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Selecting What Is Important: Training Visual Attention

机译:选择重要内容:训练视觉注意力

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摘要

We present a new, sophisticated algorithm to select suitable training images for our biologically motivated attention system VOCUS. The system detects regions of interest depending on bottom-up (scene-dependent) and top-down (target-specific) cues. The top-down cues are learned by VOCUS from one or several training images. We show that our algorithm chooses a subset of the training set that outperforms both the selection of one single image as well as simply using all available images for learning. With this algorithm, VOCUS is able to quickly and robustly detect targets in numerous real-world scenes.
机译:我们提出了一种新的,复杂的算法,可以为我们的生物动力注意力系统VOCUS选择合适的训练图像。该系统根据自下而上(取决于场景)和自上而下(针对特定目标)的提示来检测感兴趣的区域。 VOCUS从一个或多个训练图像中学习了自上而下的提示。我们证明了我们的算法选择了训练集的一个子集,该子集的性能优于单个图像的选择,并且仅使用所有可用图像进行学习。借助该算法,VOCUS能够快速,稳健地检测大量真实场景中的目标。

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