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Quaternion-based salient region detection using scale space analysis

机译:使用尺度空间分析的基于四元数的显着区域检测

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A salient region is the most distinctive part of the image that captures human's attention. Saliency detection is a fundamental characteristic of the human visual system. Finding computational models which are able to detect salient regions is a challenging task for image processing and computer vision applications. Salient regions of various sizes can be detected from different scales. Therefore, selecting the best scales is an important issue. In this paper, an efficient multi-scale method to find salient regions is proposed. In order to include more features in evaluating saliency of a pixel, feature maps are generated using components of both the RGB and YUV color spaces. These features are combined into quaternions. Detecting salient regions of different sizes is addressed by utilizing a scale space analysis. Salient regions are detected by convolving the image amplitude spectrum with a low-pass Gaussian kernel of multiple scales. To incorporate more meaningful information, more than one scale is considered based on entropy criterion. The final saliency map is generated by normalizing the weighted saliency maps of these scales. Experiments are conducted on a dataset of natural images to evaluate the performance of the proposed method. Results show that the proposed method provides larger values of area under receiver operating characteristics curve, precision, recall and F-measure, in comparison to some of the state-of-the-art methods.
机译:显着区域是图像中最吸引人眼的部分。显着性检测是人类视觉系统的基本特征。对于图像处理和计算机视觉应用而言,寻找能够检测到显着区域的计算模型是一项艰巨的任务。可以从不同的尺度检测到各种大小的显着区域。因此,选择最佳秤是一个重要的问题。本文提出了一种有效的多尺度方法来寻找显着区域。为了在评估像素的显着性时包括更多特征,使用RGB和YUV颜色空间的分量生成特征图。这些特征组合成四元数。利用尺度空间分析解决了检测不同大小的显着区域的问题。通过将图像振幅谱与多个尺度的低通高斯核卷积来检测显着区域。为了合并更多有意义的信息,基于熵标准考虑了一个以上的尺度。通过标准化这些比例的加权显着图来生成最终显着图。在自然图像的数据集上进行了实验,以评估该方法的性能。结果表明,与某些最新方法相比,该方法在接收器工作特性曲线,精度,召回率和F测度下提供了更大的面积值。

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