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A proto-object based saliency model in three-dimensional space

机译:三维空间中基于原型对象的显着性模型

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摘要

Most models of visual saliency operate on two-dimensional images, using elementary image features such as intensity, color, or orientation. The human visual system, however, needs to function in complex three-dimensional environments, where depth information is often available and may be used to guide the bottom-up attentional selection process. In this report we extend a model of proto-object based saliency to include depth information and evaluate its performance on three separate three-dimensional eye tracking datasets. Our results show that the additional depth information provides a small, but statistically significant, improvement in the model's ability to predict perceptual saliency (eye fixations) in natural scenes. The computational mechanisms of our model have direct neural correlates, and our results provide further evidence that proto-objects help to establish perceptual organization of the scene. (C) 2015 Elsevier Ltd. All rights reserved.
机译:大多数视觉显着性模型使用诸如强度,颜色或方向之类的基本图像特征,对二维图像进行操作。然而,人类视觉系统需要在复杂的三维环境中运行,在该环境中深度信息通常可用,并且可以用来指导自下而上的注意力选择过程。在此报告中,我们扩展了基于原型对象的显着性模型,以包括深度信息,并在三个单独的三维眼动跟踪数据集上评估其性能。我们的结果表明,附加的深度信息在模型预测自然场景中的感知显着性(眼睛注视)的能力方面提供了较小但统计上显着的改进。我们模型的计算机制具有直接的神经相关性,我们的结果提供了进一步的证据,证明原型对象有助于建立场景的感知组织。 (C)2015 Elsevier Ltd.保留所有权利。

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