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New Online/Offline text-dependent Arabic Handwriting dataset for Writer Authentication and Identification

机译:Writer身份验证和识别的新在线/离线文本文本依赖于依赖阿拉伯手写数据集

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Word-based writer identification and authentication have been under investigation for years. In this paper, we present a new Arabic online/offline handwriting dataset for writer authentication and identification. The created dataset includes two parts: AHWDB1 and AHWDB2 which are made freely available for the research community. Each part of the dataset consists of 2000 (10 trials X 200 writers) samples captured using HUAWEI MediaPad M3. Dynamic information such as pressure, timestamp and the coordinates(X, Y) have been collected and involved for both parts of the dataset. In addition, age, gender and education level have been added to the dataset for future investigation. Several experiments are conducted on the dataset. The preliminary identification results are obtained using K-Nearest Neighbor (KNN) with Dynamic time warping (DTW) and support vector machines (SVM). We recorded 81.35% identification rate as the best result using SVM classifier on AHWDB2.
机译:多年来,基于Word的作者识别和认证已经进行了调查。在本文中,我们展示了一个用于Writer身份验证和识别的新阿拉伯网上/离线手写数据集。创建的数据集包括两个部分:AHWDB1和AHWDB2,可用于研究社区。 DataSet的每个部分由2000(10个试验x200作家)使用Huawei MediaPad M3捕获的样本。已经收集并涉及数据集的两个部分,并涉及压力,时间戳和坐标(X,Y)的动态信息。此外,DataSet还增加了年龄,性别和教育水平以供将来调查。在数据集上进行了几个实验。使用K最近邻(KNN)获得具有动态时间翘曲(DTW)和支持向量机(SVM)的初始识别结果。我们在AHWDB2上使用SVM分类器录制了81.35%的识别率作为最佳结果。

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