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Persian handwritten digit recognition by random forest and convolutional neural networks

机译:随机森林和卷积神经网络的波斯手写数字识别

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Persian handwritten digit recognition has attracted some interests in the research community by introduction of large Hoda dataset. In this paper, the well-known random forest (RF) and convolutional neural network (CNN) algorithms are investigated for Persian handwritten digit recognition on the Hoda dataset. Using the Hoda dataset as a standard testbed, we have performed some experiments with different preprocessing steps, feature types, and baselines. It is then shown that RFs and CNNs perform competitively with the state-of-the-art methods on this dataset, while CNNs being the fastest if appropriate hardware is available.
机译:通过引入大型Hoda数据集,波斯手写数字识别在研究界引起了一些兴趣。本文研究了在Hoda数据集上用于波斯手写数字识别的著名随机森林(RF)和卷积神经网络(CNN)算法。使用Hoda数据集作为标准测试平台,我们使用不同的预处理步骤,特征类型和基线进行了一些实验。然后显示,RF和CNN在该数据集上的最新方法具有竞争力,而CNN如果有合适的硬件可用,则是最快的。

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