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Implementation of One Orde Extraction for Identification of Coal Batik Method with Backpropagation Method

机译:一种扶手鉴定煤炭法鉴定煤炭法的实施

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The coastal areas of Java Island covering the cities of Brebes, Cirebon, Pekalongan, Lasem and Madura have various patterns of batik motifs. Based on the pattern of coastal batik motifs can be distinguished into batik geometric a non-geometry. Classification of coastal batik motif using Backpropagation algorithm by determining the value of learning rate and momentum during training data. Input data used in the form of statistical characteristics obtained from the formation of GLCM values. Statistical characteristics used include mean, standard deviation, curtosis, skewness and entropy. While the best learning rate is obtained on the number 0.5 and the momentum 1.0 on the geometry of batik motif. While the best non-geometric motif of learning rate is obtained on the number 0, 5 and momentum 1.0. The number of neurons used in the training of both motives affects the epoch value (the number of iterations) and the resulting error.
机译:Java岛的沿海地区覆盖了Brebes,Cirebon,Pekalongan,Lasem和Madura的城市拥有各种各样的蜡染图案。基于沿海蜡染图案的图案可以区分蜡染几何非几何形状。使用BackPrikation算法进行沿海蜡染图案的分类通过确定训练数据期间学习率和动量的价值。输入数据以从GLCM值的形成获得的统计特征的形式使用。使用的统计特征包括平均值,标准偏差,折流,偏移和熵。虽然最佳学习率是在蜡染基序的几何形状上的0.5和1.0上获得的。虽然在0,5和动量1.0上获得了学习率的最佳非几何图案。用于训练两种动机的神经元数量会影响偶数(迭代次数)和所产生的错误。

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