模型压缩经典文章翻译1:(Network Slimming翻译)Network Slimming-Learning Efficient Convolutional Networks ...-附件资源
2021-04-15 14:44:13 23B
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Visualizing and Understanding Convolutional Networks.zip
2021-03-16 17:15:54 33.41MB 深度学习
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Visualizing and Understanding Convolutional Networks (2).zip
2021-03-16 17:15:02 33.41MB 深度学习
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Deep Inside Convolutional Networks.zip
2021-03-16 17:14:58 2.12MB 深度学习
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In this work we investigate the effect of the convolutional network depth on its accuracy in the large-scale image recognition setting. Our main contribution is a thorough evaluation of networks of increasing depth using an architecture with very small (3×3) convolution filters, which shows that a significant improvement on the prior-art configurations can be achieved by pushing the depth to 16–19 weight layers. These findings were the basis of our ImageNet Challenge 2014 submission, where our team secured the first and the second places in the localisation and classification tracks respectively. We also show that our representations generalise well to other datasets, where they achieve state-of-the-art results. We have made our two best-performing ConvNet models publicly available to facilitate further research on the use of deep visual representations in computer vision.
2021-03-15 10:55:36 185KB AI 机器学习 深度学习 学术论文
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inet--VGG--Very deep convolutional networks.pdf
2021-02-01 11:05:39 227KB 深度学习
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Visualizing and Understanding Convolutional Networks 译文(“看懂”卷积神经网络)
2019-12-21 21:54:53 2.03MB Convolutiona Network
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