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Panoramic Image Inpainting with Gated Convolution and Contextual Reconstruction Loss

Yu, Li; Gao, Yanjun; Pakdaman, Farhad; Gabbouj, Moncef (2024)

 
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Panoramic_Image_Inpainting.pdf (4.938Mt)
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Yu, Li
Gao, Yanjun
Pakdaman, Farhad
Gabbouj, Moncef
2024

This publication is copyrighted. You may download, display and print it for Your own personal use. Commercial use is prohibited.
doi:10.1109/ICASSP48485.2024.10446469
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Julkaisun pysyvä osoite on
https://urn.fi/URN:NBN:fi:tuni-202504023197

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Peer reviewed
Tiivistelmä
Deep learning-based methods have demonstrated encouraging results in tackling the task of panoramic image inpainting. However, it is challenging for existing methods to distinguish valid pixels from invalid pixels and find suitable references for corrupted areas, thus leading to artifacts in the inpainted results. In response to these challenges, we propose a panoramic image inpainting framework that consists of a Face Generator, a Cube Generator, a side branch, and two discriminators. We use the Cubemap Projection (CMP) format as network input. The generator employs gated convolutions to distinguish valid pixels from invalid ones, while a side branch is designed utilizing contextual reconstruction (CR) loss to guide the generators to find the most suitable reference patch for inpainting the missing region. The proposed method is compared with state-of-the-art (SOTA) methods on SUN360 Street View dataset in terms of PSNR and SSIM. Experimental results and ablation study demonstrate that the proposed method outperforms SOTA both quantitatively and qualitatively.
Kokoelmat
  • TUNICRIS-julkaisut [20173]
Kalevantie 5
PL 617
33014 Tampereen yliopisto
oa[@]tuni.fi | Tietosuoja | Saavutettavuusseloste
 

 

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Kalevantie 5
PL 617
33014 Tampereen yliopisto
oa[@]tuni.fi | Tietosuoja | Saavutettavuusseloste