GridMask Based Data Augmentation For Bengali Handwritten Grapheme Classification

Jiayu Yang
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引用次数: 5

Abstract

In this paper, we describe the deep learning-based Bengali handwritten grapheme classification. Specifically, our recognition approach is based on the convolutional neural networks (CNNs) as deep CNNs have achieved splendid performance on many different visual recognition tasks. Moreover, we employ GridMask-based data augmentation to improve the recognition performance further. We compare the GridMask-based data augmentation with conventional data augmentations (such as flip, rotation, mixup) on three widely-used CNN architectures: ResNet101, DenseNet169 and EfficientNet B0. Extensive experiments demonstrate GridMask can utilize the information removal to improve the robustness of the neural networks, and the boost of hierarchical macro-averaged recall on the validation set suggest that GridMask data augmentation can be efficiently used for the Bengali handwritten grapheme analysis without any prior grapheme segmentation.
基于GridMask的孟加拉文手写字素分类数据增强
在本文中,我们描述了基于深度学习的孟加拉文手写字素分类。具体来说,我们的识别方法是基于卷积神经网络(cnn)的,因为深度cnn在许多不同的视觉识别任务上取得了出色的表现。此外,我们采用基于gridmask的数据增强来进一步提高识别性能。我们将基于gridmask的数据增强与传统的数据增强(如翻转、旋转、混合)在三种广泛使用的CNN架构上进行了比较:ResNet101、DenseNet169和EfficientNet B0。大量的实验表明GridMask可以利用信息去除来提高神经网络的鲁棒性,并且对验证集的层次宏观平均召回率的提高表明GridMask数据增强可以有效地用于孟加拉手写字素分析,而无需事先进行字素分割。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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