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A New Multi-spectral Fusion Method for Degraded Video Text Frame Enhancement

机译:降级视频文本帧增强的多谱融合新方法

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Text detection and recognition in degraded video is complex and challenging due to lighting effect, sensor and motion blurring. This paper presents a new method that derives multi-spectral images from each input video frame by studying non-linear intensity values in Gray, R, G and B color spaces to increase the contrast of text pixels, which results in four respective multi-spectral images. Then we propose a multiple fusion criteria for the four multi-spectral images to enhance text information in degraded video frames. We propose median operation to obtain a single image from the results of die multiple fusion criteria, which we name fusion-1. We further apply k-means clustering on the fused images obtained by the multiple fusion criteria to classify text clusters, which results in binary images. Then we propose the same median operation to obtain a single image by fusing binary images, which we name fusion-2. We evaluate the enhanced images at fusion-1 and fusion-2 using quality measures, such as Mean Square Error, Peak Signal to Noise Ratio and Structural Symmetry. Furthermore, the enhanced images are validated through text detection and recognition accuracies in video frames to show the effectiveness of enhancement.
机译:由于光照效果,传感器和运动模糊,退化视频中的文本检测和识别非常复杂且具有挑战性。本文提出了一种新方法,该方法通过研究Gray,R,G和B颜色空间中的非线性强度值来增加文本像素的对比度,从而从每个输入视频帧中获得多光谱图像,从而产生四个各自的多光谱图片。然后,我们针对四个多光谱图像提出了多种融合标准,以增强降级视频帧中的文本信息。我们提出了中值运算,以从多个融合标准的结果中获得单个图像,我们将其命名为fusion-1。我们进一步对通过多种融合标准获得的融合图像应用k均值聚类,以对文本聚类进行分类,从而生成二值图像。然后,我们提出了相同的中值运算,通过融合二进制图像来获得单个图像,我们将其命名为Fusion-2。我们使用诸如均方误差,峰值信噪比和结构对称性之类的质量度量来评估融合1和融合2处的增强图像。此外,增强的图像通过视频帧中的文本检测和识别准确性进行验证,以显示增强效果。

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