Improving Feature Stability during Upsampling -- Spectral Artifacts and the Importance of Spatial Context

Fuente: arXiv
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Main Authors: Agnihotri, Shashank, Grabinski, Julia, Keuper, Margret
Format: Preprint
Published: 2023
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author Agnihotri, Shashank
Grabinski, Julia
Keuper, Margret
author_facet Agnihotri, Shashank
Grabinski, Julia
Keuper, Margret
contents Pixel-wise predictions are required in a wide variety of tasks such as image restoration, image segmentation, or disparity estimation. Common models involve several stages of data resampling, in which the resolution of feature maps is first reduced to aggregate information and then increased to generate a high-resolution output. Previous works have shown that resampling operations are subject to artifacts such as aliasing. During downsampling, aliases have been shown to compromise the prediction stability of image classifiers. During upsampling, they have been leveraged to detect generated content. Yet, the effect of aliases during upsampling has not yet been discussed w.r.t. the stability and robustness of pixel-wise predictions. While falling under the same term (aliasing), the challenges for correct upsampling in neural networks differ significantly from those during downsampling: when downsampling, some high frequencies can not be correctly represented and have to be removed to avoid aliases. However, when upsampling for pixel-wise predictions, we actually require the model to restore such high frequencies that can not be encoded in lower resolutions. The application of findings from signal processing is therefore a necessary but not a sufficient condition to achieve the desirable output. In contrast, we find that the availability of large spatial context during upsampling allows to provide stable, high-quality pixel-wise predictions, even when fully learning all filter weights.
format Preprint
id arxiv_https___arxiv_org_abs_2311_17524
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Improving Feature Stability during Upsampling -- Spectral Artifacts and the Importance of Spatial Context
Agnihotri, Shashank
Grabinski, Julia
Keuper, Margret
Computer Vision and Pattern Recognition
Pixel-wise predictions are required in a wide variety of tasks such as image restoration, image segmentation, or disparity estimation. Common models involve several stages of data resampling, in which the resolution of feature maps is first reduced to aggregate information and then increased to generate a high-resolution output. Previous works have shown that resampling operations are subject to artifacts such as aliasing. During downsampling, aliases have been shown to compromise the prediction stability of image classifiers. During upsampling, they have been leveraged to detect generated content. Yet, the effect of aliases during upsampling has not yet been discussed w.r.t. the stability and robustness of pixel-wise predictions. While falling under the same term (aliasing), the challenges for correct upsampling in neural networks differ significantly from those during downsampling: when downsampling, some high frequencies can not be correctly represented and have to be removed to avoid aliases. However, when upsampling for pixel-wise predictions, we actually require the model to restore such high frequencies that can not be encoded in lower resolutions. The application of findings from signal processing is therefore a necessary but not a sufficient condition to achieve the desirable output. In contrast, we find that the availability of large spatial context during upsampling allows to provide stable, high-quality pixel-wise predictions, even when fully learning all filter weights.
title Improving Feature Stability during Upsampling -- Spectral Artifacts and the Importance of Spatial Context
topic Computer Vision and Pattern Recognition
url https://arxiv.org/abs/2311.17524