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@ -134,7 +134,7 @@ We find that residual scaling and smaller initialization can help to train a ver
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## The influence of training patch size
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We observe that training a deeper network benefits from a larger patch size. Moreover, the deeper model achieves more improvement (∼0.12dB) than the shallower one (∼0.04dB) since larger model capacity is capable of taking full advantage of
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larger training patch size.
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larger training patch size. (Evaluated on Set5 dataset with RGB channels.)
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<p align="center">
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<img height="250" src="figures/patch_a.png">
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<img height="250" src="figures/patch_b.png">
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