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Nosie Suppressed Image Enhancing Environment

ch.shailaja

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Paper Contents

Abstract

We propose to restore old photos that suffer from severe degradation through a deep learning approach. Unlike conventional restoration tasks that can be solved through supervised learning, the degradation in real photos is complex and the domain gap between synthetic images and real old photos makes the network fail to generalize. Therefore, we propose a novel triplet domain translation network by leveraging real photos along with massive synthetic image pairs. Specifically, we train two variation auto encoders (VAES) to respectively transform old photos and clean photos into two latent spaces. The translation between these two latent spaces is learned with synthetic paired data. This translation generalizes well to real photos because the domain gap is closed in the compact latent space. Besides, to address multiple degradations mixed in one old photo, we design a global branch with a partial nonlocal block targeting to the structured defects, such as scratches and dust spots, and a local branch targeting to the unstructured defects, such as noises and blurriness. Two branches are fused in the latent space, leading to improved capability to restore old photos from multiple defects. The proposed method outperforms state-of-the-art methods in terms of visual quality for old photos restoration. Keywords: Noise Suppression, Image Enhancement, Deep Learning, Signal-to-Noise Ratio (SNR), Image Restoration, Edge Preservation .

Copyright

Copyright © 2025 ch.shailaja. This is an open access article distributed under the Creative Commons Attribution License.

Paper Details
Paper ID: IJPREMS50700018292
ISSN: 2321-9653
Publisher: ijprems
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