显着性模型中的颜色信息

Shahrbanoo Hamel, N. Guyader, D. Pellerin, D. Houzet
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引用次数: 5

摘要

自下而上的显著性模型是根据视觉场景的低层次特征,如强度、颜色、频率和运动来预测凝视的位置。本文研究了颜色特征在计算自底向上显著性中的作用。我们将色度途径纳入基于亮度的模型(Marat et al.[1])。我们评估了带有和不带有色度途径的模型的性能。我们在并行实现Rahman等人提出的基于亮度的模型的基础上增加了一种高效的多gpu色度路径实现,保持了实时解决方案。结果表明,颜色信息提高了显著性模型预测眼睛位置的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Color information in a model of saliency
Bottom-up saliency models have been developed to predict the location of gaze according to the low level features of visual scenes, such as intensity, color, frequency and motion. We investigate in this paper the contribution of color features in computing the bottom-up saliency. We incorporated a chrominance pathway to a luminance-based model (Marat et al. [1]). We evaluated the performance of the model with and without chrominance pathway. We added an efficient multi-GPU implementation of the chrominance pathway to the parallel implementation of the luminance-based model proposed by Rahman et al. [2], preserving real time solution. Results show that color information improves the performance of the saliency model in predicting eye positions.
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