图像质量对基于SWT投票的自然场景图像文本检测降色方法的影响

Andrej Ikica, P. Peer
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引用次数: 2

摘要

本文的目的是研究自然场景图像中图像质量对文本检测方法性能的影响,重点研究文本分割阶段。自然场景图像经常受到许多图像质量下降因素的影响,其中最常见的是模糊和噪声。为了分析它们对文本检测方法性能的影响,我们系统地评估了三种最先进的文本检测方法,即SWT,面向文本检测的颜色还原和我们自己的基于SWT投票的颜色还原,用于图像捕获过程中降级的图像。实验结果表明,基于SWT投票的颜色还原方法在很大程度上优于其他两种最先进的方法。实验是在一个具有挑战性的CVL OCR DB文本检测评估数据集上进行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of image quality on SWT voting-based color reduction method for detecting text in natural scene images
The aim of the article is to study the influence of image quality on performance of text detection methods in natural scene images with emphasis on text segmentation stage. Natural scene images are often subject to numerous image-quality degradation factors, among which blur and noise are by far most common. To analyze their influence on performance of text detection methods, we systematically evaluated three state-of-the-art text detection methods, namely SWT, text detection-oriented color reduction and our own SWT voting-based color reduction, on the images that were degraded in the image capture process. Experimental results indicate that the SWT voting-based color reduction mostly outperforms the other two state-of-the-art methods. The experiment was carried out on a challenging CVL OCR DB text detection evaluation dataset.
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