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An Overview and Performance Evaluation of Classification-Based Least Squares Trained Filters

机译:基于分类的最小二乘训练滤波器概述与性能评估

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摘要

An overview of the classification-based least squares trained filters on picture quality improvement algorithms is presented. For each algorithm, the training process is unique and individually selected classification methods are proposed. Objective evaluation is carried out to single out the optimal classification method for each application. To optimize combined video processing algorithms, integrated solutions are benchmarked against cascaded filters. The results show that the performance of integrated designs is superior to that of cascaded filters when the combined applications have conflicting demands in the frequency spectrum.
机译:概述了基于分类的最小二乘训练滤波器的图像质量改进算法。对于每种算法,训练过程都是唯一的,并提出了单独选择的分类方法。进行客观评估以针对每种应用选择最佳分类方法。为了优化组合的视频处理算法,以级联滤波器为基准对集成解决方案进行基准测试。结果表明,当组合应用在频谱需求方面存在冲突时,集成设计的性能要优于级联滤波器。

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