室测量值的+/- 2 sigma之内。当操作员需要更大的变化量来做出控制决策时。还讨论了将图像分析技术用于过程控制所带来的一些挑战。 (C)2007 Elsevier Ltd.保留所有权利。

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