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Sketch2Saliency: Learning to Detect Salient Objects from Human Drawings (2303.11502v3)

Published 20 Mar 2023 in cs.CV

Abstract: Human sketch has already proved its worth in various visual understanding tasks (e.g., retrieval, segmentation, image-captioning, etc). In this paper, we reveal a new trait of sketches - that they are also salient. This is intuitive as sketching is a natural attentive process at its core. More specifically, we aim to study how sketches can be used as a weak label to detect salient objects present in an image. To this end, we propose a novel method that emphasises on how "salient object" could be explained by hand-drawn sketches. To accomplish this, we introduce a photo-to-sketch generation model that aims to generate sequential sketch coordinates corresponding to a given visual photo through a 2D attention mechanism. Attention maps accumulated across the time steps give rise to salient regions in the process. Extensive quantitative and qualitative experiments prove our hypothesis and delineate how our sketch-based saliency detection model gives a competitive performance compared to the state-of-the-art.

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Authors (7)
  1. Ayan Kumar Bhunia (63 papers)
  2. Subhadeep Koley (21 papers)
  3. Amandeep Kumar (14 papers)
  4. Aneeshan Sain (40 papers)
  5. Pinaki Nath Chowdhury (37 papers)
  6. Tao Xiang (324 papers)
  7. Yi-Zhe Song (120 papers)
Citations (16)

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