Distortion-adaptive Salient Object Detection in 360$^\circ$ Omnidirectional Images
Jia Li, Jinming Su, Changqun Xia, Yonghong Tian

TL;DR
This paper introduces a new dataset and a baseline model for salient object detection in 360° omnidirectional images, addressing challenges posed by distortion and complex scenes, and demonstrating improved performance over existing methods.
Contribution
The paper provides the first public dataset for 360° SOD and proposes a distortion-adaptive model with multi-scale contextual integration for better detection.
Findings
The dataset contains 500 annotated high-resolution 360° images.
The proposed model outperforms state-of-the-art methods on the dataset.
The dataset and model are effective in handling distortion and complex scenes.
Abstract
Image-based salient object detection (SOD) has been extensively explored in the past decades. However, SOD on 360 omnidirectional images is less studied owing to the lack of datasets with pixel-level annotations. Toward this end, this paper proposes a 360 image-based SOD dataset that contains 500 high-resolution equirectangular images. We collect the representative equirectangular images from five mainstream 360 video datasets and manually annotate all objects and regions over these images with precise masks with a free-viewpoint way. To the best of our knowledge, it is the first public available dataset for salient object detection on 360 scenes. By observing this dataset, we find that distortion from projection, large-scale complex scene and small salient objects are the most prominent characteristics. Inspired by these foundings, this paper proposes a…
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Taxonomy
TopicsVisual Attention and Saliency Detection · Face Recognition and Perception · Virtual Reality Applications and Impacts
