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Finger Detection for Quality Assurance of Digitized Image Collections

机译:用于数字化图像集合的质量保证的手指检测

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This paper presents an approach for automatic detection of fingers that mistakenly appear in scans from digitized image collections. Our goal is to create a reliable detection tool that is independent from scan quality, finger sizes, direction, shape, colour and lighting conditions. Modern image processing techniques are applied for edge detection, local image information extraction, and analysis. We employed expert knowledge to determine default parameters of the algorithm, and support customized parameters for specific institutional workflows. Results for three digital collections analysis are presented. Documents with finger artefacts are identified with high reliability and validated by human visual inspection. The proposed method achieves up to 86 percent classification accuracy.
机译:本文介绍了一种自动检测手指的方法,这些手指被错误地出现在数字化图像集合中的扫描中。我们的目标是创建一个可靠的检测工具,独立于扫描质量,手指尺寸,方向,形状,颜色和照明条件。现代图像处理技术适用于边缘检测,局部图像信息提取和分析。我们使用专业知识来确定算法的默认参数,并支持特定的机构工作流程的自定义参数。提出了三种数字收集分析的结果。具有手指人工制品的文件以高可靠性识别并通过人类视觉检查验证。该方法的分类准确性达到了高达86%的分类准确性。

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