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A cognitive approach for texture analysis using neighbors-based binary patterns

机译:使用基于邻居的二进制模式进行纹理分析的认知方法

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The human brain receives images from the natural world and understands scenes, places and events quickly, outperforming the most advanced artificial vision system. Most of surfaces are textured in real life. Thus, In this paper, a novel texture analysis method has been proposed. The texture can be seen as a visual representation of complex patterns that lead to cognitive understanding of the environment. Our method is inspired from the Local Binary Pattern (LBP) method. The proposed Neighbor based Binary Pattern (NBP) extracts the local pattern from the texture using an analysis window. Each neighbor of the central pixel is thresholded by the next neighbor and encoded (starting from the top-left neighbor and going clockwise). Thus, the central pixel describes the relative pertinent information between its neighboring pixels. The rotation invariant version of the NBP method extracts patterns which are robust against rotation. For this, the encoding process starts always from the higher neighbor. The encoding process is applied on whole the original image in order to obtain the RINBP image. A histogram is calculated from the RINBP image to describe the texture. The size of the obtained histogram was reduced while keeping the relevant information. In the experiments, the performance of the proposed feature is evaluated on thirteen textured images from Brodatz texture album. It is shown that the RINBP method outperforms the earlier versions of the rotationinvariant LBP and the classical NBP method. This is due to its ability to extract the relative and relevant information from the local neighborhood.
机译:人脑从自然界接收图像并快速了解场景,位置和事件,其性能优于最先进的人工视觉系统。在现实生活中,大多数表面都是有纹理的。因此,本文提出了一种新颖的纹理分析方法。可以将纹理看作是复杂图案的视觉表示,这些图案导致对环境的认知理解。我们的方法是从本地二进制模式(LBP)方法获得启发的。所提出的基于邻居的二进制图案(NBP)使用分析窗口从纹理中提取局部图案。中心像素的每个邻居都由下一个邻居设定阈值并进行编码(从左上角的邻居开始并顺时针旋转)。因此,中心像素描述了其相邻像素之间的相对相关信息。 NBP方法的旋转不变形式提取对旋转具有鲁棒性的模式。为此,编码过程始终从较高的邻居开始。对整个原始图像进行编码处理,以获得RINBP图像。从RINBP图像中计算出直方图以描述纹理。在保持相关信息的同时,减小了所获得直方图的大小。在实验中,在Brodatz纹理专辑的13张纹理图像上评估了所提出功能的性能。结果表明,RINBP方法优于旋转不变LBP和经典NBP方法的早期版本。这是由于其能够从本地邻居中提取相对信息和相关信息。

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