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PanoViT: Vision Transformer for Room Layout Estimation from a Single Panoramic Image

23 December 2022
Weichao Shen
Yuan Dong
Zonghao Chen
Zhen-Guo Zhao
Yang Gao
Zhu-Qin Liu
    ViT
    MDE
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Abstract

In this paper, we propose PanoViT, a panorama vision transformer to estimate the room layout from a single panoramic image. Compared to CNN models, our PanoViT is more proficient in learning global information from the panoramic image for the estimation of complex room layouts. Considering the difference between a perspective image and an equirectangular image, we design a novel recurrent position embedding and a patch sampling method for the processing of panoramic images. In addition to extracting global information, PanoViT also includes a frequency-domain edge enhancement module and a 3D loss to extract local geometric features in a panoramic image. Experimental results on several datasets demonstrate that our method outperforms state-of-the-art solutions in room layout prediction accuracy.

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