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A framework for visual saliency detection with applications to image thumbnailing

机译:用于视觉显着性检测的框架及其在图像缩略图中的应用

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We propose a novel framework for visual saliency detection based on a simple principle: images sharing their global visual appearances are likely to share similar salience. Assuming that an annotated image database is available, we first retrieve the most similar images to the target image; secondly, we build a simple classifier and we use it to generate saliency maps. Finally, we refine the maps and we extract thumbnails. We show that in spite of its simplicity, our framework outperforms state-of-the-art approaches. Another advantage is its ability to deal with visual pop-up and application/task-driven saliency, if appropriately annotated images are available.
机译:我们提出了一个基于简单原理的视觉显着性检测的新颖框架:共享其全局视觉外观的图像可能会共享相似的显着性。假设有一个带注释的图像数据库,我们首先检索与目标图像最相似的图像;其次,我们建立一个简单的分类器,并使用它来生成显着性图。最后,我们优化地图并提取缩略图。我们表明,尽管框架简单,但其性能却优于最新方法。另一个优点是,如果有适当注释的图像可用,它具有处理可视弹出窗口和应用程序/任务驱动的显着性的能力。

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