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On Proper Designing of Deep Structures for Image Classification

机译:论深层结构图像分类的正确设计

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In this paper, we present several approaches to configuration of deep convolutional neural networks for image classification. A common problem when creating deep structures is their proper designing and configuration. This paper shows the learning of the baseline model for image classification and its variations with different structures based on the baseline model. Each of them has different configurations related to downsampling, pooling and filters dilatation. The paper is intended as a guideline for proper designing of deep structures based on experiences resulting from the modifications of deep models configurations.
机译:在本文中,我们提出了几种用于图像分类的深度卷积神经网络配置方法。创建深层结构时的一个常见问题是其正确的设计和配置。本文展示了用于图像分类的基线模型的学习及其基于基线模型的不同结构的变化。它们每个都具有与下采样,合并和过滤器扩展有关的不同配置。本文旨在根据对深层模型配置进行修改后获得的经验,对深层结构进行正确的设计。

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