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Niblack Algorithm Modification Using Maximum-Minimum (Max-Min) Intensity Approaches on Low Contrast Document Images

机译:Niblack算法使用最大 - 最小(MAX-MIN)强度接近在低对比度文档图像上进行修改

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In recent decades, detection or segmentation has been one of the major interesting research subjects due to the analysis of the information. However, most of the historical document has degraded and low contrast problem. Recently, many binarization methods were proposed in order to segment the text region from the background region in the low-quality image. In this paper, an improved binarization method was inspired by Niblack method was presented. The modification focuses to find the optimum threshold value by using the Maximum-Minimum intensity technique. The main target is to reduce the unwanted detection image and increase the resultant performance compared to the original Niblack method. The proposed method was applied to the document images from H-DIBCO 2012 and H-DIBCO 2014 dataset. The results of the numerical simulation indicate that the target was achieved by the F-Measure by F-measure (58.706), PSNR (10.778) and Accuracy (86.876). This finding will give a new benchmark to other researchers to propose an advance binarization method.
机译:近几十年来,由于对信息的分析,检测或分割是主要有趣的研究受试者之一。但是,大多数历史文件都有降级和低对比度问题。最近,提出了许多二值化方法,以便将文本区域分段为低质量图像中的背景区域。本文提出了一种改进的二值化方法,提出了NiBlack方法。该修改侧重于使用最大 - 最小强度技术找到最佳阈值。与原始NiBlack方法相比,主要目标是减少不需要的检测图像并增加所得性能。将所提出的方法应用于来自H-Dibco 2012和H-Dibco 2014数据集的文档图像。数值模拟的结果表明,通过F测量(58.706),PSNR(10.778)和准确度(86.876)来实现目标。这一发现将为其他研究人员提供新的基准,提出提出的二值化方法。

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