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A text-independent Persian writer identification based on feature relation graph (FRG)

机译:基于特征关系图(FRG)的文本无关波斯作家识别

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摘要

The style of people's handwriting is a biometric feature that is used in person authentication. In this paper, we have proposed a text independent method for Persian writer identification. In the proposed method, pattern based features are extracted from data using Gabor and XGabor filter. The extracted features are represented for each person by using a graph that is called FRG (feature relation graph). This graph is constructed using relations between extracted features by employing a fuzzy method. The fuzzy method determines the similarity between features extracted from different handwritten instances of each person. In the identification phase, a graph similarity approach is employed to determine the similarity of the FRG generated from the test data and the FRGs generated by training data. The experimental results were satisfactory and the proposed method got about 100% accuracy on a dataset with 100 writers when enough training data was used. However, this method has been applied on Persian handwritings but we believe it can be extended on other languages especially in data representation and classification parts.
机译:人们的手写风格是一种用于个人身份验证的生物识别功能。在本文中,我们提出了一种与文本无关的波斯作家识别方法。在提出的方法中,使用Gabor和XGabor滤波器从数据中提取基于模式的特征。通过使用称为FRG(特征关系图)的图表为每个人表示提取的特征。通过使用模糊方法,使用提取的特征之间的关系来构造该图。模糊方法确定从每个人的不同手写实例提取的特征之间的相似性。在识别阶段,采用图相似度方法来确定从测试数据生成的FRG与训练数据生成的FRG的相似性。实验结果令人满意,当使用足够的训练数据时,该方法在具有100个作者的数据集上的准确性达到了100%。但是,此方法已应用于波斯语手写体,但我们认为可以将其扩展到其他语言上,尤其是在数据表示和分类部分。

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