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Using a model of the human visual system to identify features for the indexing and retrieval of images

机译:使用人类视觉系统的模型来识别用于索引和检索图像的特征

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Abstract: The ability to characterize the important features of images is vital when responding to queries directed to an image database. Ideally, to produce results that are satisfactory to a human user, the system should employ methods for characterizing the image that are similar to those used by the human visual systems. However, global mathematical techniques such as histogram or frequency-based transforms bear little resemblance to the early processing steps performed on the visual stream by the hum,na visual system, as it is passed from the eye into the brain. This paper presents a model that employs a sequence of spatial convolutions and thresholding operations to mimic the neural behavior of the visual pathway, including the bipolar cells, the horizontal cells, and the retinal ganglion cells of the retina, the Lateral Geniculate Nucleus and the simple cells of the primary visual cortex. hen this model is applied to an image, the result is a 2D pattern of excitation similar to that observed by neural scientist in the primary visual cortex of primates. Given the fact that the excitation pattern in the primary visual cortex is the basis for virtually all higher-level visual processing, this pattern represents the visual system's selection of the most important feature in the image. By processing this 2D pattern in ways similar to the later stages of the human visual system, an image archiving system could characterize an image in ways that are similar to the human visual system. To demonstrate one use for the model, this paper uses the patterns generated from images of several complex 3D textures to determine the direction of the light falling on each of them. !6
机译:摘要:在响应针对图像数据库的查询时,表征图像重要特征的能力至关重要。理想地,为了产生使人类用户满意的结果,该系统应该采用与人类视觉系统所使用的那些相似的方法来表征图像。但是,诸如直方图或基于频率的变换之类的全局数学技术与hum,na视觉系统在视觉流上执行的早期处理步骤几乎没有相似之处,因为它是从眼睛传递到大脑的。本文提出了一种模型,该模型采用一系列空间卷积和阈值运算来模仿视觉通路的神经行为,包括视网膜的双极细胞,水平细胞以及视网膜神经节细胞,外侧膝状核和简单的神经节细胞。初级视觉皮层的细胞。当将此模型应用于图像时,结果是类似于灵长类动物初级视觉皮层中神经科学家观察到的2D激发模式。鉴于基本视觉皮层中的激发模式实际上是所有高级视觉处理的基础,因此该模式代表了视觉系统对图像中最重要特征的选择。通过以类似于人类视觉系统后期的方式处理该2D模式,图像存档系统可以以类似于人类视觉系统的方式来表征图像。为了演示该模型的一种用途,本文使用了从几种复杂的3D纹理的图像生成的图案来确定落在它们各自上的光的方向。 !6

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