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Learning Print Artifact Detectors

机译:学习印刷品伪像探测器

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摘要

An important aspect of image and print quality is the existence of artifacts, such as compression or print artifacts. A general perceptual masking model, that describes the perceptual severity of artifacts on general background, could have been used to extract specific artifact detectors. However, currently general models are not mature enough to provide print artifact detectors for commercial print quality control application. Consequently we propose to employ machine learning techniques to learn a specific model for each print artifact based on a relevant set of features. We used the approach to develop two print artifact detectors. While the proposed approach was developed for print quality purpose, the method is general and can be used for learning automatic evaluators for image defects and quality degradation as well.
机译:图像和打印质量的一个重要方面是伪像的存在,例如压缩或打印伪像。描述一般背景下伪像的感知严重性的通用感知掩盖模型可能已用于提取特定的伪像检测器。但是,当前的通用模型还不够成熟,无法为商业打印质量控制应用提供打印伪像检测器。因此,我们建议采用机器学习技术,根据一组相关的功能为每个打印工件学习特定的模型。我们使用该方法开发了两个打印伪像检测器。虽然提出的方法是出于打印质量目的而开发的,但该方法是通用方法,可用于学习自动评估器,以评估图像缺陷和质量下降。

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