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Histogram-Equalized Hypercube Adaptive Linear Regression for Image Quality Assessment

机译:直方图均衡的超立方体自适应线性回归用于图像质量评估

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Image Quality Assessment (IQA) becomes intensely salient in several applications, namely, acquisition of images, watermarking, image compression, image transmission, enhancement of images and so on, due to the extensive use of digital images. In the past decades, considerable advancements have beendeveloped in IQA using Region of Interest (ROI). However, ROI localization is a labour-intensive process that takes multiple passes of sliding-window in search of proper ROI. The efficiency of examination, reduction in the time taken for ROI localization by multiple passes and the quality of the image can be improved by the proposed method, Histogram-Equalized Hypercube Adaptive Linear Regression (HE-HALR) scheme. HE-HALR scheme first performs the pre-processing step for input images. In this step, the features used to describe the quality of images are analysed using Histogram-Equalization-based Contrast Masking (HE-CM) model. The HE-CM model performs ROI localization with the parallelization programming that identifies the contrast masking and luminance value in a parallel manner. With the resultant feature vectors, dimensional reduction is performed using machine learning technique, namely, hypercubical neighbourhood. Finally, IQA is performedwith the dimensionality-reduced features using Adaptive Linear Regression.
机译:由于数字图像的广泛使用,图像质量评估(IQA)在几种应用中变得尤为突出,即图像的获取,水印,图像压缩,图像传输,图像的增强等。在过去的几十年中,使用兴趣区域(ROI)在IQA中取得了长足的进步。但是,ROI本地化是一项劳动密集型过程,需要多次滑动窗口才能找到合适的ROI。提出的方法,直方图均衡的超立方体自适应线性回归(HE-HALR)方案可以提高检查效率,减少通过多次ROI定位所花费的时间以及图像质量。 HE-HALR方案首先对输入图像执行预处理步骤。在此步骤中,使用基于直方图均衡化的对比度蒙版(HE-CM)模型分析用于描述图像质量的特征。 HE-CM模型通过并行编程执行ROI定位,该并行编程以并行方式识别对比度掩盖和亮度值。利用所得的特征向量,使用机器学习技术(即超立方体邻域)执行降维。最后,使用自适应线性回归对降维特征执行IQA。

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