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Use of Neural Image Analysis Methods in the Process to determine the Dry Matter Content in the Compost

机译:在过程中使用神经图像分析方法确定堆肥中的干物质含量

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The aim of this research was investigate the possibility of using methods of computer image analysis and artificial neural networks for to assess the amount of dry matter in the tested compost samples. The research lead to the conclusion that the neural image analysis may be a useful tool in determining the quantity of dry matter in the compost. Generated neural model may be the beginning of research into the use of neural image analysis assess the content of dry matter and other constituents of compost. The presented model RBF 19:19-2-1:1 characterized by test error 0.092189 may be more efficient.
机译:这项研究的目的是研究使用计算机图像分析和人工神经网络方法来评估测试堆肥样品中干物质含量的可能性。研究得出的结论是,神经图像分析可能是确定堆肥中干物质数量的有用工具。生成的神经模型可能是开始使用神经图像分析来评估干物质和堆肥其他成分含量的研究的开始。以测试误差为0.092189为特征的提出的RBF 19:19-2-1:1模型可能更有效。

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